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中国本土化全生命周期碳足迹清单数据库(CPLCID-CF)



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中国本土化全生命周期碳足迹清单数据库(CPLCID-CF)是由山东大学洪静兰教授团队与淄博国创中心先进车用材料技术创新中心联合创建,致力于打造中国数据质量最高、行业覆盖最全、自主可控、规范统一的基于过程的本土化全生命周期碳足迹数据库。(http://data.nevczibo.com.cn:8090/

洪静兰教授为山东大学特聘教授,淄博国创中心先进车用材料技术创新中心特聘科学家,专注于生命周期评价理论与应用研究20余年,连续多年入选了全球前2%顶尖科学家“终身科学影响力榜单”和“全球顶尖前10万科学家榜单”,是爱思唯尔2019工业和制造工程领域中国高被引学者;曾任国务院立项的《中国大百科全书》(第三版)生态学卷生态经济与产业生态学分支主编、国际水协会(IWA)水-LCA工作组亚洲代表、联合国环境规划署(UNEP)- 国际环境毒理与化学学会(SETAC)-生命周期行动的不确定性分析工作组成员、国际清洁生产领域权威期刊“J Clean Prod” 的 (Vol.61(15) 2013)的客座编委、瑞士国家科学基金评审专家等职位。累计发表SCI/SSCI/EI收录论文120余篇,近五年,以第一/通讯作者身份发表“三高”论文50余篇(其中JCR SCI一区,37篇),平均影响因子(IF=2021)为10.4。先后主持了国家重点研发计划课题、国家863子课题、国家自然科学基金、山东省自然科学基金重大基础研究等项目;获得国家软件著作权2项,主持发布国家标准1项,并荣获山东省人大常委会重点督办建议和优秀建议奖。

淄博国创中心先进车用材料技术创新中心是依照科技部《关于推进国家技术创新中心建设的总体方案(暂行)》进行建设,是首个国家级技术创新中心专业化创新分中心,于2020年5月登记注册,10月正式揭牌,注册地址位于材料名都山东淄博。是由国家级新能源汽车技术创新中心发起、经淄博市科技局批复设立的民办非企业,入选2021年山东省新型研发机构备案名单。

中心以国家使命、行业需求、立足山东、辐射全球为建设原则,与国创中心联动,践行国创中心国家级创新平台使命,突破先进车用材料“卡脖子”技术,服务于从科学到技术、技术到产业的中间转化环节;建设行业共性技术平台、解决行业共性技术需求、聚集专家、技术、信息、资本等行业共性创新要素,通过资金交换、知识传递和人才流动促进不同创新资源的相互合作,实现集窗口、杠杆、桥梁作用于一体的创新体系建设。

中心助力推动实施山东省新材料产业发展规划、山东省新能源产业发展规划,结合淄博市打造“新材料名都”产业发展思路,将汽车轻量化产业培育成山东省发展新经济、推动产业迈向中高端的核心产业之一,打造先进车用材料技术创新策源地及创新生态圈,成为立足山东、辐射全球的先进车用材料创新中心,打造中国先进车用材料的“轻”谷。

关于数据库

1) 执行标准与数据质量审查

本数据库是依据ISO14040系列标准开发,由ISO/TS 14071规定的批判性评审清单汇编而成的“基于企业生产过程的原始数据集合基础上的中国生命周期清单基础数据库(Chinese Process-based Life Cycle Inventory Database,CPLCID)”中提取的碳足迹(Carbon footprint, CF)数据库。CPLCID中大部分清单都已通过向国际生命周期评价(LCA)领域权威期刊投稿的形式,获得高水平&高质量数据审查、批判性审查报告及审查意见回复与修正报告,用以确保数据集质量,并且已得到国内外的广泛引用。

