Curry Reviews Lindzen and Choi

As per a request initiated by Bender, here is a critique of the recent Lindzen and Choi paper.

Citation: Lindzen, R. S., and Y.-S. Choi (2009), On the determination of climate feedbacks from ERBE data, Geophys. Res. Lett., 36, L16705, doi:10.1029/ 2009GL039628.
http://www.seas.harvard.edu/climate/seminars/pdfs/lindzen.choi.grl.2009.pdf

Abstract: Climate feedbacks are estimated from fluctuations in the outgoing radiation budget from the latest version of Earth Radiation Budget Experiment (ERBE) nonscanner data. It appears, for the entire tropics, the observed outgoing radiation fluxes increase with the increase in sea surface temperatures (SSTs). The observed behavior of radiation fluxes implies negative feedback processes associated with relatively low climate sensitivity. This is the opposite of the behavior of 11 atmospheric models forced by the same SSTs. Therefore, the models display much higher climate sensitivity than is inferred from ERBE, though it is difficult to pin down such high sensitivities with any precision. Results also show, the feedback in ERBE is mostly from shortwave radiation while the feedback in the models is mostly from longwave radiation. Although such a test does not distinguish the mechanisms, this is important since the inconsistency of climate feedbacks constitutes a very fundamental problem in climate prediction.

I didn’t pay much attention to this paper (hereafter referred to as LC) when it came out, but it received quite a big play in the blogosphere. It was touted by some as the “end of the AGW scam.” On the other hand, numerous aspects of methodology received serious criticism. Why is this paper important (if correct)? The two main findings of LC are that: the sensitivity of the Earth’s climate is much smaller than the conventional estimates (e.g. IPCC); and climate models substantially disagree with observations and produce a sensitivity that is far too high (and hence are producing falsely alarming projections).

Some background: The equilibrium climate sensitivity (in K) is defined as a change in the equilibrium annual global surface temperature in response to a doubling of CO2. Alternatively, the equilibrium climate sensitivity can be express (in K/Wm2) as an equilibrium temperature change per unit radiative forcing. The climate sensitivity is not prescribed in global climate models but is determined as a result of the climate model integation including parameterization of various physical processes in these models. The equilibrium climate sensitivity is a useful parameter for comparing climate models. Climate system without feedbacks would have an equilibrium climate sensitivity of 0.3 K/Wm2 corresponding to the global average warming of about 1.1 K for doubling of CO2. Mostly positive feedbacks in the climate system have been estimated to increase the climate sensitivity to 1.5 to 4.5 K. LC is one of many studies that have tried to estimate climate sensitivity from observations.

For reference, some of the more substantive critiques of LC in the blogosphere include:
http://www.drroyspencer.com/2009/11/some-comments-on-the-lindzen-and-choi-2009-feedback-study/
http://chriscolose.wordpress.com/2009/03/31/lindzen-on-climate-feedback/
http://motls.blogspot.com/2009/11/spencer-on-lindzen-choi.html
http://agwobserver.wordpress.com/2009/12/05/comments-on-lindzen-choi-2009/
Would appreciate any other good links that you know of. The most significant critiques include: using an old (uncorrected) version of the ERBE data, ignoring a known temporal aliasing effect in the ERBE data, comparing to the AMIP (atmosphere only, with specified sea surface temperatures) rather than the CMIP (coupled atmosphere ocean) climate model simulations, incorrect handling of the direct response to sea surface temperature change. Each of these issues in implementation of the methodology could easily be fixed, but I would expect that their individual and cumulative impact on the analysis results would be substantial.

My assessment of this paper is quite critical (details to follow). In addition to the critiques of the methodology and its implementation linked to above, I have further concerns with the overall methodology that I hope provides a broader framework for criticism of this paper.

1. The first thing about this paper that struck me is that LC infer global climate sensitivity from an analysis of only the tropical oceans (20N to 20S). This is clearly stated in their methodology section and explicitly in the caption for Fig 1a, although in their title, abstract, and discussion the word “tropics” isn’t mentioned and the authors clearly interpret this analysis to be germane to global climate sensitivity. Why only the tropics are analyzed is not explained, other than by a vague statement in the last paragraph that refers to the “neutral higher latitudes.” Huh? Consider a global map of observed 20th century temperature changes (Fig 1B) http://ruby.fgcu.edu/courses/twimberley/EnviroPhilo/GlobalWarmingThreatProfJamesHansenNASA.pdf and also the IPCC climate model projections: http://www.ipcc.ch/publications_and_data/ar4/wg1/en/figure-10-8.html. The warming over the tropical oceans is lower than that for the tropical land masses, and far lower than that for the higher latitudes particularly the Arctic. But somehow (Fig 3) LC manage to determine a value of climate sensitivity from AMIP models for the tropical oceans that is between 2-4.5 K, which is essentially the same you would expect for the entire globe (e.g. the IPCC range of values) and in spite of the fact that the sensitivity of the tropical oceans is arguably at least a factor of 2 lower than the global average. So something is either wrong with the AMIP models (they definitely provide a different answer than the CMIP models, see Roy Spencer’s discussion on this) or with the LC methodology for calculating climate sensitivity.

