{"id":3921,"date":"2013-09-03T17:45:34","date_gmt":"2013-09-03T21:45:34","guid":{"rendered":"http:\/\/www.easterbrook.ca\/steve\/?p=3921"},"modified":"2013-09-05T10:30:20","modified_gmt":"2013-09-05T14:30:20","slug":"the-climate-as-a-system-part-5-clouds","status":"publish","type":"post","link":"http:\/\/www.easterbrook.ca\/steve\/2013\/09\/the-climate-as-a-system-part-5-clouds\/","title":{"rendered":"The Climate as a System, part 5: clouds"},"content":{"rendered":"<p>Yesterday I talked about <a title=\"The Climate as a System, part 4: earth system feedbacks\" href=\"http:\/\/www.easterbrook.ca\/steve\/2013\/09\/the-climate-as-a-system-part-4-earth-system-feedbacks\/\" target=\"_blank\">three re-inforcing feedback loops<\/a> in the earth system, each of which has the potential to accelerate a warming trend once it has started. I also suggested there are other similar feedback loops, some of which are known, and others perhaps yet to be discovered. For example, <a title=\"See this news story in Nature\" href=\"http:\/\/www.nature.com\/news\/rising-ocean-acidity-will-exacerbate-global-warming-1.13602\" target=\"_blank\">a paper published last month<\/a> suggested a new feedback loop, to do with ocean acidification. In a nutshell, as the ocean absorbs more CO2, it becomes more acidic, which inhibits the growth of phytoplankton. These plankton are a major source of sulphur compounds that end up as aerosols in the atmosphere, which seeds the formation of clouds. Less clouds mean lower albedo, which means more warming. Whether this feedback loop is important remains to be seen, but we do know that clouds have an important role to play in climate change.<\/p>\n<p>I didn&#8217;t include clouds on my diagrams yet, because clouds deserve a special treatment, in part because they are involved in two major feedback loops that have opposite effects:<\/p>\n<div id=\"attachment_3922\" style=\"width: 514px\" class=\"wp-caption aligncenter\"><a href=\"http:\/\/www.easterbrook.ca\/steve\/wp-content\/cloud-feedback-loops.png\"><img aria-describedby=\"caption-attachment-3922\" decoding=\"async\" loading=\"lazy\" class=\" wp-image-3922 \" alt=\"Two opposing cloud feedback loops\" src=\"http:\/\/www.easterbrook.ca\/steve\/wp-content\/cloud-feedback-loops-1024x967.png\" width=\"504\" height=\"475\" srcset=\"http:\/\/www.easterbrook.ca\/steve\/wp-content\/cloud-feedback-loops-1024x967.png 1024w, http:\/\/www.easterbrook.ca\/steve\/wp-content\/cloud-feedback-loops-300x283.png 300w, http:\/\/www.easterbrook.ca\/steve\/wp-content\/cloud-feedback-loops.png 1316w\" sizes=\"(max-width: 504px) 100vw, 504px\" \/><\/a><p id=\"caption-attachment-3922\" class=\"wp-caption-text\">Two opposing cloud feedback loops. An increase in temperature leads to an increase in moisture in the atmosphere. This leads to two new loops&#8230;<\/p><\/div>\n<p>As the earth warms, we get more moisture in the atmosphere (simply because there is more evaporation from the surface, and warmer air can hold more moisture). Water vapour is a powerful greenhouse gas, so the more there is in the atmosphere, the more warming we get (greenhouse gases reduce the outgoing radiation).\u00a0So this sets up a reinforcing feedback loop: more moisture causes more warming causes more moisture.<\/p>\n<p>However, if there is more moisture in the atmosphere, there&#8217;s also likely to be <a title=\"More detail here...\" href=\"http:\/\/www.astr.ucl.ac.be\/textbook\/chapter4_node8.html\" target=\"_blank\">more cloud formation<\/a>. Clouds raise the albedo of the planet and reflect sunlight back into space before it can reach the surface. Hence, there is also a balancing loop: by blocking more sunlight, extra clouds will help to put the brakes on any warming. Note that I phrased this carefully: this balancing loop can <em>slow a warming trend<\/em>, but it does not\u00a0<em>create a\u00a0cooling\u00a0trend<\/em>. Balancing loops tend to stop a change from occurring, but they do not create a change in the opposite direction. For example, if enough clouds form to completely counteract the warming, they also remove the mechanism (i.e. warming!) that causes growth in cloud cover in the first place. If we did end up with so many extra clouds that it cooled the planet, the cooling would then remove the extra clouds, so we&#8217;d be back where we started. In fact, this loop is nowhere near that strong anyway. [Note that under some circumstances, balancing loops\u00a0can\u00a0<a title=\"Pigolotti et al &quot;Oscillation patterns in negative feedback loops&quot; 2007\" href=\"http:\/\/www.pnas.org\/content\/104\/16\/6533.full\" target=\"_blank\">lead to oscillations<\/a>, rather than gently converging on an equilibrium point, and the first wave of a very slow oscillation might be mistaken for a cooling trend. We have to be careful with our assumptions and timescales here!].