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Saturday, March 1, 2014

New paper falsifies climate model predictions at 95% confidence level, "very low" chance they could have predicted the "pause"

A new paper published in Nature Climate Change deals a near-fatal blow to climate models, finding the chances were "very low" that the models could have predicted the 'pause' in global warming over the past 20 years. The paper is lead authored by John Fyfe, a co-chair of the IPCC, who also published a recent paper in Nature finding that there has been no statistically-significant global warming for the past 20 years.

The paper falsifies climate model simulations at a 95% confidence level, stating, "the observed trends over this period lie outside the 5–95% range of simulated trends, or in other words, they are inconsistent with the simulated combination of internal variability and response to natural and anthropogenic forcings."

Recent observed and simulated warming


Nature Climate Change
 
4,
 
150–151
 
 
doi:10.1038/nclimate2111
Published online
 
Figure 1 shows observed3 (red) and simulated (black) trends over the past 20 years (1993–2012) in global mean surface temperature plotted against corresponding trends in eastern tropical Pacific sea surface temperature. As pointed out by Fyfe and colleagues1, the observed rate of global warming over this period is less than that simulated in all but two of 117 CMIP5 simulations. Figure 1shows an even more pronounced discrepancy over the eastern tropical Pacific, with the observed cooling trend being substantially more negative than that in any of the 117 CMIP5 simulations. The observations in Fig. 1 lie on the straight line that best fits the simulated global and eastern tropical Pacific temperature trends over the period from 1993 to 2012 — indicating that the observed global mean trend could be inferred from the observed tropical Pacific trend and the relationship between these two variables in the models.
Figure 1: Trends in global mean surface temperature and eastern tropical Pacific sea surface temperature for 1993–2012.
Trends in global mean surface temperature and eastern tropical Pacific sea surface temperature for 1993-2012.
Observed trends (red) are averages over 100 reconstructions of the HadCRUT4 dataset3. Simulated trends (black) are from 117 realizations of the climate from 37 CMIP5 models and their 5–95% ranges are shown with the black ellipse. The straight line is the best fit to the simulated global mean and eastern tropical Pacific trends, with a correlation of 0.63. As in Kosaka and Xie2 the eastern tropical Pacific is defined as the region east of the dateline and between 20° S and 20° N, and as in Fyfe et al.1 the simulations are sampled only where corresponding observations exist.
Because observations are sparse in polar regions, the calculated global mean trends could be less than actual trends given indications of rapid warming in the Arctic over the satellite record4. In our analysis, trends in both models and observations are computed only where adequate observations are available in situ, making this a robust like-for-like comparison of models and observations.Figure 2 shows observed (a) and model-average (b) trend maps over the past 20 years (1993–2012) computed for locations where adequate observations are available in situ. Over this period most of the observed regions exhibited warming, but much of Siberia, the eastern Pacific Ocean and the Southern Ocean cooled5. The regions of cooling over Siberia and the eastern Pacific Ocean are not seen in the simulated trends, although some Southern Ocean cooling is suggested on average. Figure 2b shows that for about 21% of grid cells with sufficient observational coverage the observed trends over this period lie outside the 5–95% range of simulated trends, or in other words, they are inconsistent with the simulated combination of internal variability and response to natural and anthropogenic forcings.
Figure 2: Trends in global surface temperature for 1993–2012.
Trends in global surface temperature for 1993-2012.
a, Observed trends. b, Average simulated trends from 117 simulations of the climate by 37 CMIP5 models. As in Fyfe et al.1 the simulations are sampled only where corresponding observations exist. Trends are computed only at grid points with at least 50% temporal coverage. The rectangles encompass the eastern tropical Pacific region2. In b the stippling indicates where the observed trends are outside the 5–95% range of the simulated trends.
Kosaka and Xie2 concluded that the current hiatus is part of internal climate variability tied to La Niña-like decadal cooling, but we point out that internal climate variability alone does not readily explain the difference between simulated and observed trends over this period, given that none of the 117 CMIP5 simulations captured the current eastern tropical Pacific cooling trend. Although on average the models show realistic 20-year trend variance in this region based on the limited observational record (Supplementary Fig. 1), and do not generally underestimate interannual variability associated with the El Niño Southern Oscillation5 (Supplementary Fig. 2), CMIP5 simulations of internal variability in the tropical Pacific do exhibit pronounced systematic errors5 and it remains possible that the models underestimate the probability of large internally generated cooling trends in this region. We further note that the models simulate externally forced warming in this region since about 1970 (Supplementary Fig. 1), which is likely to be associated in part with simulated weakening of the Walker circulation567, whereas observed sea surface temperatures cooled and the Walker circulation strengthened over the past 20 years25.
In conclusion, we agree with Kosaka and Xie2 that accounting for cooling in the eastern tropical Pacific could, in principle, reconcile recent observed and simulated global warming. However, based on the CMIP5 ensemble of climate simulations, the probability of simulating the recently observed eastern tropical Pacific cooling with a freely running climate model under the CMIP5 radiative forcing protocol is very low, and hence so too is the probability of simulating the observed global temperature change over the past 20 years.

Wednesday, June 18, 2014

New paper finds another excuse for the 'pause': Cold nights getting colder in N Hemisphere

A paper published today in Environmental Research Letters finds a new excuse [#13 by my count] for the 15+ year 'pause' or 'hiatus' of global warming:
"a coherent cooling pattern across the Northern Hemisphere mid-latitudes that has emerged in the recent 15 years and is not reproduced by the models. This regional inconsistency between models and observations might be a key to understanding the recent hiatus in global mean temperature warming."
Thus, although warm extremes are getting warmer, cold nights in the N Hemisphere are getting colder, not warmer as predicted by global warming theory. How could increased CO2 cause "a coherent cooling pattern across the Northern Hemisphere mid-latitudes" over the past 15+ years? Inquiring minds want to know; according to the authors, 

"precisely identifying the mechanisms behind the observed regional cooling patterns in extreme cold temperatures lies beyond the scope of this paper."

Excerpts from the discussion and conclusion:

We analyzed observed and model-simulated trends in
annual temperature extremes for the past 40 years
(1971–2010) in comparison to the recent 15 years
(1996–2010) using climate extreme indices from the HadEX2
observational dataset and a large set of CMIP5 models.
Simulated trends over the two periods are generally comparable
to observed trends for absolute temperature extremes
(i.e., coldest night (TNn) and warmest day (TXx) of the year)
on a global scale. The observed trends in hot extremes (i.e.,
TXx) are well represented in climate simulations, showing
warming trends similar to those seen in the observations in
both periods. Observed warming trends in cold extremes
(TNn) are less well represented in climate simulations, but
simulated trends are nevertheless consistent with observed
trends globally and in many regions. The largest discrepancy
between observed and simulated trends in cold extremes is
found in the Northern mid-latitudes (20 °N–45 °N), where
observations indicate a coherent zonal band of decreasing
trends over the recent 15 years. This might be connected to
the recent hiatus in the warming of global Tmean, which has
been characterized mainly as a winter phenomenon (e.g.,
Kosaka and Xie 2013, Cohen et al 2012). Only a few individual
model realizations simulate a cooling trend in TNn.