2. The time scale of the feedbacks considered here are short term processes (over the tropical oceans) associated with clouds, water vapor and lapse rate, which are assumed to have equilibrium responses on time scales from a few months to less than 2 years. Even if this assumption re the timescale of equilibrium response is correct (see #3 below), Lindzen and Choi admit that their feedback analysis is relevant only for negative feedbacks since positive feedbacks have much longer equilibrium response times. It seems that this study is motivated by trying to document a negative feedback in the tropics, to support Lindzen’s iris hypothesis that addresses upper tropospheric water vapor and cirrus cloud feedbacks associated with tropical deep convection (which has received far more substantive criticism than support). The iris hypothesis and the tropical upper tropospheric water vapor and cirrus cloud feedbacks, while arguably still open to debate, are not by any stretch of the imagination a major driver in global climate feedback. Even in the limited context of local short term feedback processes over the tropical ocean, with the combination of issues raised in #1 and #2 I would expect the local feedback factor to be essentially zero.

3. Given that LC focus their analysis on the tropical oceans, the results from their analysis of ERBE data seems very implausible: a strong negative feedback in the shortwave (SWR), with a small positive feedback in the infrared (IR). The negative SWR feedback is basically an increase in the planetary albedo with increasing temperature, without a correspondingly large decrease in outgoing IR. How could this possibly be? The possibilities are:

  • an increase in surface reflectivity (impossible since tropical ocean surface reflectivity doesn’t change with surface temperature)
  • an increase in water vapor amount (doesn’t work, since water vapor changes have a much larger signal in the IR)
  • increase in aerosols that are making clouds more reflective with relatively small impact on IR emission (no major volcanoes during this period, but Saharan dust and biomass burning could have the desired effect. However, no known relationship between surface temperature and dust/biomass aerosols)
  • increase in low cloud amount (that reflects sunlight while emitting IR at nearly the same temperature of the surface). This works only if the increase in low cloud amount is not obscured by high clouds (which dominate the radiation fluxes at the top of the atmosphere when they are present). For this to be a significant effect, we would need to see a decrease in deep convective clouds in the tropics, which to my knowledge hasn’t been observed.

So, this large negative SW feedback with small positive IR feedback is not presently associated with a likely physical mechanism; e.g. Lindzen’s iris feedback wouldn’t produce this type of SWR/IR signature. I suspect that the large negative SW feedback identified from the ERBE data is an artifact of previously cited problems with the ERBE data analysis.

4. Even with a redo of the LC calculations fixing the implementation errors (e.g. using the correct version of the ERBE data, etc.), I am not convinced that the overall methodology used by LC can give a credible result for the climate feedback factor and climate sensitivity. The issue I want to focus on here is the nature of the energy balance model used to calculate the feedback factor and climate sensitivity. LC defines the feedback parameter as the change of the top of atmospheric radiation flux with change in surface temperature. If this seems counterintuitive to you and you don’t see how this relates to climate feedback, well it is based upon a lot of simplifying assumptions. This feedback parameter is derived from a simple linear feedback analysis of a simple energy balance model. Chapter 13 of my text Thermodynamics of Atmospheres and Oceans explains this
http://curry.eas.gatech.edu/climate/pdf/Ch13_GalleyC.pdf
http://curry.eas.gatech.edu/climate/pdf/chapter13_figs.pdf
For a lucid explanation of the specific equations used by LC (based upon a simple equilibrium planetary energy balance model) and discussions of the key assumptions and uncertainties, see this paper by Steve Schwartz (which by the way is highly controversial owing the short equilibrium response time that he determined)
http://www.fysik.org/website/fragelada/resurser/schwartz.pdf

