4.7 Article

Viscosity, surface tension, and density of binary mixtures of the liquid organic hydrogen carrier diphenylmethane with benzophenone

期刊

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY
卷 47, 期 35, 页码 15789-15806

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijhydene.2022.03.051

关键词

Benzophenone; Density; Diphenylmethane; Liquid organic hydrogen carrier; Surface tension; Viscosity

资金

  1. Bavarian Ministry of Economic Affairs, Regional Development and Energy

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The thermophysical properties of binary mixtures of diphenylmethane with benzophenone were investigated. It was found that the addition of benzophenone increased the density, surface tension, and viscosity of the mixture. The viscosity showed a distinct change in the temperature dependence during the transition from the liquid to the supercooled liquid state. Additionally, water dissolved in benzophenone had a significant impact on the viscosity and surface tension.
The liquid organic hydrogen carrier (LOHC) diphenylmethane may react to benzophenone in the presence of air, especially at elevated temperatures. Therefore, information about the influence of benzophenone added to diphenylmethane on process-relevant thermophysical properties is required. In the present contribution, the liquid viscosity, surface tension, and liquid density of binary mixtures of diphenylmethane with benzophenone are determined between (283 and 573) K using complementary experimental methods. Investigations on the surface tension by the pendant-drop method and surface light scattering indicate molecular orientation effects of benzophenone at the vapor-liquid interface. With increasing benzophenone content, an increase in density, surface tension, and especially viscosity is found. For the latter property, a distinct change in the temperature dependence is observed at the transition from the liquid to the supercooled liquid state. Furthermore, water dissolved in benzophenone causes changes within 15% and 3% relative to the viscosity and surface tension of benzophenone, respectively. (C) 2022 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.

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