<\/p>\n<p>So now we have two new loops that set up opposite effects &#8211; one tends to accelerate warming, and the other tends to decelerate it. You can experience both these effects directly: cloudy days tend to be cooler than sunny days, because the clouds reflect away some of the sunlight. But cloudy nights tend to be warmer than clear nights because the water vapour traps more of the escaping heat from the surface. In the daytime, both effects are operating, and the cooling effect tends to dominate. During the night, there is no sunlight to block, so only the warming effect works.<\/p>\n<p>If we average out the effects of these loops over many days, months, or years, which of the effects dominate? (i.e. which loop is stronger?) Does the extra moisture mean more warming or less warming? This is clearly an area where building a computer model and experimenting with it might help, as we need to quantify the effects to understand them better. We can build good computer models of how clouds form at the small scale, by simulating the interaction of dust and water vapour. But <a title=\"E.g. see Randall et al 2003 for a discussion\" href=\"http:\/\/journals.ametsoc.org\/doi\/pdf\/10.1175\/BAMS-84-11-1547\" target=\"_blank\">running such a model for the whole planet<\/a> is not feasible with today&#8217;s computers.<\/p>\n<p>To make things a little more complicated, these two feedback loops interact with other things. For example, another likely feedback loop comes from a change in the vertical temperature profile of the atmosphere. Current models indicate that, at least in the tropics, the upper atmosphere will warm faster than the surface\u00a0(in technical terms, it will reduce the lapse rate &#8211; the rate at which temperature drops as you climb higher).\u00a0This then increases the outgoing radiation, because it&#8217;s from the upper atmosphere that the earth loses its heat to space. This creates another (small) balancing feedback:<\/p>\n<div id=\"attachment_3927\" style=\"width: 451px\" class=\"wp-caption aligncenter\"><a href=\"http:\/\/www.easterbrook.ca\/steve\/wp-content\/lapse-rate-feedback.png\"><img aria-describedby=\"caption-attachment-3927\" decoding=\"async\" loading=\"lazy\" class=\" wp-image-3927 \" alt=\"The lapse rate feedback - if the upper troposphere warms faster than the surface (i.e. a lower lapse rate), this increases outgoing radiation from the planet.\" src=\"http:\/\/www.easterbrook.ca\/steve\/wp-content\/lapse-rate-feedback-1024x935.png\" width=\"441\" height=\"403\" srcset=\"http:\/\/www.easterbrook.ca\/steve\/wp-content\/lapse-rate-feedback-1024x935.png 1024w, http:\/\/www.easterbrook.ca\/steve\/wp-content\/lapse-rate-feedback-300x274.png 300w, http:\/\/www.easterbrook.ca\/steve\/wp-content\/lapse-rate-feedback.png 1437w\" sizes=\"(max-width: 441px) 100vw, 441px\" \/><\/a><p id=\"caption-attachment-3927\" class=\"wp-caption-text\">The lapse rate feedback &#8211; if the upper troposphere warms faster than the surface (i.e. a lower lapse rate), this increases outgoing radiation from the planet.<\/p><\/div>\n<p>Note that this lapse rate feedback operates in the same way as the main energy balance loop &#8211; the two &#8216;-&#8216; links have the same effect as the existing &#8216;+&#8217; link from temperature to outgoing infra-red radiation. In other words this new loop just strengthens the effect of the existing loop &#8211; for convenience we could just fold both paths into the one link.<\/p>\n<p>However, <a title=\"Here's a good explanation, if you're really curious....\" href=\"http:\/\/www.astr.ucl.ac.be\/textbook\/chapter4_node7.html\" target=\"_blank\">water vapour feedback can interact with this new feedback loop<\/a>, because the warmer upper atmosphere will hold more water vapour in exactly the place where it&#8217;s most effective as a greenhouse gas. Not only that, but <a title=\"A good explanation here\" href=\"http:\/\/www.astr.ucl.ac.be\/textbook\/chapter4_node8.html\">clouds themselves can change the vertical temperature profile<\/a>, depending on their height. I said it was complicated!