Non-Equilibrium Thermal Fluctuation in Flow

Wei Li
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Abstract

Non-equilibrium thermal fluctuations present as wave elements in a flow. A wave element is the wave interface between two molecule groups with different temperature; it is generated by density difference which results from temperature difference. Tiny temperature differences always exist everywhere in a fluid. When the fluid is in motion, wave elements are generated among molecule groups. Wave motion and Brownian motion may be the two basic forms of motion of molecules in flow. Brownian motion is controlled by temperature. Wave elements are caused by temperature differences and the motion of the fluid. Wave motion maybe the physical mechanism of convective heat transfer. Non-equilibrium thermal fluctuations exist everywhere among molecule groups in a flow. The theoretical analysis presents that a wave element presents oscillatory behavior along the space and time dimensions simultaneously. The experimental evidence for wave elements can not be directly established at present scientific testing capability because the temperature difference of two molecule groups adjoining to each other in a flow is very small. A series of “enlarged size” experiments of fouling to show the behaviors of wave elements by tracing the movement of molecules are conducted. The experimental study of fouling presents that oscillatory interface along the space and time dimensions simultaneously exists between two densities due to motion of the fluids. The experimental and theoretical analyses are supported to each other.
流动中的非平衡热波动
非平衡热波动在流动中表现为波元。波元是两个温度不同的分子群之间的波界面;它是由温差引起的密度差产生的。微小的温差在流体中无处不在。当流体运动时,在分子群之间产生波元。波动和布朗运动可能是流动中分子运动的两种基本形式。布朗运动受温度控制。波元是由温差和流体的运动引起的。波动可能是对流换热的物理机制。非平衡热涨落在流动中的分子群之间无处不在。理论分析表明,波元同时沿空间和时间维度呈现振荡特性。由于在流动中相邻的两个分子群的温差很小,以目前的科学测试能力还不能直接建立波元的实验证据。进行了一系列“放大尺寸”的污垢实验,通过追踪分子的运动来显示波元的行为。污垢的实验研究表明,由于流体的运动,两个密度之间同时存在沿空间和时间维度的振荡界面。实验和理论分析相互支持。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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