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个人信息Personal Information
副教授
博士生导师
硕士生导师
主要任职:Associate professor
性别:女
毕业院校:美国密苏里罗拉大学
学位:博士
所在单位:力学与航空航天学院
学科:计算力学. 岩土与环境力学. 工程力学
办公地点:工程力学系系楼324房间
Room 324 Department of Eningeering Mechanics
联系方式:Email: zhaoh@dlut.edu.cn 移动电话:13898486196 QQ: 859471135
电子邮箱:zhaoh@dlut.edu.cn
交变磁场对水及生理盐水过冷过程的影响
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发表时间:2022-10-04
发表刊物:高校化学工程学报
卷号:27
期号:2
页面范围:205-209
ISSN号:1003-9015
摘要:In order to investigate how the magnetic field influences the supercooling of water and physiological saline, a test bench which can monitor magnetic field intensity and supercooling in real time was designed. 50 Hz alternating magnetic field with varying intensity from 0 G to 64 G was applied. 20 mL tap water or physiological saline was used as the test sample. Results show that the alternating magnetic field can, to some extent, reduce the possible lowest unfrozen temperature and increase supercooling. Besides, the supercooling increase of water and magnetic field intensity constitute a linear function relation with a supercooling increase about 2.06℃ under the largest magnetic field intensity (64 G), while the relation between the physiological saline and magnetic field intensity is in the form of three-order polynomial function with a supercooling increase about 1.73℃ under the largest magnetic field intensity (64 G). Compared with physiological saline, water has a larger supercooling increase under the same alternating magnetic field. The duration time of supercooling for water and physiological saline is prolonged, which evens the temperature within the test sample and delays the nucleation process. On the basis of the above phenomena, it was concluded that alternating magnetic field increases the supercooling of both water and physiological saline, and prolongs the supercooling duration time. This effect was thought to be related to the formation of water molecular hydrogen bonds.
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