2) 误差溯源

碳足迹量化过程存在着广泛的不确定性,这种不确定性多来自于数据监测、收集、分析模型、系统边界设置及分布等诸多方面,这些不确定因素将直接影响到量化结论的精确性与可靠性。虽然传统的蒙特卡罗不确定分析方法被各国学者应用到生命周期评价(LCA)领域,但运行起来相当繁重、耗时,尤其对比多个流程时更为繁琐。并且局限于对清单进行分析,很少涉及对全LCA(例如清单、影响评价、系统边界等)进行评价。另外,蒙特卡罗这项技术难以评估各个参数对LCA整体不确定性的贡献。为此,洪静兰教授团队首次提出“对数分布”设想,创建了可快速推算整个LCA不确定性,识别误差产生节点;迅速地对比多个流程间的环境负荷大小、基于泰勒系列展开的不确定性分析模型; 研究成果受到UNEP-SETAC-生命周期行动的技术评审委员会主席、欧盟最大的LCA数据库(Ecoinvent)顾问、欧盟LCA顾问R. Heijungs的高度评价,指出该团队提出的对数分布设想具有开创性意义(原文:The assumption of log-normality by Hong et al. …… opens new vistas. In our Monte Carlo experiments, we follow Hong et al. in ……) (Int J LCA (19), 1445-1461, 2014)。UNEP-SETAC-生命周期行动下辖的“国际生命周期环境影响评价方法(GLAM)”专案组负责人、全球LCA领军学者O. Jolliet教授在Nature 子刊(Nature food, (2) 616 -627, 2021 )上大篇幅地介绍了该模型,并采用该模型分析了食品环境指标的不确定性。

3)数据的代表性、时效性、区域性与技术适应性应对方法

碳足迹具有时空异质性。碳减排成效不仅取决于企业自身的技术进步,也与社会技术的更迭息息相关。针对国内外现存的LCA数据库多为上世纪末或本世纪初的企业原始数据,数据的代表性、时效性、区域性与技术适应性十分欠缺这一瓶颈,洪静兰教授团队提出了“关键节点及综合识别”理念,采用“微观—宏观—动态”递进方式,构建了基于过程的、迅速的LCA动态清单构建方法(Int J LCA 20, 751-764, 2015; Renew. Sust. Energ. Rev. 69, 168-76, 2017;Int J LCA 24, 1828-1839,2019等)。在此基础上依据ISO14040系列标准开发了基于企业生产过程原始数据集合基础上的中国本土化碳足迹清单数据库 (CPLCID-CF)。中国本土化时空动态碳足迹清单数据库正在逐步更新中。下图为我国煤电行业动态碳足迹示意图。


4) 数据库框架

CPLCID-CF数据库在企业数据与背景数据集采用、边界、分配、再生循环、数据审核等方面均采用统一规则进行构建,目前尚未涵盖生物炭核算,相关内容将于后期陆续更新。该数据库目前包含基础能源(电力、氢气、煤炭、油类、供暖、燃气等)、工业(金属、造纸、化工、材料、食品等)、农业(粮食作物、经济作物、畜牧养殖)、交通(陆运、铁路货运、水运)、建筑与建材(钢材、铝、玻璃、水泥、陶瓷、混凝土、预制件、公共建筑、农村建筑、城镇建筑等)、废弃物(废水、废气、危废、城市生活垃圾、一般工业固废、城市矿山开采等)六大门类,30种温室气体,有效数据量≥40万。

5) 欧盟产品环境足迹(PEF)转换示例 (系统正在构建中,目前需按要求定制)

LCA科普系列视频

LCA 科普系列1:简介 LCA 科普系列2:框架


LCA 科普系列3:目标与范围 LCA 科普系列4:清单


LCA 科普系列5:CPLCID构建方法与架构展示 LCA 科普系列6:影响评价


LCA 科普系列7:解释 LCA 科普系列8:欧盟产品环境足迹介绍


LCA 科普系列9:水足迹 LCA 科普系列10:绿色碳中和


相关研究成果支持

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45) Wang Q., Tang H., Ma Q., Mu R*., Yuan X*., Hong J., Zhang J., Zuo J., Mu Z., Cao S., Liu F., 2019. Life Cycle Assessment and the Willingness to Pay of Waste Polyester Recycling. Journal of Cleaner Production. 234, 275-284.

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63) Qi C., Ye L., Ma X., Yang D., Hong J.*, 2017. Life cycle assessment of the hydrometallurgical zinc production chain in China. Journal of Cleaner Production. 156 (10), 451-458

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66) Ye L., Qi C., Hong J.*, Ma X., 2017. Life cycle assessment of polyvinyl chloride production and its recyclability in China. Journal of Cleaner Production. 142 (4), 2965-2972

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74) Li X., Yang Y., Xu X., Xu C., Hong J.*, 2016. Air pollution from Polycyclic aromatic hydrocarbons generated by human activities and their health effects in China. Journal of Cleaner Production Vol.112, 1360-1367.

