Evidence that Global Temperature Trends Have Been Overstated
Dr. Pielke has a new paper, and asked if I’d help “get the word out” I’m happy to oblige – Anthony
Guest post by Dr. Roger Pielke Jr
The paper is important for two reasons. First, it provides confirmatory evidence that the globe has indeed been warming over the period of the satellite records. Indeed the argument that we make in the paper depends upon the presence of a warming trend, Second, it provides a parsimonious and logical explanation for a discrepancy observed in the temperature record that has been often highlighted but which to date been unsatisfactorily explained.
For several years my father has been talking about the possibility of a “warm bias” in the surface temperature record.
We begin our paper by noting a well-documented and puzzling discrepancy in global atmospheric temperature measurements:
Since 1979, when satellite observations of global atmospheric temperature became available, trends in thermometer-estimated surface warming have been larger than trends in the lower troposphere estimated from satellites and radiosondes as discussed in a recent Climate Change Science Program (CCSP) report [Karl et al., 2006]. Santer et al. [2005] presented three possible explanations for this divergence: i) an artifact resulting from the data quality of the surface, satellite and/or radiosonde observations; ii) a real difference due to natural internal variability and/or external forcings; or iii) a portion of the difference is due to the spatial coverage differences between the satellite and surface temperature data. Santer et al. [2005] focused on the second and third explanations, finding them insufficient to fully explain the divergence. They suggest in conclusion that, among other possible explanations, “A nonsignificant trend differential would also occur if the surface warming had been overestimated by 0.05°C per decade in the IPCC data.”
We call the discrepancy between trends observed at the surface and those in the lower troposphere a “divergence” meaning that they are behaving differently. In 2006 the Climate Change Science Program discussed this divergence and found the issue to be “still open.” Our paper conducts an investigation of the neglected first hypothesis proposed by Santer et al. (2005) as follows:
[W]e consider the possible existence of a warm bias in the surface temperature trend analyses using the following two hypotheses related to the divergence between the surface and lower tropospheric temperature records since 1979:
1. If there is no warm bias in the surface temperature trends, then there should not be an increasing divergence with time between the tropospheric and surface temperature anomalies [Karl et al., 2006]. The difference between lower troposphere and surface anomalies should not be greater over land areas.
2. If there is no warm bias in the surface temperature trends, then the divergence should not be larger for both maximum and minimum temperatures at high latitude land locations in the winter.
We conclude that the first explanation offered by Santer et al. [2005] provides the most parsimonious explanation for the divergence between surface and lower troposphere temperature trends, based on recent research suggestive of biases in the surface temperature record. Our findings suggest that the supposed reconciliation of differences between surface and satellite datasets [Karl et al., 2006] has not occurred.
What do we find?
First, we explain why it is that there is evidence of a “warm bias” in the global temperature record. It has to do with how surface temperatures used to calculate long-term trends are constructed – by averaging daily maximum and minimum temperatures combined with the effects of what are called “atmospheric boundary layer processes” on minimum temperatures. In the paper we provide a review of this well-understood area of meteorology. This discussion is somewhat complex and technical, but it is also well-supported and should be non-controversial.
We argue that:
Because the land surface temperature record does in fact combine temperature minimum and maximum temperature measurements, where there has been a reduction in nighttime cooling due to this disruption, the long-term temperature record will have a warm bias. The warm bias will represent an increase in measured temperature due to a local redistribution of heat, however it will not represent an increase in the accumulation of heat in the deep atmosphere. The reduction in nighttime cooling that leads to this bias may indeed be the result of human interference in the climate system (i.e., local effects of increasing greenhouse gases, surface conditions, aerosols or human effects on cloud cover), but through a causal mechanism distinct from the large-scale radiative effects of greenhouse gases.
It is important to underscore that our hypothesis depends upon (a) the presence of a real warming trend, and (b) (to some extent) an increase in greenhouse gases. So if you accept our arguments, then you necessarily are accepting the presence of a warming trend and corresponding increases in greenhouse gases. This too should be non-controversial, but I want to be clear to avoid any possible misinterpretations.
So then let’s look at the data. We use surface data from the Hadley Center in the UK and NOAA in the US, and for satellite data we use the UAH and the RSS datasets. We analyze the data over land and ocean. The figures below show the differences between the surface temperature records and the satellite records for the period 1979 to 2008. Also shown is the difference that would be expected based on the results of a number of climate model runs as presented by the CCSP (i.e., the values from the models are from the CCSP). Clearly there is a visual divergence represented as a increase in the differences over time as well as a visual difference between what has been observed and what the models suggest should be expected.
