外文翻译-基于ADAMS仿真软件的液压支架四连杆机构的优化设计.doc
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- 外文 翻译 基于 ADAMS 仿真 软件 液压 支架 连杆机构 优化 设计
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1、外文翻译:Optimzation Design of Four-bar Linkage of Hydraulic Support Based on ADAMSAbstract-In designing a large inclined angle hydraulic support, the structure characteristics of four-bar linkage is presented, and ADAMS software is applied to four-bar linkage modeling and simulation. In order to attain
2、 optimal results, parameterized modeling and optimization is achieved, and the design results meets the practical requirements very well. By means of this virtual design method, the errors can be reduced and design efficiency canbe improved effectively. Keyword-hydraulic support; four-bar linkage; o
3、ptimization design; ADAMS 1. Introduction Four-bar linkage is one of the most important components of shield-type hydraulic support or chock-shield-type hydraulic support. Its function has two aspects:One, as the support legs rises or lowers, the leading edge of roof beam moves up and down nearly ve
4、rtically, thus maintaining a nearly constant unsupported distance between the coal wall and the leading edge of roof beam.This is a feature that is widely considered most desirable for good roof control. Second, it makes the support to be capable of bearing larger horizontal load. In designing of a
5、large inclined angle hydraulic support, optimization of the four-link design is an important work. The size of four-bar linkage directly influences the performance and status of hydraulic support. In the traditional four-bar linkage design, BASIC program is used to compute , but the results often ca
6、n not meet the design requirements and could not obtain the optimal solution. Currently, ADAMS software is more and more widely applied in the mechanical dynamics field . So, the paper makes use of the ADAMS software to model and simulate the four-bar linkage in order to achieve the optimal design s
7、olution. 2. Dimension calculation of four-bar linkage 2.1. Structure characteristics of four-bar linkage(1)When the hydraulic support rises from the minimal to the maximal height, as shown in Fig. 1, the leading edge of roof beam the maximal horizontal movement distance of the leading edge of roof b
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