Mostrar mensagens com a etiqueta Relatório Charney. Mostrar todas as mensagens
Mostrar mensagens com a etiqueta Relatório Charney. Mostrar todas as mensagens

quinta-feira, 22 de dezembro de 2022

Micróbios descobertos no Brasil podem substituir agrotóxicos no futuro


Um estudo apoiado pela FAPESP, publicado no ISME Journal na última segunda-feira (19), identificou 522 genomas (entre arqueias e bactérias) associados às raízes e ao solo de duas espécies vegetais nativas dos Campos Rupestres. Centenas de microrganismos que até então eram desconhecidos para a ciência foram identificados, evidenciando que a biodiversidade brasileira ainda abriga uma enorme quantidade de novos organismos.

A descoberta abre caminho para o desenvolvimento de substitutos biológicos para os fertilizantes químicos usados na agricultura, principalmente os que contêm fósforo.

“O fósforo normalmente está presente no solo, mas nem sempre na forma que pode ser aproveitado pelas plantas. O que a maioria dos microrganismos que encontramos faz é tornar esse elemento solúvel para que as plantas possam absorvê-lo”, explica Antônio Camargo, primeiro autor do artigo, realizado durante doutorado no Instituto de Biologia da Universidade Estadual de Campinas (IB-Unicamp) com bolsa da FAPESP.

O estudo ocorreu no âmbito do Centro de Pesquisa em Genômica Aplicada às Mudanças Climáticas (GCCRC), um Centro de Pesquisa em Engenharia (CPE) constituído pela FAPESP e pela Empresa Brasileira de Pesquisa Agropecuária (Embrapa) na Unicamp.

Uma das plantas, Vellozia epidendroides, vive em solos rasos, enquanto Barbacenia macranta foi encontrada vivendo sobre rochas expostas. Ambas fazem parte da família Velloziacea e foram coletadas em uma área particular adjacente ao Parque Nacional da Serra do Cipó, em Minas Gerais.

Ao comparar os microrganismos das plantas que crescem no solo e na rocha, os pesquisadores constataram se tratar de comunidades diferentes, porém, com muitas espécies compartilhadas. De modo geral, foram encontrados microrganismos bastante especializados no transporte do fósforo e na conversão da versão não solúvel para a solúvel do mineral, que é absorvida pelas plantas.

“As comunidades microbianas também mostraram papel importante na disponibilização de nitrogênio, outro nutriente essencial para as plantas”, afirma Camargo, atualmente pesquisador do Joint Genome Insitute, do Departamento de Energia dos Estados Unidos, onde foi realizado o sequenciamento dos genomas.

Novas soluções
“Os estudos realizados até então normalmente focaram nos mecanismos de adaptação das plantas às duras condições dos Campos Rupestres, por vezes ignorando os microrganismos. Mostramos que os microrganismos têm um potencial funcional essencial na adaptação vegetal às condições extremas desse ambiente. Em especial, ao fornecerem fósforo para o crescimento vegetal” conta Rafael Soares Correa de Souza, pesquisador associado ao GCCRC que foi apoiado pela FAPESP e é um dos coautores do estudo.

A expectativa dos pesquisadores é que as descobertas possam contribuir para a criação de produtos que substituam os adubos químicos à base de fósforo, um dos nutrientes mais utilizados na adubação de lavouras no Brasil. Hoje, mais da metade do fertilizante fosfatado utilizado no país é importado, sobretudo do Marrocos, mas também da Rússia, Egito, China e Estados Unidos.

Além da dependência de importação, os fertilizantes fosfatados têm como desvantagem a possibilidade de poluição de corpos d’água e por emitir gases de efeito estufa na sua extração. Estima-se que para cada quilo de fósforo retirado na natureza, um quilo desses gases vá para a atmosfera. Fora isso, trata-se de um recurso natural não renovável. Portanto, com prazo para acabar.

Os fertilizantes biológicos já são uma realidade no Brasil, com 80% da área plantada de soja fazendo uso desses produtos para a disponibilização de outro nutriente, o nitrogénio. Um estudo publicado anteriormente por pesquisadores do GCCRC estimou que US$ 10 biliões sejam economizados anualmente pela substituição dos fertilizantes nitrogenados por inoculantes biológicos (saiba mais aqui).

“O estudo chama a atenção ainda para a necessidade de conservação dos ecossistemas brasileiros, que podem fornecer muitas outras soluções baseadas na natureza como essa”, lembra Souza, cofundador da Symbiomics, startup de biotecnologia focada no desenvolvimento de biológicos de nova geração.

Considerados hotspots de biodiversidade, com muitas espécies exclusivas, os Campos Rupestres estão contidos em mosaicos que totalizam aproximadamente 26,5 mil quilómetros quadrados distribuídos em áreas de Cerrado, Caatinga e Mata Atlântica. As principais ameaças a esses ecossistemas são a mineração e a pecuária.

O próximo passo da pesquisa é a realização de estudos para testar os benefícios de alguns dos microrganismos encontrados em uma cultura agrícola. Os experimentos estão sendo realizados na sede do GCCRC em Campinas.

O artigo Plant microbiomes harbor potential to promote nutrient turnover in impoverished substrates of a Brazilian biodiversity hotspot pode ser lido clicando aqui.

Leia também:

sábado, 5 de novembro de 2022

"Estamos todos condenados": o alerta de António Guterres

Secretário-geral da ONU alerta para a necessidade urgente de um acordo climático entre os países ricos e os em desenvolvimento

O secretário-geral das Nações Unidas, António Guterres, alertou este sábado para a necessidade urgente de um acordo climático entre os países ricos e os que estão em desenvolvimento, caso contrário a população mundial estará "condenada".

Em entrevista ao jornal britânico The Guardian, publicada poucas horas antes do início da COP27 que decorrerá a partir de domingo na cidade egípcia de Sharm el Sheikh, Guterres lembrou o compromisso não cumprido, assumido há 10 anos pelos países desenvolvidos, de dar às nações mais pobres do mundo um total de 100.000 milhões de euros, até 2020, no âmbito da ajuda à proteção climática.

"Não há como evitar uma catástrofe se ambos não chegarem a um acordo neste sentido", declarou o secretário-geral da ONU. "Neste momento, estamos todos condenados", alertou.

António Guterres afirmou que o mundo está a aproximar-se de uma crise climática "irreversível" e de "danos dos quais não será capaz de recuperar".

"Precisamos de mais urgência, mais ambição e reconstruir a confiança entre o norte e o sul do planeta", acrescentou.

O responsável vincou que "metade da humanidade está na zona de perigo de enchentes, secas, tempestades extremas e incêndios florestais".

