木星强大的极光中的离散和宽带电子加速
B H Mauk1, D K Haggerty1, C Paranicas1
1The Johns Hopkins University Applied Physics Laboratory, Laurel, Maryland, USA.
Nature
|September 8, 2017
概括
木星
科学领域:
- 太空物理
- 星球科学
- 血物理
背景情况:
- 地球上的分立极光是由磁场沿着电子加速驱动的.
- 据推测木星的极光是由类似的离散过程产生的.
- 之前对木星极光的观测缺乏离散电子加速的证据.
研究的目的:
- 调查木星极光发射背后的机制.
- 确定木星上是否发生离散电子加速过程.
- 为了比较木星和地球上的极光加速过程.
主要方法:
- 在位测量木星的极光区域.
- 高能电子加速的分析.
- 导出与磁场对齐的电位.
主要成果:
- 在木星的极地观察到明显的,高能向下的电子加速.
- 推断上升的电势高达400千电子伏, 比地球大得多.
- 发现离散加速比木星上的宽带/随机过程贡献更少的能量流.
结论:
- 虽然木星经历了离散的电子加速, 但这并不是它极光的主要驱动因素.
- 木星极光中的能量传递机制与地球极光有很大不同.
- 木星上升的电势比地球上观察到的要强大得多.
相关概念视频
Energy Carried By Electromagnetic Waves
3.9K
Anyone who has used a microwave oven knows there is energy in electromagnetic waves. Sometimes, this energy is obvious, such as in the summer sun's warmth. At other times, it is subtle, such as the unfelt energy of gamma rays, which can destroy living cells. Electromagnetic waves bring energy into a system through their electric and magnetic fields. These fields can exert forces and move charges in the system and, thus, do work on them. However, there is energy in an electromagnetic wave,...
3.9K
Electromagnetic Fields
2.8K
Electric fields generated by static charges, often referred to as electrostatic fields, are characteristically different from electric fields created by time-varying magnetic fields. While the former is a conservative field, implying that no net work is done on a test charge if it goes around in a complete loop in the field, the latter is, by definition, not a conservative field; net work is done, and it is proportional to the rate of change of magnetic flux.
However, the observation of...
However, the observation of...
2.8K
Generating Electromagnetic Radiations
7.6K
The German physicist Heinrich Hertz (1857–1894) was the first to generate and detect certain types of electromagnetic waves in the laboratory. Starting in 1887, he performed a series of experiments that confirmed the existence of electromagnetic waves and verified that they travel at the speed of light. Hertz used an alternating-current RLC (resistor-inductor-capacitor) circuit that resonated at a known frequency and connected it to a loop of wire. High voltages induced across the gap in...
7.6K
Electromagnetic Waves
11.7K
James Clerk Maxwell formulated a single theory combining all the electric and magnetic effects scientists knew during that time, calling the phenomena his theory predicted “Electromagnetic waves”. He brought together all the work that had been done by brilliant physicists such as Oersted, Coulomb, Gauss, and Faraday and added his own insights to develop the overarching theory of electromagnetism. Maxwell’s equations, combined with the Lorentz force law, encompass all the laws...
11.7K
Dual Nature of Electromagnetic (EM) Radiation
4.4K
Electromagnetic (EM) radiation consists of electric and magnetic field components oscillating in planes perpendicular to each other and mutually perpendicular to radiation propagation through space. EM radiation can be classified as a wave, characterized by the properties of waves such as wavelength (denoted as λ) and frequency (represented by ν).
Wavelength is the distance between two consecutive peaks (the highest point) or troughs (the lowest point) in the wave. Frequency is the number of...
Wavelength is the distance between two consecutive peaks (the highest point) or troughs (the lowest point) in the wave. Frequency is the number of...
4.4K
Atomic Emission Spectroscopy: Overview
3.9K
Atomic emission spectroscopy (AES) is an analytical technique used to determine the elemental composition of a sample by analyzing the light emitted from excited atoms. In AES, atoms in a sample are excited to higher energy levels by thermal energy from high-temperature sources, such as plasma, arcs, or sparks. When these excited atoms return to lower energy states, they emit light at specific wavelengths characteristic of each element. The resulting atomic emission spectrum, which consists of...
3.9K


