New peer reviewed paper: clouds have large negative cooling effect on Earth's radiation budget

Figure 3. (a) Short wave (SW), (b) long wave (LW) and (c) Net cloud radiative effect relative to clear-sky conditions calculated from CERES satellite data for the period 2001–2007. Missing data is shaded grey. This figure is available in colour online at wileyonlinelibrary.com/journal/met

Oh dear, now we have three peer reviewed papers (Lindzen and Choi, Spencer and Braswell, and now Richard P. Allan) based on observations that show a net negative feedback for clouds, and a strong one at that. What will Trenberth and Dessler do next? Maybe the editor of Meteorological Applications can be persuaded to commit professional suicide and resign? The key paragraph from the new paper:

…the cloud radiative cooling effect through reflection of short wave radiation is found to dominate over the long wave heating effect, resulting in a net cooling of the climate system of −21 Wm−2.

After all the wailing and gnashing of teeth over the Spencer and Braswell paper in Remote Sensing, and the stunt pulled by its former editor who resigned saying the peer review process failed, another paper was published last week in the journal Meteorological Applications that agrees well with Spencer and Braswell.

This new paper by Richard P. Allan of the University of Reading discovers via a combination of satellite observations and models that the cooling effect of clouds far outweighs the long-wave or “greenhouse” warming effect. While Dessler and Trenberth (among others) claim clouds have an overall positive feedback warming effect upon climate due to the long-wave back-radiation, this new paper shows that clouds have a large net cooling effect by blocking incoming solar radiation and increasing radiative cooling outside the tropics. This is key, because since clouds offer a negative feedback as shown by this paper and Spencer and Braswell plus Lindzen and Choi, it throws a huge monkey wrench in climate model machinery that predict catastrophic levels of positive feedback enhanced global warming due to increased CO2.

The cooling effect is found to be -21 Watts per meter squared, more than 17 times the posited warming effect from a doubling of CO2 concentrations which is calculated to be ~ 1.2 Watts per meter squared.  This -21 w/m2 figure from Richard P. Allan is in good agreement with Spencer and Braswell.

[While the -21wm2 and ~1.2 W/m2 values are correct, the comparison is wrong, and it is my mistake. The values are Top of Atmosphere and Surface, which aren’t the same. This prompts a new rule for me, I shall not publish any posts after midnight again (other than something scheduled previously during the day), because clearly I was too tired to recognize this mistake. I’ll add that I have emailed Dr. Allan regarding the question of feedback on hisfigure 7, and have not received a response. – Anthony]

Here’s the paper abstract, links to the full paper (which I located on the author’s website) follow.

Combining satellite data and models to estimate cloud radiative effect at the surface and in the atmosphere

Richard P. Allan

Abstract: Satellite measurements and numerical forecast model reanalysis data are used to compute an updated estimate of the cloud radiative effect on the global multi-annual mean radiative energy budget of the atmosphere and surface. The cloud radiative cooling effect through reflection of short wave radiation dominates over the long wave heating effect, resulting in a net cooling of the climate system of -21 Wm-2. The short wave radiative effect of cloud is primarily manifest as a reduction in the solar radiation absorbed at the surface of -53 Wm-2. Clouds impact long wave radiation by heating the moist tropical atmosphere (up to around 40 Wm-2 for global annual means) while enhancing the radiative cooling of the atmosphere over other regions, in particular higher latitudes and sub-tropical marine stratocumulus regimes. While clouds act to cool the climate system during the daytime, the cloud greenhouse effect heats the climate system at night. The influence of cloud radiative effect on determining cloud feedbacks and changes in the water cycle are discussed.