"Nenhuma nação está imune. No entanto, continuamos a alimentar o nosso vício em combustíveis fósseis. Perante isto, temos uma de duas opções: ou a ação coletiva, ou o suicídio coletivo", afirmou.

Ler mais:

sábado, 27 de agosto de 2022

Cuidado, Europa: 2035 vai ser como 2022. E isso não é bom - e é quente, muito quente (inclui um webinar)



Onda de calor recorde na Europa será a norma em 2035, segundo análise

A onda de calor recorde que varreu a Europa este ano tornar-se-á o verão "médio" até 2035, mesmo que todos os países reduzam as suas emissões de gases com efeito de estufa em tanto quanto se comprometeram, de acordo com uma análise publicada quinta-feira.

A análise do Centro Hadley do Gabinete de Meteorologia do Reino Unido, encomendada pelo Grupo Consultivo para a Crise Climática (CCAG) do país, analisou a rapidez com que as temperaturas estão a mudar em toda a região, utilizando registos históricos de temperaturas médias de verão desde 1850 e comparando-as com as previsões-modelo.

Tendo uma visão a longo prazo, a análise concluiu que um verão médio na Europa Central em 2100 seria de 4 graus Celsius (7,2 graus Fahrenheit) mais quente do que na era pré-industrial. Os cientistas dizem agora que todas as ondas de calor têm as impressões digitais das alterações climáticas induzidas pelo homem, causadas principalmente pela queima de combustíveis fósseis.

"Estes dados servem como uma urgente lembrança da necessidade de os países irem muito além das suas contribuições determinadas a nível nacional até agora prometidas no âmbito do Acordo de Paris, que visa limitar o aquecimento global a menos de 1,5º C, se possível", refere a CCAG no comunicado.

Contribuições determinadas a nível nacional estabelecem as reduções planeadas de emissões de cada país para alcançar o objetivo do Acordo de Paris de 2015 de limitar o aquecimento global a 2ºC ou 1,5º C, se possível.

O Reino Unido estabeleceu um recorde nacional de temperatura em julho depois de ter ultrapassado pela primeira vez os 40 graus Celsius (104 graus Fahrenheit). Outros registos locais foram quebrados em partes de Espanha, Portugal e França, que também têm lutado contra incêndios florestais, uma vez que tanto o calor como a seca deixam as florestas e as pradarias secas.

"No rescaldo da onda de calor europeia de 2003, que se estima ter matado mais de 70 mil pessoas, previ que tais temperaturas, tão excecionais para a época, se tornariam a norma sob emissões contínuas. Essa previsão foi agora concretizada", disse Peter Stott, do Centro Hadley do Gabinete de Meteorologia. "Os riscos de condições climáticas extremas, incluindo incêndios, secas e inundações repentinas, continuarão a aumentar rapidamente, a menos que as emissões de gases com efeito de estufa sejam substancialmente reduzidas."

Promessas do Acordo de Paris ficam aquém
As novas descobertas foram publicadas pouco mais de dois meses antes das conversações internacionais sobre o clima da COP27, no Egito. No ano passado, os países concordaram em alinhar os seus planos de emissões com o objetivo de limitar o aquecimento global a 1,5º C até ao final da COP27.

Uma análise do Climate Action Tracker, no ano passado, concluiu que nenhuma das maiores economias mundiais - incluindo todo o G20 - tinha um plano que cumprisse as suas obrigações nos termos do Acordo de Paris. Desde então, alguns países apresentaram planos mais ambiciosos.

Para conter o aquecimento global, a CCAG defende que os países reduzam as emissões "urgente, profunda e rapidamente"; eliminem o dióxido de carbono e outros gases com efeito de estufa da atmosfera em "grandes quantidades para reduzir o total a partir de hoje"; e que "ganhem tempo" para completar aqueles dois.

Para isso, o comité disse que o mundo devia reparar partes avariadas do sistema climático, a começar pelo Ártico.

Acrescentou que "para criar um futuro manejável temos de recongelar o Oceano Ártico, que já aqueceu 3,5º C acima dos níveis pré-industriais e está a agravar os eventos climáticos extremos em todo o mundo".

O presidente da CCAG, David King, disse em comunicado que a ciência tem noção de que o clima extremo é "pelo menos em grande parte uma consequência das alterações climáticas induzidas pelo homem".

"Os dados divulgados pelo Gabinete de Meteorologia mostram que, mesmo que os países cumpram os seus compromissos de redução de emissões que fizeram até agora, a situação ainda deverá piorar, prevendo-se que o clima na Europa se torne ainda mais extremo do que o observado neste verão", disse.

"Estes dados não explicam totalmente a instabilidade do Ártico, que sabemos agora ser um ponto de viragem global que pode ter grandes consequências em cascata para todo o planeta."

sábado, 26 de dezembro de 2020

Se há verbo que eu gosto muito é o cuidar


Se há verbo que eu gosto muito é o cuidar. Cuidar de si, cuidar da família, cuidar da casa, cuidar dos amigos, cuidar dos animais domésticos, cuidar do jardim e plantas e interligados entre si, cuidar da região onde vive, cuidar das florestas, lagos, charcos, rios, montanhas, oceanos e da vida selvagem que estes abrigam e, por isso, cuidar da Terra-Mãe, o Planeta Terra. 
Conjugando o verbo cuidar no presente do indicativo, é um poema vivo:
Eu cuido
Tu cuidas
Ele/Ela cuida
Nós cuidamos
Vós cuidais
Eles/ Elas cuidam
E é tão gratificante.

segunda-feira, 4 de maio de 2020

Relatório Charney - texto


Podes fazer o download aqui
O Relatório Charney é um documento científico publicado em 1979 que estudou o efeito sobre a temperatura e o clima global do aumento da concentração de gás carbónico na atmosfera. Seu título original é Carbon Dioxide and Climate: A Scientific Assessment (Dióxido de Carbono e Clima: Uma Avaliação Científica), mas tornou-se mais conhecido como Relatório Charney em função do principal pesquisador envolvido, Jule Gregory Charney.

