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Special coupled quantum Otto and Carnot cycles

机译:特殊耦合量子奥托和圆环周期

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Two special coupled spins, one is an arbitrary spin-s and the other is a fixed spin-1/2, are proposed as the working substance of the quantum Otto and Carnot cycles. The quantum adiabatic stages of the cycles are considered the simultaneous changes of the frequencies of the spins and the interaction strength in which all the energy gaps of the working substance are changed by the same ratios in the two quantum adiabatic stages. The role of quantum interactions and the spin-s on the performance of the quantum cycles is investigated in detail. It is found that the thermal efficiencies of the cycles are independent of the spin-s and the interaction strength and are also equivalent to their classical counterparts. The work output of the cycles is found to be significantly enhanced by the quantum interactions. Compared to the uncoupled case, the coupled working substance with a smaller spin-s is found to produce more useful work in the weak coupling regime, while the harvested work with a smaller spin-s is less in the strong coupling regime. The concept of local thermodynamics and the role of inner friction are also addressed for the proposed quantum Otto and Carnot cycles.
机译:两个特殊的耦合旋转,一个是任意自旋 - S,另一个是固定的旋转-1 / 2,提出作为量子OTTO和圆环循环的工作物质。循环的量子绝热阶段被认为是旋转频率的同时变化和相互作用强度,其中工作物质的所有能量间隙在两个量子绝热阶段中的相同比例改变。详细研究了量子相互作用和Spin-S对量子循环性能的作用。结果发现循环的热效率与旋转和相互作用强度无关,并且也等同于其经典对应物。发现循环的工作输出被量子相互作用显着提高。与未耦合的情况相比,发现具有较小Spin-S的耦合工作物质在弱耦合状态下产生更有用的工作,而具有较小旋转S的收获工作在强耦合状态下较少。对于所提出的量子OTTO和Carnot循环,还解决了局部热力学和内部摩擦作用的概念。

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