Source Journal of Chinese Scientific and Technical Papers
Included as T2 Level in the High-Quality Science and Technology Journals in the Field of Architectural Science
Core Journal of RCCSE
Included in the CAS Content Collection
Included in the JST China
Indexed in World Journal Clout Index (WJCI) Report
TIAN Limei, XU Dongsheng, ZHAO Pengfei, WANG Wei, TAN Lihao. Investigation on Continuous Protection and Activation Utilization of Traditional Settlement Space Via Digital Technology[J]. INDUSTRIAL CONSTRUCTION, 2023, 53(3): 88-95. doi: 10.13204/j.gyjzG22080111
Citation: DING Yong, LI Wenjing, GAO Haoran. ANALYSIS ON THE KEY POINTS OF GREEN DEVELOPMENT OF URBAN RAIL TRANSIT[J]. INDUSTRIAL CONSTRUCTION, 2021, 51(8): 11-18. doi: 10.13204/j.gyjzG20040907

ANALYSIS ON THE KEY POINTS OF GREEN DEVELOPMENT OF URBAN RAIL TRANSIT

doi: 10.13204/j.gyjzG20040907
  • Received Date: 2020-04-09
    Available Online: 2021-11-10
  • Publish Date: 2021-11-10
  • Urban rail transit has brought a series of social problems about energy consumption and environment with its rapid development. With the gradual advancement of green development in various industries, the green development of urban rail transit has gradually attracted people's attention. Combined with the development status and problems of urban rail transit development process and the results of on-site testing and research, the paper proposed five key points of green development of urban rail transit, such as appropriate design and construction, healthy environment protection, efficient energy system, intelligent operation and maintenance, and humanized supporting facilities. The key points provide direction and ideas to the further development of green development of urban rail transit.
  • [1]
    刘凯,任建兰,王成新.中国绿色化的演变特征及其影响因素[J].城市问题,2016(4):11-17.
    [2]
    张建国,谷立静.我国绿色建筑发展现状、挑战及政策建议[J].中国能源,2012,34(12):19-24.
    [3]
    李佩瑾,张军.绿色交通理念下的新型城市交通规划探索[J].科技与创新,2019(15):96-97.
    [4]