Quando Jimmy Carter assumiu o governo dos Estados Unidos em 1977, o Conselho Presidencial para a Qualidade do Ambiente encomendou um grande estudo sobre as possíveis mudanças na população e no ambiente até o fim do século XX. Durante a pesquisa foram analisados trabalhos indicando que um aumento na concentração atmosférica de gás carbônico, emitido pelas atividades humanas, provavelmente causaria um significativo aumento da temperatura global. Quando os resultados foram levados ao conhecimento do presidente em 1979, a Academia Nacional de Ciências foi chamada para avaliar essa perspectiva, porque Carter tencionava usar o carvão mineral como uma saída para a crise do petróleo, e quando ocorre a queima do carvão é libertada grande quantidade de gás carbônico.[1]

Um grupo de pesquisadores, liderados por Charney, foi incumbido da tarefa. Suas conclusões principais:[2][3]
  • Se as emissões de gás carbónico continuassem nos níveis da época, a concentração na atmosfera duplicaria em algum momento da primeira metade do século XXI;
  • Isso levaria a um aumento de 1,5 a 4,5 ºC na temperatura média do globo, com um equilíbrio em torno de 3 ºC;
  • Todos os modelos climáticos utilizados previram um aumento significativo na temperatura;
  • Latitudes mais altas (mais perto dos polos) teriam aumentos maiores na temperatura;
  • Mudanças regionais no clima acompanhariam o aquecimento;
  • Não há nenhum mecanismo natural conhecido que possa minimizar ou reverter esse processo, mas provavelmente a captura de calor pelo oceano retardaria o efeito final por algumas décadas.
Embora os autores tenham reconhecido que ainda havia muitas incertezas devido aos poucos dados observacionais, ao entendimento fragmentário da ciência do clima e aos primitivos modelos climáticos usados, as previsões do relatório ficaram dentro das estimativas e observações mais atuais.[3]

O relatório fez parte de um grupo de estudos empreendidos na mesma época por diferentes equipes científicas, que trouxeram pela primeira vez a questão do gás carbônico e suas implicações para o aquecimento global para dentro da arena política.[2] Desses estudos, o Relatório Charney tornou-se provavelmente o mais famoso e influente, e é considerado um trabalho notável pela precisão das suas principais previsões, tendo surgido num período em que os recursos de pesquisa e os dados disponíveis eram ainda muito limitados.[2][4][3]

Saber mais:
Alterações Climáticas - Delgado Domingos

Referências
1 Schoolman, Ethan. "Carter Administration". In: Philander, S. George (ed.). Encyclopedia of Global Warming and Climate Change, vol. 1. SAGE, 2012, 2ª ed., pp. 210-211
2.↑ a b c Nierenberg, Nicolas; Tschinkel, Walter R. & Tschinkel, Victoria J. "Early Climate Change Consensus at the National Academy: The Origins and Making of Changing Climate" . In: Historical Studies in the Natural Sciences, 2010; 40 (3):318–349
3.↑ a b c Bony, Sandrine et al. "Carbon Dioxide and Climate: Perspective on a Cientific Assessment". In: Asrar, Ghassem R. & Hurrell, James W. (eds.). Climate Science for Serving Society: Research, Modeling and Prediction Priorities. Springer, 2013, pp. 391-413
4 Perry, J. S. "The Charney Report — Creation and Consequences". In: American Geophysical Union Fall Meeting Abstracts, 2009

quinta-feira, 25 de julho de 2019

Charney Report- 40 years ago, scientists predicted climate change. And hey, they were right

Fonte: aqui

This month the world has been celebrating the 50th anniversary of Neil Armstrong setting foot on the Moon. But this week sees another scientific anniversary, perhaps just as important for the future of civilisation.

Forty years ago, a group of climate scientists sat down at Woods Hole Oceanographic Institution in Massachusetts for the first meeting of the “Ad Hoc Group on Carbon Dioxide and Climate”. It led to the preparation of what became known as the Charney Report – the first comprehensive assessment of global climate change due to carbon dioxide.

It doesn’t sound as impressive as landing on the Moon, and there certainly weren’t millions waiting with bated breath for the deliberations of the meeting.

But the Charney Report is an exemplar of good science, and the success of its predictions over the past 40 years has firmly established the science of global warming.

What is this ‘greenhouse gas’ you speak of?

Other scientists, starting in the 19th century, had already demonstrated that carbon dioxide was what we now call a “greenhouse gas”. By the 1950s, scientists were predicting warming of several degrees from the burning of fossil fuels. In 1972 John Sawyer, the head of research at the UK Meteorological Office, wrote a four-page paper published in Nature summarising what was known at the time, and predicting warming of about 0.6℃ by the end of the 20th century.

But these predictions were still controversial in the 1970s. The world had, if anything, cooled since the middle of the 20th century, and there was even some speculation in the media that perhaps we were headed for an ice age.

The meeting at Woods Hole gathered together about 10 distinguished climate scientists, who also sought advice from other scientists from across the world. The group was led by Jule Charney from the Massachusetts Institute of Technology, one of the most respected atmospheric scientists of the 20th century.

The Report lays out clearly what was known about the likely effects of increasing carbon dioxide on the climate, as well as the uncertainties. The main conclusion of the Report was direct:

We estimate the most probable warming for a doubling of CO₂ to be near 3℃ with a probable error of 1.5℃.

In the 40 years since their meeting, the annual average CO₂ concentration in the atmosphere, as measured at Mauna Loa in Hawaii, has increased by about 21%. Over the same period, global average surface temperature has increased by about 0.66℃, almost exactly what could have been expected if a doubling of CO₂ produces about 2.5℃ warming – just a bit below their best estimate. A remarkably prescient prediction.

Reception of the article

Despite the high regard in which the authors of the Charney Report were held by their scientific peers at the time, the report certainly didn’t lead to immediate changes in behaviour, by the public or politicians.

But over time, as the world has continued to warm as they predicted, the report has become accepted as a major milestone in our understanding of the consequences our actions have for the climate. The current crop of climate scientists revere Charney and his co-authors for their insight and clarity.

Strong science

The report exemplifies how good science works: establish an hypothesis after examining the physics and chemistry, then based on your assessment of the science make strong predictions. Here, “strong predictions” means something that would be unlikely to come true if your hypothesis and science were incorrect.

In this case, their very specific prediction was that warming of between 1.5℃ and 4.5℃ would accompany a doubling of atmospheric CO₂. At the time, global temperatures, in the absence of their hypothesis and science, might have been expected to stay pretty much the same over the ensuing 40 years, cooled a bit, possibly even cooled a lot, or warmed a lot (or a little).

In the absence of global warming science any of these outcomes could have been feasible, so their very specific prediction made for a very stringent test of their science.

The Charney Report’s authors didn’t just uncritically summarise the science. They also acted sceptically, trying to find factors that might invalidate their conclusions. They concluded:

We have tried but have been unable to find any overlooked or underestimated physical effects that could reduce the currently estimated global warmings due to a doubling of atmospheric CO₂ to negligible proportions or to reverse them altogether.

The report, and the successful verification of its prediction, provides a firm scientific basis for the discussion of what we should do about global warming.

Over the ensuing 40 years, as the world warmed pretty much as Charney and his colleagues expected, climate change science improved, with better models that included some of the factors missing from their 1979 deliberations.