Our findings are consistent with the suggestion that the
recent 15-year period largely represents a highly unusual
(extreme) realization of climate as part of internal variability
(e.g., Meehl et al 2013, Kosaka and Xie 2013, England
et al 2014). Other recent studies (Fyfe et al 2013, Fyfe and
Gillett 2014) argue that internal climate variability is unlikely
to be the only explanation for the discrepancy seen between
model and observed trends and that some external forcing
components not fully represented in current climate models
could have contributed to the local cooling trends in cold
extremes. While precisely identifying the mechanisms behind
the observed regional cooling patterns in extreme cold temperatures
lies beyond the scope of this paper, the results
presented here provide relevant details to complete the overall
picture of recent temperature changes beyond globally averaged
Tmean.

We conclude that while there appears to be a discrepancy
in global Tmean trends between observations and simulations
over the hiatus period (e.g., Fyfe et al 2013), that discrepancy
does not generally extend to temperature extremes, with the
exception of a recent cooling in Northern mid-latitude TNn
that is particularly apparent regionally in South Asia. In
general, temperature extremes continue to increase in most
regions of the world consistent with the long-term projections
under global warming scenarios (e.g., Seneviratne et al 2012,
Sillmann et al 2013b).
Observations in red, modeled results in black

Observed and simulated temperature extremes during the recent warming hiatus

OPEN ACCESS
Jana Sillmann1, Markus G Donat2, John C Fyfe3 and Francis W Zwiers4
Show affiliations

Letters
The discrepancy between recent observed and simulated trends in global mean surface temperature has provoked a debate about possible causes and implications for future climate change projections. However, little has been said in this discussion about observed and simulated trends in global temperature extremes. Here we assess trend patterns in temperature extremes and evaluate the consistency between observed and simulated temperature extremes over the past four decades (1971–2010) in comparison to the recent 15 years (1996–2010). We consider the coldest night and warmest day in a year in the observational dataset HadEX2 and in the current generation of global climate models (CMIP5). In general, the observed trends fall within the simulated range of trends, with better consistency for the longer period. Spatial trend patterns differ for the warm and cold extremes, with the warm extremes showing continuous positive trends across the globe and the cold extremes exhibiting a coherent cooling pattern across the Northern Hemisphere mid-latitudes that has emerged in the recent 15 years and is not reproduced by the models. This regional inconsistency between models and observations might be a key to understanding the recent hiatus in global mean temperature warming.

Sunday, February 9, 2014

NBC News: Problems with climate models are 'bad news for the climate research community' 'could erode trust in climate science' 'downplay natural variability'

NBC News, typically the most alarmist network on global warming, published a surprisingly balanced article today on the new paper finding excuse #8 for the 'pause' in global warming: Pacific trade winds

Among the eye-opening quotes in the article are:
  • The "head-scratcher of a discrepancy between the temperature trends churned out by climate models and those observed in the real world"
  • "If you let the models do what they want to do without constraining them by observations, then they will not reproduce the hiatus,"
  • "And they don't do that because ... they do not reproduce this cooling over the past 10 or 20 years in the tropical Pacific. Instead they show, on average, warming."
  • "The picture is further muddled by the fact that "longer-term climate models have these winds weakening over the 21st century; that is to say 100 years from now they should be weaker. The fact that they have gotten stronger over the past 20 years, I think, is a surprise,"
  •  "It suggests that there is something that is happening in the real system that is not quite captured in the models."
  • "The shortcomings of the climate models highlighted in this new paper feed into larger criticism that the models play down the importance of natural variability in the global climate system. "
  • it is bad news for the climate research community because it does point to a potential problem for the climate models."
  • A problem with the models, in turn, could erode trust in climate science
  • The inability of the models to capture the observed wind trends and thus the hiatus is "just one small process in the global system that seems to need improvement,"

Global Warming Pause? The Answer Is Blowin' Into the Ocean


BY JOHN ROACH NBC News 2/9/14 [with added notations, emphasis, links]

For the past 13 years, global surface air temperatures have hardly budged higher despite continual pumping of planet-warming gasses into the atmosphere from the engines of modern life. Does this prove global warming is a giant hoax? No, according to a new study, which says the missing heat is being blown into the western Pacific Ocean by extraordinarily powerful and accelerating trade winds.

"Their acceleration over the last couple of decades is way stronger than you've ever seen in a climate model, about twice as strong," Matthew England, a climate scientist at the University of New South Wales in Sydney, Australia, told NBC News. "This is an unprecedented level of strengthening and it is strong enough that it is actually pushing heat in the Pacific Ocean into the ocean's interior," he added.

[Actually, the authors admit in the paper that the "
unprecedented level of strengthening" can only be said to be since the beginning of the satellite era in 1979, since observations prior to satellites are very sparse and "unconstrained."]

As the heat is drawn down into the ocean's interior, cooler water rises to the surface and cools air temperatures. When — it's not a matter of if, noted England — the winds slacken, the heat stored in the Pacific Ocean will return to the atmosphere, allowing the surface air temperatures to spike higher and "catch up to the original projections of global warming in under a decade."

The finding reported Sunday in the journal Nature Climate Change helps the climate science community explain a head-scratcher of a discrepancy between the temperature trends churned out by climate models and those observed in the real world, noted John Fyfe, an expert on the so-called warming hiatus at Environment Canada in Victoria, British Columbia. He was not involved in the new research.

"If you let the models do what they want to do without constraining them by observations, then they will not reproduce the hiatus," he told NBC News. "And they don't do that because ... they do not reproduce this cooling over the past 10 or 20 years in the tropical Pacific. Instead they show, on average, warming."

Building consensus

The new paper is the latest contribution to an ongoing effort to explain the warming hiatus. Other theories range from sunlight blocking particles in the atmosphere to lower activity on the sun. In recent months, several researchers have converged on the idea that the oceans are absorbing much of the missing heat at some depth.

"...if you let the ocean cool, it can have a global effect, and the effect is of a magnitude that is consistent with the current flattened surface temperature curve."

A paper published Aug. 28 in Nature suggested that unusually cool surface temperatures observed in the Pacific Ocean could explain the warming slowdown. The new paper performs a similar calculation, but instead of the cooler waters, England and his colleagues added the intensifying trade winds, which lead to ocean surface cooling.

"They both show that if you let the ocean cool, it can have a global effect, and the effect is of a magnitude that is consistent with the current flattened surface temperature curve," Shang-Ping Xie, a climate scientist at the Scripps Institution of Oceanography in La Jolla, Calif., and a co-author of the Nature paper, told NBC News.