Figure 1. NCDC minus UAH lower troposphere (blue line) and NCDC minus RSS lower troposphere (green line) annual land temperature differences over the period from 1979-2008. The expected anomaly difference given the model amplification lapse rate factor of 1.2 is also provided. All differences are normalized so that the difference in 1979 is zero.
Figure 2. CRUTEM3v minus UAH lower troposphere (blue line) and CRUTEM3v minus RSS lower troposphere (green line) annual land temperature differences over the period from 1979-2008. The expected anomaly difference given the model amplification lapse rate factor of 1.2 is also provided. All differences are normalized so that the difference in 1979 is zero.
What is really interesting is that the divergence that we observe is statistically significant in 3 of 4 cases over land (that is, NCDC minus UAH, NCDC minus RSS, Hadley minus UAH) but not in any of the cases over the ocean, which is exactly what we’d expect in the presence of a warm bias in the land surface temperature measurements. We think as well that we can explain why there is not a statistically significant difference over land between Hadley and RSS, and this is discussed in the paper.
We then take the analysis a step further:
The warm bias in the temperature data would most likely be in evidence over land areas where larger vertical temperature stratification occurs near the ground along with a reduction of the atmospheric cooling rate. This effect will be largest in the higher latitudes, especially in minimum temperatures during the winter months, since any reduction in the cooling rate of the of the atmosphere will result in a particularly large temperature increase near the ground surface in this strongly stably stratified boundary layer.
So we look at the higher latitudes and find that:
… the northern polar areas have received considerably more warming in the boreal winter with regards to minimum temperatures than with regards to maximum temperatures. The reader should be careful in interpreting these results, however, since the 95% confidence intervals for maximum and minimum temperatures in the polar areas during the winter months is quite large. The trend in minimum temperatures in northern polar areas is statistically significantly greater than the trend in maximum temperature at the 95% level during the winter months. This is consistent with the findings reported in Pielke and Matsui [2005], Pielke et al. [2007] and Lin et al. [2007] of a warm bias in the global analysis of surface temperature trends. This is also consistent with the view that column climate sensitivity is dependent on the depth of the boundary layer [Esau, 2008]. At higher latitudes, boundary layer depths are in general lower and more stable and thus heat is distributed over a shallower layer making the proportional response greater. This leads to more warming at the surface than aloft and thus is not indicative of heat accumulation in the deep atmosphere.
So we believe that we have demonstrated compelling evidence for the presence of a warm bias in global temperature trends that may indeed be reflective of a human influence on the climate system, but is not due to the accumulation of heat in the system. The obvious conclusion from this result, should it be correct and hold up, is that the effects of carbon dioxide on global temperature trends may have been overstated in past assessments by some amount.
Again, this does not mean that increasing carbon dioxide is not a problem, nor does it mean that efforts to decarbonize the economy do not make sense. Our paper has not led me to alter the climate mitigation and adaptation policies that I advocate one bit. It does mean that there remains plenty of questions to ask and answers to find – some perhaps surprising – about the relationship of human activities and the global earth system.
Here is how we conclude our paper:
We find that there have, in general, been larger linear trends in surface temperature datasets such as the NCDC and HadCRUTv3 surface datasets when compared with the UAH and RSS lower tropospheric datasets, especially over land areas. This variation in trends is also confirmed by the larger temperature anomalies that have been reported for near surface air temperatures (e.g., Zorita et al., 2008; Chase et al., 2006; 2008, Connolley, 2008). The differences between surface and satellite datasets tend to be largest over land areas, indicating that there may still be some contamination due to various aspects of land surface change, atmospheric aerosols and the tendency of shallow boundary layers to warm at a greater rate [Lin et al., 2007; Esau, 2008; Christy et al., 2009]. Trends in minimum temperatures in northern polar areas are statistically significantly greater than the trends in maximum temperatures over northern polar areas during the boreal winter months.
We conclude that the fact that trends in thermometer-estimated surface warming over land areas have been larger than trends in the lower troposphere estimated from satellites and radiosondes is most parsimoniously explained by the first possible explanation offered by Santer et al. [2005]. Specifically, the characteristics of the divergence across the datasets are strongly suggestive that it is an artifact resulting from the data quality of the surface, satellite and/or radiosonde observations. These findings indicate that the reconciliation of differences between surface and satellite datasets [Karl et al., 2006] has not yet occurred, and we have offered a suggested reason for the continuing lack of reconciliation.