<\/p>\n<p>The difficulty of simulating all these different interactions of clouds accurately leads to one of the biggest uncertainties in climate science. In 1979, <a title=\"Full version of the Charney report is here\" href=\"http:\/\/www.atmos.ucla.edu\/~brianpm\/charneyreport.html\" target=\"_blank\">the Charney report<\/a>\u00a0calculated that all these cloud and water vapour feedback loops roughly cancel out, but pointed out that there was a large uncertainty bound on this estimate. More than thirty years later, <a title=\"See for example, this review by Bony et al, in 2011.\" href=\"http:\/\/www.wcrp-climate.org\/conference2011\/documents\/LongTermClimateChange_Bony.pdf\" target=\"_blank\">we understand much more about the how cloud formation and distribution are altered in a warming world<\/a>, but our margins of error for calculating cloud effects have barely reduced, because of the difficulty of simulating them on a global scale. Our best guess is now that the (reinforcing) water vapour feedback loop is slightly stronger than than the (balancing) cloud albedo and lapse rate loops. So the net effect of these three loops is an amplifying effect on the warming.<\/p>\n<p><em>Other posts in this series, so far:<\/em><\/p>\n<ul>\n<li><a title=\"Why Systems Thinking?\" href=\"http:\/\/www.easterbrook.ca\/steve\/2013\/08\/why-systems-thinking\/\" target=\"_blank\">Why Systems Thinking?<\/a><\/li>\n<li><a title=\"The Climate as a System, part 1: the central equilibrium loop\" href=\"http:\/\/www.easterbrook.ca\/steve\/2013\/08\/the-climate-as-a-system-part-1-the-central-equilibrium-loop\/\" target=\"_blank\">part 1: the central equilibrium loop<\/a><\/li>\n<li><a title=\"The Climate as a System, part 2: energy consumption\" href=\"http:\/\/www.easterbrook.ca\/steve\/2013\/08\/the-climate-as-a-system-part-2-energy-consumption\/\" target=\"_blank\">part 2: energy consumption<\/a><\/li>\n<li><a title=\"part 3: greenhouse gases\" href=\"http:\/\/www.easterbrook.ca\/steve\/2013\/08\/the-climate-as\u2026eenhouse-gases\/\" target=\"_blank\">part 3: greenhouse gases<\/a><\/li>\n<li><a title=\"The Climate as a System, part 4: earth system feedbacks\" href=\"http:\/\/www.easterbrook.ca\/steve\/2013\/09\/the-climate-as-a-system-part-4-earth-system-feedbacks\/\" target=\"_blank\">part 4: earth system feedbacks<\/a><\/li>\n<li><a title=\"The Climate as a System, part 5: clouds\" href=\"http:\/\/www.easterbrook.ca\/steve\/2013\/09\/the-climate-as-a-system-part-5-clouds\/\" target=\"_blank\">part 5: clouds<\/a> (this post)<\/li>\n<\/ul>\n","protected":false},"excerpt":{"rendered":"<p>Yesterday I talked about three re-inforcing feedback loops in the earth system, each of which has the potential to accelerate a warming trend once it has started. I also suggested there are other similar feedback loops, some of which are known, and others perhaps yet to be discovered. For example, a paper published last month [&hellip;]<\/p>\n","protected":false},"author":393,"featured_media":0,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[57,1],"tags":[],"aioseo_notices":[],"jetpack_sharing_enabled":true,"jetpack_featured_media_url":"","_links":{"self":[{"href":"http:\/\/www.easterbrook.ca\/steve\/wp-json\/wp\/v2\/posts\/3921"}],"collection":[{"href":"http:\/\/www.easterbrook.ca\/steve\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"http:\/\/www.easterbrook.ca\/steve\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"http:\/\/www.easterbrook.ca\/steve\/wp-json\/wp\/v2\/users\/393"}],"replies":[{"embeddable":true,"href":"http:\/\/www.easterbrook.ca\/steve\/wp-json\/wp\/v2\/comments?post=3921"}],"version-history":[{"count":9,"href":"http:\/\/www.easterbrook.ca\/steve\/wp-json\/wp\/v2\/posts\/3921\/revisions"}],"predecessor-version":[{"id":3937,"href":"http:\/\/www.easterbrook.ca\/steve\/wp-json\/wp\/v2\/posts\/3921\/revisions\/3937"}],"wp:attachment":[{"href":"http:\/\/www.easterbrook.ca\/steve\/wp-json\/wp\/v2\/media?parent=3921"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"http:\/\/www.easterbrook.ca\/steve\/wp-json\/wp\/v2\/categories?post=3921"},{"taxonomy":"post_tag","embeddable":true,"href":"http:\/\/www.easterbrook.ca\/steve\/wp-json\/wp\/v2\/tags?post=3921"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}