1. Introduction

Earth’s radiative energy balance (solar radiative energy absorbed and terrestrial radiation emitted to space) determines current patterns of weather and climate, the complexity of which is illuminated by satellite observations of the evolving distribution and diversity of cloud structures. Representing clouds and the physical processes responsible

for their formation and dissipation is vital in numerical weather and climate prediction, yet many approximations must be made in these detailed models of our atmosphere (e.g. Bony et al., 2006; Allan et al., 2007). Observations of cloud characteristics from satellite instruments and in situ or ground-based measurements are crucial for improving understanding of cloud processes and their impact on Earth’s radiative energy balance (Sohn, 1999; Jensen et al., 2008; Su et al., 2010). The energy exchanges associated with cloud formation and precipitation are also a key component of the global water cycle, of importance for climate change (Trenberth, 2011). In this paper, initially presented at a joint meeting of the Royal Meteorological Society and Institute of Physics on Clouds and Earth’s Radiation Balance (Barber, 2011), the utility of combining weather forecast model output with satellite data in estimating the radiative effect of cloud is highlighted. Using a combination of models and satellite data a simple question is addressed: how do clouds influence the radiative energy balance of the atmosphere and the surface.

As an example of the radiative impact of cloud, Figure 1 displays thermal infra-red and visible channel narrow-band images of the European region from the Spinning Enhanced Visible and Infra-Red Imager (SEVIRI) on board the Meteosat-9 satellite (Schmetz et al., 2002).

Figure 1. Satellite images from the SEVIRI geostationary satellite (a) 10.8 μm infra-red channel and (b) the 0.8 μm visible channel for 2 March 2011 at 1200 UTC. (Copyright 2011, EUMETSAT/the Met Office).

In both images clouds appear bright: this denotes relatively low infra-red emission to space and relatively high reflection of visible sunlight to space. The hot, generally clear regions of northern Africa are also noticeable in both images since they are associated with substantial thermal emission to space (dark regions in the infra-red image) and high surface reflection from the desert surface (bright in the visible image). The brightest clouds in the thermal image correspond with (1) a trailing cold front extending from the coast of Norway, across Scotland and to the west of Ireland, (2) a developing low pressure system to the west of Iceland, and, (3) a low pressure system in the Mediterranean centred on Sardinia.

These are regions of ascending air with relatively high altitude, low temperature cloud tops which depress the thermal emission to space compared with surrounding regions. These features are also present in the visible image. However, many more cloud structures are also present. There is a prevalence of low altitude cloud over the oceans: this cloud contains large amounts of water droplets which are highly reflective (e.g. Stephens et al., 1978). The imagery captures the complex cellular structure of this cloud (e.g. Jensen et al., 2008) over the region surrounding the Canary Islands. These cloud types are thought to contribute strongly toward uncertainty in climate projections (Bony et al., 2006). While these clouds also strongly attenuate infra-red radiation, their impact on the thermal radiation escaping to space is modest since cloud-top temperatures are not dissimilar to the surface at night and so they do not contribute significantly to the strong natural greenhouse effect of the clear-sky atmosphere.

The altitude and optical thickness of cloud determines the overall radiative impact of cloud, a combination of the warming greenhouse effect and the surface-cooling solar

shading effect. Yet, probably an even stronger influence does not relate to the cloud itself. The time of day and time of year dictate the incident solar radiation and, therefore,

modulates the strength of the short wave reflection: clearly at night the solar influence of cloud is absent.

…

7. Conclusions

Exploiting satellite measurements and combining them with NWP models initialized through assimilation of available observations enables the effect of clouds on the Earth’s radiative energy balance at the surface and within the atmosphere to be quantified for the present day climate. Consistent with previous results (Ramanathan et al., 1989; Su et al., 2010), the cloud radiative cooling effect through reflection of short wave radiation is found

to dominate over the long wave heating effect, resulting in a net cooling of the climate system of −21 Wm−2.

The short wave radiative effect of cloud is primarily manifest as a reduction in the solar radiation absorbed at the surface of −53 Wm−2 for the global multi-annual mean. The magnitude of this effect is strongly modulated by the incoming solar radiation and the dominance of cloud short wave cooling over long wave greenhouse trapping is maximum around local noon (Nowicki and Merchant, 2004) while the cloud long wave heating effect dominates at night.

The long wave greenhouse effect of cloud measured at the top of the atmosphere is manifest primarily as a heating of the atmosphere in the moist tropics, consistent with calculations by Sohn (1999).

