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Why an intrinsic magnetic field does not protect a planet against atmospheric escape

机译:为什么固有磁场不能保护行星免受大气逸出

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The presence or absence of a magnetic field determines the nature of how a planet interacts with the solar wind and what paths are available for atmospheric escape. Magnetospheres form both around magnetised planets, such as Earth, and unmagnetised planets, like Mars and Venus, but it has been suggested that magnetised planets are better protected against atmospheric loss. However, the observed mass escape rates from these three planets are similar (in the approximate (0.5–2)?kg?s~(?1)range), putting this latter hypothesis into question. Modelling the effects of a planetary magnetic field on the major atmospheric escape processes, we show that the escape rate can be higher for magnetised planets over a wide range of magnetisations due to escape of ions through the polar caps and cusps. Therefore, contrary to what has previously been believed, magnetisation is not a sufficient condition for protecting a planet from atmospheric loss. Estimates of the atmospheric escape rates from exoplanets must therefore address all escape processes and their dependence on the planet’s magnetisation.
机译:磁场的存在与否决定了行星与太阳风相互作用的性质以及可用于大气逃逸的路径。磁层既围绕地球等磁化行星形成,又围绕火星和金星等非磁化行星形成,但有人提出,磁化行星可以更好地防止大气损失。但是,从这三个行星观察到的质量逸出率是相似的(大约在(0.5-2)?kg?s〜(?1)范围内),这使后面的假设成为问题。对行星磁场对主要大气逸出过程的影响进行建模,我们表明,由于离子通过极帽和尖头逸出,因此在广泛磁化范围内,磁化行星的逸出率可能更高。因此,与以前认为的相反,磁化强度不足以保护行星免受大气损失。因此,对系外行星大气逃逸率的估算必须解决所有逃逸过程及其对行星磁化强度的依赖性。

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