位于木星最内层磁层中的高能带电粒子
1H. M. Fischer, E. Pehlke, G. Wibberenz, Institut fur Kernphysik, Universitat Kiel, D-24118 Kiel, Germany. L. J. Lanzerotti, Bell Laboratories, Lucent Technologies, Murray Hill, NJ 07974, USA. J. D. Mihalov, NASA Ames Research Center, Moffett Field, CA 94035, USA.
概括
利略 利略 利略 利略
科学领域:
- 行星科学 行星科学
- 等离子体物理学的物理学
- 空间物理 空间物理
背景情况:
- 木星的磁层以强烈的辐射带为特征.
- 能量粒子在行星磁层的动态中起着至关重要的作用.
研究的目的:
- 为了研究木星内部辐射区域中高能粒子的能量和角分布.
- 为了确定木星赤道辐射带的辐射范围和边界.
主要方法:
- 使用了利略探测器上的能量粒子调查仪器.
- 测量了从近Io到木星大气层入口的粒子能量和角分布.
主要成果:
- 观测到极大的能量电子和质子流,峰值在木星半径 (RJ) 2.2 左右.
- 在木星明亮的尘埃环的外部边缘附近检测到大量颗粒的吸收.
- 测量了高能离子 (62 MeV/核子) 的强烈流量,其峰值为1.5 RJ.
- 在1.35 RJ确定了颗粒丰度的急剧下降,定义了最内在的辐射边缘.
结论:
- 木星的内部辐射区域呈现出强烈的能量粒子群.
- 明亮的尘埃环和1.35 RJ的边界显著影响粒子分布,并定义辐射带的内边缘.
相关概念视频
Magnetism
Magnets are commonly found in everyday objects, such as toys, hangers, elevators, doorbells, and computer devices. Experimentation on these magnets shows that all magnets have two poles: one is labeled north (N) and the other south (S). Magnetic poles repel if they are alike and attract if unlike. Moreover, both poles of a magnet attract unmagnetized pieces of iron.
An individual magnetic pole cannot be isolated. No matter how small, every piece of a magnet contains a north pole and a south...
An individual magnetic pole cannot be isolated. No matter how small, every piece of a magnet contains a north pole and a south...
Magnetic Field Lines
The representation of magnetic fields by magnetic field lines is very useful in visualizing the strength and direction of the magnetic field. Each of the magnetic field lines forms a closed loop. The field lines emerge from the north pole (N), loop around to the south pole (S), and continue through the bar magnet back to the north pole.
Magnetic field lines follow several hard-and-fast rules:
Magnetic field lines follow several hard-and-fast rules:
Energy In A Magnetic Field
If a magnetic field is sustained, there must be a current in a closed circuit or loop, implying some energy has been spent in creating the field. If this energy is not dissipated via the circuit's resistance, it is stored in the field.
Take an ideal inductor with zero resistance. Although it's practically impossible, assume that the coil's resistance is so small that it is practically negligible. The loss of the field's energy to dissipate thermal energy (or heat) is thus negligible.
The energy...
Take an ideal inductor with zero resistance. Although it's practically impossible, assume that the coil's resistance is so small that it is practically negligible. The loss of the field's energy to dissipate thermal energy (or heat) is thus negligible.
The energy...
Energy Carried By Electromagnetic Waves
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,...
Magnetic Field due to Moving Charges
A stationary charge creates and interacts with the electric field, while a moving charge creates a magnetic field.
Consider a point charge moving with a constant velocity. Like the electric field, the magnetic field at any point is directly proportional to the magnitude of the charge and inversely proportional to the square of the distance between the source point and the field point. However, unlike the electric field, the magnetic field is always perpendicular to the plane containing the line...
Consider a point charge moving with a constant velocity. Like the electric field, the magnetic field at any point is directly proportional to the magnitude of the charge and inversely proportional to the square of the distance between the source point and the field point. However, unlike the electric field, the magnetic field is always perpendicular to the plane containing the line...
Potential Due to a Magnetized Object
Magnetic dipoles in magnetic materials are aligned when placed under an external magnetic field. For paramagnets and ferromagnets, dipole alignment occurs in the direction of the magnetic field. However, the dipoles align opposite to the field in the case of diamagnets. This state of magnetic polarization due to the external field is called magnetization. Magnetization is defined as the dipole moment per unit volume. It plays a similar role to polarization in electrostatics.
The vector...
The vector...