This subsequent science has, however, only confirmed the conclusions of the Charney Report, although much more detailed predictions of climate change are now possible.

terça-feira, 23 de julho de 2019

The Charney Report: 40 years ago, scientists accurately predicted climate change


This month the world has been celebrating the 50th anniversary of Neil Armstrong setting foot on the Moon. But this week sees another scientific anniversary, perhaps just as important for the future of civilisation.

Forty years ago, a group of climate scientists sat down at Woods Hole Oceanographic Institution in Massachusetts for the first meeting of the "Ad Hoc Group on Carbon Dioxide and Climate". It led to the preparation of what became known as the Charney Report—the first comprehensive assessment of global climate change due to carbon dioxide.

It doesn't sound as impressive as landing on the Moon, and there certainly weren't millions waiting with bated breath for the deliberations of the meeting.

But the Charney Report is an exemplar of good science, and the success of its predictions over the past 40 years has firmly established the science of global warming.

What is this 'greenhouse gas' you speak of?

Other scientists, starting in the 19th century, had already demonstrated that carbon dioxide was what we now call a "greenhouse gas". By the 1950s, scientists were predicting warming of several degrees from the burning of fossil fuels. In 1972 John Sawyer, the head of research at the UK Meteorological Office, wrote a four-page paper published in Nature summarizing what was known at the time, and predicting warming of about 0.6℃ by the end of the 20th century.

But these predictions were still controversial in the 1970s. The world had, if anything, cooled since the middle of the 20th century, and there was even some speculation in the media that perhaps we were headed for an ice age.

The meeting at Woods Hole gathered together about 10 distinguished climate scientists, who also sought advice from other scientists from across the world. The group was led by Jule Charney from the Massachusetts Institute of Technology, one of the most respected atmospheric scientists of the 20th century.

The Report lays out clearly what was known about the likely effects of increasing carbon dioxide on the climate, as well as the uncertainties. The main conclusion of the Report was direct: "We estimate the most probable warming for a doubling of CO₂ to be near 3℃ with a probable error of 1.5℃."


In the 40 years since their meeting, the annual average CO₂ concentration in the atmosphere, as measured at Mauna Loa in Hawaii, has increased by about 21%. Over the same period, global average surface temperature has increased by about 0.66℃, almost exactly what could have been expected if a doubling of CO₂ produces about 2.5℃ warming—just a bit below their best estimate. A remarkably prescient prediction.


Reception of the article

Despite the high regard in which the authors of the Charney Report were held by their scientific peers at the time, the report certainly didn't lead to immediate changes in behavior, by the public or politicians.

But over time, as the world has continued to warm as they predicted, the report has become accepted as a major milestone in our understanding of the consequences our actions have for the climate. The current crop of climate scientists revere Charney and his co-authors for their insight and clarity.

Strong science

The report exemplifies how good science works: establish an hypothesis after examining the physics and chemistry, then based on your assessment of the science make strong predictions. Here, "strong predictions" means something that would be unlikely to come true if your hypothesis and science were incorrect.

In this case, their very specific prediction was that warming of between 1.5℃ and 4.5℃ would accompany a doubling of atmospheric CO₂. At the time, global temperatures, in the absence of their hypothesis and science, might have been expected to stay pretty much the same over the ensuing 40 years, cooled a bit, possibly even cooled a lot, or warmed a lot (or a little).

In the absence of global warming science any of these outcomes could have been feasible, so their very specific prediction made for a very stringent test of their science.

The Charney Report's authors didn't just uncritically summarize the science. They also acted sceptically, trying to find factors that might invalidate their conclusions. They concluded: "We have tried but have been unable to find any overlooked or underestimated physical effects that could reduce the currently estimated global warmings due to a doubling of atmospheric CO₂ to negligible proportions or to reverse them altogether."

The report, and the successful verification of its prediction, provides a firm scientific basis for the discussion of what we should do about global warming.

Over the ensuing 40 years, as the world warmed pretty much as Charney and his colleagues expected, climate change science improved, with better models that included some of the factors missing from their 1979 deliberations.

This subsequent science has, however, only confirmed the conclusions of the Charney Report, although much more detailed predictions of climate change are now possible.

Fonte: Phys.org

quinta-feira, 14 de março de 2019

Podemos transformar o mundo em 12 anos?

Renaat Veris

Os cientistas dizem que temos 12 anos para parar o aquecimento do planeta acima de 1,5°C. Nós podemos fazer isso? A história está cheia de exemplos de mudanças rápidas.

Trabalhamos com a Tamarack Media Cooperative para criar este pequeno vídeo, lembrando-nos de que a história nos diz que a transição rápida não é apenas possível, mas também pode ter consequências não intencionais e extremamente positivas.


Este vídeo fez parte da lista de reprodução BBC Ideas Sustainable Thinking, que apresenta um pensamento novo, desafiador e até visionário sobre mudanças climáticas e sustentabilidade.

quarta-feira, 27 de fevereiro de 2019

Aquecimento global é uma certeza estatística

Estação Rei Sejong do Centro Coreano de Investigação Antártica.

O aquecimento global e as alterações climáticas são há vários anos facto quase unânime na comunidade científica. Apesar desta unanimidade, mantém-se no debate público um panorama mais confuso, fruto da influência desproporcionada de grupos de pressão céticos e negacionistas, que por vezes encontram aliados políticos de peso, como nas presidências de George W. Bush ou Donald Trump.

Um artigo publicado na revista Nature Climate Change vem encerrar qualquer dúvida científica razoável que restasse sobre o assunto. Em três breves páginas, uma equipa de cientistas norte-americanos, canadianos e escoceses passa em revista três momentos-chave nos saberes sobre o assunto. O primeiro é o chamado relatório Charney da Academia de Ciências dos EUA, que começou a estabelecer em 1979 os primeiros modelos climáticos e como a queima de combustíveis fósseis e subsequente aquecimento da atmosfera deixariam um sinal empiricamente detetável. O segundo é um artigo científico de Klaus Hasselman, também de 1979, que estabeleceu uma abordagem sólida para detetar esse sinal. Por fim, também a partir dessa altura, ficaram disponíveis satélites capazes de detetar as emissões de micro-ondas pelas partículas de oxigénio na atmosfera, o que permitiu acumular desde então quatro décadas de dados fiáveis sobre as temperaturas no planeta.

Cruzando todos os dados de satélite sobre as temperaturas, acumulados nas últimas quatro décadas, e os modelos referidos, a equipa liderada por Benjamin Santer concluiu que a evidência de aumento de temperatura pela ação humana ultrapassou já desde 2005 o nível "de ouro" em termos de prova estatística, conhecido como sigma cinco: a probabilidade de o aumento de temperaturas registado se dever à variabilidade natural do clima, e não à ação humana, é de cerca de um num milhão.

