确定和正确理解谐波振动中的阻尼系数可以减少计算量,增加设计人员的知识

Thanh Duc Le, Le Thi Thu Thuy, V. Nam
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引用次数: 0

摘要

阻尼系数是工程中的一个重要问题。目前,科学使用计算机来确定这个系数。由于输入数据相当多,求解起来很复杂。因此,人工计算是一个难以克服的挑战。本文提出了一种确定阻尼系数的有价值的理论,简化了计算机处理的数据输入过程。因此,该方法节省了精力和时间。在理论力学中,确定阻尼系数是非常困难的。到目前为止,它通常是通过实验来确定的。因为所有的测量方法都有误差,所以测定更加困难。当实际需要测量阻尼参数的对象数量较大时,计算和处理过程更加费力。文章中使用的数学和物理理论已经存在了很长时间。然而,这些理论以一种全新的方式应用于问题,从根本上解决了问题。计算量越大,包含阻尼因素越多,该理论越有意义。该方法还阐明了阻尼系数是一个依赖于刚度和质量的参数,而不是谐波振荡中的一个独立参数。这些额外的知识也有助于在科学和实践中理解和应用该参数的数学和物理性质。同时,也开辟了全新的研究方向。
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Determining and Correctly Understanding the Damping Coefficient in Harmonic Oscillation Reduces the Calculation Volume and Modifies Knowledge for the Designer
The damping coefficient in engineering is an important issue. Currently, science uses computers to determine this coefficient. With a considerable amount of input data, solving is complicated. Therefore, manual calculation is an insurmountable challenge. This paper presents a valuable theory to determine the damping coefficient, simplifying the data entry process for processing through the computer. Thereby, the method saved effort and time. Determining the damping coefficient in theoretical mechanics is very difficult. So far, it has often been determined experimentally. Because all measurement methods have errors, the determination is even more difficult. When the number of objects that need to measure damping parameters in practice is large, the calculation and processing process takes more effort. The mathematical and physical theory used in the article has been around for a long time. However, these theories were applied to the problem in a completely new way and solved the problem fundamentally. The larger the calculation volume, the more damping included factors and the more meaningful this theory is. The approach also clarifies that the damping coefficient is a parameter that depends on stiffness and mass rather than an independent parameter in harmonic oscillation. This additional knowledge also contributes to understanding and applying this parameter's mathematical and physical nature in science and practice. At the same time, it also opens up completely new research directions.
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