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Is increasing ice crystal sedimentation velocity in geoengineering simulations a good proxy for cirrus cloud seeding?

机译:在地理工程模拟中增加了冰晶沉降速度,卷曲云播种的良好代理?

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The complex microphysical details of cirrus seeding with ice nucleating particles (INPs) in numerical simulations are often mimicked by increasing ice crystal sedimentation velocities. So far it has not been tested whether these results are comparable to geoengineering simulations in which cirrus clouds are seeded with INPs. We compare simulations where the ice crystal sedimentation velocity is increased at temperatures colder than ?35?°C with simulations of cirrus seeding with INPs using the ECHAM-HAM general circulation model. The radiative flux response of the two methods shows a similar behaviour in terms of annual and seasonal averages. Both methods decrease surface temperature but increase precipitation in response to a decreased atmospheric stability. Moreover, simulations of seeding with INPs lead to a decrease in liquid clouds, which counteracts part of the cooling due to changes in cirrus clouds. The liquid cloud response is largely avoided in a simulation where seeding occurs during night only. Simulations with increased ice crystal sedimentation velocity, however, lead to counteracting mixed-phase cloud responses. The increased sedimentation velocity simulations can counteract up to 60?% of the radiative effect of CO2 doubling with a maximum net top-of-the-atmosphere forcing of ?2.?2?W?m?2. They induce a 30?% larger surface temperature response, due to their lower altitude of maximum diabatic forcing compared with simulations of seeding with INPs.
机译:通过增加冰晶沉降速度,通常模拟中卷曲粉质粉刺粒子(Inps)的复杂微微物理细节通常模拟。到目前为止,它尚未测试这些结果是否与地理工程模拟相当,其中卷云覆盖了血管云。我们比较模拟冰晶沉降速度在较冷的温度下比35?°C的温度升高,使用回声火腿通用循环模型模拟卷曲播种。两种方法的辐射通量响应在年度和季节平均值方面表现出类似的行为。两种方法都会降低表面温度,但响应于大气稳定性降低而增加沉淀。此外,用Inps播种的模拟导致液体云的减少,这抵消了由于卷云的变化导致的部分冷却。在仅在夜间发生播种的模拟中,液体云响应在很大程度上避免。然而,冰晶沉降速度增加的模拟导致抵消混合相云反应。增加的沉降速度模拟可以抵消多达60?%的二氧化碳加倍的辐射效果,最大净顶级的净压迫迫使?2.?2?W?M?2。由于它们的最大糖尿病迫使的较低的仿真与与Inps的播种的模拟相比,它们诱导了30倍的表面温度响应。

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