Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Variable Thermal Conductivity Metamaterials Applied to Passive Thermal Control of Satellites

View through CrossRef
Abstract Active materials like the proposed variable thermal conductivity metamaterial enable new thermal designs and low-cost, low-power, passive thermal control. Thermal control of satellites conventionally requires active thermal control systems that are expensive, large, inefficient, energy-intensive, and unavailable for CubeSats. The high-temperature operation case is the thermal system’s primary design consideration for CubeSats. The thermal path is designed to reject as much heat as possible to ensure the system does not overheat. In other cases, such as during a power anomaly, the oversized thermal path results in rapid cooling, culminating in mission failure due to thermal limits on the electronics or batteries. Improving the thermal control of CubeSats can enable new thermally challenging missions, increase satellite longevity, and increase mission success rate by controlling the dynamic thermal environment. The materials available for thermal management are inherently limited, but new engineered materials provide unique opportunities to change how satellites adapt to thermal loads. This paper investigates using an adaptive metamaterial designed to passively change its thermal conductivity as a function of temperature to meet the needs of the satellite. The thermal performance of a CubeSat is evaluated with a variable thermal conductivity metamaterial located in the critical thermal path from the satellite to the radiator. The system’s performance using two metamaterial configurations is compared to a baseline copper thermal path. Multiple satellite thermal operation cases are investigated to determine the operation ranges, and the metamaterial’s performance in various conditions is quantified.
Title: Variable Thermal Conductivity Metamaterials Applied to Passive Thermal Control of Satellites
Description:
Abstract Active materials like the proposed variable thermal conductivity metamaterial enable new thermal designs and low-cost, low-power, passive thermal control.
Thermal control of satellites conventionally requires active thermal control systems that are expensive, large, inefficient, energy-intensive, and unavailable for CubeSats.
The high-temperature operation case is the thermal system’s primary design consideration for CubeSats.
The thermal path is designed to reject as much heat as possible to ensure the system does not overheat.
In other cases, such as during a power anomaly, the oversized thermal path results in rapid cooling, culminating in mission failure due to thermal limits on the electronics or batteries.
Improving the thermal control of CubeSats can enable new thermally challenging missions, increase satellite longevity, and increase mission success rate by controlling the dynamic thermal environment.
The materials available for thermal management are inherently limited, but new engineered materials provide unique opportunities to change how satellites adapt to thermal loads.
This paper investigates using an adaptive metamaterial designed to passively change its thermal conductivity as a function of temperature to meet the needs of the satellite.
The thermal performance of a CubeSat is evaluated with a variable thermal conductivity metamaterial located in the critical thermal path from the satellite to the radiator.
The system’s performance using two metamaterial configurations is compared to a baseline copper thermal path.
Multiple satellite thermal operation cases are investigated to determine the operation ranges, and the metamaterial’s performance in various conditions is quantified.

Related Results

Experimental Investigation on the Effects of Proppant Migration and Placement on the Conductivity in Rough Fractures
Experimental Investigation on the Effects of Proppant Migration and Placement on the Conductivity in Rough Fractures
ABSTRACT Proppant conductivity was usually measured under static or designed proppant concentration. The ISO 13503-5 standard provides specific experimental proce...
Adaptive Thermal Conductivity Metamaterials: Enabling Active and Passive Thermal Control
Adaptive Thermal Conductivity Metamaterials: Enabling Active and Passive Thermal Control
The novel adaptive thermal metamaterial developed in this paper provides a unique thermal management capability that can address the needs of future spacecraft. While advances in m...
An Investigation of Thermal Properties of 2D Materials
An Investigation of Thermal Properties of 2D Materials
Studying the thermal conductivity of 2D materials is important due to the applications of 2D materials in fields such as thermal management, thermoelectricity, renewable energy, an...
Sustainable Solutions in Sound Shielding: Harnessing Metamaterials for Acoustic Cloaking
Sustainable Solutions in Sound Shielding: Harnessing Metamaterials for Acoustic Cloaking
The development of metamaterials promises to enable smallscale, worldwide industry-wide acoustic, electromagnetic, mechanical, and solar energy harvesting. Engineered structures su...
Information Metamaterials
Information Metamaterials
Metamaterials have attracted enormous interests from both physics and engineering communities in the past 20 years, owing to their powerful ability in manipulating electromagnetic ...
Acoustic metamaterials : microperforated shell and Helmholtz resonator
Acoustic metamaterials : microperforated shell and Helmholtz resonator
Metamaterials have been extensively developed in many areas over the past two decades, a great deal of research has been conducted on acoustic metamaterials exhibiting unusual dyna...
The Role of Metamaterials in Advancing Wireless Communications Through Signal Enhancement and Energy Reduction
The Role of Metamaterials in Advancing Wireless Communications Through Signal Enhancement and Energy Reduction
General Background: Wireless communication systems have become vital in modern life but face persistent challenges including signal degradation, high power consumption, and electro...

Back to Top