Frame et al. ( http://www-atm.physics.ox.ac.uk/user/das/pubs/constraining_forecasts.pdf ) show that any estimate of climate sensitivity is critically dependent on subjective prior assumptions of the investigators, not simply on constraints provided by actual climate observations. Further, equally plausible approaches using the same model and observations can yield very different estimates of the risk of a high climate sensitivity. Assumptions inherent in the model that LC use include:

  • radiative equilibrium at the top of the atmosphere. If the climate system rapidly equilibrates, then climate sensitivity can be inferred from the top of atmosphere forcing and the increase in temperature over a given time period. In contrast, if the climate response time is long, inferring climate sensitivity in this way would lead to an estimate of sensitivity that would be too low. Steve Schwartz argues that the response time is fairly rapid, whereas Hansen and others argue for a much longer response time http://ossfoundation.us/projects/environment/global-warming/summary-docs/oss-reports/slr-research-summary-2008/2005_Hansen_etal_1.pdf
    Arguably, the equilibrium climate sensitivity cant be obtained directly from observations, since the Earth’s climate system is always changing. LC assume a short response time, which they say is justified for negative feedbacks.
  • the model does not consider spatial variations in climate sensitivity (we have already seen evidence of much higher sensitivity in the Arctic)
  • the model does not consider the frequency dependence of feedbacks (in sign and magnitude)
  • in response to a change in external forcing (e.g. solar, CO2), the top of atmosphere fluxes (SWR, IR) can be determined by many combinations of surface temperatures and albedos, vertical distribution of temperature and humidity, cloud vertical and horizontal distributions, and aerosol particles. It is only in the context of a simplified model of radiative convective equilibrium that surface temperature provides a unique value of SWR, IR. The unusual features in Delta Flux / Delta SST identified by Roy Spencer are probably an artifact of this complexity http://wattsupwiththat.com/2009/12/17/spencer-on-his-agu-presentation-yesterday/.

Steve Schwartz concludes: “Finally, as the present analysis rests on a simple single-compartment energy balance model, the question must inevitably arise whether the rather obdurate climate system might be amenable to determination of its key properties through empirical analysis based on such a simple model. In response to that question it might have to be said that it remains to be seen. In this context it is hoped that the present study might stimulate further work along these lines with more complex models. It might also prove valuable to apply the present analysis approach to the output of global climate models to ascertain the fidelity with which these models reproduce “whole Earth” properties of the climate system such as are empirically determined here. Ultimately of course the climate models are essential to provide much more refined projections of climate change than would be available from the global mean quantities that result from an analysis of the present sort. Still it would seem that empirical examination of these global mean quantities – effective heat capacity, time constant, and sensitivity – can usefully constrain climate models and thereby help to identify means for improving the confidence in these models.”

Summary: No confidence in the analysis of LC.

Prognosis: So where do we go from here in evaluating climate sensitivity and understading feedbacks? The basic assumptions behind this type of sensitivity analysis based on top of atmosphere fluxes used by LC need to be tested by climate models. Personally, I don’t have confidence in this method. I spent the 1990’s working of the feedback problem (mainly in the Arctic). I hosted a workshop on feedbacks and sensitivity in 2003, the workshop summary contains much food for thought http://www.gewex.org/reports/workshop02.pdf

—-
Update: this essay was finished on Dec 26. Steve decided to wait a few weeks before posting, given all the interest in climategate. Since then, there is now a formal reply to the LC paper that is in press in GRL by Trenberth, Fasullo, O’Dell and Wong, this is dicussed at RealClimate http://www.realclimate.org/index.php/archives/2010/01/first-published-response-to-lindzen-and-choi/ and http://www.realclimate.org/index.php/archives/2010/01/lindzen-and-choi-unraveled/. See also DotEarth http://dotearth.blogs.nytimes.com/2010/01/08/a-rebuttal-to-a-cool-climate-paper/

FOIed Emails on Hansen Y2K

If anyone is wondering whether emails by U.S. government employees are “private” and “personal” – an assertion sometimes made in respect to emails at CRU, an institution subject to UK FOI – the answer in respect to NASA GISS appears to be no.

Link: 

Judicial Watch announced today that it has obtained internal documents from NASA’s Goddard Institute for Space Studies (GISS) related to a controversy that erupted in 2007 when Canadian blogger Stephen McIntyre exposed an error in NASA’s handling of raw temperature data from 2000-2006 that exaggerated the reported rise in temperature readings in the United States.

The Mosher Timeline

Patrick Courrielche has done an interesting timeline on the outing of the Climategate emails here, here, here in which Mosher’s busy November 17-19 has been publicized for the first time.

