• Title/Summary/Keyword: cryogenic thermal storage unit

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Experimental study on the cryogenic thermal storage unit (TSU) below -70 ℃

  • Byeongchang Byeon;Kyoung Joong Kim;Sangkwon Jeong;Dong min Kim;Mo Se Kim;Gi Dock Kim;Jung Hun Kim;Sang Yoon Lee;Seong Woo Lee;Keun Tae Lee
    • Progress in Superconductivity and Cryogenics
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    • v.26 no.1
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    • pp.20-24
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    • 2024
  • Over the past four years, as the COVID-19 pandemic has struck the world, cold chain of COVID-19 vaccination has become a hot topic. In order to overcome the pandemic situation, it is necessary to establish a cold chain that maintains a low-temperature environment below approximately 203K (-70℃), which is the appropriate storage temperature for vaccines, from vaccine suppliers to local hospitals. Usually, cryocoolers are used to maintain low temperatures, but it is difficult for small-scale local distribution to have cryocooler due to budget and power supply issues. Accordingly, in this paper, a cryogenic TSU (Thermal storage unit) system for vaccination cold chain is designed that can maintain low temperatures below -70℃C for a long time without using a cryocooler. The performance of the TSU system according to the energy storage material for using as TSU is experimentally evaluated. In the experiments, four types of cold storage materials were used: 20% DMSO aqueous solution, 30% DMSO aqueous solution, paraffin wax, and tofu. Prior to the experiment, the specific heat of the cold storage materials at low temperature were measured. Through this, the thermal diffusivity of the materials was calculated, and paraffin wax had the lowest value. As a result of the TSU system's low-temperature maintenance test, paraffin wax showed the best low-temperature maintenance performance. And it recorded a low-temperature maintenance time that was about 24% longer than other materials. As a result of analyzing the temperature trend by location within the TSU system, it was observed that heat intrusion from the outside was not well transmitted to the low temperature area due to the low thermal conductivity of paraffin wax. Therefore, in the TSU system for vaccine storage, it was experimentally verified that the lower the thermal diffusivity of the cold storage material, the better low temperature maintenance performance.

The Measurement of Membrane Deformation Behavior in Kogas Pilot LNG Storage Tank by the use of Mechanical/Electrical Sensor (I) (기계적/전기적 측정 센서를 이용한 Kogas Pilot LNG 저장탱크 멤브레인 변형 거동 측정(I))

  • Kim Y.K.;Hong S.H,;Oh B.T.;Yoon I.S.;Kim J.H.;Kim S.S.
    • Journal of the Korean Institute of Gas
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    • v.7 no.3 s.20
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    • pp.13-17
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    • 2003
  • A membrane unit for Liquefied Natural Gas (LNG) storage tank is a structural member which is designed specifically for preventing undesirable LNG leakage. Membrane units have to endure gas and liquid pressures by LNG and thermal stresses by the contact with cryogenic liquid of $-162^{\circ}C$. It is of importance to assure the strengths of membrane by experimental stress analysis under the temperature of LNG. In this paper, we proposed measurement system using commercial electrical strain gage and mechanical extension meter designed for this study.

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Analysis of Gas-to-Liquid Phase Transformation of Hydrogen in Cryogenic Cooling Tube (초저온 냉각튜브 내 수소기체의 액체수소로의 상변환 분석)

  • Lee, Dae-Won;Nguyen, Hoang Hai;So, Myeong-Ki;Nah, In-Wook;Park, Dong-Wha;Kim, Kyo-Seon
    • Korean Chemical Engineering Research
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    • v.56 no.1
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    • pp.49-55
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    • 2018
  • Under the era of energy crisis, hydrogen energy is considered as one of the most potential alternative energies. Liquid hydrogen has much higher energy density per unit volume than gas hydrogen and is counted as the excellent energy storage method. In this study, Navier-Stokes equations based on 2-phase model were solved by using a computational fluid dynamics program and the liquefaction process of gaseous hydrogen passing through a cryogenic cooling tube was analyzed. The copper with high thermal conductivity was assumed as the material for cryogenic cooling tube. For different inlet velocities of 5 m/s, 10 m/s and 20 m/s for hydrogen gas, the distributions of fluid temperature, axial and radial velocities, and volume fractions of gas and liquid hydrogens were compared. These research results are expected to be used as basic data for the future design and fabrication of cryogenic cooling tube to transform the hydrogen gas into liquid hydrogen.