    尹昌斌,程磊磊,杨晓梅,等.生态文明型的农业可持续发展路径选择[J].中国农业资源与区划,2015,36(1):15-21.
    [5]
    国家统计局能源统计司.中国能源统计年鉴2016:汉英对照[M].北京:中国统计出版社,2016.
    [6]
    王茉莉,王博运.现代轨道交通工程科技前沿与挑战[J].环渤海经济瞭望,2018(12):198.
    [7]
    中国城市轨道交通协会.城市轨道交通2013年度统计分析报告[R].北京:中国城市轨道交通协会,2014.
    [8]
    中国城市轨道交通协会.城市轨道交通2014年度统计分析报告[R].北京:中国城市轨道交通协会,2015.
    [9]
    中国城市轨道交通协会.城市轨道交通2015年度统计分析报告[R].北京:中国城市轨道交通协会,2016.
    [10]
    中国城市轨道交通协会.城市轨道交通2016年度统计分析报告[R].北京:中国城市轨道交通协会,2017.
    [11]
    中国城市轨道交通协会.城市轨道交通2017年度统计分析报告[R].北京:中国城市轨道交通协会,2018.
    [12]
    中国城市轨道交通协会.城市轨道交通2018年度统计分析报告[R].北京:中国城市轨道交通协会,2019.
    [13]
    中国城市轨道交通协会.城市轨道交通2019年度统计分析报告[R].北京:中国城市轨道交通协会,2020.
    [14]
    上海市城乡建设和交通发展研究院.上海市综合交通年度报告[R].上海:上海市城乡建设和交通发展研究院,2018.
    [15]
    周浩,刘沛,林波荣,等.基于技术发展和用户需求分析的绿色建筑内涵拓展方向探讨[J].建筑节能,2019,47(1):1-8.
    [16]
    黄伟宏,唐锡军,高波,等.交通绿色发展的内涵分析[J].交通节能与环保,2017,13(5):1-5.
    [17]
    刘志鹏.城市轨道交通系统运营能耗研究与节能优化[D].南京:东南大学,2018.
    [18]
    张铁映.城市不同交通方式能源消耗比较研究[D].北京:北京交通大学,2010.
    [19]
    闫雅斌.城市轨道交通运营节能策略浅析[J].机电信息,2018(24):133-134.
    [20]
    陆化普,李瑞敏. 城市智能交通系统的发展现状与趋势[J].工程研究,2014,6(1):6-19.
    [21]
    国家技术监督局.公共交通等候室卫生标准:GB 9672-1996[S].北京:中国标准出版社,2005.
    [22]
    国家质量监督检验检疫总局.室内空气质量标准:GB/T 18883-2002[S].北京:中国标准出版社, 2002.
    [23]
    中华人民共和国住房和城乡建设部.地铁设计规范:GB 50157-2013[S]. 北京:中国建筑工业出版社,2013.
    [24]
    刘冰玉.地铁车厢环境空气质量研究[D].北京:北京市市政工程研究院,2016.
    [25]
    倪骏,张莉萍,张霞.某轨道交通地下车站环境卫生调查研究[J].中国卫生工程学,2017,16(4):409-414.
    [26]
    白雪.夏热冬暖地区城市轨道交通高架车站站台热环境研究[D].广州:华南理工大学.2017.
    [27]
    廖继轩,郭春,马秀明,等.基于舒适度的轨道交通地下车站照明特性[J].综合运输,2019,41(2):73-77.
    [28]
    杨新兴. 城市交通噪声及其危害[J].前沿科学,2011,2(5):21-28.
    [29]
    张改景,杨建荣,方舟,等.绿色城市轨道交通评价方法研究综述[J].绿色建筑,2018(6):9-13.
    [30]
    中国工程建设标准化协会.绿色城市轨道交通建筑评价标准:T/CECS 724-2020[S].北京:中国建筑工业出版社,2020.
    [31]
    中国建筑节能协会.绿色城市轨道交通车站评价标准:T/CABEE 002-2019[S].北京:中国建筑工业出版社,2019.
    [32]
    李志慧.城市轨道交通牵引供电系统再生能量吸收技术的发展与选择[J].城市轨道交通研究,2018(6):34-42.
    [33]
    许磊.城市轨道交通车站建筑的人性化设计研究[J].建筑与结构设计,2016(12):39-42.
  • Relative Articles

