Quantum mechanics applied to the dynamic assessment of a cluster of water particles in sprinkler irrigation

被引:0
|
作者
D. De Wrachien
G. Lorenzini
机构
[1] University of Milan,Department of Agricultural Engineering
[2] University of Parma,Department of Industrial Engineering
来源
Journal of Engineering Thermophysics | 2012年 / 21卷
关键词
Water Droplet; Sprinkler Irrigation; Engineer THERMOPHYSICS; Quantum Trajectory; Bohmian Trajectory;
D O I
暂无
中图分类号
学科分类号
摘要
The problem of liquid droplets crossing a gas is common to many scientific and technical issues and, in particular, also to sprinkler irrigation; thus, when designing a sprinkler irrigation system, it is essential to fully understand how droplets mechanically behave during their flight and how a mathematical modeling can cope with all the variables affecting one another during such a complicate thermal fluid dynamic process. In the thematic scientific literature, the classic approach has been recently challenged by an alternative quantum one, provided in two different formulations referring to a single droplet dynamics: one focusing on a full description of the process (time-dependent Schrödinger equation); the other focusing on the discovery of an easier-to-use method (scale relativity theory); both allowing for a broader microscopical insight of the actual mechanics of single water droplets in sprinkler irrigation. The present contribution is aimed at developing the quantum procedure extending it to a cluster of water particles, as one droplet during its aerial flight conditions the others, which are in its vicinity and vice versa.
引用
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页码:193 / 197
页数:4
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