Over the marine stratocumulus regions and across higher latitudes the cloud-base emission to the surface becomes substantial and dominates over the reduced outgoing long wave radiation to space resulting in enhanced radiative cooling of the atmosphere and heating of the surface. The cloud radiative influence on the exchange of radiative fluxes between the atmosphere and the surface are intimately linked with the water cycle through radiativeconvective balance. While tropical, high-altitude clouds act to stabilize the atmospheric profile radiatively, clouds over polar regions tend to cool the atmosphere while heating the surface through enhanced atmospheric longwave radiative emission to the surface. In future work it would be informative to categorize these effects by cloud type further (e.g. Futyan et al., 2005) and compare with climate model simulations. These analyses are vital in constraining cloud feedback processes further and in linking to future changes in the water cycle (Stephens, 2005; Bony et al., 2006; John et al., 2009).

A particular challenge is the accurate quantification of surface radiative fluxes due to the sparse ground-based observing network (Roesch et al., 2011) and also monitoring current changes in cloud radiative effect in satellite data, reanalyses and models (Wielicki et al., 2002); combining meteorological reanalyses with satellite data and surface observations provide a vital methodology for meeting these challenges.

Abstract is here: http://onlinelibrary.wiley.com/doi/10.1002/met.285/abstract

Full paper is here: http://www.met.reading.ac.uk/~sgs02rpa/PAPERS/Allan11MA.pdf

UPDATE: Some people in comments including Dr. Roy Spencer, (and as I was writing this, Dr. Richard Allan) suggest that the paper isn’t about feedback (at least in the eyes of IPCC interpretations, but Spencer adds “it could be”). Thus I’ve removed the word from the headline to satisfy such complaints. My view is that clouds are both a feedback and a forcing. Others disagree. That’s an issue that will occupy us all for sometime I’m sure.

Regarding cloud feedbacks, here’s what I noted in the paper in section 6, near the end. Allan is referring to figure 7 which shows (a) net radiation and (b) net cloud radiative forcing:

Substantial negative anomalies in net radiative flux from ERA Interim are apparent in 1998 and 2010, both El Niño years, suggesting that the substantial re-organization of atmospheric and oceanic circulation systems act to remove energy from Earth during these periods.

Figure 7. De-seasonalized monthly anomalies of (a) net radiation and (b) net cloud radiative forcing over the near-globe (60 °S to 60°N) from ERA interim reanalysis, the ERBS wide field of view instrument and the CERES instrument on TERRA: ERBS WFOV; CERES Ed2.5Lite; ERA Interim; ERA Interim, clear-sky.

You can clearly see the famous double peak in the 1998 El Niño, but it is inverted. To me that looks like a thermostat action, and not one with stuck electrical contacts, i.e. a negative feedback. I’ve also updated the text related to the incorrect comparison I made. – Anthony

The climate data they don't want you to find — free, to your inbox.
Join readers who get 5–8 new articles daily — no algorithms, no shadow bans.
0 0 votes
Article Rating
315 Comments
Matter
September 20, 2011 6:25 am

WillR:
Clouds don’t provide the heat, but they change the heat balance, leading to a net increase in heat at the surface. The heat is all ultimately provided by the Sun (plus piddly bits from geothermal, cosmic rays & tidal).
In common science parlance something which causes a net heating can be just said to be heating it.

Dave Springer
September 20, 2011 6:25 am

BargHumer says:
September 20, 2011 at 6:08 am

Springer
“While clouds act to cool the climate system during the daytime, the cloud greenhouse effect heats the climate system at night.”
How can this be true? There is no energy or energy source to heat the earth at night? only to retain more of what was there in the day time.

Don’t get all pedantic on me. It’s clumsy to say, in an informal blog environment, that nightly lows become higher than they would be otherwise. I understand that CO2 doesn’t produce energy. It works as one way insulation through the properties of being transparent to visible light from the sun and opaque to infrared light leaving the earth’s surface.