    [1]SHI Baocun, CHEN Jingya, ZHU Runyu, SUN Rui, WANG Fangwei. Research on Effect of Polymer Repair Agent on Self-Healing Performance of Concrete Cracks Based on Different Humidity Environments[J]. INDUSTRIAL CONSTRUCTION, 2023, 53(4): 154-160,172. doi: 10.13204/j.gyjzG22063018
    [2]QIN Dongyang, LIU Haifeng, ZHU Lichen, CHE Jialing, YANG Weiwu. Research on the Performance of Desert Sand Concrete Under Dry-Wet Cycles with Sulfate Erosion[J]. INDUSTRIAL CONSTRUCTION, 2023, 53(11): 207-213,220. doi: 10.13204/j.gyjzG23053001
    [3]WANG Bukang, JIA Cangqin, WANG Guihe, ZHANG Haonan. Study on Cementation Effect of Tailing Sand by Magnesium Oxide Combined with Microorganism or by MICP[J]. INDUSTRIAL CONSTRUCTION, 2022, 52(11): 79-83. doi: 10.13204/j.gyjzG21022609
    [4]DONG Wei, ZHOU Menghu, HANG Meiyan, XUE Gang. Deterioration Law of Aeolian Sand Concrete Under Carbonation and Dry-Wet Cycles[J]. INDUSTRIAL CONSTRUCTION, 2022, 52(11): 194-198,206. doi: 10.13204/j.gyjzG22022206
    [5]LIU Shengwei, ZHAO Jianchang, ZHANG Jiawei. EXPERIMENTAL RESEARCH ON TENSILE PROPERTIES OF CFRP SHEETS IN SULFATE ENVIRONMENT[J]. INDUSTRIAL CONSTRUCTION, 2020, 50(8): 172-176. doi: 10.13204/j.gyjzG201908060007
    [6]MA Yingchang, LIU Haifeng, ZHANG Minghu. EFFECTS OF DESERT SAND REPLACEMENT RATE AND FLY ASH CONTENT ON THE COMPRESSIVE STRENGTH OF CONCRETE UNDER LOW TEMPERATURE[J]. INDUSTRIAL CONSTRUCTION, 2020, 50(5): 81-87,80. doi: 10.13204/j.gyjz202005014
    [7]XU Lina, NIU Lei, ZHANG Ying, WANG Jun. EFFECT OF FREEZE-THAW CYCLING ON THE MECHANICAL PROPERTIES OF FIBER-REINFORCED CEMENTED SOIL[J]. INDUSTRIAL CONSTRUCTION, 2020, 50(3): 109-113. doi: 10.13204/j.gyjz202003018
    [8]XU Lina, NIU Lei, ZHANG Ting, WANG Yabo. EXPERIMENTAL RESEARTH ON THE UNCONFINED COMPRESSION STRENGTH CHARACTERISTICS OF BASALT FIBER AND CEMENT STABILIZED RIVERBED SILT[J]. INDUSTRIAL CONSTRUCTION, 2020, 50(2): 109-112. doi: 10.13204/j.gyjz202002016
    [12]Andres Quiros Zhang Shuai Cheng Xiaohui, . STUDY OF THE MICP INJECTION IN UNSATURATED SANDY SOILS[J]. INDUSTRIAL CONSTRUCTION, 2015, 45(7): 28-30. doi: 10.13204/j.gyjz201507006
    [13]Wei Bingxu, Liu Bin, Ouyang Yunqing, Liu Xiong. THE EFFECT OF DRYING-WETTING CYCLES ON EXPANSIVE SOIL STRUCTURE AND ITS INDUCED VARIATIONS IN STRENGTH[J]. INDUSTRIAL CONSTRUCTION, 2015, 45(8): 99-103. doi: 10.13204/j.gyjz201508018
    [14]Liu Wei, Xie Youjun, Dong Biqin. STUDY OF THE RESISTANCE TO SULFATE ATTACH OF CONCRETE MADE WITH DREDGED MARINE SAND[J]. INDUSTRIAL CONSTRUCTION, 2014, 44(08): 131-135.
    [15]Yang Chenbin, Zha Fusheng, Cui Kerui. EFFECT OF CYCLIC WETTING AND DRYING ON THE ENGINEERING PROPERTIES OF STABILIZED EXPANSIVE SOILS[J]. INDUSTRIAL CONSTRUCTION, 2012, 42(1): 98-102. doi: 10.13204/j.gyjz201201019
    [16]Xu Zhaoyang, Zhang Li. RESEARCH ON EFFECT OF MICROBES ON SOME ENGINEERING PROPERTIES OF SILT[J]. INDUSTRIAL CONSTRUCTION, 2009, 39(3): 60-63,38. doi: 10.13204/j.gyjz200903018
    [17]Zhou Liping, Shen Xiangdong, Bai Zhongqiang. THE EXPERIMENTAL STUDY ON CHANGE IN PROPERTY OF CEMENT SOIL BY ADDED ADDITIVES[J]. INDUSTRIAL CONSTRUCTION, 2009, 39(7): 74-78. doi: 10.13204/j.gyjz200907021
    [18]Zhang Da-jie, Tian Xiao-feng, Hou Hao-bo, Liu Hao, Tan Shi-kang. EXPERIMENTAL RESEARCH ON TAKING STABILIZED OVERWETTED SOIL AS ROADBED FILLER[J]. INDUSTRIAL CONSTRUCTION, 2006, 36(7): 38-40. doi: 10.13204/j.gyjz200607009
    [19]Ji Yongsheng, Yuan Yingshu. TRANSPORT PROCESS OF CHLORIDE IN CONCRETE UNDER WET AND DRY CYCLES[J]. INDUSTRIAL CONSTRUCTION, 2006, 36(12): 16-19,23. doi: 10.13204/j.gyjz200612005
    [20]Zhou Min, Hou Hao-bo, Li Zhi-wei. ENGINEERING PROPERTIES OF DREDGED SEDIMENT MODIFIED BY HAS STABILIZER[J]. INDUSTRIAL CONSTRUCTION, 2006, 36(7): 35-37,44. doi: 10.13204/j.gyjz200607008
  • Cited by

