scholarly journals Study on Heat Storage and Transportation System for Recovering Non-using Low-temperature Heat

2014 ◽  
Vol 10 (4) ◽  
pp. 29-35
Author(s):  
Changyong Oh ◽  
Hongseop Im ◽  
Insu Kim
2021 ◽  
Vol 141 ◽  
pp. 110824
Author(s):  
Yongliang Shen ◽  
Shuli Liu ◽  
Abdur Rehman Mazhar ◽  
Xiaojing Han ◽  
Liu Yang ◽  
...  

Heat Pumps ◽  
1990 ◽  
pp. 807-815
Author(s):  
Tadaaki Tanii ◽  
Masaki Minemoto ◽  
Yoshimasa Ando

2014 ◽  
Vol 953-954 ◽  
pp. 757-760 ◽  
Author(s):  
Mitushiro Kubota ◽  
Satoshi Matsumoto ◽  
Hitoki Matsuda ◽  
Hong Yu Huang ◽  
Zhao Hong He ◽  
...  

There is a great demand on promotion of heat utilization below 373 K to establish highly-efficient energy system, because such heat is enormously unused and discharged from every process. Towards this demand, we have focused on chemical heat storage due to its high heat storage density. In this study, the promising inorganic hydrates were investigated for low-temperature heat storage with the differential scanning calorimetry. Consequently, it is found that lithium hydroxide monohydrate dehydrates at 337 K with endothermic heat of 1,440 kJ/kg-LiOH・H2O. Due to its high storage density and the simplicity of dehydration reaction, LiOH/LiOH・H2O reaction was chose as the most promising reaction for chemical heat storage below 373 K. From the chemical equilibrium calculation, this reaction system is found to be more suitable for chemical heat storage than chemical heat pump. Fundamental study of dehydration behavior of LiOH・H2O was also performed with a thermogravimetric analyzer, and the apparent activation energy of dehydration of LiOH・H2O was determined to be 51.7 kJ/mol in the conversion ranges of 0.4-0.7.


Energy ◽  
2016 ◽  
Vol 115 ◽  
pp. 120-128 ◽  
Author(s):  
Y.N. Zhang ◽  
R.Z. Wang ◽  
Y.J. Zhao ◽  
T.X. Li ◽  
S.B. Riffat ◽  
...  

Author(s):  
Uma Maheswararao Gaddala ◽  
Jaya Krishna Devanuri

Abstract Phase change materials (PCMs) are considered to be promising contenders for thermal energy storage (TES) due to their high latent heat and nearly constant temperature during the intake/release of heat. The present study focuses on providing the most suitable PCM for low-temperature (40–80 °C) heat storage applications. However, the selection of the most suitable one from the wide range of PCMs for an application needs a thorough insight of their thermophysical properties, thermal stability, compatibility, and melting and solidification behavior. Among the PCMs available for low-temperature heat storage applications, organic PCMs stand as an attractive option. Based on melting point temperature, latent heat, cost, and ease of availability, five widely used organic PCMs, viz., lauric acid (LA), myristic acid (MA), stearic acid (SA), paraffin wax (PW), and palmitic acid (PA), are selected. Initially, thermophysical properties are measured and tabulated. Subsequently, thermal stability experiments up to 1500 melting/freezing cycles, compatibility studies with container materials (aluminum and stainless steel (SS)), and melting and solidification experiments giving total melting and solidification times are performed. Further, a hybrid multiple attribute decision-making (MADM) method is employed to select the best PCM based on the obtained experimental results. During the selection process at first, the subjective weights of the attributes are measured according to the analytical hierarchy process (AHP). Later, the PCMs are ranked based on the Technique for Order Preference by Similarity to Ideal Solution (TOPSIS). The hybrid MADM results show that among the selected PCMs, paraffin wax is the optimal PCM for low-temperature heat storage applications.


Energies ◽  
2016 ◽  
Vol 9 (10) ◽  
pp. 854 ◽  
Author(s):  
Yannan Zhang ◽  
Ruzhu Wang ◽  
Tingxian Li ◽  
Yanjie Zhao

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