Energy Storage Materials in Thermal Storage Applications

2021 ◽  
pp. 79-117
Author(s):  
Hafiz Muhammad Ali ◽  
Furqan Jamil ◽  
Hamza Babar
2011 ◽  
Vol 250-253 ◽  
pp. 3541-3544
Author(s):  
Gang Chen ◽  
Li Xia Wan

The types and characteristics of phase change energy storage materials were introduced ,and the current research of thermal storage with PCMS is summarized in the paper. Meanwhile the influence of stability, corrosion, phase segregation, sub-cooling, and encapsulation of phase change materials on heat storage were presented also. The applications and prospects of PCMS used in many fields were summarized in the end of the paper.


1996 ◽  
Vol 14 (2) ◽  
pp. 128-143 ◽  
Author(s):  
R. Benrashid ◽  
M.W. Babich ◽  
G.L. Nelson

The introduction of thermal storage materials into wallboard can help to control the temperature fluctuations in the heating and cooling of a building. Thermal storage materials absorb or release heat in defined tempera ture ranges. Wallboard was treated with thermal storage materials, including hexadecane, 1-dodecanol, undecylenic acid, coconut oil and silicone wax. These treatments involved absorption of the compounds into the wallboard. The de sired uptake of material into wallboard was approximately twenty-five percent. The uptake rate for silicone was lower than for the other materials. Most of the energy storage materials are organic, therefore their odor, smoke production, and flammability are a concern. The flammability properties of wallboard samples containing these materials were studied using the E-662 NBS Smoke Chamber and the E162 Radiant Panel Test. The results showed that silicone wax, undecylenic acid and coconut oil treated wallboard samples have superior flame retardent properties compared to wallboard treated with hexadecane, and 1-dodecanol. Silicone wax has a lower latent heat for the phase change as measured by differential scanning calorimetry (DSC) as compared with the other materials. To obtain better flammability properties of treated wallboard, the surface was coated with an epoxy paint containing aluminum trihydrate or magnesium hydroxide. Radiant Panel studies showed a major reduction in flame spread fac tor (Fs) and heat release factor (Q), compared to treated wallboard. However, NBS Smoke Chamber studies in the flaming and non-flaming mode did not show improvement in smoke generation for coated samples. NBS Smoke Cham ber results showed that silicone treated wallboard without any coating yielded lower smoke in the non-flaming mode over other energy storage materials, even when protected by a flame retardant paint. Dodecanol showed lower smoke pro duction in the flaming mode versus other samples.


Ingeniería ◽  
2018 ◽  
Vol 23 (2) ◽  
Author(s):  
Debrayan Bravo Hidalgo

Context: The energy and environmental panorama that our societies confront nowadays, demand for renew-able, clean and abundant sources of energy, not reliant on fossil fuels and detached from the geopolitical pressures the latter represent. In this scenario solar thermal energy arises as a viable and functional option. The main disadvantage of this emerging source of energy lies in the intermittent availability of solar radiation. Because of this difficulty, efficient processes for the storage of thermal solar energy becomes a highly relevant area of research. The aim of this paper is to present a survey on this topic.Method: A bibliographic review was carried out using the Scopus catalog. The search criteria for this purpose was defined using the following terms: solar+thermal+energy+storage+materials. This search pattern was applied to the title, abstracts and keywords of the contributions. Using the bibliometric tools of the citation database, the most cited documents were selected and the survey was developed.Results: A growing interest in the scientific community regarding this energy practice is evident starting from 2010. Characteristics, advances and trends in systems that use thermal energy storage materials are presented for sensible and latent heat, materials compound changeover phase, and finally thermo-chemical thermal storage materials.Conclusions: Improving the thermal conductivity of thermal storage materials is an important trend in current re-search. On the other hand, profitable practices for micro-encapsulated phase change materials and composite materials are analyzed. The optimization of thermo-physical properties as the melting point of thermal storage materials is explored with techniques such as eutectic mixtures and hydro-carbon chain length. Although the thermochemical materials are still in laboratory stage, they have a great potential as thermal storage materials in the future, given their large energy storage capacity per unit volume.


2016 ◽  
Vol 12 (4) ◽  
pp. 5-10
Author(s):  
L.F. Kozin ◽  
◽  
S.V. Volkov ◽  
A.V. Sviatogor ◽  
B.I. Daniltsev ◽  
...  

2019 ◽  
Author(s):  
Karolina Matuszek ◽  
R. Vijayaraghavan ◽  
Craig Forsyth ◽  
Surianarayanan Mahadevan ◽  
Mega Kar ◽  
...  

Renewable energy has the ultimate capacity to resolve the environmental and scarcity challenges of the world’s energy supplies. However, both the utility of these sources and the economics of their implementation are strongly limited by their intermittent nature; inexpensive means of energy storage therefore needs to be part of the design. Distributed thermal energy storage is surprisingly underdeveloped in this context, in part due to the lack of advanced storage materials. Here, we describe a novel family of thermal energy storage materials based on pyrazolium cation, that operate in the 100-220°C temperature range, offering safe, inexpensive capacity, opening new pathways for high efficiency collection and storage of both solar-thermal energy, as well as excess wind power. We probe the molecular origins of the high thermal energy storage capacity of these ionic materials and demonstrate extended cycling that provides a basis for further scale up and development.


2021 ◽  
Author(s):  
Yi He ◽  
Lei Xie ◽  
Shixiang Ding ◽  
Yujia Long ◽  
Xinyi Zhou ◽  
...  

Although the zinc oxide (ZnO) with wide distribution is one of the most attractive energy storage materials, the low electronic conductivity and insufficient active sites of bulk ZnO increase the...


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