The new study brings clarity to the "sequence of cause and effect," noted Fyfe, "beginning with the trade wind intensifcation, the drawdown of heat into the ocean, meaning cooling at the surface. That has been an advance and very useful in our physical understanding of things." [So, increased winds -> cooling of ocean surface -> more heat sinking to bottom of ocean?]

One of the next questions, noted England, is what causes the trade winds to strengthen.

The answer begins with a poorly understood, multidecade oscillation between warm and cool periods in the Pacific. This mode of variability, he said, appears to underpin whether decades are dominated by the El Niño or La Niña weather patterns. In the cycle's cool phase, as it is in now, trade winds increase.

"That [natural, sun-driven] mode in the Pacific can explain about half of the wind trend," England said. What explains the other half, at this point, remains a mystery. Some evidence suggests it could be linked to warming in the Indian Ocean, though the mechanism, he stressed, is unclear. "It is not at all resolved yet why these winds are twice as strong as we would expect just from the oscillation," he said.

The picture is further muddled by the fact that "longer-term climate models have these winds weakening over the 21st century; that is to say 100 years from now they should be weaker. The fact that they have gotten stronger over the past 20 years, I think, is a surprise," England said, adding, "It suggests that there is something that is happening in the real system that is not quite captured in the models."

Model failure

The shortcomings of the climate models highlighted in this new paper feed into larger criticism that the models play down the importance of natural variability in the global climate system. "You want to have enough noise in your system" in order to get a realistic result, noted Xie.

That this shortfall is highlighted in the new research, he added, "is quite a nice result, but in a sense it is bad news for the climate research community because it does point to a potential problem for the climate models."

"The overall big picture that the planet is warming and that that warming is due to human influence stills stands with or without the hiatus."

A problem with the models, in turn, could erode trust in climate science, noted England. But "that would be akin to writing off the medical profession for finding out something new about an illness that they didn't know about earlier," he said.

The inability of the models to capture the observed wind trends and thus the hiatus is "just one small process in the global system that seems to need improvement," he noted. The long-term global warming trend, he added, is independent from decade-to-decade variability in the Pacific Ocean.

Fyfe echoed the sentiment. Instead of undermining climate science, he said, "What you are seeing here in this discussion is the natural evolution of science and improving our understanding. The overall big picture that the planet is warming and that that warming is due to human influence stills stands with or without the hiatus."

JOHN ROACH

John Roach is a contributing writer for NBC News. He started this role in November of 2005. Roach is responsible for environmental coverage on the website. Roach has also contributed to National Geographic... Expand Bio


Related: Also published today from Science Daily:

Pacific trade winds stall global surface warming ... for now -- ScienceDaily


The strongest trade winds have driven more of the heat from global warming into the oceans; but when those winds slow, that heat will rapidly return to the atmosphere causing an abrupt rise in global average temperatures.

Heat stored in the western Pacific Ocean caused by an unprecedented strengthening of the equatorial trade winds appears to be largely responsible for the hiatus in surface warming observed over the past 13 years.

New research published today in the journal Nature Climate Change indicates that the dramatic acceleration in winds has invigorated the circulation of the Pacific Ocean, causing more heat to be taken out of the atmosphere and transferred into the subsurface ocean, while bringing cooler waters to the surface.

"Scientists have long suspected [false] that extra ocean heat uptake has slowed the rise of global average temperatures, but the mechanism behind the hiatus remained unclear" said Professor Matthew England, lead author of the study and a Chief Investigator at the ARC Centre of Excellence for Climate System Science.

"But the heat uptake is by no means permanent: when the trade wind strength returns to normal -- as it inevitably [false] will -- our research suggests heat will quickly accumulate in the atmosphere. So global temperatures look set to rise rapidly out of the hiatus, returning to the levels projected within as little as a decade."

The strengthening of the Pacific trade winds began during the 1990s and continues today. Previously, no climate models have incorporated a trade wind strengthening of the magnitude observed, and these models failed to capture the hiatus in warming. Once the trade winds were added by the researchers, the global average temperatures very closely resembled the observations during the hiatus.

"The winds lead to extra ocean heat uptake, which stalled warming of the atmosphere. Accounting for this wind intensification in model projections produces a hiatus in global warming that is in striking agreement with observations," Prof England said.

"Unfortunately, however, when the hiatus ends, global warming looks set to be rapid."

The impact of the trade winds on global average temperatures is caused by the winds forcing heat to accumulate below surface of the Western Pacific Ocean. [False, heat rises due to convection]

"This pumping of heat into the ocean is not very deep, however, and once the winds abate, heat is returned rapidly to the atmosphere" England explains. [false due to 1st & 2nd laws of thermodynamics]


"Climate scientists have long understood that global average temperatures don't rise in a continual upward trajectory, instead warming in a series of abrupt steps in between periods with more-or-less steady temperatures. Our work helps explain how this occurs," said Prof England.

"We should be very clear: the current hiatus offers no comfort -- we are just seeing another pause in warming before the next inevitable rise in global temperatures."

Story Source:

The above story is based on materials provided by University of New South Wales. Note: Materials may be edited for content and length.

Tuesday, September 24, 2013

McIntyre demolishes IPCC credibility with one post

In a must-read post today, Steve McIntyre demolishes the credibility of the IPCC as a scientific organization, demonstrating why the IPCC will be unable to explain the 'pause' due to their willful obstruction of the science contrary to their political narrative. 

McIntyre also demonstrates why the currently-favored excuse for the 'pause' of "the oceans ate my global warming" is unsupportable.



Two Minutes to Midnight


Excerpts:

There is much in the news about how IPCC will handle the growing discrepancy between models and observations – long an issue at skeptic blogs. According to BBC News, a Dutch participant says that “governments are demanding a clear explanation” of the discrepancy. On the other hand, Der Spiegel reports:

German ministries insist that it is important not to detract from the effectiveness of climate change warnings by discussing the past 15 years’ lack of global warming. Doing so, they say, would result in a loss of the support necessary for pursuing rigorous climate policies.

According to Der Spiegal (h/t Judy Curry), Joachim Marotzke, has promised that the IPCC will “address this subject head-on”. Troublingly, Marotzke felt it necessary to add that “climate researchers have an obligation not to environmental policy but to the truth”.

Unfortunately, as Judy Curry recently observed, it is now two minutes to midnight in the IPCC timetable. It is now far too late to attempt to craft an assessment of a complicated issue.

Efforts to craft an assessment on the run are further complicated by past failures and neglect both by IPCC and the wider climate science community. In its two Draft Reports sent to external scientific review, while IPCC mostly evaded the problem, its perfunctory assessment of the developing discrepancy between models and observations, such as it was, included major errors and misrepresentations, all tending in the direction of minimizing the issue.

