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81.
上海市某隧道旁通道是第一个参照《旁通道冻结法融沉注浆加固建设指导意见》完成自然解冻融沉注浆的旁通道。事实证明,其所有测点的沉降量均在控制范围内,《旁通道冻结法融沉注浆加固建设指导意见》是科学的。介绍了该旁通道的注浆加固施工工艺及加固效果。根据加固效果分析提出进行有效融沉注浆的建议:在开始融沉注浆的第一个月内应增加注浆频率和注浆量,可有效控制最终的沉降量;对距离旁通道轴线较近的隧道区域应进行强化注浆,可有效减小隧道的最终沉降量。  相似文献   
82.
从维护和管理的角度出发,对影响蓄电池寿命的因素进行了分析,对如何提高电池的使用寿命进行了探讨,并根据日常的一些维护经验,对蓄电池的维护提出了建议。  相似文献   
83.
富水蚀变岩大断面高速铁路隧道开挖大变形控制技术   总被引:1,自引:0,他引:1  
以富水花岗岩侵入蚀变带区域高速铁路隧道建设为背景,对隧道开挖围岩变形控制技术进行研究。运用隧道工程理论、数值模拟和现场监测等技术与方法,提出了从全断面开挖法、台阶法、CD法到CRD法的安全度逐渐增加的隧道开挖方法,确定了避免富水花岗蚀变岩进一步应变软化和力学参数弱化的隧道开挖支护结构形式及其参数,得出了适当加大预留变形量结合衬砌紧跟的施工工艺。实践表明,按研究出的开挖方法和支护方案进行施工,可以有效控制隧道围岩大变形而使变形快速收敛,能够减少侵限处理工作量,并确保富水花岗蚀变岩隧道开挖时围岩稳定和地下工程结构安全。  相似文献   
84.
深圳地铁“建设-移交”(BT)模式创新和适应性分析   总被引:1,自引:1,他引:0  
基于深圳地铁建设资金状况、质量特点、工期要求、国内潜在BT(建设-移交)承办方资金实力和施工能力、监理和设计单位的履约能力等因素,深圳地铁在传统BT模式上创新,在回购时间点、承办人角色、BT与非BT工程划分、监理与设计管理等方面进行有益的尝试,开创"投融资+设计施工总承包+回报"的深圳地铁BT模式,并取得实践上的成功。  相似文献   
85.
激光堆焊工艺在修造领域的应用现状及发展趋势   总被引:1,自引:0,他引:1  
本文详细阐述了激光堆焊工艺在工业修造领域的应用现状及发展趋势,介绍了激光束的能源、输送和聚焦系统、堆焊材料及激光设备。重点说明了其在修造领域的应用工艺。  相似文献   
86.
地铁出入口大跨度接口梁数值分析   总被引:1,自引:0,他引:1  
建立空间计算模型对地铁出入口大跨度接口梁的内力等进行数值分析,提出接口梁空间计算模型及其内力计算结果,对比传统平面简化计算模型的内力结果,得知空间计算模型结果更接近接口梁的真实受力状态,接口梁的扭矩不是受力的控制性因素,而接口梁的弯矩接近弹性支座梁的弯矩。  相似文献   
87.
宁波南站上跨深基坑铁路便桥结构形式为国内首创,在便桥下深基坑开挖的同时,须保证沿海铁路列车绝对安全平稳的通行,安全监测至关重要。本文根据该工程的现场实际和结构的特点,拟定了桥梁静态监测的具体实施方案、数据分析与处理模式,研究了该桥梁变形的规律,及时提供监测分析意见,为深基坑安全和信息化施工提供指导,为铁路便桥安全运营提供保障。这对今后类似的桥梁施工监测有一定的指导和借鉴意义。  相似文献   
88.
The use of high-technology systems in the transport sector has increased steadily over recent years. This paper outlines the development of vehicle monitoring and control systems and their use in the public transport arena. The paper shows how one such system, that operated by Datatrak Ltd., has been adapted to provide a real time passenger information system for the RiverBus Partnership in London.
  • 1 The RiverBus service described in this article ceased operation in August 1993. The collapse of the RiverBus Partnership followed the financial difficulties surrounding Olympia and York, developers of Canary Wharf in London Docklands.
