thermal switching
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Energies ◽  
2021 ◽  
Vol 14 (16) ◽  
pp. 5130
Author(s):  
Markus Winkler ◽  
Christian Teicht ◽  
Patrick Corhan ◽  
Angelos Polyzoidis ◽  
Kilian Bartholomé ◽  
...  

For many applications, the possibility of controlling heat flow by “thermal switching” could be very beneficial. Several concepts for heat switches were already proposed and tested, however, many drawbacks of these concepts are evident. In this work, we present a novel approach for thermal switching using a water-loaded adsorbent as part of the evaporator of a heat pipe. The basic idea is that the adsorbent releases water upon exceeding a certain evaporator temperature, and thus “activates” the heat pipe by providing the working fluid for thermal transport. The first part of this work concentrates on the adsorbent characterization by analyzing the adsorption isobars and isotherms and thus understanding the behavior of the system. Furthermore, a model to predict the release of water from the adsorbent in dependence of temperature was developed. Subsequently, the adsorbent was integrated into an actual heat pipe demonstrator to verify these predictions and demonstrate the thermal switching ability. Overall results revealed a very good agreement between the predictions concerning water release and the heat pipe’s thermal behavior. The obtained thermal switching ratio depends on the heating power and temperature range that is considered. Depending on whether evaporator/condenser or the adiabatic zone are considered, average switching ratios of circa 3 and 18 were found, respectively.


2021 ◽  
Vol 12 (1) ◽  
Author(s):  
Tingting Du ◽  
Zixin Xiong ◽  
Luis Delgado ◽  
Weizhi Liao ◽  
Joseph Peoples ◽  
...  

AbstractThermal switches have gained intense interest recently for enabling dynamic thermal management of electronic devices and batteries that need to function at dramatically varied ambient or operating conditions. However, current approaches have limitations such as the lack of continuous tunability, low switching ratio, low speed, and not being scalable. Here, a continuously tunable, wide-range, and fast thermal switching approach is proposed and demonstrated using compressible graphene composite foams. Large (~8x) continuous tuning of the thermal resistance is achieved from the uncompressed to the fully compressed state. Environmental chamber experiments show that our variable thermal resistor can precisely stabilize the operating temperature of a heat generating device while the ambient temperature varies continuously by ~10 °C or the heat generation rate varies by a factor of 2.7. This thermal device is promising for dynamic control of operating temperatures in battery thermal management, space conditioning, vehicle thermal comfort, and thermal energy storage.


2021 ◽  
Author(s):  
Dakotah Thompson ◽  
Linxiao Zhu ◽  
Edgar Meyhofer ◽  
Pramod Reddy
Keyword(s):  

2021 ◽  
Vol 119 (1) ◽  
pp. 013106
Author(s):  
D. Mihailovic ◽  
D. Svetin ◽  
I. Vaskivskyi ◽  
R. Venturini ◽  
B. Lipovšek ◽  
...  

Author(s):  
D.J. Silva ◽  
A.M. Pereira ◽  
J.O. Ventura ◽  
J.P. Araújo ◽  
J.C.R.E. Oliveira

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