dennis ward (09:24:05) : I continue to be astounded by the crap that passes for rebuttal of this serious study! Two points: glaciers are horrible thermometers. A case in point is Kilimanjaro, which is retreated, but not from higher temperatures-instead for completely different reasons. Even if that weren’t the case, they do not provide QUANTITATIVE information about temperature! In other words, it wouldn’t challenge the claim of OVERSTATED trends! Remember that Pielke Jr goes to great lengths to say that the analysis ASSUMES some real warming and NOBODY doubts that there has been some real warming.
The same objections go for animals (and by the way, people love warming weather, so in point of fact, even if the world wasn’t warming, at least in the US the average temperatures people EXPERIENCE would still be rising considerably, because people are CHOOSING to live where it is warmer!) and plants (which are loving that CO2 by the way) BUT EVEN SO!:
White, M.A., K.M. de Beurs, K. Didan, D.W. Inouye, A.D. Richardson, O.P. Jensen, J. O’Keefe, G. Zhang, R.R. Nemani, W.J.D. van Leeuwen, J.F. Brown, A. de Wit, M. Schaepman, X. Lin, M. Dettinger, A. Bailey, J. Kimball, M.D. Schwartz, D.D. Baldocchi, J.T. Lee, W.K. Lauenroth. Intercomparison, interpretation, and assessment of spring phenology in North America estimated from remote sensing for 1982 to 2006. Global Change Biology (in press),
“Trend estimates from the SOS [Start of Spring] methods as well as measured and modeled plant phenologystrongly suggest either no or very geographically limited trends towards earlier spring arrival, although we caution that, for an event such as SOS with high interannual variability, a 25-year SOS record is short for detecting robust trends.”
Even I find that spring is not arriving sooner a little puzzling since I agree there has been SOME warming.
So quit this amateurish CRAP about a very serious paper. I mean COME ON!
Pamela Gray (08:32:46) :
http://cdiac.ornl.gov/methane.html
One thing you will note is that lack of change in Methane concentration recently is a pretty robust and “mainstream” conclusion which puzzles and confounds everyone.
Vangel (11:03:19) : ??? That’s just it! I assumes no such thing! The whole point is that it supports the very notion you are talking about!
Pamela Gray (08:32:46) :
So please tell me, where would I find a continuous and current record of actual atmospheric methane concentrations that I as a public tax paying individual can see for myself whether or not we are dying in a tundra-melting sea of methane?
You could try here: http://cdiac.ornl.gov/methane.html
Phil. (11:40:24) : Beatcha to it! 😛
“”” tallbloke (14:54:14) :
bill (13:24:15) :
from the document p7
if, for instance, there is a long-term positive trend in greenhouse gas concentrations or cloudiness over the observing site, it may introduce an upward bias in the observational record
Local CO2 raises temperature!!
Or more accurately
Local co2 or cloudiness may raise temperature. “””
So what is the mechanism where local cloudiness (climatically speaking) raises temperatures; given that when a cloud passes in front of the sun, it ALWAYS gets cooler in the shadow zone (for very elementary optical reasons) as a result of blocked sunlight not reaching the surface.
And why would one take the air temperature at a height of two metres as being the same as the surface temperature. Try telling that to a head of lettuce growing on the ground. What would caue the air temperature (climatically speaking) to be higher than the actual surface temperature ?
George E. Smith (14:15:45) : At night, (although minimum temps are usually early mourning) clouds “always” cause warming-and high altitude clouds “always” cause warming when the pass over…and by the way, when they say “greenhouse gas concentrations…over the observing site” could also (especially given the context) include changes in humidity-which can occur locally if evapo-transpiration was altered by, say, agriculture (ever been to Iowa? I hear it is HUMID!).
“”” timetochooseagain (14:30:28) : “””
We are talking climate not last night’s weather.
So you say “at night couds always cause warming”; simply not true. When the sun goes down; clouds or no, the temperature always goes down; not up; and we are excluding the obvious situation where some warm air mass moves in from some other location; the temperature at night will also go up if you set fire to your house; but that is not an effect of clouds.