  • Passenger use and perception of the system is evaluated, based on surveys of RiverBus users. This provides an evaluation of the system, and highlights the importance of introducing such systems based on user information needs and as part of the total marketing package.  相似文献   
    89.
    The behavior of a ship encountering large regular waves from astern at low frequency is the object of investigation, with a parallel study of surf-riding and periodic motion paterns. First, the theoretical analysis of surf-riding is extended from purely following to quartering seas. Steady-state continuation is used to identify all possible surf-riding states for one wavelength. Examination of stability indicates the existence of stable and unstable states and predicts a new type of oscillatory surf-riding. Global analysis is also applied to determine the areas of state space which lead to surf-riding for a given ship and wave conditions. In the case of overtaking waves, the large rudder-yaw-surge oscillations of the vessel are examined, showing the mechanism and conditions responsible for loss of controllability at certain vessel headings.List of symbols c wave celerity (m/s) - C(p) roll damping moment (Ntm) - g acceleration of gravity (m/s2) - GM metacentric height (m) - H wave height (m) - I x ,I z roll and yaw ship moments of inertia (kg m2) - k wave number (m–1) - K H ,K W ,K R hull reaction, wave, rudder, and propeller - K p forces in the roll direction (Ntm) - m ship mass (kg) - n propeller rate of rotation (rpm) - N H ,N W ,N R hull reaction, wave, rudder, and propeller - N P moments in the yaw direction (Ntm) - p roll angular velocity (rad/s) - r rate-of-turn (rad/s) - R(,x) restoring moment (Ntm) - Res(u) ship resistance (Nt) - t time (s) - u surge velocity (m/s) - U vessel speed (m/s) - v sway velocity (m/s) - W ship weight (Nt) - x longitudinal position of the ship measured from the wave system (m) - x G ,z G longitudinal and vertical center of gravity (m) - x S longitudinal position of a ship section (S), in the ship-fixed system (m) - X H ,X W ,X R hull reaction, wave, rudder, and propeller - X P forces in the surge direction (Nt) - y transverse position of the ship, measured from the wave system (m) - Y H ,Y W ,Y R hull reaction, wave, rudder, and propeller - Y p forces in the sway direction (Nt) - z Y vertical position of the point of action of the lateral reaction force during turn (m) - z W vertical position of the point of action of the lateral wave force (m) Greek symbols angle of drift (rad) - rudder angle (rad) - wavelength (m) - position of the ship in the earth-fixed system (m) - water density (kg/m3) - angle of heel (rad) - heading angle (rad) - e frequency of encounter (rad/s) Hydrodynamic coefficients K roll added mass - N v ,N r yaw acceleration coefficients - N v N r N rr N rrv ,N vvr yaw velocity coefficients K. Spyrou: Ship behavior in quartering waves - X u surge acceleration coefficient - X u X vr surge velocity coefficients - Y v ,Y r sway acceleration coefficients - Y v ,Y r ,Y vv ,Y rr ,Y vr sway velocity coefficients European Union-nominated Fellow of the Science and Technology Agency of Japan, Visiting Researcher, National Research Institute of Fisheries Engineering of Japan  相似文献   
    90.
    Performance indicators for transit management   总被引:1,自引:0,他引:1  
    Transit performance can be evaluated through quantitative indicators. As the provision of efficient and effective transit service are appropriate goals to be encouraged by federal and state governments, these goals are used to develop performance indicators.Three efficiency and four effectiveness indicators are described, together with two overall indicators. These nine indicators are analyzed for comparability utilizing operating and financial data collected from public transit agencies in California.Performance indicators selected for this study should not be viewed as final. Twenty-one performance indicators proposed by previous studies were reviewed. Theoretical considerations and unavailability or unreliability of data caused omission of several useful measures like passenger-miles. Circumstances such as improved data, emphasis upon goals other than efficiency and effectiveness, and local conditions might warrant the inclusion of indicators deleted from this research.This paper is based on work conducted for the Urban Mass Transportation Administration under University Research and Training Grant CA-11-0014, Development of Performance Indicators for Transit. The views expressed herein are those of the authors and not necessarily those of the University of California or the United States Government. We are indebted to John Feren for assistance with the statistical processing and data gathering.  相似文献   
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