动力传动系统配置对蝌蚪式三轮车操纵特性的影响

Nishanth Krishna, Raj Purohit, J.S. Rohit, Avasarala Venkata Srivatsa, Sharanbassappa S Patil
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摘要

卡尔·本茨制造的世界上第一辆汽车由一台单缸四冲程发动机提供动力,该发动机安装在三轮底盘的后部。从那时起,汽车工业发生了翻天覆地的变化,尤其是四轮汽车。如今,三轮车越来越受欢迎,因为它们比四轮车更省油,而且比两轮车更稳定。三轮车固有的成本优势也使他们更实惠。三角结构的三轮车在印度、印度尼西亚、巴基斯坦等几个亚洲国家被广泛使用。但由于前轮单一,在转弯时刹车是危险的。另外,蝌蚪式三轮车在转弯时制动更安全,并提供更好的转向控制。这种三轮车的配置也提供了更好的空气动力学设计。它们最近被欧洲国家用于个人移动和物流。为此,本文通过恒半径试验、加速试验和双变道试验等多种标准模拟试验,对蝌蚪式三轮车的稳定性进行了分析。这些测试提供了各种结果,如转向角、转向不足行为和纵向加速度,从而可以研究有关操纵特性的信息。通过对前轮驱动和后轮驱动的比较,得出了正确选择动力传动系统配置的结论。为了实现这一目标,使用MSC Adams Car通过组装各种子系统(即前悬架,后悬架,转向,制动,车身,动力系统和轮胎)创建了多体动力学模型。仿真结果与已有文献进行了比较,验证了模型的正确性。
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Effect of Drivetrain Configuration on Handling Characteristics of Tadpole Type Three-Wheeler
The world’s first automobile built by Karl Benz was powered by a single-cylinder four-stroke engine which was placed at the rear part of the three-wheeled chassis. Since then, the automobile industry has drastically evolved, especially four wheelers. Nowadays, three-wheelers are gaining popularity as they are more fuel efficient than four-wheelers while being more stable than twowheelers. The inherent cost advantages of a threewheeler also make them more affordable. Autorickshaws, having delta configuration, are extensively utilized in several Asian countries like India, Indonesia, Pakistan and others. But they are risky during braking in a turn due to a single front wheel. Alternatively, a tadpole type three-wheeler is safer in braking in a turn and provides better steering control. This three-wheeler configuration also provides better aerodynamic design. They have been recently adopted in European countries for personal mobility and logistics. Therefore, the paper analyses the stability of a Tadpole type three-wheeler based on various standard simulation tests such as Constant Radius test, Acceleration test and Double Lane Change test. These tests provide various results such as Steering Angle, Understeer behaviour and Longitudinal Acceleration where information regarding handling characteristics can be studied. A comparison between Front Wheel Drive and Rear Wheel Drive configuration is carried out to arrive at a conclusion for selecting the right drivetrain configuration. In order to achieve this, a Multibody Dynamics model is created using MSC Adams Car by assembling the various subsystems namely Front Suspension, Rear Suspension, Steering, Brakes, Body, Powertrain and Tires. Simulation results have been compared with existing literature for the verification of the model.
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