I thought that it would be useful to collect my own memory of the events while it is still relatively fresh, which I’ll do today. In doing so, I reviewed contemporary blog comments, reconciling the various blog times to a common time zone, and reviewed the timeline with Mosh, Lucia, Anthony and Jeff Id, in order that it would be as accurate as possible.

Mosh has a forthcoming book on Climategate that I haven’t seen and which will amplify the story. In addition, Bishop Hill has an excellent book that I have seen that was finished before Climategate, written in his usual lucid style that should be published this month as well.
Continue reading →

Nature Anti-FOI Editorial Criticized

A Nature reader has run the gauntlet at Nature, who published a criticism of their anti-FOI editorial. David Bell of the University of Nottingham’s letter reads as follows:

Climate e-mails: lack of data sharing is a real concern

Your Editorial (Nature 462, 545; 2009) castigates “denialists” for making “endless, time-consuming demands for information under the US and UK Freedom of Information Acts”. But you do not mention the reason — that the Climatic Research Unit at the University of East Anglia has systematically tried to avoid revealing data and code.

Science relies upon open analysis of data and methods, and the UK Natural Environment Research Council (NERC) has a clear data-sharing policy that expects scientists “to cooperate in validating and publishing [data] in their entirety”. The university’s leaked e-mails imply a concerted effort to avoid data sharing, which both violates the best practice defined in NERC policy and prevents verification of the results obtained by the unit. Asking for scientific data and code should not lead to anyone being branded as part of the “climate-change denialist fringe”.

David R. Bell
Molecular Toxicology,
School of Biology,
University of Nottingham, Nottingham

National Domestic Extremism Team

Bishop Hill reports here that he was advised today that the UK National Domestic Extremism Team has been called in by the Norfolk Constabulary. Bishop Hill reports the following statement:

Norfolk Constabulary continues its investigations into criminal offences in relation to a data breach at the University of East Anglia. During the enquiry officers have been working in liaison with the Office of the Information Commissioner and with officers from the National Domestic Extremism Team. The UEA continues to co-operate with the enquiry however major investigations of this nature are of necessity very detailed and as a consequence can take time to reach a conclusion. It would be inappropriate to comment further at this stage.

Team Responses to MM2003

As I mentioned the other day, it’s very interesting for me to re-read the responses of Team members to the publication of MM2003. While Mann, Briffa and Bradley all start shooting bullets in every direction, Osborn’s reaction is thoughtful and nuanced and I urge readers to read it in full. Unfortunately, the Team paid little attention to Osborn’s suggestions. Had they done so, much time and effort would have been saved.
Continue reading →

Climategatekeeping: the Nature Intervention

Today I’ll review one interesting sentence in Climategate Letter 1080257056 on March 22, 2004, in which Jones tells Santer

She [Heike] sent me an email to review a paper two weeks ago. Said I didn’t have time until May.

Innocuous enough on the surface. What makes this sentence interesting (and I noticed it because I looked for something like this) is that, in my opinion, the sentence is sufficient to identify the paper in question. Further, there is convincing evidence that Jones did in fact carry out the requested review (after May, as he says here) and, even though the review is not in the Climategate documents, it is nonetheless accessible and, together with other Climategate Letters, leads on to many backstories.
Continue reading →

Back to 2003

Today I spent some time re-visiting 2003 in light of the Climategate Letters.

I was intrigued by the very first allusion to Mc and Mc in the Climategage Letters in a trailer to an Oct 26, 2003 letter (the day before MM2003 was released) here . A climate scientist (not identified in the trailer), stated that the instability of Mann’s reconstruction to variations in input data was “known by most people who understand Mann’s methodology”:

Personally, I’d offer that this was known by most people who understand Mann’s methodology: it can be quite sensitive to the input data in the early centuries . Anyway, there’s going to be a lot of noise on this one, and knowing Mann’s very thin skin I am afraid he will react strongly, unless he has learned (as I hope he has) from the past.

Mann’s very first response – before he even considered what was in the paper – was to email the Team (in this case, Bradley, Hughes, MacCracken, Schneider , Crowley, Wigley, Socc, Oppenheimer, Briffa, Jones, Osborn, Tim Profeta of Lieberman’s staff, Santer, Hegerl, Mosley-Thompson, Lonnie Thompson and Trenberth) concluding as follows:

The important thing is to deny that this has any intellectual credibility whatsoever and, if contacted by any media, to dismiss this for the stunt that it is.

