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Optimized Terminal Design for UFT Systems in Integrated Subterranean Pipeline Infrastructure

机译:集成地下管道基础设施中UFT系统的优化终端设计

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This study investigates a schematic design for Underground Freight Transportation (UFT) system terminals with utilization of pipeline infrastructure. The initial focus of this study was the operational and construction considerations within pipelines proposed to be constructed under the highways. The UFT construction considerations, cut-and-cover versus tunneling methods, are examined and compared along three routes. This system works through underground pipelines, and the project proposed a 250-mile tunnel between the Port of Houston (POH) and a distribution center South of Dallas (SOD) and two other routes, a 4-mile line at the Laredo border as well as a line between the Port of Houston and a satellite inland terminal 15 miles away. The UFT line was controlled by the power requirements of the Linear Induction Motors (LIM) to boost fully loaded vehicles (gondolas)/capsules at the design operating speed as well as to address the safety requirements. The UFT tunnel is designed to transfer three load sizes of freights as Standard Shipping Containers, Crates, and Pallets. The schematic design of the UFT Terminal for those items is presented based on these three types of gondolas/capsules. The objective of this paper is to show how to develop a schematic design for the UFT system terminals for the three freight sizes considering. This study covers the UFT operational parameters necessary for operating the system for a 24-hour workday. Three schematic terminal designs are presented- one for each type of load, namely for standard shipping containers, crates, and pallets. Given the needed 250-mile UFT line between Houston and Dallas, this paper will show a line capacity of 2,880 containers/day/direction which would require 1,334 vehicles circulating in the line at 30-second headways. Also, the corresponding numbers of vehicles for the 15-mile Houston to inland satellite port and for the 4-mile Laredo border line are 80 and 22 vehicles, respectively. These lines would also have a capacity of 2,880 containers/day/direction for 30-second minimum headways. To satisfy these design needs, this study will present the case for all three schematic design solutions within the pipeline routes.
机译:这项研究调查了利用管道基础设施的地下货运(UFT)系统终端的示意图设计。这项研究的最初重点是拟在高速公路下建造的管道内的运营和建设考虑因素。沿着三个路线检查并比较了UFT施工考虑因素,即“挖开式”与“隧道式”方法。该系统通过地下管道工作,该项目建议在休斯顿港(POH)和达拉斯南部的配送中心(SOD)之间建立一条250英里的隧道,以及另外两条路线,即在拉雷多边境的一条4英里长的线路作为休斯顿港和15英里外的卫星内陆码头之间的线路。 UFT生产线受线性感应电动机(LIM)的功率要求控制,以设计运行速度提升满载车辆(吊船)/舱室,并满足安全性要求。 UFT隧道的设计目的是转移三种载荷大小的货物,例如标准运输集装箱,板条箱和托盘。基于这三种类型的吊船/胶囊,介绍了用于这些物品的UFT终端的示意图设计。本文的目的是说明如何针对三种货运量,为UFT系统终端开发原理图设计。这项研究涵盖了在24小时工作日中操作系统所需的UFT操作参数。提出了三种示意图的终端设计-一种用于每种类型的负载,即用于标准运输集装箱,板条箱和托盘的设计。考虑到休斯敦和达拉斯之间需要250英里的UFT线路,本文将显示2880个集装箱/天/方向的线路容量,这需要1,334辆车辆以30秒的车距在线路中循环。另外,休斯顿至内陆卫星港15英里和拉雷多4英里边界线的相应车辆数分别为80辆和22辆。这些生产线还将具有2880个集装箱/天/方向的容量,至少可以航行30秒。为了满足这些设计需求,本研究将介绍管线路线内所有三个原理图设计解决方案的案例。

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