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181.
182.
组合结构桥梁由热工性能差异显著的钢材和混凝土构成,温度效应往往成为控制其设计和应用的关键因素,因此,对其温度场和温度效应进行准确地计算与评估具有重要的科研价值与工程意义。对组合结构桥梁温度场与温度效应开展了综述研究。首先,对各国桥梁规范温度荷载的规定进行归纳对比,讨论不同规范中温度荷载计算方法的特点,总结中国现有规范对全国气候划分的分辨率不足、对日照辐射的考虑不够完善等有待提升之处;其次,对国内外桥梁温度场与温度效应研究的发展与现状进行调研,重点分析中国钢-混凝土组合结构桥梁温度场与温度效应的研究进展,对现有研究的不足进行讨论;再次,提出基于可靠度理论的组合结构桥梁设计温度荷载模型,可使用气象部门统计的温度统计资料,通过MATLAB高效数值模型计算形成组合结构桥梁温度场时程数据,进一步利用极值模型获得桥梁设计的温度荷载代表值,快速、高效地实现对桥梁地理信息、结构参数等因素的考虑;最后,以北京地区典型3跨连续直线组合梁桥为算例,对连续钢-混凝土组合桥梁的温度效应展开研究。提出的基于可靠度理论与MATLAB的钢-混凝土组合结构桥梁设计温度荷载模型,可实现任意地区组合结构桥梁温度场的精确计算并显著提升计算效率。 相似文献
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城市道路建设过程中,存在各种不确定因素。当道路沿线构筑物较多、周边环境较为复杂时,需进行多方案的比选,在兼顾经济指标与技术指标的前提下确定切实可行的路线方案。结合兰州市南环路(西客站段)联通工程方案,总结了城市建设中路线方案比选的几点思考,供道路专业人员参考。 相似文献
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净掘进速率是TBM施工速度的主要评价指标,与围岩物理力学性质、TBM掘进参数之间存在一定相关性。文章以兰州水源地建设工程输水隧洞双护盾TBM施工为背景,基于现场实测数据,选择岩石单轴抗压强度、抗拉强度、变形模量、泊松比、岩石耐磨性CAI值等岩体指标,以及刀盘推力和刀盘转速等掘进参数,进行TBM净掘进速率与有关影响参数之间的单因素相关性分析,得到相应拟合公式;基于TBM净掘进速率与岩体指标、掘进参数之间的相关性,利用多元非线性回归方法建立了TBM净掘进速率预测模型。通过将兰州水源地建设工程输水隧洞实测TBM净掘进速率和预测结果进行对比,验证了TBM净掘进速率预测模型的合理性。研究结果表明:(1)在复杂的多种地质条件下,TBM净掘进速率与岩石单轴抗压强度、抗拉强度、变形模量、岩石耐磨性CAI值、刀盘推力以及刀盘转速呈负相关关系,与泊松比呈正相关关系;(2)干湿状态对岩石耐磨性CAI值有一定影响,饱和状态下岩石耐磨性CAI值与TBM净掘进速率之间的相关性更显著;(3)建立的多元非线性回归预测模型,预测精度较高,可为相似地质条件下TBM净掘进速率估算提供参考。 相似文献
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Currently, the shipping industry is facing a great challenge of reducing emissions. Reducing ship speeds will reduce the emissions in the immediate future with no additional infrastructure. However, a detailed investigation is required to verify the claim that a 10% speed reduction would lead to 19% fuel savings (Faber et al., 2012).This paper investigates fuel savings due to speed reduction using detailed modeling of ship performance. Three container ships, two bulk carriers, and one tanker, representative of the shipping fleet, have been designed. Voyages have been simulated by modeling calm water resistance, wave resistance, propulsion efficiency, and engine limits. Six ships have been simulated in various weather conditions at different speeds. Potential fuel savings have been estimated for a range of speed reductions in realistic weather.It is concluded that the common assumption of cubic speed-power relation can cause a significant error in the estimation of bunker consumption. Simulations in different seasons have revealed that fuel savings due to speed reduction are highly weather dependent. Therefore, a simple way to include the effect of weather in shipping transport models has been proposed.Speed reduction can lead to an increase in the number of ships to fulfill the transport demand. Therefore, the emission reduction potential of speed reduction strategy, after accounting for the additional ships, has been studied. Surprisingly, when the speed is reduced by 30%, fuel savings vary from 2% to 45% depending on ship type, size and weather conditions. Fuel savings further reduce when the auxiliary engines are considered. 相似文献
187.
Fuel-switching personal transportation from gasoline to electricity offers many advantages, including lower noise, zero local air pollution, and petroleum-independence. But alleviations of greenhouse gas (GHG) emissions are more nuanced, due to many factors, including the car’s battery range. We use GPS-based trip data to determine use type-specific, GHG-optimized ranges. The dataset comprises 412 cars and 384,869 individual trips in Ann Arbor, Michigan, USA. We use previously developed algorithms to determine driver types, such as using the car to commute or not. Calibrating an existing life cycle GHG model to a forecast, low-carbon grid for Ann Arbor, we find that the optimum range varies not only with the drive train architecture (plugin-hybrid versus battery-only) and charging technology (fast versus slow) but also with the driver type. Across the 108 scenarios we investigated, the range that yields lowest GHG varies from 65 km (55+ year old drivers, ultrafast charging, plugin-hybrid) to 158 km (16–34 year old drivers, overnight charging, battery-only). The optimum GHG reduction that electric cars offer – here conservatively measured versus gasoline-only hybrid cars – is fairly stable, between 29% (16–34 year old drivers, overnight charging, battery-only) and 46% (commuters, ultrafast charging, plugin-hybrid). The electrification of total distances is between 66% and 86%. However, if cars do not have the optimum range, these metrics drop substantially. We conclude that matching the range to drivers’ typical trip distances, charging technology, and drivetrain is a crucial pre-requisite for electric vehicles to achieve their highest potential to reduce GHG emissions in personal transportation. 相似文献
188.
结合工程实例,介绍了混凝土梁桥施工监控方法,并得出监控结论,有关经验可供相关专业人员参考。 相似文献
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