首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >Braking Efficiency and Stability of Chassis Braking System of Combine Harvester: The Theoretical Derivation and Virtual Prototype Simulation
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Braking Efficiency and Stability of Chassis Braking System of Combine Harvester: The Theoretical Derivation and Virtual Prototype Simulation

机译:混合收割机底盘制动系统的制动效率和稳定性:理论推导和虚拟原型模拟

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摘要

With the advancement of agricultural mechanization, the safety of agricultural vehicles has aroused extensive concern. However, conventional methods evaluate the performance of the combine harvesters in a laborious and inaccurate filed-test way. It is still a challenge to evaluate their performance in a theoretical derivation-based simulation way. Here, we accurately derive the braking model of the combine harvester, which provides a guidance for further braking simulation. Firstly, a four-wheel braking system was designed and theoretically checked. Secondly, the virtual prototype of the chassis braking system was established in ADAMS, in consideration of the complicated contact characteristics between the tire and the road and between the friction pad and the brake disk. Finally, simulation experiments of braking efficiency and directional stability were carried out under different braking conditions. By this means, we find a novel effective yet simple way to optimize the braking efficiency as well as the sufficient braking stability of combine harvesters. The results show that braking efficiency would be improved with stronger braking force, lower initial braking velocity, and lighter weight of the combine harvester. Compared with straight-line braking, steering braking shows lower braking efficiency and less inclination of rear wheel bounce under the same braking conditions. As for braking directional stability, the lateral slippage would be increased with the locking of rear wheels, higher driving speed, or lower road adhesion coefficient. In addition, the simulation results are in agreement with the theoretical results, proving the validity of the virtual prototype simulation. Overall, other than traditional filed-test methods, our method provides an effective yet simple way for designing and evaluating the chassis braking system of combine harvesters.
机译:随着农业机械化的进步,农业车辆的安全性引起了广泛的关注。然而,常规方法评估组合收割机以艰苦且不准确的提交的测试方式的性能。以基于理论推导的模拟方式评估其性能仍然是一项挑战。在这里,我们准确地推出了联合收割机的制动模型,为进一步制动模拟提供了指导。首先,设计了一个四轮制动系统和理论上检查。其次,考虑到轮胎和道路之间的复杂接触特性以及摩擦垫和制动盘之间的复杂接触特性建立了底盘制动系统的虚拟原型。最后,在不同的制动条件下进行制动效率和方向稳定性的模拟实验。通过这意味着,我们发现一种新颖的有效但简单的方法来优化制动效率以及组合收割机的充分制动稳定性。结果表明,通过更强的制动力,较低的初始制动速度和联合收割机的较轻重量,可以提高制动效率。与直线制动相比,转向制动在相同的制动条件下显示出较低的制动效率和后轮反弹的倾斜度。关于制动方向稳定性,随着后轮的锁定,较高的驱动速度或低道路粘附系数,横向滑动将增加。此外,仿真结果与理论结果一致,证明了虚拟原型模拟的有效性。除了传统的提交试验方法之外,我们的方法还提供了一种有效但简单的设计方法,用于设计和评估组合收割机的底盘制动系统。

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