Spatio-temporal solid-state electrocaloric effect exceeding twice the adiabatic temperature change

IF 7 3区 材料科学 Q1 ENERGY & FUELS Journal of Physics-Energy Pub Date : 2023-07-27 DOI:10.1088/2515-7655/aceb1b
Stefan Mönch, K. Bartholomé
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Abstract

In an all-solid-state electrocaloric arrangement, an absolute temperature change which exceeds twice the electrocaloric adiabatic temperature change is locally realized, using just the distributed thermal capacitances and resistances and spatio-temporal distributed electric field control. First, simulations demonstrate surface temperature changes up to four times (400%) the electrocaloric adiabatic temperature change for several implementations of all-solid state distributed element configurations. Then, experimentally, an all-solid-state assembly is built from commercial electrocaloric capacitors with two independently-controlled parts, and the measured surface temperature change was 223% of the adiabatic electrocaloric temperature change, which clearly exceeds twice the adiabatic temperature change and verifies the practical feasibility of the approach. This allows a significant increase of the maximum temperature difference per stage in cascaded and thermal switch-based electrocaloric heat pumps, which was previously limited by the adiabatic electrocaloric temperature change (100%) under no-load conditions. Distributed thermal element simulations provide insight in the spatio-temporal temperatures within the all-solid-state electrocaloric element. Since only the distributed thermal capacitance and resistance is used to boost the temperature change, the maximum absolute temperature change occurs only in parts of the all-solid-state element, for example close to the surfaces. A trade-off of the approach is that the required electrocaloric capacitance increases more than the gained boost of the absolute temperature change, reducing the power density and electrical efficiency in heat pump systems. Nevertheless, the proposed approach enables to simplify electrocaloric heat pumps or to increasing the achievable temperature span, and might also improve other electrocaloric applications.
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时空固态电热效应超过绝热温度变化的两倍
在全固态电热布置中,仅利用分布热容、热阻和时空分布电场控制,就能局部实现超过两倍于电热绝热温度变化的绝对温度变化。首先,模拟表明,对于几种全固态分布元件配置的实现,表面温度变化高达电热绝热温度变化的四倍(400%)。然后,在实验上,用两个独立控制部件的商用电热电容器构建了全固态组件,测得的表面温度变化为绝热电热温度变化的223%,明显超过绝热温度变化的两倍,验证了该方法的实际可行性。这使得级联式和基于热开关的电热热泵的每级最大温差显著增加,而以前在空载条件下受绝热电热温度变化(100%)的限制。分布式热元件模拟提供了对全固态电热元件的时空温度的洞察。由于只有分布的热容和电阻被用来促进温度变化,最大的绝对温度变化只发生在全固态元件的部分,例如靠近表面。这种方法的一个权衡是,所需的电容量增加超过了绝对温度变化的增益,降低了热泵系统的功率密度和电效率。然而,所提出的方法能够简化电热热泵或增加可实现的温度范围,并且还可能改善其他电热应用。
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来源期刊
CiteScore
10.90
自引率
1.40%
发文量
58
期刊介绍: The Journal of Physics-Energy is an interdisciplinary and fully open-access publication dedicated to setting the agenda for the identification and dissemination of the most exciting and significant advancements in all realms of energy-related research. Committed to the principles of open science, JPhys Energy is designed to maximize the exchange of knowledge between both established and emerging communities, thereby fostering a collaborative and inclusive environment for the advancement of energy research.
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