IPCC has a further dilemma in coopering up an assessment on the run. Although the topic is obviously an important one, it received negligible coverage in academic literature, especially prior to the IPCC publication cutoff date, and the few relevant peer-reviewed articles (e.g. Easterling and Wehner 2009; Knight et al 2009) are unconvincing.

The IPCC assessment has also been compromised by gatekeeping by fellow-traveler journal editors, who have routinely rejected skeptic articles on the discrepancy between models and observations or pointing out the weaknesses of articles now relied upon by IPCC. Despite exposure of these practices in Climategate, little has changed. Had the skeptic articles been published (as they ought to have been), the resulting debate would have been more robust and IPCC would have had more to draw on its present assessment dilemma. As it is, IPCC is surely in a well-earned quandary.
...
The [temperature] observations through 2010 fall within the upper range of the TAR projections (IPCC, 2001) and roughly in the middle of the AR4 model results.

This assertion was flat-out untrue. Their Figure 1.4 (see below), which purported to support this claim, was not derived from peer reviewed literature and was botched. They misplaced observations relative to AR4 model projections (presumably due to an error in transposing reference periods).
...
In a recent article in National Post, Ross
McKitrick pointed out the inconsistency between IPCC’s language and its graphic, acidly observing:

The IPCC must take everybody for fools. Its own graph shows that observed temperatures are not within the uncertainty range of projections; they have fallen below the bottom of the entire span.

Reiner Grundmann at Klimazweibel also recently drew attention to the discrepancy in this graphic (citing McKitrick).
...
The criticisms in both the Liljegren comment and the Michaels et al submission were valid at the time and remain valid today. Many of their criticisms surfaced recently in Fyfe et al 2013, though this did not rebut Easterling and Wehner 2009 or Knight et al 2009 as directly. Fyfe et al 2013 was not published until after the IPCC deadline and, thus, Easterling and Wehner 2009 and Knight et al 2009 remained unrebutted in academic journals and were essentially all that was in the cupboard for the IPCC assessment.

Ross and I had experienced something similar in our comment on Santer et al 2008, which was likewise rejected by the original journal (International Journal of Climatology.) A couple of years later, Ross managed to get much of this material into print as McKitrick et al 2010. However, in the meantime, Santer et al 2008 continued to be cited in assessment reports. As an ironic footnote to our earlier controversy, AR5 now cites McKitrick et al 2010 and concedes that the discrepancy between models and observations in the tropical troposphere is unresolved.
The Problem Re-stated

IPCC’s Government Draft attempt to frame the discrepancy between models and observations as due to “natural variability” is ultimately a statistical problem – never a strong point of IPCC authors. Further, as noted above, the statistical analysis in the Government Draft purporting to support “natural variability” is not drawn from previously published literature, but was developed within the chapter (despite frequent protestations that IPCC does not itself do research.)

IPCC conceded in the Government Draft that there has been a 15-year “hiatus” (their term) in temperature increase, but assert that “individual decades” of hiatus are also “exhibited” in climate models, during which time the “energy budget is balanced” by energy uptake in the deep ocean:

However, climate models exhibit individual decades of GMST trend hiatus even during a prolonged phase of energy uptake of the climate system (e. g., Figure 9.8, (Easterling and Wehner, 2009; Knight et al., 2009)), in which case the energy budget would be balanced by increasing subsurface-ocean heat uptake (Meehl et al., 2011; Guemas et al., 2013; Meehl et al., 2013a).

However, pointing to the deep ocean doesn’t actually resolve the discrepancy between models and observations, since, as Hans von Storch recently observed, climate models did not include this effect.

Among other things, there is evidence that the oceans have absorbed more heat than we initially calculated. Temperatures at depths greater than 700 meters (2,300 feet) appear to have increased more than ever before. The only unfortunate thing is that our simulations failed to predict this effect.

IPCC also asserted that similar hiatuses are “common” in the instrumental record:

15-year-long hiatus periods are common in both the observed and CMIP5 historical GMST time series (see [Figure 9.8] and also Section 2.4.3, Figure 2.20; Easterling and Wehner, 2009, Liebmann et al., 2010).

As shown below, there is indeed a lengthy “hiatus” in the 20th century record, stretching almost 40 years from the 1940s until 1980. However, IPCC is surely being a bit sly in saying that 15-year-long hiatus periods were “common” in the 20th century. It is far more reasonable to say that there was a steady temperature increase from the 19th century to the 1940s, followed by a 30-40 year hiatus, then a 30-year period of increase to the end of the century.
...
The suddenly-fashionable attribution of the present hiatus to unmodeled energy accumulation in the deep ocean also invites questions about the earlier hiatus, which the climate “community” conventionally attributes to aerosols. There is no independent record of historical aerosol levels, which (e.g. the prominent GISS series by Hansen’s group) have primarily been developed by climate modelers seeking to explain the long hiatus. Skeptics have long argued that aerosol histories have been used as a sort of deus ex machina to paper over excessively sensitive climate models.

Once again, IPCC invoked both “volcanic” and “aerosol” forcing as possible contributors for the present hiatus, but one feels that these efforts were somewhat half-hearted, though they did make their way to the SPM. The failure of IPCC scientists to draw attention in real time to the supposedly responsible volcanic events inevitably compromises any attempts to do so after the fact.

Thus, the sudden interest in positing energy accumulation in the deep ocean.

However, if the present hiatus is attributed to an unmodeled accumulation of energy in the deep ocean, how do we know that something similar didn’t happen during the long earlier hiatus? Could some portion of the earlier hiatus be due to deep ocean accumulation as opposed to aerosols? It’s a big door that’s being opened.

Opening the door also opens up questions about the potential length of the present hiatus. If unmodeled deep ocean processes are involved, how can we say with any certainty that the present hiatus won’t extend for 30-40 years?
...
Conclusion

No credence should be given to IPCC’s last-minute attribution of the discrepancy to “natural variability”. IPCC’s ad hoc analysis purporting to support this claim does not stand up to the light of day.

Gavin Schmidt excused IPCC’s failure to squarely address the discrepancy between models and observations saying that it was “just ridiculous” that IPCC be “up to date”:

The idea that IPCC needs to be up to date on what was written last week is just ridiculous.”

But the problem not arise “last week”. While the issue has only recently become acute, it has become acute because of accumulating failure during the AR5 assessment process, including errors and misrepresentations by IPCC in the assessments sent out for external review; the almost total failure of the academic climate community to address the discrepancy; gatekeeping by fellow-traveling journal editors that suppressed criticism of the defects in the limited academic literature on the topic.

Whatever the ultimate scientific explanation for the pause and its implications for the apparent discrepancy between models and observations, policy-makers must be feeling very letdown by the failure of IPCC and its contributing academic community to adequately address an issue that is critical to them and to the public.