The very presence of those clouds is BECAUSE it was warm; they are not the cause of the warmth, but the result of it; and the warmer it is, the higher the moist air has to rise, before its temperature drops to the dew point so clouds can form, so the warmer it is, the higher those clouds form, and if the amount of moisture in the air (humidity) is lower, the air mass has to go even higher to get down to the dew point and form clouds.
Meteorologists have spouted that thesis for years on the evening news; it’s cloudy so it will be warm tonight. NO !!! It is warm, and moist so it will be cloudy tonight; but absent the inflow of a santa ana air mass, it WILL cool down tonight clouds notwithstanding. And tomorrowe because of those clouds; they will block sunlight and it will get less warm.
Over climate time scales more clouds always means more cooling; never more warming. They have it exactly backwards just like the temperature/CO2 argument.
It’s just plain silly to argue that a moist air mass that eventually condenses into cloud; and cloud that is of lower density and water content, the higher the altitude at which it forms; so therefore the less total long wave or solar radiation it can absorb; but yet it will warm the surface, and even moreso the more evanescent and high the cloud is.
No I don’t dispute that clouds at night can still absorb surface emitted LWIR, and slow its escape, but it still will escape and it still will cool down; it won’t warm up after the sun goes down; unless by mass transport of a different body of warmer air. And of course a forest fire down the street will likely warm things up too.
Why is it so hard for people to discriminate cause from effect when they have two phenomena occur together.
When you cut all four legs off bull frogs, and tell them to jump; they will not jump; no matter how loud you yell at them. That does not mean that cutting all four legs off a bull frog makes it stone deaf !
George
George E. Smith (18:19:03) : I don’t really disagree with any of that. When I said “warming” I meant “relative warming” in other words cloud nights are warmer than they would be otherwise-And I made no comment about whether warmer temperatures mean more or fewer clouds, but again I basically agree with what you say.
Sorry for the confusion.
And FWIW frogs don’t understand commands anyway.
I do not know if this has been mentioned before,but is there a temperature profile that reflects the height above the ground?. I mention this as land temperature sensors and readings are at human user-friendly height….but is this appropriate for stable land based readings? A higher screen would reduce the surface quality effect, would not reduce UHI but may produce a more accurate reading, but a height/temp profile would be a good start to assess this.
Keith Minto (00:40:40) :
Interesting question. At what point above ground level would the dry adiabatic lapse rate of 3C (5.4F) per 1000 feet apply from land based sensors? And over water?
Is there any data that plots the average high temperature over the years, and another that does the same with the low temperatures, then maybe even the same by latitude, like tropical, midway, and artic?
” Justin Sane (20:29:24) :
Is there any data that plots the average high temperature over the years, and another that does the same with the low temperatures, then maybe even the same by latitude, like tropical, midway, and arctic? ”
That would be interesting,it might reveal a pattern that shows minima rising to meet a more or less static maxima,instead of an average rise. A rising minima would clearly implicate the UHI effect.
My question (00:40:40),just to clarify, concerns whether or not data exists on a temp/height profile that goes from ground level to say 20 metres above ground.
In the post, Dr. Pielke writes: “It is important to underscore that our hypothesis depends upon (a) the presence of a real warming trend, and (b) (to some extent) an increase in greenhouse gases. So if you accept our arguments, then you necessarily are accepting the presence of a warming trend and corresponding increases in greenhouse gases. This too should be non-controversial, but I want to be clear to avoid any possible misinterpretations.”
I read the paper looking for elaboration on this statement, but I didn’t find anything. The paper makes a clear case for possible sources of the discrepancy between terrestrial and satellite data but I don’t see what the point of the above statement is.
“I read the paper looking for elaboration on this statement, but I didn’t find anything. The paper makes a clear case for possible sources of the discrepancy between terrestrial and satellite data but I don’t see what the point of the above statement is.”
The point seems quite clear. It is important for the actual data to show a real warming trend and that may not exist. The surface record is very suspect. If one looks at the actual measurements it becomes clear that there has not been any noticeable warming since the 1930s, which were the warmest decade in the US over the past 100 years. While the satellite data shows warming it begins after the PDO went into a negative phase and the atmospheric warming seems to have reversed when the PDO reversed into a cooling phase.
It may well be that the warming that we have all agreed on (the argument is about the role of CO2, not about the warming) was the result of inadequate measurements. If that is the case, most of these papers, which assume that the warming is real and that CO2 has an effect, are just narratives that have no scientific merit. Pielke knows that and as such has written his disclaimers to that effect.