论文标题

中性载体的电流和热量产生:轴上的效果

Electric Current and Heat Production by a Neutral Carrier: An Effect of the Axion

论文作者

Brevik, Iver, Chaichian, Masud

论文摘要

当环境是介电(介电常数和渗透性为常数)时,将在现象学水平上呈现一般的轴突 - 电动力形式主义。此后,在$ z $方向上考虑了一个强且均匀的磁场,该方向是具有长材料圆柱体的形式(对应于Haloscope设置)。如果轴振幅仅取决于时间,则轴将在$ z $方向上产生振荡的电流。我们估计方位角磁场的幅度和圆柱体中随附的焦耳加热,使圆柱体具有普通的耗散特性。我们分别评估和计算电流和热量产生,而无需使用有效的近似值,并且当有强磁场时,并且当电气磁场有强电场时,表明有磁场有热量产生,而电场则没有。 我们考虑的热量产生是一种非平凡的效应,因为它是由电中心轴产生的,并且对轴突热力学产生了明显的后果。此外,热量产生可以具有附加优势,因为效果是积累的,因此随着时间的推移而增长。解释了边界条件(从经典意义上),并讨论了它们在量子机械环境中的使用。这一点是不平凡的,特别是与Casimir效应相关的。为了进行比较,我们最终提出了一些从粘性宇宙学理论中获得的散热结果。

A general axion-electrodynamic formalism is presented on the phenomenological level when the environment is dielectric (permittivity and permeability assumed to be constants). Thereafter, a strong and uniform magnetic field is considered in the $z$ direction, the field region having the form of a long material cylinder (which corresponds to the haloscope setup). If the axion amplitude depends on time only, the axions give rise to an oscillating electric current in the $z$ direction. We estimate the magnitudes of the azimuthal magnetic fields and the accompanying Joule heating in the cylinder, taking the cylinder to have ordinary dissipative properties. We evaluate and calculate the electric current and the heat production separately, without using the effective approximation, both when there is a strong magnetic field and when there is a strong electric one, showing that with the magnetic field there is a heat production, while with the electric field there is not. The heat generation that we consider, is a nontrivial effect as it is generated by the electrically neutral axions, and has obvious consequences for axion thermodynamics. The heat production can moreover have an additional advantage, since the effect is accumulative and so grows with time. The boundary conditions (in a classical sense) are explained and the use of them in a quantum mechanical context is discussed. This point is nontrivial, accentuated in particular in connection with the Casimir effect. For comparison purposes, we present finally some results for heat dissipation taken from the theory of viscous cosmology.

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