That academics (e.g. Fyfe et al here; von Storch here) have finally begun to touch on the problem, but only after the IPCC deadline must surely add to their frustration. Von Storch neatly summarized the problem and calmly (as he does well) set it out as an important topic of ongoing research, but any investor in the climate research process must surely wonder why this wasn’t brought up six years ago in the scoping of the AR5 report.

One cannot help but wonder whether WG1 Chair Thomas Stocker might not have served the policy community better by spending more time ensuring that the discrepancy between models and observations was properly addressed in the IPCC draft reports, perhaps even highlighting research problems while there was time in the process, than figuring out how IPCC could evade FOI requests.

Thursday, April 17, 2014

New paper finds current abrupt changes in Arctic are typical of the past 66 million years

An important review paper published today in Quaternary Science Reviews demonstrates that the rapid changes in the Arctic which have been blamed on man by alarmists are in fact within the norm of frequent, large and abrupt changes for the entire Cenozoic Era [past 66 million years].

According to the paper, "Globally, the general trend of increasing air surface temperature over the last 15 years has slowed in recent years, and is currently four times less than predicted by simulations [of the latest IPCC climate models] (Fyfe et al., 2013). However, over the same interval, global atmospheric CO2 level has continued to increase (Francey et al., 2013) and the Arctic Ocean has experienced a rapid decline in summer sea ice extent and thickness (Stroeve et al., 2012) (Fig. 1). The lack of a strong correlation between global average air temperature, atmospheric CO2 and Arctic summer sea ice provides one example that shows that Arctic environmental changes are heavily influenced by complex interplays between different feedback mechanisms." i.e. not the simplistic explanation by warmists that all changes in the Arctic are man-made.

According to the authors, "Instead of interpreting changes almost exclusively as near linear responses to external forcing (e.g. orbitally-forced climate change [or man-made greenhouse gases]), research is now concentrated on the importance of strong feedback mechanisms that in our palaeo-archives often border on chaotic behaviour. The last decade of research has revealed the importance of on-off switching of ice streams, strong feedbacks between sea level and ice sheets, spatial and temporal changes in ice shelves and perennial sea ice, as well as alterations in ice sheet dynamics caused by shifting centres of mass in multi-dome ice sheets."

The paper states, "Perhaps the next paradigm shift is towards recognising the unstable nature of Arctic cryosphere and Arctic environmental change more widely? That instability likely makes predicting the future a real challenge."

The dynamic Arctic
Research campaigns over the last decade have yielded a growing stream of data that highlight the dynamic nature of Arctic cryosphere and climate change over a range of time scales. As a consequence, rather than seeing the Arctic as a near static environment in which large scale changes occur slowly, we now view the Arctic as a system that is typified by frequent, large and abrupt changes. The traditional focus on end members in the system – glacial versus interglacial periods – has been replaced by a new interest in understanding the patterns and causes of such dynamic change. Instead of interpreting changes almost exclusively as near linear responses to external forcing (e.g. orbitally-forced climate change [or man-made greenhouse gases]), research is now concentrated on the importance of strong feedback mechanisms that in our palaeo-archives often border on chaotic behaviour. The last decade of research has revealed the importance of on-off switching of ice streams, strong feedbacks between sea level and ice sheets, spatial and temporal changes in ice shelves and perennial sea ice, as well as alterations in ice sheet dynamics caused by shifting centres of mass in multi-dome ice sheets. Recent advances in dating techniques and modelling have improved our understanding of leads and lags that exist in different Arctic systems, on their interactions and the driving mechanisms of change. Future Arctic research challenges include further emphases on rapid transitions and untangling the feedback mechanisms as well as the time scales they operate on.

1. Introduction

The Arctic has a prominent role in scientific debate on global change. This is a consequence from that the region is changing faster than almost anywhere on Earth and from that such dynamic change in the Arctic has been a characteristic of the entire Cenozoic Era. Thus, quantitative palaeoclimate reconstructions suggest that Arctic temperature changes have been three or four times the corresponding hemispheric or globally averaged changes over the past 4 Ma (Miller et al., 2010).
Globally, the general trend of increasing air surface temperature over the last 15 years has slowed in recent years, and is currently four times less than predicted by simulations within Phase 5 of the Coupled Model Intercomparison Project (CMIP5) (Fyfe et al., 2013). However, over the same interval, global atmospheric CO2 level has continued to increase (Francey et al., 2013) and the Arctic Ocean has experienced a rapid decline in summer sea ice extent and thickness (Stroeve et al., 2012) (Fig. 1). The lack of a strong correlation between global average air temperature, atmospheric CO2 and Arctic summer sea ice provides one example that shows that Arctic environmental changes are heavily influenced by complex interplays between different feedback mechanisms. These include changes in glacier/ice sheet extent, snow cover and sea ice distribution that affect surface albedo, and atmospheric and oceanic circulation patterns. The Arctic also influences environmental change at lower latitudes, primarily through the global thermohaline circulation and modulation of atmospheric CO2 and CH4 concentrations (Overpeck et al., 1997).
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Fig. 1. 
The dynamic Arctic illustrated on different time scales. Orbital forcing (g) constitutes the main overarching climate driver on millennial time scales. Considering this parameter alone, the present interglacial is likely to last at least another 50,000 years (Berger and Loutre, 2002), although the net effect from feedbacks is far from known and remains a research challenge. On millennial time scales the sea level record follows from a build-up and decay of large ice sheets (f) with large feedback effects from, for example, changes of land/ocean distribution. The sea ice (a–e) is perhaps the Arctic component that best illustrates how the dynamics of the climate system is operating on different time scales.
Environmental variability in the Arctic is increasingly viewed as the norm, and there is a growing recognition that today's Arctic cryosphere (glaciers, sea ice, permafrost, gas hydrates) and biosphere (terrestrial, lacustrine, and marine) are not in steady state; they have changed and will continue to change in response to climate and other perturbations. Recognition that the Arctic has likely never been in steady state is a challenge to those of interested in reconstructing past change. What, for example, is the purpose of seeking to define a reconstruction of the maximum extent of an entire ice sheet, such as at the Last Glacial Maximum (LGM), if the age of that maximum extent was diachronous and the ice sheet was not in equilibrium with its climate?
The Arctic Palaeoclimate and Its Extremes (APEX) program was initiated in October 2004 in Brorfelde, Denmark, with the aim of better understanding the magnitude and frequency of past Arctic climate variability, especially the “extremes” versus the “normal” conditions of the climate system. The goal has been to highlight Arctic palaeoclimate changes through an interdisciplinary approach that integrates marine and terrestrial science, and through using modelling that is constrained by boundary conditions set by field observations.
It is the nature of the subject that research completed under APEX, as under its predecessors PONAM (Polar North Atlantic Margin: Late Cenozoic Evolution) (Elverhøi et al., 1998) and QUEEN (Quaternary Environments of the Eurasian North) (Thiede et al., 2004), has gravitated towards understanding end-member records of extreme events rather than signatures of transitions, be they gradual or abrupt, or indeed dynamic change within a particular state. Indeed, notwithstanding the attraction of such end-members, including our growing ability to apply reliable tools to identify maximum and minimum situations (e.g. maximum extent of ice, climate optimum, episodes of high relative or global sea level) in both time and space, we are increasingly appreciative of the fact that Arctic cryospheric and oceanic changes are time-transgressive.
From the perspective of Earth's orbit around the Sun, the present interglacial is expected to last for an exceptionally long interval, perhaps more than another 50,000 years (Berger and Loutre, 2002) (Fig. 1). The implication is that CO2 forcing and dynamic feedback mechanisms will dictate climate change long into the future, and for this reason the forcing and feedbacks that link these processes are important future targets for Arctic research in the years to come.
This special issue contains a suite of articles that mark the completion of the APEX program. Collectively they provide a state-of-the-art record of current knowledge regarding Arctic Quaternary environmental change, and here we aim to review progress achieved under the PONAM-QUEEN-APEX programs and highlight the main scientific challenges that they have left us with.