Perante este dados, os cientistas afirmam que "a humanidade não se pode dar ao luxo de ignorar estes sinais".

terça-feira, 19 de junho de 2018

How scientists estimate ‘climate sensitivity’?


The sensitivity of the Earth’s climate to increases in atmospheric CO2 concentration is a question that sits at the heart of climate science.

Essentially, it dictates how much global temperatures will rise in response to human-caused CO2 emissions, but it is a question that does not yet have a clear answer.

For many years, estimates have put climate sensitivity somewhere between 1.5C and 4.5C of warming for a doubling of pre-industrial CO2 levels. This range has remained stubbornly wide, despite many individual studies claiming to narrow it. However, recent work combining multiple lines of evidence may have helped modestly narrow this range.

Here, Carbon Brief examines studies of climate sensitivity published over the past two decades. These studies use climate models, recent observations and palaeoclimate data from the Earth’s more distant past to estimate climate sensitivity.

While narrowing the range of sensitivity will not change the need for rapid decarbonisation, it may help policymakers fine-tune their plans for the future.

Different types of sensitivity
Climate sensitivity refers to the amount of global surface warming that will occur in response to a doubling of atmospheric CO2 concentrations compared to pre-industrial levels.

CO2 has increased from its pre-industrial level of 280 parts per million (ppm) to around 408 ppm today. Without actions to reduce emissions concentrations are likely to reach 560 ppm – double pre-industrial levels – around the year 2060.

There are three main measures of climate sensitivity that scientists use. The first is equilibrium climate sensitivity (ECS). The Earth’s climate takes time to adjust to changes in CO2 concentration. For example, the extra heat trapped by a doubling of CO2 will take decades to disperse down through the deep ocean. ECS is the amount of warming that will occur once all these processes have reached equilibrium.

The second is transient climate response (TCR). This is the amount of warming that might occur at the time when CO2 doubles, having increased gradually by 1% each year. TCR more closely matches the way the CO2 concentration has changed in the past. It differs from ECS because the distribution of heat between the atmosphere and oceans will not yet have reached equilibrium.

A third way of looking at climate sensitivity, Earth system sensitivity (ESS), includes very long-term Earth system feedbacks, such as changes in ice sheets or changes in the distribution of vegetative cover.

TCR tends to be notably lower than ECS. The Intergovernmental Panel on Climate Change (IPCC) fifth assessment report, completed in 2014, gave a likely ECS range of 1.5C to 4.5C of warming for a doubling of atmospheric CO2 concentrations, but a likely TCR of only 1C to 2.5C.
Feedbacks drive uncertainty

The wide range of estimates of climate sensitivity is driven by uncertainties in climate feedbacks, including how water vapour, clouds, surface reflectivity and other factors will change as the Earth warms. Climate feedbacks are processes that may amplify (positive feedbacks) or diminish (negative feedbacks) the effect of warming from increased CO2 concentrations or other climate forcings – factors that initially drive changes in the climate.

Simple physics shows the world will warm by a bit more than 1C once CO2 doubles, if feedbacks are not taken into account. However, there is extremely strong evidence that feedbacks will amplify this warming, based on the Earth’s past and the physical processes involved.

Water vapour – itself a powerful greenhouse gas – is the single largest and one of the best-understood climate feedbacks. As the world warms, the amount of water vapour in the atmosphere is expected to increase and, therefore, so too will the greenhouse effect.

Measurements from satellites confirm that water vapour concentrations have been increasing in step with temperatures in the atmosphere over the past few decades.

A warmer and wetter atmosphere will also affect cloud cover. However, it is much more uncertain how changes in cloud cover will influence climate sensitivity.

An increase in low-altitude clouds would tend to offset some warming by reflecting more sunlight back to space, whereas an increase in the height of high-altitude clouds would trap extra heat. Meanwhile a shift in sun-blocking clouds from the tropics towards the poles, where the incoming sunlight is less intense, would decrease their power to block sunlight.

Changes in the composition of clouds also matter: clouds that contain more water droplets are “optically thicker” and more effective at blocking sunlight than those composed mainly of ice crystals. All this means the global net effect of cloud feedbacks is complex and hard for scientists to model precisely.

A warming world will also have less ice and snow cover. With less ice and snow reflecting the sun’s rays, melting will decrease Earth’s albedo and amplify warming.

The combination of these and other feedbacks converts the ~1C warming from doubled CO2 alone into an uncertain range of possible warming, from around 1.5C to 4.5C.

A remarkably stable range
In 1979, the Charney Report from the US National Academy of Sciences suggested that ECS was likely somewhere between 1.5C and 4.5C per doubling of CO2. Nearly 40 years later, the best estimate of sensitivity is largely the same. This has led some to question why there has been so little progress on estimating climate sensitivity.

However, Prof Andrew Dessler at Texas A&M University pushes back on this suggestion. He tells Carbon Brief:

"I think that the idea that ‘uncertainty has remained the same since the late 1970s’ is wrong. If you look at the Charney report, it’s clear that there were a lot of things they didn’t know about the climate. So their estimate of uncertainty was, in my opinion, way, way too small

Over time, we have learned a lot more about the climate and the expert judgement about how to evaluate uncertainty has also improved. So while it may appear that the uncertainty has remained the same, this reflects that the improvements in our understanding of climate sensitivity have been largely masked by improvements in our understanding of the uncertainty. In fact, I think I could argue that today’s range overestimates the actual uncertainty."

Back in 1979, climate science was much less well understood than today. There were far fewer lines of evidence to use in assessing climate sensitivity. The Charney report range was based on physical intuition and results from only two early climate models.

In contrast, modern sensitivity estimates are based on evidence from many different sources, including models, observations and palaeoclimate estimates. As Dessler suggests, one of the main advances in understanding of climate sensitivity over the past few decades is scientists’ ability to more confidently rule out very high or very low climate sensitivities.

Different ways of estimating sensitivity
So, what are these different lines of evidence that climate scientists use to assess climate sensitivity?

Physics-based climate models of the Earth can be used to run simulations of how much warming will occur once CO2 concentrations have doubled. Climate sensitivity represents an “emergent property” of climate models, rather than something that has been programmed in ahead of time.

Climate models give a wide range of sensitivity estimates, so researchers often examine subsets of climate models – selected based on how well they match different present-day observations of the climate. These are referred to here as “constrained models”.

Sensitivity can also be estimated from instrumental records of surface temperatures and ocean heat content, combined with models of how climate forcings have changed in the past.

Scientists can also look at the more distant past to evaluate the sensitivity of the climate, by comparing palaeoclimate changes in the Earth’s past to estimates of changes in forcings.

