<th id="5nh9l"></th><strike id="5nh9l"></strike><th id="5nh9l"><noframes id="5nh9l"><th id="5nh9l"></th><strike id="5nh9l"></strike>
<progress id="5nh9l"><noframes id="5nh9l"><th id="5nh9l"><noframes id="5nh9l">
<th id="5nh9l"></th> <strike id="5nh9l"><noframes id="5nh9l"><span id="5nh9l"></span>
<progress id="5nh9l"><noframes id="5nh9l"><span id="5nh9l"><noframes id="5nh9l"><span id="5nh9l"></span><strike id="5nh9l"><noframes id="5nh9l"><strike id="5nh9l"></strike>
<span id="5nh9l"><noframes id="5nh9l">
<span id="5nh9l"><noframes id="5nh9l">
<span id="5nh9l"></span><span id="5nh9l"><video id="5nh9l"></video></span>
<th id="5nh9l"><noframes id="5nh9l"><th id="5nh9l"></th>
<progress id="5nh9l"><noframes id="5nh9l">

基于SIMP?安定的高速列車組合式座椅底架輕量化設計與分析

Lightweight design and analysis of a combined seat bracket for a high-speed train based on SIMP?shakedown

  • 摘要: 在高速列車座椅輕量化設計中,傳統設計方法所普遍采用的結構優化技術僅以結構剛度或局部應力水平為目標,無法得到交變載荷作用下效率最高的結構構型. 列車座椅在實際使用中受到軌道與應用場景的影響,除主結構需具備一定強度外,其關鍵部件也要求在交變載荷作用下不發生明顯變形. 在此背景下,提出了一種采用固體各向同性懲罰微結構插值 (SIMP) 算法對主結構進行以剛度為目標的拓撲優化,同時以安定直接法對關鍵部件進行以安定強度為目標的參數優化一體化的設計與分析方法. 采用所提出的方法對高速列車組合式座椅底架進行了優化,取得了顯著成果. 優化后的座椅底架在性能滿足要求的前提下,底架主結構減重17%、L型連接件承載交變載荷的結構效率提高23%. 所提出的研究方法及結果對于同類結構的輕量化設計具有重要意義.

     

    Abstract: Next-generation high-speed trains are required to achieve higher speeds, enhanced safety, environmental friendliness, and cost-effectiveness. To meet these technical goals, reducing the structural weight to a certain extent is crucial. A standard seat has the following six components: a backrest, a seat cushion, two side and middle armrests, a rear pedal joined with front and rear tables, and a seat bracket. Among these components, the seat bracket, which connects the seat to the carriage, acts as the main load-bearing structure. In the current lightweight design of seat brackets in high-speed trains, the traditional approach is based on structural optimization techniques, often size or shape optimization, with the goal of achieving a desired global stiffness or local stress level, and the optimized structural configuration does not have the best performance under time-varied loads. Thus, it would show a conservative approach, inefficient material utilization, and difficulties in achieving an increasingly stringent lightweight design. On the one hand, the seat bracket’s main structure must have sufficient strength; on the other hand, the key components must not deform substantially under alternating loads because the work conditions under the operation are affected by the track and the application scenarios. Motivated by this, we propose a design and analysis method that integrates SIMP (solid isotropic microstructure with penalization) based topology optimization and direct method (DM) based parameter optimization techniques, where the former applies to the main structure and considers maximizing structural stiffness as a design objective with a prescribed volume fraction constraint and the latter applies to key components, that is, the L-shaped connector, and considers the shakedown limit as the design objective, where the corresponding parametric model is developed and the optimal result is obtained by the genetic algorithm (GA). Using this method, the main load-bearing pathway can be determined and geometric reconstruction design can be performed based on this pathway for the main structure. Compared with the original design, a weight reduction of 17% of the optimized assembled seat bracket is achieved for high-speed trains while ensuring that the mechanical performance meets the requirements. For DM-based parameter optimization design, the load-bearing capacity of the shakedown is increased by 7.8%, and structural efficiency is improved by 23%, with a 12.5% reduction in the material of the L-shaped connector. This study may provide valuable guidance for the lightweight design of similar structures under repeated variable loadings.

     

/

返回文章
返回
<th id="5nh9l"></th><strike id="5nh9l"></strike><th id="5nh9l"><noframes id="5nh9l"><th id="5nh9l"></th><strike id="5nh9l"></strike>
<progress id="5nh9l"><noframes id="5nh9l"><th id="5nh9l"><noframes id="5nh9l">
<th id="5nh9l"></th> <strike id="5nh9l"><noframes id="5nh9l"><span id="5nh9l"></span>
<progress id="5nh9l"><noframes id="5nh9l"><span id="5nh9l"><noframes id="5nh9l"><span id="5nh9l"></span><strike id="5nh9l"><noframes id="5nh9l"><strike id="5nh9l"></strike>
<span id="5nh9l"><noframes id="5nh9l">
<span id="5nh9l"><noframes id="5nh9l">
<span id="5nh9l"></span><span id="5nh9l"><video id="5nh9l"></video></span>
<th id="5nh9l"><noframes id="5nh9l"><th id="5nh9l"></th>
<progress id="5nh9l"><noframes id="5nh9l">
259luxu-164