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ION EFFECTIVE TEMPERATURES IN POLAR CORONAL HOLES: OBSERVATIONS VERSUS ION-CYCLOTRON RESONANCE

机译:极冠孔中的离子有效温度:观测与离子-回旋共振的关系

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摘要

The resonant cyclotron interaction between ion-cyclotron waves and solar wind species is considered nowadays to be a strong candidate for heating and acceleration of protons, α-particles, and heavy ions. A crucial physical parameter for determining the amount and the location of significant heating and acceleration, which the different solar wind ions receive from the waves in the frame of the ion-cyclotron mechanism, is their charge-to-mass ratio q/m. Therefore, comparisons of ion temperatures derived from spectroscopic observations and calculated by ion-cyclotron models, for ions that span a broad range in q/m, would provide a rigorous test for such models. By using an ion-cyclotron model, we calculate the effective temperatures for 10 different ions that cover the range 0.16―0.37 in q/m. Effective temperatures correspond to unresolved thermal motions and wave motions. The good agreement between our calculations, based on the specific mechanism that we employed here (ion-cyclotron resonance) and on spectroscopic observations of effective temperatures in polar coronal holes, provides support that the above mechanism accounts for the energetics and kinematics of fast solar wind heavy ions. However, such an agreement does not prove that other potential mechanisms can be excluded.
机译:如今,离子回旋波和太阳风物质之间的共振回旋相互作用被认为是质子,α粒子和重离子的加热和加速的强大候选者。用于确定显着加热和加速的数量和位置的关键物理参数是它们的荷质比q / m,不同的太阳风离子从离子回旋加速器机构的框架中的波接收到该参数。因此,对于跨q / m范围较大的离子,对由光谱观察得出的离子温度进行比较并由离子回旋加速器模型计算得出的离子温度将为此类模型提供严格的测试。通过使用离子回旋加速器模型,我们计算出10个不同离子的有效温度,这些离子在q / m范围内覆盖0.16-0.37。有效温度对应于未解决的热运动和波动。基于我们在此采用的特定机理(离子回旋共振)和对极日冕孔中有效温度的光谱观察,我们的计算之间的良好一致性为上述机理解释了快速太阳风的能量学和运动学提供了支持。重离子。但是,这样的协议并不能证明可以排除其他潜在的机制。

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