Finally, scientists can combine multiple different approaches to try and get a more comprehensive picture.

The figure below, created by Carbon Brief, shows an assessment of climate sensitivity estimates published since the year 2000. It is based on data from a 2017 Nature Geoscience paper by Prof Reto Knutti and colleagues at ETH Zurich and updated through to the present day.

Each dot shows the best estimate of climate sensitivity from an individual study, while the bars show the range of possible sensitivity values assessed by that study. The colour indicates the type of study.

It is worth noting that different studies sometimes use different measures for a “best estimate” as well as for the range of sensitivity and, therefore, are not always directly comparable. As a result, the smoothed average of the best estimates (black line) and range (shaded grey area) should be seen only as illustrative of the spread of uncertainty.

While a number of studies were published in earlier decades, the chart highlights the flurry of research since the early 2000s. Most studies have a best estimate of sensitivity between 1.5C and 4.5C, but there are a few very-high or very-low sensitivity studies as well.

The range of sensitivity across all of these studies has likely narrowed slightly over time, though the average has remained fairly close to 3C. Contrary to claims on a number of climate sceptic websites, there is no evidence of any downward trend in sensitivity in recent years when all studies are considered.

There has, however, been some disagreement in recent years on the lower end of the sensitivity range. Model and palaeoclimate-based approaches (blue and purple lines and dots) rarely provide sensitivity estimates below 2C, whereas approaches that use instrumental data (orange) often have. This contributed to the IPCC broadening its sensitivity range from 2C to 4.5C in its fourth assessment report, published in 2007, to 1.5C to 4.5C in its fifth assessment.

Different methods produce different estimates in part because they are measuring different properties of the climate system. The timescales over which climate sensitivity is inferred – since it cannot be directly measured – matter a lot, so different methods can be expected to give different estimates even if each is accurate.

The figure below illustrates the range of sensitivities found by different types of studies. The coloured bars show the median of high and low estimates of sensitivity for all studies published since the year 2000, with the median of best estimates shown by black dots.

Overall, most approaches generally show sensitivity of around 3C per doubling of CO2. Studies based on instrumental data are something of an outlier, tending to show a considerably lower estimate of around 2C. Palaeoclimate studies show a best estimate of around 3C, but tend to have a larger high-end uncertainty than other approaches. This is because they include some studies that reflect longer-term feedbacks associated with ESS.

Low sensitivity from instrumental records
So, why do some approaches tend to produce higher or lower sensitivity estimates than others?

As noted above, estimates based on instrumental climate records tend to show lower climate sensitivity. There has been intense focus on this apparent anomaly since the publication of an influential 2013 paper by Dr Alexander Otto of the University of Oxford and 16 others, which put ECS at between 1.2C and 3.9C, with a best estimate of 2C.

Some commentators have argued the instrumental approach is preferable as it is based on physical observations. However, estimates from instrumental records still require a conceptual or physical mode of the climate to work.

As Knutti and colleagues suggest: “These methods do rely on models: both to provide forcing estimates, such as aerosol forcing, and to link forcing to climate response through energy balance models. Hence, observational estimates are complementary to methods using comprehensive models, but have their own uncertainties.”

There are several reasons why estimates based on instrumental studies may be lower than other methods.

Substantial uncertainties exist in estimates of forcing from aerosols, as well as estimates of ocean heat content. The choice of instrumental record used in assessing changes in surface temperatures can also have a large impact on the result.

Some instrumental surface temperature records have poor coverage over the fast-warming Arctic and other regions of the world. Relying on incomplete observations misses some of the temperature rise. Surface temperature records also combine sea surface temperatures over the oceans with surface air temperatures over land, while climate sensitivity from models refers to global air temperatures over the land and ocean.

Dr Mark Richardson at NASA’s Jet Propulsion Laboratory and colleagues published a paper in 2016 estimating climate sensitivity in models matching the same things that instrumental records are actually measuring. They found that this results in sensitivity estimates similar to those obtained from instrumental approaches.

The figure below shows the TCR estimate in Otto et al to the left (yellow), that from CMIP5 climate models in the middle (blue), and TCR estimates from CMIP5 climate models that match what instrumental records are measuring to the right (red).

While comparing like with like can reconcile much of the difference in TCR, larger differences remain between instrumental estimates of ECS and model and palaeoclimate approaches.

Researchers have tried to understand these differences in a number of recent papers exploring why instrumental approaches result in notably lower ECS estimates than other lines of evidence.

Instrumental approaches are complicated by the fact that climate forcing over the past century is not purely from CO2 and, thus, the warming has been partly masked by the cooling effect of aerosols.

One important insight is that the strength of climate feedbacks is expected to change over time, with stronger feedbacks taking longer to emerge.

A 2017 paper by Dr Cristian Proistosescu and Prof Peter Huybers at Harvard University found that amplifying feedbacks that play a large role in ECS in climate models have not fully kicked in for current climate conditions. A similar paper by Prof Kyle Armour of the University of Washington suggests feedbacks will increase by about 25% from today’s transient warming as the Earth moves towards equilibrium.

This means that sensitivity estimates based on instrumental warming to date would be on the low side, as they would not capture the larger role of feedbacks in future warming. The authors suggest that “accounting for these…brings historical records into agreement with model-derived ECS estimates”.

This is in part because feedbacks depend strongly on the spatial pattern of warming. Prof Armour elaborates in a discussion on the Climate Lab Book website:

“Nearly all GCMs [global climate models] show global radiative feedbacks changing over time under forcing, with effective climate sensitivity increasing as equilibrium is approached. As a result, climate sensitivity estimated from transient warming appears smaller than the true value of ECS…

As far as we can tell, the physical reason for this effect is that the global feedback depends on the spatial pattern of surface warming, which changes over time…One nice example is the sea-ice albedo feedback in the Southern Ocean: because warming has yet to emerge there, that positive (destabilising) feedback has yet to be activated.

This means that even perfect knowledge of global quantities (surface warming, radiative forcing, heat uptake) is insufficient to accurately estimate ECS; you also have to predict how radiative feedbacks will change in the future.”

Prof Andrew Dessler agrees, telling Carbon Brief that an understanding of how the pattern of surface warming influences sensitivity is one of the major advances in our understanding of climate sensitivity in recent years. He suggest that it “allows us to resolve the discrepancy between the 20th century [instrumental] estimates and other estimates that give higher values”.

A recent paper by NASA’s Dr Kate Marvel and colleagues uses another approach to explore the discrepancy between instrumental and model-based sensitivity estimates. Their results suggest that natural climate variability over the past few decades may have lined up, by pure coincidence, in a way that results in low ECS estimates.