September 20, 2011 6:26 am

Wow, that’s pretty much èverything skeptics have suspected, but here we have real datapoints to back up our hunches.
The paper took five minutes to download, so people must be hammering the Reading server hard.

This heating effect relates to enhanced absorption of short
wave radiation by the atmosphere above (primarily low-
altitude) cloud decks rather than a direct absorption of
shortwave radiation by the cloud itself.

Isn’t this directly counter to what Dessler was saying?
Willis should be very interested in Section 5.

Editor
September 20, 2011 6:35 am

Roy W. Spencer says: “Bart is correct. This paper is not about cloud feedback…it is about the average effect of clouds on the climate system, which the IPCC, Trenberth, Dessler, et al. will all agree is a cooling effect….”
Thanks, Roy, for confirming what I thought I had read. And thanks for the further expansion/explanation.

RR Kampen
September 20, 2011 6:38 am

I know. The ice cap over Holland is already a mile thick.

BargHumer
September 20, 2011 6:41 am

@WillR and Dave Springer,
Apologies for being pedantic (it’s in my nature).
I know all things are relative, but less cooling, less loss of heat, may be said to be “net” heating but it is misleading and contributes to the confusion in the debate. There is no heating (other than the piddly bits). Losing less money means I have more to spend but I don’t gain money, I just lose less.

Slabadang
September 20, 2011 6:42 am

Lets seee…
Rebuttal in GRL by Trenberth and Dessler on the article… accepted the 20th of September..reciewed the 21.. peer review… in blanco the the 22nd

Jeremy
September 20, 2011 6:43 am

“Siliggy says:
September 20, 2011 at 3:35 am
Perhaps that is why solar panels do not work well on cloudy nights.”
WRONG. Solar panels work very well at night because the taxpayer subsidies allow owners to run diesel powered generators to run lights to power the solar panels and still make a profit by selling electricity at five times normal rates back to the national grid.

September 20, 2011 6:46 am

I see a number of comments along the lines that: It gets cool when the sun is blocked by a cloud. This is true, but in and of itself, not sufficient to prove negative feedback. It also cools slower on a cloudy evening. The radiating area of the planet is 4 times the absorbing. This research shows that the net of these is negative. I don’t see any discussion in the paper of the impact of cloud absorbance of incoming radiative energy, only reflectance, hence I think an effect is being missed.
Bert Verheggan would seem to have a point. The net effect of clouds is to cool. Will the net effect of a 0.67% increase in temperature (i.e. 2 celsius degrees) result in more clouds (negative feedback) or fewer clouds (positive feedback) or same clouds (no feedback). I don’t see anything in the paper that addresses this.
I suggest that further radiative measurements may not be necessary. We now have daily sattelite images from the entire planet. We could, with relative ease, measure cloud cover for a statistically significant number of unit areas for a statistically significant period of time and see if there are more clouds when it is warmer (negative feedback) or fewer clouds when it is warmer (positive feedback) or no correlation between clouds and temperature (no feedback). I’m thinking that this would be relatively easy to automate.
JE

September 20, 2011 6:46 am

This is exactly what I found when analyzing Australian temperature records at http://gustofhotair.blogspot.com/
In that clouds have a negative effect on temperature, mores during the middle of the day, and increase temp at night.
Interestingly the amount of cloud cover in Australia has decreased which accounts for 70% of all warming in the past 50 years.
More here: http://gustofhotair.blogspot.com/

Nuke Nemesis
September 20, 2011 6:48 am

Can we add something in the references pages here at WUWT that defines feedbacks and forcings and how they are different?

Tom in Florida
September 20, 2011 6:48 am

I believe we have a semantics problem here. When a person refers to “cloud feedback” it can be read that as “feedbacks caused by changes in clouds due to a forcing” where the effects of the clouds are the feedback. It appears others can read that as “change in clouds due to a forcing” where the cloud changes are the feedback.