    Periodical cited type(6)

    1. 杜煜瑶,申亚梅,陶一舟,田庆伟,王宇凤,徐奕,张泰龙. 基于CiteSpace和VOSviewer可视化分析的中国古道研究进展. 园林. 2024(04): 61-68 .
    2. 张家瞳,谭良斌. 基于CiteSpace的国内传统村落数字化研究知识图谱分析. 小城镇建设. 2024(05): 108-115 .
    3. 潘莹,赵亦航,施瑛. 广东省传统村落集中连片保护利用全过程导控体系探索. 南方建筑. 2024(11): 22-30 .
    4. 严恺怡,陈倩. 城乡融合视角下城市近郊区传统村落保护发展路径研究——以昆明市福安村为例. 华中建筑. 2024(12): 176-180 .
    5. 陈少峰,宋菲,李微. 元宇宙中文化空间建构与结构特征研究. 北京联合大学学报(人文社会科学版). 2023(02): 48-59 .
    6. 张菁,林冰姚,陈秋渝,田琪. 渝东南传统村落景观集群集中连片保护体系研究. 南方建筑. 2023(10): 98-107 .

    Other cited types(5)

  • Created with Highcharts 5.0.7Amount of accessChart context menuAbstract Views, HTML Views, PDF Downloads StatisticsAbstract ViewsHTML ViewsPDF Downloads2024-042024-052024-062024-072024-082024-092024-102024-112024-122025-012025-022025-0302.557.510
    Created with Highcharts 5.0.7Chart context menuAccess Class DistributionFULLTEXT: 11.6 %FULLTEXT: 11.6 %META: 86.0 %META: 86.0 %PDF: 2.4 %PDF: 2.4 %FULLTEXTMETAPDF
    Created with Highcharts 5.0.7Chart context menuAccess Area Distribution其他: 20.6 %其他: 20.6 %北京: 2.9 %北京: 2.9 %台州: 2.9 %台州: 2.9 %天津: 2.9 %天津: 2.9 %宣城: 1.5 %宣城: 1.5 %常德: 4.4 %常德: 4.4 %广州: 4.4 %广州: 4.4 %廊坊: 1.5 %廊坊: 1.5 %张家口: 1.5 %张家口: 1.5 %昆明: 2.9 %昆明: 2.9 %晋城: 2.9 %晋城: 2.9 %温州: 1.5 %温州: 1.5 %漯河: 2.9 %漯河: 2.9 %芒廷维尤: 29.4 %芒廷维尤: 29.4 %芝加哥: 1.5 %芝加哥: 1.5 %衢州: 1.5 %衢州: 1.5 %西宁: 2.9 %西宁: 2.9 %运城: 5.9 %运城: 5.9 %遵义: 1.5 %遵义: 1.5 %郑州: 4.4 %郑州: 4.4 %其他北京台州天津宣城常德广州廊坊张家口昆明晋城温州漯河芒廷维尤芝加哥衢州西宁运城遵义郑州

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Article Metrics

    Article views (202) PDF downloads(18) Cited by(11)
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return