2. History and current status

2.1. Palaeoglaciology

The year 1875 was a break-through year for Agassiz' (1840) Ice Age Theory, with the work of Croll (1875) on multiple ice ages through time marking the birth of palaeoglaciology as a scientific subject. Palaeoglaciology aims to outline the history of former ice sheets and cast light on their dynamics through time (Andersen and Borns, 1994), and over the past 120 years there have been ever more sophisticated reconstructions that seek to define the former extents of the Eurasian ice sheets e.g., Andersen, 1981Hughes et al., 1981 and Svendsen et al., 2004; see also reviews in Fastook and Hughes (2013) and Ingólfsson and Landvik (2013).
It is interesting to ask the question “How far have we advanced our understanding of palaeoglaciology sinceGeikie (1894) published his maps of ice sheet extents over Europe, the British Isles and Scandinavia?” A partial answer to this question can be found by comparing these original maps with current versions, as we do in Fig. 2. What is astounding from this exercise is how remarkably similar Geikie's map from 1894 is to, by example, the recent reconstructions by QUEEN (Fig. 2). Such a comparison begs the question as to whether this means that the discipline has been treading water for much of the last century? We argue that it does not; that there are good reasons why the general maximum extents on base maps are little changed and there have indeed been major advances in our understanding of former ice sheet extents and in their dynamics. However, we also argue that we must now make a greater effort to illustrate the dynamics of these glacial system on maps and in other media; a far from trivial task!
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Fig. 2. 
Ice sheet extent published on the “Glacial Map of Asia” by Geikie (1894) compared with the Last Glacial Maximum (LGM) and Saalian ice sheet margins by the QUEEN program (Svendsen et al., 2004).
As pointed out by Ingólfsson and Landvik (2013), there is a fundamental problem with regional palaeoglacial reconstructions because they synthesise large amounts of field data that contain problems, notably different spatial resolutions and often problematic age controls. The outcome of such efforts is therefore commonly a compromise of best fit reconstructions that simplify or over-look time-transgressive changes and ignore ice sheet dynamics; the ice sheets are reconstructed as if they are always close to steady-state equilibrium. In Europe and Eurasia, the resulting reconstructions tend to depict the ice sheets as relatively stable, concentric or single-domed rather than unstable and multi-domed, and, although ice streams may be acknowledged, the dynamic linking of the ice sheets to global and regional sea levels is often not accounted for. These reconstructions do not allow for the understanding that marine-based ice streams are inherently unstable (Jamieson et al., 2012) nor do they fully recognise that different sectors of an ice sheet experienced different histories, depending on the topography/bathymetry, sub-glacial conditions and glacial dynamics, as well as climate and sea-level forcing. These problems are particularly evident for the marine sectors of former ice sheets, because ice shelves and floating ice tongues are highly dynamic, yet do not leave clearly identifiable imprints of their maximum extents (Jakobsson et al., 2014). Landvik et al. (2014) also note that the distribution of glacigenic bedforms, which are used as the main data source for reconstructing past ice flows, are most informative about the most recent events with older landforms susceptible to erosion. There is, therefore, considerable work to be done to reconcile glacial geomorphology data with the dynamic ice margin behaviour predicted by ice sheet models (Kirchner et al., 2011). This includes reconciling the resolution of ice sheet models with the temporal and spatial complexities of the glacial geomorphological evidence that documents ice sheet build-up and decay (Evans et al., 2009).
A growing appreciation of the dynamic nature of Arctic glacier and ice sheet change also challenges the traditional view of the link between palaeoglaciology and climate change, across glacial–interglacial and stadial–interstadial transitions. Climatostratigraphic concepts are relatively easy to use at mid and low latitudes where glacial landforms and biostratigraphic indicators define end-members, but such concepts are much harder to use at higher latitudes (Backman et al., 2004 and Alexanderson et al., 2014). Consequently, ice sheet advances and retreats are all too often interpreted as evidence for climate events, disregarding the possibility that they may reflect changes in ice dynamics, e.g., rapid changes in grounding-line position in response to sea-level oscillations. For this reason, whilst some suggest that over past glacial–interglacial cycles, continental ice volume kept pace with slow, multi millennial-scale changes in climate forcing (Rohling et al., 2013b), there is an increasingly recognition that system feedbacks (Fig. 1) can readily cause ice sheet collapse, independent of strong climate forcing (Hughes, 2011Ó Cofaigh, 2012Mangerud et al., 2013 and O'Leary et al., 2013). Understanding causal links that lead to such “tipping point” behaviour is a major challenge of Arctic palaeoglaciology.
There are several important advances in our understanding of Quaternary ice sheet extents and behaviour that extend beyond the one dimensional representation of an isochronous ice limit drawn on a map. First, the development of new dating methods, notable cosmogenic exposure dating, combined with improved understanding of the basal thermal regime of ice sheets, has enabled reconstructions of the former temporal dimension of the vertical extent of former ice sheets (Alexanderson et al., 2014 and Stroeven et al., 2014). This has challenged long-standing paradigms that interpreted trim lines as evidence for the upper limits of ice sheets and instead has led to a more nuanced appreciation of the importance of cold-based ice, and the recognition that former ice thicknesses were greater than previously thought. This knowledge has important implications for reconstructions of down-ice flow lines, as well as overall ice volume at glacial maxima.
A second advance is the appreciation of the important role of ice streams and their geometry in controlling the dynamic behaviour of large parts of an ice sheet (e.g. Andreassen et al., 2014Batchelor and Dowdeswell, 2014 and Kleman and Applegate, 2014). Recent observations and reconstructions show that large-scale reorganizations of ice streams can significantly affect ice sheet dynamics over relatively short time scales (Winsborrow et al., 2012). In Greenland today, we see three or four major ice streams dominating the dynamic mass loss from the ice sheet, and that these ice streams can accelerate or slow-down in an unpredictable manner (Joughin et al., 2011). By thinning and accelerating, West Antarctic ice streams are contributing about 10% of the observed global sea level rise, and much of this ice loss is from Pine Island Glacier alone (Dutrieux et al., 2013). Such is the importance of ice streams to our understanding of the overall dynamics of the former ice sheets, during ice build-up and decay, that considerable effort is directed at unravelling their sensitivity to different forcing.
Conventional theory suggests that ice sheets and ice streams that are grounded below sea level are especially vulnerable to sea-level forcing, with the potential that sea-level jumps caused by ice sheet collapse can trigger further ice sheet instabilities. However, recent work is painting a more complex picture and challenging this long-held paradigm. For example, it has long been known that as an ice sheet loses mass, so the gravitational force of that ice mass on the adjacent ocean surface weakens (Simpson et al., 2009 and Woodroffe et al., 2014). This so-called “direct effect” causes relative sea level close to an ice sheet or ice stream that is losing mass to fall and, in theory, help stabilise the ice sheet margin by reducing water depths. In addition, removal of ice mass from a retreating ice sheet is often associated with glacio-isostatic rebound, a process that also causes relative sea level to fall. On the other hand, an example of a destabilizing effect is the sudden loss of an ice shelf that extends in front of an ice stream, that may result in rapid ice stream acceleration as the buttressing force the ice shelf exerted is lost (Rignot et al., 2004). We begin to map traces of abrupt ice stream break-ups and retreats from glacial landforms preserved in the seafloor of both the Antarctic (Jakobsson et al., 2011) and the Arctic (Andreassen et al., 2014 and Bjarnadóttir et al., 2014), that may well be the effects of former ice shelf collapses.
A third area of major advance is in our understanding of the dynamic effects of ocean forcing on ice sheet margin stability, especially those marine-based sections that are directly impacted by ocean temperatures. Warm water flowing beneath calving margins promotes significantly enhanced rates of basal melting, increased buoyancy and can lead to accelerated mass loss. This process is most clearly illustrated in the accelerated flow and retreat of Jakobshavns Isbrae (Greenland) in the last 15 years, during a period of time when warm Atlantic-sourced waters penetrated deep into the fjord system (Holland et al., 2008). A similar pattern of events is contributing the rapid collapse of Pine Island Glacier in Antarctica (Jacobs et al., 2011). This ocean coupling does not over-ride the importance of air temperature forcing, which remains a widely recognised control on ice sheet mass balance, including through the enhanced supply of meltwater to the base of ice sheets that may accelerate ice velocities. It does, though, exemplify the complex controls that combined to influence marine terminating ice sheets today.
A fourth advance is the significant progress made in reconstructing ice limits offshore, using remotely sensed imagery as well as sea bed sediment cores. Within the APEX project, we report important new understanding of the spatial extent of, for example, the Greenland Ice Sheet in West Greenland (Dowdeswell et al., 2014 and Lane et al., 2014). This is an essential development if we are to reconstruct how this ice sheet, and others that were grounded on the current continental shelf during initial deglaciation, responded to short-lived climate forcing such as the Younger Dryas (Ó Cofaigh et al., 2013).
In summary, the broad similarity between maps of Eurasian ice sheet extents drawn today and that of a hundred years ago or more masks significant advances in our understanding of the dynamic nature of ice sheet behaviour over a range of spatial and temporal scales. It is also true, however, that modern glaciological and oceanographic studies are not always appropriate analogues for the past, including previous interglacial (minima) ice-sheet configurations and during ice build-up and collapse. There is significant scope to improve our understanding of how ice sheets build during periods of high sea-level, whether the same atmosphere-ocean forcing that we see today operated in previous interglacials, or indeed whether the controls on ice sheet collapse during the exit from, for example, the LGM was typical of previous terminations or not.