September 20, 2011 6:50 am

The point is, warming has been projected to increase or to decrease clouds? Everyone knows clouds are net coolers, the point is whether warmer = less clouds (warming effect) or more clouds (cooling effect).
Even I can imagine for warmers it works both ways – more humidity and more clouds, so warmer nights, we always told it will be warmer – or less clouds and more sunlight, so see the positive loop, we always told it will be warmer.

NetDr
September 20, 2011 6:54 am

criminogenic says:
September 20, 2011 at 3:05 am
So if clouds are such a strong negative feedback, how come we aren’t in a permanent ice age?
****************
You obviously don’t understand negative feedback do you ?
Negative feedback drives the temperature back to it’s “set point”.
Warming causes cooling and cooling causes warming.
Positive feedback works the opposite.
Warming causes more warming and cooling causes more cooling.
Sounds unstable and it is. This would be more likely to result in ice-ball earth.if some cooling started to happen.
So in answer to your naive question it is possible to move the set point but negative feedback resists this change.

September 20, 2011 6:56 am

RockyRoad, JohnB,
To first approximation, relative humidity stays the same in a warming world (i.e. specific humidity goes up, but just about enough to conserve RH). Since cloud formation depends (a.o.) on relative humidity and not on specific humidity, your argument doesn’t hold.
Tom in Florida,
That sentence (“The influence of cloud radiative effect on determining cloud feedbacks and changes in the water cycle are discussed.”) and the discussion it refers to is there to show how interesting and relevant this piece of research supposedly is. I searched the paper for a quantification of this feedback and couldn’t find it. If you do, please let us know.
TallBloke,
This post is clearly confusing two very different things; how is that changing goalposts?

September 20, 2011 6:57 am

Bob Tisdale says:
September 20, 2011 at 6:35 am
Roy W. Spencer says: “Bart is correct. This paper is not about cloud feedback…it is about the average effect of clouds on the climate system, which the IPCC, Trenberth, Dessler, et al. will all agree is a cooling effect….”
Thanks, Roy, for confirming what I thought I had read. And thanks for the further expansion/explanation.
==========================================
I’d like to thank Dr. Spencer, also. But, Bob, you stopped in your quote too early.

“Now, it might well be that since the average effect of clouds on the climate system in response to radiative heating by the sun is to cool the Earth, then a small increment in radiative heating (e.g. from more CO2) will ALSO result in clouds having a further increment in cooling. That’s basically what Monckton has been claiming, and he might well be correct. Lindzen pointed this out also in his 1990 BAMS paper.
I just wanted to point out that the IPCC view is that this paper is not about cloud feedback….even though it might be about cloud feedback. ;)”

Bob, just to be clear, I’m not directing this at you. But, it seems to me, some people read a paper and stop there and wait for another paper to try and understand the significance of the papers that they’ve read. I, for one, like the information provided, but I’ll infer and extrapolate from the knowledge and not wait for some other scientist to tell me the significance of the information.
As Russ R. (September 20, 2011 at 6:21 am) points out, this leads us to more questions. As any scientific paper should. While Russ is correct, in my mind, the questions now become, how much more cloud cover can we expect per warming? At what point will the effects of the clouds cause no more increase in cloud cover? Are the effects logarithmic or closer to linear?
The point is, this is opening up a field and perspective of climatology that has been neglected for far too long. So the paper isn’t this or it isn’t that, but boy! It sure could be.
James Sexton

Pamela Gray
September 20, 2011 6:58 am

Let me do the spin:
“Catastrophic night-time warming caused by anthropogenic clouds!”
followed by:
Obama’s new scheme to tax clouds.

