经典电动力学

K. J. V. Vlaenderen
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引用次数: 1

摘要

麦克斯韦经典电动力学(MCED)有几个不一致之处:(1)在稳态和电流分布发散或收敛的情况下,麦克斯韦经典电动力学的洛伦兹力定律违反牛顿第三运动定律(N3LM);(2) MCED的一般Jefimenko电场解显示出两个非波的纵向远场;(3)匀速运动带电球的电动力能量-动量比有一个不正确的因子。基于惠特克互反力定律,提出了一个满足N3LM的一致的通用经典电动力学(GCED)。惠特克力表示为一个标量磁场力,加上洛伦兹力。GCED只有在假设真空中电势速度“a”远大于“c”(a比c)时才一致;假设a = c时,GCED可简化为MCED。预测了纵向电磁波和超光速纵向电位波。这一理论已经被看似无关的实验所证实,例如超光速库仑场和纵向安培力的检测,并具有广泛的电气工程应用。
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General Classical Electrodynamics
Maxwell's Classical Electrodynamics (MCED) suffers several inconsistencies: (1) the Lorentz force law of MCED violates Newton's Third Law of Motion (N3LM) in case of stationary and divergent or convergent current distributions; (2) the general Jefimenko electric field solution of MCED shows two longitudinal far fields that are not waves; (3) the ratio of the electrodynamic energy-momentum of a charged sphere in uniform motion has an incorrect factor of . A consistent General Classical Electrodynamics (GCED) is presented that is based on Whittaker's reciprocal force law that satisfies N3LM. The Whittaker force is expressed as a scalar magnetic field force, added to the Lorentz force. GCED is consistent only if it is assumed that the electric potential velocity in vacuum, 'a', is much greater than 'c' (a ≫ c); GCED reduces to MCED, in case we assume a = c. Longitudinal electromagnetic waves and superluminal longitudinal electric potential waves are predicted. This theory has been verified by seemingly unrelated experiments, such as the detection of superluminal Coulomb fields and longitudinal Ampere forces, and has a wide range of electrical engineering applications.
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