2.2. Palaeoceanography

Reconstructions of oceanographic conditions in the central Arctic Ocean did not really begin until nearly half a century after Fridtjof Nansen compiled a bathymetric map that portrayed the central Arctic Ocean as a single deep featureless basin from a handful of lead line soundings acquired during the Fram Expedition1893–1896 ( Nansen, 1907). Extensive pack ice has prevented efficient mapping the Arctic Ocean seafloor, and each published map has systematically revealed a more complex seafloor, shaped by tectonics, ocean currents, and the glacial history, than the preceding one (e.g. Atlasov et al., 1964Johnson et al., 1979Perry et al., 1986 and Jakobsson et al., 2012). While the bathymetry provides a long-term paleoceanographic record of the interactions of bottom currents, ice, geochemical processes, and biological activity with the seafloor, sediment cores are required to decipher the palaeoceanography in detail.
Sediment core studies within the APEX program published in this special issue provide a range of new insights into the Arctic Ocean palaeoceanography (Chauhan et al., 2014Gibb et al., 2014Immonen et al., 2014Löwemark et al., 2014 and Werner et al., 2014). These studies demonstrate how far we have progressed, specifically regarding the use of paleoceanographic proxies, since the first short cores raised from drifting ice islands in the 1950s and 1960s captured near surface sediments from the Arctic Ocean floor (Ericson et al., 1964 and Hunkins and Tiemann, 1977). Only the construction of research icebreakers in the 1980s allowed targeted expeditions to the Arctic to obtain long, large-volume sediment cores for palaeoceanographic reconstructions. During the QUEEN project, we learned that earlier ideas of extremely low sedimentation rates (Clark, 1970) were based on a misinterpretation of the palaeomagnetic pattern in the sedimentary record and that the rates were rather on the scale of centimetres per kiloyear than millimetres (Backman et al., 2004). While this finding substantially advanced our ability to use sediment cores to study palaeoceanography, the central Arctic Ocean sedimentation rate of centimetres per kiloyear is far from capturing the full dynamics and ongoing rate of change in the Arctic. It is also difficult to know what we capture with a proxy study of a sediment core; is what we reconstruct the extremes of paleoceanographic changes or a blurred averaged view? There is certainly not one answer to this questions, it will depend on several factors such as for example the proxy and core location.
The important role of the Arctic Ocean in driving the modern (interglacial) ocean circulation and heat transport was recognized by Nansen (1907), but due to the nearly land-locked Arctic Ocean physiographic configuration it was assigned a rather passive role during interglacials. It should be noted that Nansen's map from 1907 did not depict a deep Fram Strait simply because no soundings from the strait at that time had been collected. The CLIMAP reconstruction of the surface of the ice-age earth (CLIMAP Project Members, 1976) showed the Nordic Seas as perennially ice covered in the LGM and assumed that the Arctic Ocean had experienced the severest cold conditions. The last decades have seen a slow maceration of this contrasting view between glacial and interglacials. Evidence for a relatively strong advection of Atlantic Water to the Arctic in the LGM was found in the eastern Fram Strait where the associated moisture transfer from the sea surface to the atmosphere may have enhanced ice sheet growth on the Barents Sea (Hebbeln et al., 1994), and Hald et al. (2001) showed that Atlantic water repeatedly reached the polar North Atlantic during the Last Interglacial–Glacial cycle. It was assumed that this water mass reached only parts of the Eurasian Arctic (Sarnthein et al., 2003). This is in stark contrast to the interglacial Arctic Ocean, including present day conditions, when Atlantic Water contributes to the intermediate depth water masses well into the Makarov and Canada basins on the Amerasian side of the Arctic (Rudels et al., 2013).
Seafloor mapping, which began during the QUEEN program and continued during APEX, has revealed glacigenic landforms and ice grounded seabed in the central Arctic Ocean at depths >1000 m below present sea level, indicating the existence of marine based ice sheets including huge ice shelves (e.g. Polyak et al., 2001Spielhagen et al., 2004Niessen et al., 2013Dove et al., 2014 and Jakobsson et al., 2014). How could these have existed if warm Atlantic Water entered the Arctic Ocean during glacials as well as interglacials? A conceptual model has been developed that now reconciles both the influx of Atlantic Water and the existence of deep drafting ice. This model suggests that the glacial palaeoceanography of the glacial Arctic was characterized by less fresh water influx resulting in a more diffuse and deeper halocline than today that forced the Atlantic Water deeper (Jakobsson et al., 2010). This model is supported by geochemical data from ostracods, as reported by Cronin et al. (2012). Their trace metal analyses of ostracod shells suggest that Atlantic Water penetrated basin-wide during the coldest phases of the Last Glacial, albeit at deeper depth than present. In addition, Hoffmann et al. (2013) showed that a persistent deep water exchange existed between the Arctic Ocean and North Atlantic during the last 35 ka. Apparently, the Arctic Ocean never lost the oceanographic connection to the rest of the World's ocean during the Last Glacial, and it thus contributed to the global ocean circulation over this time period.
