Petelin et al., 2023 - Google Patents
A conceptual design of a thermal switch capacitor in a magnetocaloric device: experimental characterization of properties and simulations of operating characteristicsPetelin et al., 2023
View PDF- Document ID
- 476026429538291181
- Author
- Petelin N
- Kalin M
- Kitanovski A
- Publication year
- Publication venue
- Journal of Physics: Energy
External Links
Snippet
The quest for better performance from magnetocaloric devices has led to the development of thermal control devices, such as thermal switches, thermal diodes, and thermal capacitors. These devices are capable of controlling the intensity and direction of the heat flowing …
Classifications
-
- H—ELECTRICITY
- H01—BASIC ELECTRIC ELEMENTS
- H01L—SEMICONDUCTOR DEVICES; ELECTRIC SOLID STATE DEVICES NOT OTHERWISE PROVIDED FOR
- H01L35/00—Thermo-electric devices comprising a junction of dissimilar materials, i.e. exhibiting Seebeck or Peltier effect with or without other thermo-electric effects or thermomagnetic effects; Processes or apparatus peculiar to the manufacture or treatment thereof or of parts thereof; Details thereof
- H01L35/28—Thermo-electric devices comprising a junction of dissimilar materials, i.e. exhibiting Seebeck or Peltier effect with or without other thermo-electric effects or thermomagnetic effects; Processes or apparatus peculiar to the manufacture or treatment thereof or of parts thereof; Details thereof operating with Peltier or Seebeck effect only
- H01L35/30—Thermo-electric devices comprising a junction of dissimilar materials, i.e. exhibiting Seebeck or Peltier effect with or without other thermo-electric effects or thermomagnetic effects; Processes or apparatus peculiar to the manufacture or treatment thereof or of parts thereof; Details thereof operating with Peltier or Seebeck effect only characterised by the heat-exchanging means at the junction
-
- H—ELECTRICITY
- H01—BASIC ELECTRIC ELEMENTS
- H01L—SEMICONDUCTOR DEVICES; ELECTRIC SOLID STATE DEVICES NOT OTHERWISE PROVIDED FOR
- H01L35/00—Thermo-electric devices comprising a junction of dissimilar materials, i.e. exhibiting Seebeck or Peltier effect with or without other thermo-electric effects or thermomagnetic effects; Processes or apparatus peculiar to the manufacture or treatment thereof or of parts thereof; Details thereof
- H01L35/28—Thermo-electric devices comprising a junction of dissimilar materials, i.e. exhibiting Seebeck or Peltier effect with or without other thermo-electric effects or thermomagnetic effects; Processes or apparatus peculiar to the manufacture or treatment thereof or of parts thereof; Details thereof operating with Peltier or Seebeck effect only
- H01L35/32—Thermo-electric devices comprising a junction of dissimilar materials, i.e. exhibiting Seebeck or Peltier effect with or without other thermo-electric effects or thermomagnetic effects; Processes or apparatus peculiar to the manufacture or treatment thereof or of parts thereof; Details thereof operating with Peltier or Seebeck effect only characterised by the structure or configuration of the cell or thermo-couple forming the device including details about, e.g., housing, insulation, geometry, module
Similar Documents
Publication | Publication Date | Title |
---|---|---|
Hou et al. | Materials, physics and systems for multicaloric cooling | |
Hao et al. | Efficient thermal management of Li-ion batteries with a passive interfacial thermal regulator based on a shape memory alloy | |
Torelló et al. | Electrocaloric coolers: a review | |
Klinar et al. | Thermal control elements for caloric energy conversion | |
Wang et al. | A high-performance solid-state electrocaloric cooling system | |
Kitanovski et al. | Present and future caloric refrigeration and heat-pump technologies | |
Ossmer et al. | Energy-efficient miniature-scale heat pumping based on shape memory alloys | |
Ma et al. | Highly efficient electrocaloric cooling with electrostatic actuation | |
Defay et al. | Enhanced electrocaloric efficiency via energy recovery | |
Agbossou et al. | Solar micro-energy harvesting based on thermoelectric and latent heat effects. Part I: Theoretical analysis | |
Ju | Solid-state refrigeration based on the electrocaloric effect for electronics cooling | |
Darabi et al. | An electrohydrodynamic polarization micropump for electronic cooling | |
Jia et al. | A solid-state refrigerator based on the electrocaloric effect | |
Nielsen et al. | The influence of the solid thermal conductivity on active magnetic regenerators | |
Klinar et al. | Perspectives and energy applications of magnetocaloric, pyromagnetic, electrocaloric, and pyroelectric materials | |
Navid et al. | Towards optimization of a pyroelectric energy converter for harvesting waste heat | |
Bradeško et al. | Coupling of the electrocaloric and electromechanical effects for solid-state refrigeration | |
Monfared | Simulation of solid-state magnetocaloric refrigeration systems with Peltier elements as thermal diodes | |
Chen et al. | Thermodynamic modeling and analysis of an air-cooled small space thermoelectric cooler | |
Hess et al. | Modelling cascaded caloric refrigeration systems that are based on thermal diodes or switches | |
Egolf et al. | High-frequency magnetocaloric modules with heat gates operating with the Peltier effect | |
Wang et al. | Negative energy consumption of thermostats at ambient temperature: electricity generation with zero energy maintenance | |
Zeng et al. | A Bistable Triboelectric Nanogenerator for Low‐Grade Thermal Energy Harvesting and Solar Thermal Energy Conversion | |
Tomc et al. | A numerical comparison of a parallel-plate AMR and a magnetocaloric device with embodied micro thermoelectric thermal diodes | |
Engelbrecht et al. | Improved modelling of a parallel plate active magnetic regenerator |