What Happened to Polar Urals?

Addiction of paleoclimate reconstructions to particular proxies has been a longstanding concern at Climate Audit.

One of the battleground issues has been the addiction to Briffa’s Yamal tree ring series, while the nearby update of Polar Urals (with a pronounced MWP) was disappeared. (See CA category.)

Just before Climategate, we raised questions about the Yamal reconstruction – noticing first that, contrary to prior belief, it was not “highly replicated”, having far fewer modern trees than is standard for an RCS reconstruction, and that the reconstruction was highly sensitive to inclusion of a nearby Schweingruber site (Khadyta River, Yamal). Briffa did not deny the validity of this criticism, instead attempting to salvage the reconstruction by adding in cores from some nearby sites (but notably not Polar Urals.)

The elephant in the room remained the disposition of the Polar Urals site. A 1995 Briffa reconstruction from this site purported to show that 1032 was the “coldest” year in the millennium. Updated data had shown elevated ring widths in the MWP. However, Briffa hadn’t reported this. (Schweingruber had archived the updated measurement data at the ITRDB, but no journal article had reported the results.

The Climategate Letters have a teaser here. On April 28, 2006 (almost exactly the same date as I was being stonewalled about Yamal, Taymir and Tornetrask measurement data), Osborn emailed Philip Brohan of the UK Met Office:

To: philip.brohan@xxxxxxxxx.xxx
From: Tim Osborn
Subject: Re: Standardisation uncertainty for tree-ring series
Cc: Keith Briffa ,simon.tett@xxxxxxxxx.xxx

Hi Philip,
we have three “groups” of trees:
“SCAND” (which includes the Tornetrask and Finland multi-millennial chronologies, but also some shorter chronologies from the same region). …

“URALS” (which includes the Yamal and Polar Urals long chronologies, plus other shorter ones). These fall mainly within these 3 boxes:
52.5E, 67.5N
62.5E, 62.5N (note this is the only one not at 67.5N)
67.5E, 67.5N

“TAIMYR” (which includes the Taimyr long chronology, plus other shorter ones). These fall mainly within these 4 boxes:
87.5E, 67.5N
102.5E, 67.5N
112.5E, 67.5N
122.5E, 67.5N

We do some analysis at the group scale, and for this we take the JJA temperatures from each box and average to the group scale to obtain a single series from each of SCAND,
URALS and TAIMY.

We do some analysis at the overall scale, and for this we take these three group temperature series and average them to get an overall NW Eurasia temperature for boxes
with tree chronologies in them…

So on this occasion, the long Polar Urals chronology, together with other “shorter” chronologies (presumably the Schweingruber chronologies that Gavin Schmidt condemned) were included in a larger regional RCS reconstruction – something that Rob Wilson would have been interested in seeing.

But the subsequent Briffa et al (2008 Phil Trans B) only includes the very small Yamal data – without the long Polar Urals chronology or the shorter chronologies. Wonder why?

Difference in Yamal Versions “Not Insignificant”

In July 2003, Tim Osborn advised Tom Crowley that there were multiple versions of Yamal (and Tornetrask) and that he needed to contact Briffa prior to using:

The other files are “tornad.rcs” and “yamal.rcs” which are RCS-standardised tree-ring width series. I would really strongly suggest that you contact Keith Briffa about exactly what these series are and what the primary reference to them should be. The reason is that there are multiple version of Tornetrask and Yamal series and the differences are certainly not insignificant!

Yep.

Something that people might bear in mind before assuming that the Yamal version used for corridor standardization in Hantemirov et al 2002 would also be used for RCS standardization.

On March 31, 2006, Osborn of CRU told the editors of Science:

We did not use tree-core measurement data in our paper, only chronologies that had previously been assembled by others from core measurement data. I don’t have any core measurement data and therefore have none to give out!

Contrary to Osborn’s claim not to have any “core measurement data” for Yamal, the Climategate documents show that CRU had an extensive collection of Yamal measurement data – see the Climategate Yamal directory. [Note: this website only lists the files, but doesn’t contain the files. The files are in the original download.]

Not only did CRU actually have Yamal measurement data (which it had had since the 1990s), the CRU letters showed that CRU had funded collection of the Yamal data (at least in part).

I haven’t parsed the Yamal measurement directory yet, but have glanced at it and readers will be interested in the results when I get to them.

[Update/Jean S:  FOIA files are online here: http://junkscience.com/FOIA/]