Sea ice is one of the most dynamic components of the cryosphere as illustrated recently by the large yearly variation in the spatial extent of the Arctic Ocean summer sea ice (Comiso, 2011) (Fig. 1). The question most often asked is “When will there be sea ice free summers in the Arctic?” (Overland and Wang, 2013). The follow-up question is “Has the Arctic recently experienced sea ice free summers?” While the high frequency dynamic sea ice swings cannot be fully captured in sediment core studies, the general trends may be revealed from studies of various types of proxies for sea ice (Polyak et al., 2010 and de Vernal et al., 2013). Several studies suggest that the Early Holocene (∼6000–10,000 years BP) experienced less summer-sea ice than at present (e.g. Polyak et al., 2010Funder et al., 2011 and Müller et al., 2012), although not all studies are showing the exact same pattern (Dyke and England, 2003). Stranne et al. (2014) show, using numerical modelling, that the sea ice during the Early Holocene potentially could have moved over to a seasonal regime with sea ice-free summers due to the insolation maxima the Earth experienced at that time (Fig. 1).

3. Discussions and future challenges

The history of Quaternary geology contains numerous examples of revolutions in our approaches to science that resulted from anomalies that could not be explained by the universally accepted paradigm. In glacial geology, Agassiz's (1840) Ice Age theory and Croll's (1875) and Milankovitch's (1920) astronomical theory mark paradigm shifts that fundamentally changed our views of how ice sheets and climate evolved over time (Hays et al., 1976). Our perception of how the large Quaternary ice sheets and the cryospheric system evolved over interglacial–glacial cycles has, however, changed slowly in recent decades. We find evidence from ice core and marine oxygen isotope data that the Late Pleistocene continental ice sheets were characterised by slow growth and rapid decay. Palaeoglaciological reconstructions typically reflect this pattern with continuous, isochronuous ice margins reconstructed by connecting geomorphological features, especially end moraines, to define events in ice expansion and retreat (Lüthgens and Böse, 2012). However, as we note above, the glacial landform record is strongly biased towards extreme events and terminations, whilst records of ice sheet dynamics during their growth phase are poorly preserved or not preserved at all.
As outlined above, the focus of Arctic palaeoglaciology has over the past few decades been on the LGM. The extents of LGM ice sheets are now reasonably well understood (Clark and Mix, 2002 and Clark et al., 2009) and we now know that growth of the ice sheets to their maximum positions occurred between 33.0 and 26.5 ka, and that nearly all ice sheets were at their LGM positions from 26.5 ka to 19–20 ka (Clark et al., 2009). We are now developing ever more sophisticated records of the dynamics of the deglaciations/terminations. Much of this new knowledge in the Arctic is drawn from newly collected marine geological data that reveals clear spatial and temporal variations in ice dynamics, with evidence for both active ice streaming and frozen-bed conditions at the maximum and during deglaciation (Ottesen and Dowdeswell, 2009Winsborrow et al., 2010Andreassen et al., 2014Jakobsson et al., 2014 and Landvik et al., 2014). However, there is most likely much more information about the dynamics of the Arctic still to be extracted from palaeorecords as we improve our methods. In view of the advances in our understanding of the Arctic cryospheric system made during the International Polar Year (IPY) 2007–08 and the APEX program 2004–12, several challenges and research tasks stand out:
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We need to focus on ice streams. The importance of ice streams for the geometry and stability of ice sheets has made the identification, location, and timing of ice stream activity essential for the reconstruction of palaeo-ice sheets and the interpretation of the associated landform record (Stokes and Clark, 2001Bennett, 2003 and Batchelor and Dowdeswell, 2014);
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We need to acknowledge in our reconstructions that the datasets that we work with tend to be strongly biased towards extreme events and terminations. This calls for a holistic approach where it is recognized that apparent mismatches and enigmatic data may be caused by the complexity and chaotic nature of the system rather than poor chronological or quality control of the data;
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We need to focus on internal forcing and feedbacks in the Arctic system, particularly those that result in non-linear or chaotic behaviour such as changes in sea ice extent and ocean circulation;
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We need to focus on rapid transitions and mode shifts, which in turn demands robust, high resolution chronologies;
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We need to search for ultra-high resolution records (decadal to century-scale) that enable us to reconstruct past environmental change on time scales comparable to current and near-future environmental change;
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We need to understand what were the leads and lags between different parts of the Arctic cryosphere/ocean, what caused them and how did they link to changes in the Southern Hemisphere?
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We need to understand if Arctic ice sheets can grow quickly, during “warm” periods and if this can explain the high frequency sea-level variations seen in archives from low latitudes (Rohling et al., 2013a).
Perhaps the next paradigm shift is towards recognising the unstable nature of Arctic cryosphere and Arctic environmental change more widely? That instability likely makes predicting the future a real challenge.