They examine the results obtained from instrumental approaches using data from climate models. Because individual climate models have a climate sensitivity that can be directly measured, this provides a test of how well the historical record can accurately assess ECS. They find that the average ECS inferred from historical simulations is only 2.3C, notably lower than the actual average ECS of 3.1C across all the models.

They find an even lower implied ECS of 1.8C when using variants of the models constrained by actual observed sea surface temperatures. They suggest this means that “the specific…internal variability experienced in recent decades provides an unusually low estimate of ECS”. They point out that this appears to be mostly driven by decadal variations in cloud cover in the tropics. However, cloud cover in the tropics is not necessarily predictive of future climate change and the patterns resulting in low instrumentally-based ECS estimates may have been driven by natural variability.

Challenge of constraining models
Climate models provide a wide range of climate sensitivity estimates. The CMIP5 models featured in the most recent IPCC report have ECS values ranging from 2.1C to 4.7C per doubling, with an average sensitivity of 3.1C.

However, not all models are created equal. Some perform better than others at matching historical temperatures and other climate variables. One idea, called “emergent constraints”, aims to narrow down (“constrain”) model sensitivity estimates using only the best-performing models.

This has been done in a number of different ways. For example, low-altitude cloud cover is strongly related to climate sensitivity. Models with clouds that more closely match observations show an ECS of between 3C and 4.8C – on the high end of the model range – according to a 2014 paper in Nature by Prof Steve Sherwood and colleagues.

Similarly, a second high-profile Nature paper used satellite observations of how much energy is emitted by Earth to space as their “emergent constraint”. They found that models best matching observations showed an ECS of 3C to 4.2C.

Conversely, models that best reproduce observed temperature variability show a lower ECS of 2.2C to 3.4C, according to a 2018 paper, also in Nature, by Prof Peter Cox and colleagues.

This lack of consistency means that across all the studies that Carbon Brief examined, those using constrained models had nearly the same range of sensitivity as estimates using all climate models. One reason is that different models are good at matching different types of observations. For example, those best modelling clouds are not the same as those that are good at reproducing temperature variability.

It is possible to argue that some of these studies or constraints are more compelling or physically realistic than others. This is an area of very active research. For now, it is probably premature to suggest that emergent constraints decisively show sensitivity to be lower or higher than previously thought.

These studies do have one consistent finding, however, which is that a climate sensitivity of less than 2C is very unlikely.

Narrowing the range?
While the best estimate of equilibrium climate sensitivity has stubbornly remained between 1.5C and 4.5C per doubling for nearly three decades, a lot has happened in the last two years to better inform our understanding of likely ECS values.

First, the new generation of climate models – CMIP6 – featured a number of models whose sensitivity was on the high end of the canonical IPCC range. Around 35% of the new models reported ECS values above 4.5C, with 18% of the models having an ECS above 5C. However, some recent studies have suggested that the subset of very-high sensitivity models tend to relatively poorly reproduce historical temperatures – suggesting that the models more consistent with the 1.5C to 4.5C range might be more reliable projections of future warming.

At the same time, a massive multi-year project to produce a better estimate of climate sensitivity was recently completed. It combined independent lines of evidence from physical processes, historical temperatures, and paleoclimate data to narrow the likely range of ECS down to between 2.6C and 4.1C. They found that even if one of the three lines of evidence is completely excluded, the range only expands to 2.3C to 4.5C.

The chart below shows how the likely ECS range from this new study (black box), compares with AR5 (grey) and the full range of estimates from the fifth (blue) and sixth (orange) coupled model intercomparison projects (CMIP). (The CMIP5 model projections fed into AR5, while CMIP6 will underpin the forthcoming sixth assessment report, AR6.)

These conflicting sets of ECS estimates pose a bit of a dilemma for the authors of the upcoming IPCC 6th Assessment Report. While past reports have generally had climate models with ECS values well within the IPCC’s likely ECS uncertainty range, the same may not be true this time around.

Does sensitivity matter?
Climate sensitivity is an important scientific uncertainty, and narrowing the range could have significant consequences. One economic study by Dr Chris Hope at the University of Cambridge suggests that the value of halving the uncertainty may be in the trillions of dollars, as it would allow the amount and speed of emissions reductions needed to be better determined.

Yet the world would still need to decarbonise to meet the goals of the Paris Agreement, even if sensitivity is better understood or even at the low end of current estimates. An ECS of closer to 2C would only extend the deadline for reaching net-zero emissions by a decade or so, according to a study by IIASA’s Dr Joeri Rogelj and colleagues.

The uncertainty also cuts both ways; there are just as many new studies being published today suggesting that sensitivity might be on the high end of the 1.5C to 4.5C range as there on the low end. Knutti and colleagues suggest that the uncertainty in climate sensitivity should not be seen as a roadblock for action today. Dessler tells Carbon Brief:

“Unless climate sensitivity falls outside the IPCC’s range, I don’t see that refinements to the range have a huge impact on what we should be doing from a policy perspective. We should be trying to reduce emissions as fast as we can – but slow enough not to be too disruptive to the economy.”

Ultimately, just how warm the world will be in 2100 depends as much or more on the amount of CO2 and other greenhouse gases emitted into the atmosphere than on the precise value for climate sensitivity.

quinta-feira, 3 de dezembro de 2009

Climate scientist James Hansen talks about global warming, Copenhagen, and his new book.



Dada a duplamente relevante perito e uma excelente entrevista, passo-a na íntegra. Para ser (re)lida!!


James Hansen, director of NASA's Goddard Institute for Space Studies in New York, is one of the world's most famous climatologists. He testified at a 1988 U.S. Senate hearing that the emission of carbon dioxide from burning fossil fuels was already producing a greenhouse effect, and during the administration of George W. Bush, political appointees tried to keep him from speaking out about global warming. Hansen, 68, has become increasingly convinced that a climate crisis is upon us, warning this summer that the climate system is racing toward "tipping points" which, if passed, would lead to irreversible and catastrophic effects. On the eve of the publication of his first book, Storms of My Grandchildren, which he finished while recovering from treatment for prostate cancer and which will be published in December, he spoke to me by phone. Later in the week, I followed up to discuss the news of leaked e-mails from researchers who allegedly ignored evidence unfavorable to climate change. Excerpts:

Last week, someone leaked e-mails obtained by hacking into the server at the Climate Research Unit at the University of East Anglia. Activists who have long denied the reality of climate change climatedepot.com say they show that climatologists have engaged in a grand conspiracy to manufacture a case that global warming is occurring due to human activities. Do the hacked e-mails undermine the case for anthropogenic climate change?