Rob Potter
September 20, 2011 7:00 am

While it seems that Bart Verheggen is clutching at straws here, he does have a point – the paper if calculating the instantaneous effect of clouds on the radiation budget, not the delayed/longer term feedbacks (the point of Spencer & Bracewell). What the paper does do, however, is provide some nice backup of the method of using satellite data instead of hand-waving – which is where Spencer & Bracewell, Dressler, Lindzen & Choi, come in. We are now getting some data on which to calculate cloud effects instead of just assuming them to be what would like them to be.
What I take from this (I’ve tried to read the paper, but my maths isn’t up to really understanding it) is that changes in cloud effects (around the -21 Wm*2) are going to swamp CO2 effects (calculated to be around 1.3 in total – but isn’t that based on blaming CO2 for all of the recent warming?). A 5% difference in cloud cover would equal the entire CO2 effect.
Furthermore, since doubling of CO2 produces less and less of an effect as the relevant part of the spectrum becomes saturated, clouds will have a n even greater impact as their effect covers a greater part of the whole spectrum.
Clouds are certainly going to have their day in the future and paper like this one making sense of the new data from satellites are the way to bring them in from the cold.

The Ville
September 20, 2011 7:04 am

I appreciate that Richard Allan has produced some real science using public funding, but I feel that Anthony has made a horrendous blunder in his interpretation. I suggest he actually asks Allan what the results mean instead of making faulty self assessments.

Stephen Wilde
September 20, 2011 7:05 am

People are missing the fact that during the late 20th century warming spell total global cloudiness DECLINED and now that warming has ceased cloudiness has INCREASED.
The only way to account for that is as I suggested upthread but I will summarise it here.
The effect on cloudiness of shifting the air circulation latitudinally is GREATER than the effect on cloudiness of temperature changes alone.
If the Earth could become warmer with no latitudinal shifting the climate zones would stay in place but they do not. Nor did global cloudiness increase whilst the globe was warming.
I think one sees more vigorous mid latitude jets and ITCZ when the globe is warming but the area covered is not large. The thing is that at the same time the low cloud quantities in the tropics and subtropics decline due to enhanced descending air from the stronger convection elsewhere which widens the equatorial air masses relative to the polar air masses.
Thus a warming world gives more deep convective clouds where all the action goes on as a result of a faster water cycle (the jets and ICTZ) but in other larger areas where solar insolation to the oceans is potentially strongest the amount of low level cloud shielding those oceans actually declines. In terms of global albedo reflectivity is greater from the latter than from the former.
As the paper says:
“There is a prevalence of low altitude cloud over the oceans: this cloud contains large amounts of water droplets which are highly reflective (e.g. Stephens et al., 1978).”
So in general, cloudiness changes (less clouds in a warmer world, more clouds in a cooler world) are actually a positive feedback to whatever forcing caused the system to warm (or cool) in the first place but a negative feedback then arises namely the increase in speed of the water cycle as manifested in the poleward shift of the surface pressure distribution.
More CO2 might have a miniscule effect on the surface air pressure distribution but as compared to what sun and oceans achieve as a matter of routine we would never be able to tell.

Bill Illis
September 20, 2011 7:12 am

I’ve done some calculations breaking-down the greenhouse effect into its components.
CO2 : +44.2 W/m2
Other GHGs : +11.9 W/m2
Water Vapour as a GHG: +113.9 W/m2
Cloud SW Reflectance : – 53 W/m2
Cloud as a GHG : +32 W/m2
Total : +150 W/m2
There are a few other smaller components like aerosols, SW interception by atmospheric molecules but they net out to a small number.

September 20, 2011 7:15 am

Based on many of the articles we read here: The sun sleeps, therefore more clouds due to GCR, therefore cooler, therefore more snow pack, therefore even more reflection, therefore even more cold, therefore more ice, therefore less total ocean area to heat the atmosphere..etc.
P.S. I do my own peer review. 🙂

September 20, 2011 7:17 am

Interesting tie to Svenmark / CLOUD experiment – by concluding cloud feedback is a larger negative feedback & if the Svenmark / cosmic ray hypothesis is correct, it explain why solar effects dominate : “hot” sun = less clouds = warmer temps; “cool” sun = more clouds = cooler temps.

AJB
September 20, 2011 7:21 am
Ron Cram
September 20, 2011 7:26 am

Regarding the forcing or feedback issue, the paper is addressing the forcing issue. Fine. But explain to me again how clouds which have a cooling effect as a forcing can have a warming effect as a feedback… I still don’t get that part.