The Effect of Steel Reinforcement Number on the Resistance of Rail Sleepers of Passenger Railway

Dhani Ryandhi, A. I. Ismail, Faisal Manta
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Abstract

The train is a mode of transportation that offers characteristics and advantages because of its ability to transport passengers and goods in bulk, efficiently, sparingly on space use, and safely. The comfort and safety of the train cannot be separated from the structure of the train and the existing rail structure. A railway system generally consists of train buildings (carriages) and railroads. The rail structure consists of the rail itself, under which there are railway sleepers and a foundation or ballast. The sleeper serves as the foundation on which the rail rests. The materials used for sleepers are of various kinds, such as wood, steel, or reinforced concrete. Concrete or reinforced concrete with tension steel helps receive a load from the train tracks and wheels. Therefore, the sleepers can withstand impact loads. This study aims to analyze the effect of impact loads and sleeper reinforcement variations on railway sleepers’ resistance. Finite Element Analysis (FEA) is used to model and analyze the sleeper performance after impact loading. The variety of reinforcement used is 4, 6, and 8 rods with 7-type formations. The results that can be obtained are in the form of stress, load, and displacement values. The value of the stress on the whole system is 1860 MPa. The maximum load value is 245.33 kN for variations of 6 reinforcements formations 1. The displacement value is 14.03 mm. The simulation results and graphs show that the correct arrangement and number of reinforcements can increase the resistance of the railway sleeper.
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钢筋配数对客运铁路轨枕阻力的影响
火车是一种运输方式,具有大量运输乘客和货物、高效、节省空间和安全的特点和优势。列车的舒适性和安全性离不开列车本身的结构和现有的轨道结构。铁路系统一般由火车建筑(车厢)和铁路组成。铁路结构由铁路本身组成,下面有铁路枕木和基础或压舱物。轨枕作为钢轨的基础。用于枕木的材料种类繁多,如木材、钢材或钢筋混凝土。带有张力钢的混凝土或钢筋混凝土有助于承受来自火车轨道和车轮的负荷。因此,轨枕可以承受冲击载荷。本文旨在分析冲击荷载和轨枕配筋变化对铁路轨枕阻力的影响。采用有限元分析(FEA)对冲击载荷作用下的轨枕性能进行建模和分析。使用的钢筋种类为4、6和8杆,具有7种类型的结构。可以得到的结果是应力、载荷和位移值的形式。整个系统的应力值为1860 MPa。6种加固形式变化时,最大荷载值为245.33 kN。位移值为14.03 mm。仿真结果和图形表明,正确的加筋布置和加筋数量可以增加轨枕的阻力。
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