No, they have no effect on the science. The evidence for human-made climate change is overwhelming.
Do the e-mails indicate any unethical efforts to hide data that do not support the idea of anthropogenic global warming or to keep contrary ideas out of the scientific literature and IPCC reports?
They indicate poor judgment in specific cases. First, the data behind any analysis should be made publicly available. Second, rather than trying so hard to prohibit publication of shoddy science, which is impossible, it is better that reviews, such as by IPCC and the National Academy of Sciences, summarize the full range of opinions and explain clearly the basis of the scientific assessment. The "contrarians" or "deniers" do not have a scientific leg to stand on. Their aim is to win a public relations battle, or at least get a draw, which may be enough to stymie the actions that are needed to stabilize climate.

How serious a setback would it be if no agreement on a climate treaty is reached in Copenhagen, where 192 countries are meeting starting Dec. 7?
It's not a setback at all if it allows a careful reassessment of what is needed. The cap-and-trade scheme [that the Copenhagen negotiations were working toward] is just not going to be effective at controlling greenhouse emissions. Political leaders have to realize that the fundamental problem is that fossil fuels are the cheapest form of energy, so they will continue to be burned unless we put a gradually increasing price on carbon emissions [through a carbon tax]. That's a much better approach than national goals for emissions reductions, which will probably not be met.

Policymakers who deny the threat of climate change cite the research of Richard Lindzen of MIT and other scientists, who question the link between carbon dioxide and global warming—as the last head of NASA, Michael Griffin, also did. As long as there remains this scientific dispute, why should policy makers act?
These contrarians are not having much effect. None of the major countries are denying the problem anymore, though in the U.S. these contrarians are still widely heard, and when it comes to passing a bill in Congress they may still be an obstacle.

In the 1980s scientists worried about a doubling of pre-industrial levels of carbon dioxide, to 550 parts per million. Then 450 started to look like a problem. Now you and others say that 350 is dangerous, and we’re already at 387. What did climatologists learn that caused them to lower the estimate of dangerous CO2 levels?
The new information came from observations of how the system is responding to 387ppm and to more detailed information on how earth responded in the past to different atmospheric compositions. For instance, we see that the ice sheets are not stable at 387ppm; the Greenland and Antarctic ice sheets are losing mass even with current warming. The Greenland ice sheet had been losing between 150 and 200 cubic kilometers a year in 2002, and now is losing almost 300 cubic kilometers a year. Antarctica had been losing less than 100 cubic kilometers a year, and is now losing more than 150, so it seems like we're heading into a period of much more rapid ice sheet loss. Also, in the arctic we've lost 40 percent of the sea ice in the warm season, and that will soon be 100 percent. Mountain glaciers are retreating rapidly and could be gone in 50 years. These are not model results but observations: 387ppm is already too high, and 450ppm will be far worse.

In Storms of My Grandchildren , you describe climate tipping points. What are some and why are they so dangerous?Things like methane hydrates on the continental shelf and the tundra: as they warm up they release their methane [which is a greenhouse gas], which we're already seeing in the tundra and elsewhere. Tipping points are so dangerous because if you pass them, the climate is out of humanity's control: if an ice sheet disintegrates and starts to slide into the ocean there's nothing we can do about that.

What caused you to move beyond research and become an outspoken advocate for addressing climate change?
The realization that there was a gap between what had become clear scientifically and what policymakers knew. Then, when I wrote papers and gave talks on climate change, it became clear that the political system just didn't want to react to this. Scientists have to help politicians connect the dots.

George F. Will has argued that reducing U.S. carbon emissions 80 percent by 2050 would leave us with per capita emissions we last had in the 1800s, implying we'd be back to a horse-and-buggy, pre-electricity era. Is he right?
Not at all. We don't have to decrease our energy use, we just have to decrease our carbon emissions. That's why you want to increase the price of carbon, so let other technologies take over, like energy efficiency and renewables. We'll be moving into a better world, not a worse one, not to a horse-and-buggy world but to one with cleaner air and water once we stop burning coal.

You are critical of the Kyoto climate treaty. Why?
Because it allows carbon offsets and uses cap-and-trade. Emissions from oil, gas, and coal have actually increased under Kyoto. If we just set goals for emissions reductions and allow people to miss them and to use offsets, we're not going to stabilize and reduce greenhouse emissions at the rate needed.

Do we still have time to avert climate calamity, and if so what would it take?
We do, but just barely. If we phase out coal linearly by 2030, CO2 concentrations in the atmosphere will peak at 400 to 425 ppm, which is low enough that it allows you to get back to 350, especially if there is extensive reforestation of degraded areas. So a fundamental requirement is to phase out the use of coal in 20 years, which means you have to start now and not build any more coal-burning power plants: these have a lifetime of decades, and once they're built utilities don't want to retire them before their lifetime is up.

You write that energy efficiency and renewables won't be enough to meet the energy needs of China and India in the next few decades. So what do we do?
They will require nuclear power for electricity. They are both moving in that direction, and we really should help them. They have such polluted air and water that they'd love to get off dirty fuels like coal. Of course, you also want to do energy efficiency and renewables, but I think India and China will turn more toward nuclear. I think the prospects for that are quite good, but we have to get going now.

What do you think of the climate bills now before Congress?
They're disasters. We can't allow the polluters to write the bill, but that's what happened. What's needed is putting a price on carbon, not cap-and-trade.

What do you think of Obama's performance on this issue so far?
A lot of individual things have been good, like using EPA to apply pressure for improved vehicle mileage, but I'm disappointed that he hasn't taken a leadership role. He's let the politicians in Washington come up with these bills rather than offering them some guidance. Climate change is analogous to Lincoln and slavery or Churchill and Nazism: it's not the kind of thing where you can compromise. He needs to have some understanding of this [climate] problem himself, and not just listen to his advisers.

Are policies like Cash for Clunkers, or "cash for caulkers" [home weatherizing], or green jobs initiatives useful or just more greenwashing?
They're useful but costly. What you want to do is address [climate change] in the most cost-effective way possible, which is to put a price on carbon. For example, there's a program to let people fold the cost of improving the energy of their home or of adding clean energy [by installing solar panels or other forms of renewable energy] into their monthly mortgage payment. You decrease your monthly energy costs by more than the amount that gets added to your mortgage, since you're averaging the cost over several years. This works best if you have a rising price on carbon.

You write about the need to take to the streets and engage in civil resistance. Such as?
Anything that draws attention to the fundamental problem. We just had this example of the student in Utah who upset the Bureau of Land Management by bidding on oil and gas leases, without even intending to pay for them, in order to stop energy companies from acquiring them and drilling on public lands.

You make it sound like now that you've written the book, you're going to go hole up in your lab. Really?
I wish I could. But when I started to speak out about climate change in 2004, after 15 years of avoiding it, I saw that the problem is not going to be solved easily. I'm afraid this is going to continue.