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Strength and Resistivity Properties of Fouled Ballast.

机译:污染的镇流器的强度和电阻率特性。

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摘要

Maintaining rail track in good condition is essential for ensuring the overall performance and safety of railway operations. Track support, structural integrity, and effectiveness of the foundation structure depend on the characteristics and performance of the ballast and sub-ballast layers. The ballast of the rail track may be fouled due to intrusion of fine particles from outside the ballast as well as particles produced within the layer due to breakage over time. This fouling can cause track support degradation and permanent settlement. Studies show that about one third of the total freight operation cost is invested for the track maintenance. Therefore, methods for locating and characterizing fouling that are faster, more effective, and less expensive would be valuable to the industry. Since there are limited methods for fouling detection and these methods are time consuming, tedious and require significant manpower; a simple approach of identification of ballast fouling within a few minutes at low cost is discussed in this report.;Stone dust from ballast degradation caused by wear and tear of the ballast; intrusion of coal dust due to spillage from train cars; and extrusion of fine particles from the subgrade are the major contributors to ballast fouling. These particles have the capability to retain moisture and hence reduce the friction between ballast particles. Previous studies show that the fouled ballast electrical resistivity and hydraulic conductivity have certain relationships that can be used to define the amount of fouling of the ballast. The fouling agents retain moisture which acts as the medium of electrical conductivity, since there is almost no flow of electricity through the air voids or solid ballast particles of the ballast layer. So, it is proposed that ballast fouling be estimated by measuring the resistivity of the ballast. Static modulus, resilient modulus and California bearing ratio (CBR) were also investigated to determine the impact of the ballast fouling on strength properties.;A vertical probe was designed at the University of Kansas (KU); Civil, Environmental and Architectural Engineering department to measure the resistivity of the fouled ballast. The probe was tested using both horizontal and vertical configurations and worked well for estimating resistivity using the fall of potential method. Forty-eight test samples of fouled ballast were prepared in a box of almost 11 cubic feet size with different degrees of fouling and with various moisture contents. Resistivity tests using a Wenner 4 probe array in horizontal alignment and fall of potential method with a vertical probe and vertical alignment were carried out. Also, the light weight deflectometer (LWD) test for the measurement of resilient modulus, static plate loading test for determination of static modulus, and dynamic cone penetration (DCP) test for California bearing ratio (CBR) estimation were carried out.;The results from the vertical probe were consistent on most of the test samples when the Wenner 4 point array method. A boundary moisture content---termed as optimum moisture content for resistivity (OMCR) was determined. The OMCR values were 6% for subgrade soil fouled ballast, 5% for Gardner track ballast dust fouled ballast, and 5.5% of coal dust fouled ballast. The resistivity of the fouled ballast can be estimated for moisture contents greater than OMCR. The resilient modulus, static modulus and the CBR of the ballast decreased significantly for moisture contents greater than OMCR. Static and resilient moduli peaked near the OMCR for all types of fouling while the CBR was constant to slightly increasing with moisture content up to the OMCR.
机译:保持良好的轨道状况对于确保铁路运营的整体性能和安全至关重要。轨道支撑,结构完整性和基础结构的有效性取决于压载物和次压载物层的特性和性能。轨道道的道ast可能会因道the外部的细小颗粒以及随时间的破裂而在层内产生的细颗粒进入而受到污染。这种结垢可能导致履带支座退化和永久性沉降。研究表明,货运总运营成本的约三分之一用于轨道维护。因此,更快,更有效且更便宜的用于定位和表征结垢的方法对工业来说将是有价值的。由于用于结垢检测的方法有限,并且这些方法耗时,繁琐且需要大量人力;本报告讨论了一种在几分钟之内以低成本识别压载物结垢的简单方法。压载物的磨损造成的压载物降解产生的石粉尘;由于火车车厢溢出而侵入煤尘;路基中细颗粒的挤出和压实是压载物结垢的主要因素。这些颗粒具有保持水分的能力,因此减少了压载颗粒之间的摩擦。以前的研究表明,结垢的镇流器的电阻率和水力传导率具有一定的关系,可以用来确定镇流器的结垢量。由于几乎没有电流流过压载层的气隙或固体压载颗粒,结垢剂保留了作为导电介质的水分。因此,建议通过测量镇流器的电阻率来估计镇流器结垢。还研究了静态模量,弹性模量和加利福尼亚承载比(CBR),以确定压载物结垢对强度性能的影响。;堪萨斯大学(KU)设计了一种垂直探头;土木,环境和建筑工程部门测量被污染的压载物的电阻率。使用水平和垂直配置对探针进行了测试,并使用电势下降法很好地估算了电阻率。在几乎11立方英尺大小的盒子中制备了四十八个被污染的压载物的样品,它们具有不同的污染程度和不同的水分含量。使用Wenner 4探针阵列在水平方向上进行电阻率测试,并使用垂直探针和垂直方向上的电位下降法进行测试。此外,还进行了用于测量弹性模量的轻型偏折仪(LWD)测试,用于确定静态模量的静态板载荷测试以及用于加利福尼亚轴承比(CBR)估算的动态圆锥穿透(DCP)测试。使用Wenner 4点阵列方法时,垂直探针上的大部分样品均保持一致。确定了边界水分含量-称为电阻率的最佳水分含量(OMCR)。路基土壤结垢镇流器的OMCR值为6%,Gardner道ball镇流粉尘结垢的镇流器的5%,煤粉结垢镇流器的OMCR值为5%。当水分含量大于OMCR时,可以估算出结垢的镇流器的电阻率。当水分含量大于OMCR时,镇流器的弹性模量,静态模量和CBR显着降低。对于所有类型的结垢,静态和弹性模量在OMCR附近达到峰值,而CBR随水分含量增加到OMCR恒定不变而略有增加。

著录项

  • 作者

    Neupane, Madan.;

  • 作者单位

    University of Kansas.;

  • 授予单位 University of Kansas.;
  • 学科 Civil engineering.
  • 学位 M.S.
  • 年度 2015
  • 页码 177 p.
  • 总页数 177
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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