Simulation and theoretical Analyses of the Impact of Velocity, Pressure and Kinetic Energy during Damping in a Shock absorber

P. Sob, M. Pita
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引用次数: 1

Abstract

The current global crisis of climate change has forced engineers to redesigned automotive cars that will require less fuel combustion and burning of gases to reduced pollution. This has seen energy optimization with less emission control in the automotive industries. This research study presents a simulation of the major parameters for energy regeneration in automotive hydraulic shock absorber during car operation. This involves the simulation of major parameters during damping which impacts the oscillatory motion of the car during motion into rotary motion. In the simulation process, the influence of hydraulic dynamic flow, velocity, pressure and kinetic energy during damping was taken in to consideration during simulation. Parameter such as the bulk fluid modulus, viscous friction torque, and compressive flow in fluid dynamics, motor efficiencies, and torque constant coefficients were simulated theoretically using the theory of stochastic mechanics. It was also shown that the resistance also caused a change in geometry between the working cylinder and reserve cylinder when fluid experiences a change in velocity due to turbulence. It was also shown that the fluid thickness in the damper during damping created turbulent flow and eddies which moves randomly and also affected the energy harvesting process. The drop is pressure during damping is also proportional to the square of velocity the drop in pressure due to the increase in average speed during damping and this can be related to the transfer of Kinetic Energy from the random molecular motion to stochastic mean motion
减振器阻尼过程中速度、压力和动能影响的仿真与理论分析
当前的全球气候变化危机迫使工程师们重新设计汽车,以减少燃料燃烧和气体燃烧,以减少污染。这使得汽车行业在减少排放控制的情况下实现了能源优化。对汽车液压减振器运行过程中能量再生的主要参数进行了仿真研究。这包括在阻尼期间的主要参数的仿真,阻尼影响汽车在运动到旋转运动期间的振荡运动。仿真过程中考虑了阻尼过程中液压动流量、速度、压力和动能的影响。利用随机力学理论对流体力学中的体积流体模量、粘性摩擦力矩、压缩流量、电机效率、转矩常数系数等参数进行了理论模拟。还表明,当流体由于湍流而发生速度变化时,阻力也会引起工作缸和备用缸之间的几何变化。在阻尼过程中,阻尼器内流体的厚度会产生湍流和涡流,这些湍流和涡流是随机运动的,也会影响能量的收集过程。在阻尼期间,压力的下降也与速度的平方成正比,在阻尼期间,由于平均速度的增加,压力的下降,这可以与动能从随机分子运动到随机平均运动的转移有关
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