Energy scavenging from the diurnal cycle with a temperature-doubler circuit and a self-adaptive photonic design

A temperature-doubler circuit is the functional equivalent of a voltage-doubler in the thermal domain. Effective temperature-doubler circuits could benefit energy scavenging from fluctuating thermal resources, e.g. the diurnal cycle. However, the current paradigm relies on static photonic designs of...

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Main Authors: Zhang Zheng, Zhao Xiaodong, Chen Zhen
Format: Article
Language:English
Published: De Gruyter 2024-01-01
Series:Nanophotonics
Subjects:
Online Access:https://doi.org/10.1515/nanoph-2023-0695
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author Zhang Zheng
Zhao Xiaodong
Chen Zhen
author_facet Zhang Zheng
Zhao Xiaodong
Chen Zhen
author_sort Zhang Zheng
collection DOAJ
description A temperature-doubler circuit is the functional equivalent of a voltage-doubler in the thermal domain. Effective temperature-doubler circuits could benefit energy scavenging from fluctuating thermal resources, e.g. the diurnal cycle. However, the current paradigm relies on static photonic designs of the selective solar absorber or blackbody emitter, which aims at maximizing energy harvesting from either the sun or outer space, but not from both. Furthermore, photonic and thermal optimizations have not yet been coupled to maximize the power output. Here we develop a general framework to optimize the energy acquisition and conversion simultaneously to maximize a temperature-doubler’s power output under a realistic solar-thermal boundary condition. With an ideal self-adaptive absorber/emitter to fully exploit the thermodynamic potential of both the sun and outer space, the theoretical limit of the temperature-doubler circuit’s average output power in a diurnal cycle is found to be 168 W m−2, a 12-fold enhancement as compared to the blackbody emitter. We provide a numerical design of such a self-adaptive absorber/emitter, which, combined with a thermoelectric generator, generate 2.3 times more power than the blackbody emitter in a synthetic “experiment”. The model further reveals that, as compared to traditional thermal circuits, the key merit of the temperature-doubler is not to enhance the total power generation, but to convert the fluctuating thermodynamic input to a continuous and stable power output in a 24 h day-night cycle.
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spelling doaj.art-fd843d19a432481d84c22190d80c77652024-03-18T10:28:06ZengDe GruyterNanophotonics2192-86142024-01-0113568769910.1515/nanoph-2023-0695Energy scavenging from the diurnal cycle with a temperature-doubler circuit and a self-adaptive photonic designZhang Zheng0Zhao Xiaodong1Chen Zhen2Jiangsu Key Laboratory for Design & Manufacture or Micro/Nano Biomedical Instruments, School of Mechanical Engineering, Southeast University, Nanjing210096, ChinaJiangsu Key Laboratory for Design & Manufacture or Micro/Nano Biomedical Instruments, School of Mechanical Engineering, Southeast University, Nanjing210096, ChinaJiangsu Key Laboratory for Design & Manufacture or Micro/Nano Biomedical Instruments, School of Mechanical Engineering, Southeast University, Nanjing210096, ChinaA temperature-doubler circuit is the functional equivalent of a voltage-doubler in the thermal domain. Effective temperature-doubler circuits could benefit energy scavenging from fluctuating thermal resources, e.g. the diurnal cycle. However, the current paradigm relies on static photonic designs of the selective solar absorber or blackbody emitter, which aims at maximizing energy harvesting from either the sun or outer space, but not from both. Furthermore, photonic and thermal optimizations have not yet been coupled to maximize the power output. Here we develop a general framework to optimize the energy acquisition and conversion simultaneously to maximize a temperature-doubler’s power output under a realistic solar-thermal boundary condition. With an ideal self-adaptive absorber/emitter to fully exploit the thermodynamic potential of both the sun and outer space, the theoretical limit of the temperature-doubler circuit’s average output power in a diurnal cycle is found to be 168 W m−2, a 12-fold enhancement as compared to the blackbody emitter. We provide a numerical design of such a self-adaptive absorber/emitter, which, combined with a thermoelectric generator, generate 2.3 times more power than the blackbody emitter in a synthetic “experiment”. The model further reveals that, as compared to traditional thermal circuits, the key merit of the temperature-doubler is not to enhance the total power generation, but to convert the fluctuating thermodynamic input to a continuous and stable power output in a 24 h day-night cycle.https://doi.org/10.1515/nanoph-2023-0695temperature-doublerself-adaptive photonic designfluctuating thermodynamic resourcescoupled photonic and thermal optimization
spellingShingle Zhang Zheng
Zhao Xiaodong
Chen Zhen
Energy scavenging from the diurnal cycle with a temperature-doubler circuit and a self-adaptive photonic design
Nanophotonics
temperature-doubler
self-adaptive photonic design
fluctuating thermodynamic resources
coupled photonic and thermal optimization
title Energy scavenging from the diurnal cycle with a temperature-doubler circuit and a self-adaptive photonic design
title_full Energy scavenging from the diurnal cycle with a temperature-doubler circuit and a self-adaptive photonic design
title_fullStr Energy scavenging from the diurnal cycle with a temperature-doubler circuit and a self-adaptive photonic design
title_full_unstemmed Energy scavenging from the diurnal cycle with a temperature-doubler circuit and a self-adaptive photonic design
title_short Energy scavenging from the diurnal cycle with a temperature-doubler circuit and a self-adaptive photonic design
title_sort energy scavenging from the diurnal cycle with a temperature doubler circuit and a self adaptive photonic design
topic temperature-doubler
self-adaptive photonic design
fluctuating thermodynamic resources
coupled photonic and thermal optimization
url https://doi.org/10.1515/nanoph-2023-0695
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AT chenzhen energyscavengingfromthediurnalcyclewithatemperaturedoublercircuitandaselfadaptivephotonicdesign