75) Chen W., Zhang F., Hong J.*, Shi W., Feng S., Tan X., Geng Y., 2016. Life cycle toxicity assessment on deep-brine well drilling. Journal of Cleaner Production Vol.112, 326-332.

76) Zhao J., Hong J.*,Song Z., Wang Q., Ma C., 2016. Life cycle assessment of lignite pyrolysis: a case study in China. Journal of Cleaner Production. Vol. 113, 548-556.

77) Xu C., Hong J.*, Chen J., Han X., Lin C., Li X*., 2016. Is biomass energy really clean? An environmental life-cycle perspective on biomass-based electricity generation in China. Journal of Cleaner Production Vol.133 (1), 767-776.

78) Sun X., Lu J*., Hong J., Lu B., 2016. Life cycle assessment of Chinese radial passenger vehicle tire. International Journal of Life Cycle Assessment 21(12) 1749-1758

79) Wang Q., Qiu S., Yuan X., Zuo J., Cao D., Hong J., Zhang J., Dong Y., Zheng Y., 2016. Stability of ecological industry chain: an entropy model approach. Environmental Science and Pollution Research. 23 (14) 14316-14326.

80) Sun M., Wang Y., Hong J., Wang R., 2016. Life Cycle Assessment of a bio-hydrometallurgical treatment of spent Zn-Mn batteries. Journal of Cleaner Production. Vol.129 (15), 350-358.

81) Wang Q., Yuan X., Zuo J, Zhang J., Hong J., Lin C., 2016. Optimization of Ecological Industrial Chain design based on reliability theory – a case study. Journal of Cleaner Production 124, 175-182.

82) Xu C., Shi W., Hong J.*, Zhang F., Chen W., 2015. Life cycle assessment of food waste-based biogas generation. Renewable & Sustainable Energy Reviews. Vol.49, 169-177.

83) Zhao J., Hong J.*, Song Z., Wang Q., Zhao X., Ma C.*, 2015. Cost combined life cycle assessment of lignite-based electricity generation. Fuel Vol.159, 666-674.

84) Xu C., Hong J.*, Ren Y*., Wang Q., Yuan X., 2015. Approaches for controlling air pollutants and their environmental impacts generated from coal-based electricity generation in China. Environmental Science and Pollution Research Vol.22 (16), 12384-12395

85) Hong J.*, Zhang F., Xu C., Xu X., Li, X.*, 2015. Evaluation of life cycle inventory at macro level : a case study of mechanical coke production in China. International Journal of Life Cycle Assessment. Vol.206,751-764.

86) Hong J.*,Shi W., Wang Y, Chen W, Li X*., 2015. Life cycle assessment of electronic waste treatment. Waste Management Vol.38357-365.

87) Chen W., Hong J.*, Xu, C., 2015: Pollutants generated by cement production in China, their impacts, and the potential for environmental improvement. Journal of Cleaner Production Vol.103, 61-69.

88) Wang Q., Yuan X., Zhang J., Hong J., Zuo J., 2015. Assessment of the Sustainable Development Capacity with Entropy Weight Coefficient Method. Sustainability Vol.7, 13542-13563; doi:10.3390/su71013542

89) Hong J.*, Zhang Y., Xu X., Li X*., 2014. Life-cycle assessment of corn-based and cassava-based ethylene production. Biomass and Bioenergy. Vol.67, 304-311.

90) Xu, C., Chen, W., Hong J.*, 2014: Life-cycle environmental and economic assessment of sewage sludge treatment in China. Journal of Cleaner Production, vol.67, 79-87.

91) Hong J.*, Chen W., Wang Y., Xu C., Xu X., 2014. Life cycle assessment of caustic soda production-A case study in China. Journal of Cleaner production. Vol. 66, 113-120.

92) Hong J., Tezel U., Okutman D., Pavlostathis S., 2013: Influence of quaternary ammonium compounds on the microbial reductive dechlorination of pentachloroaniline. Water Research Vol.47 (17), 6780-6789.

93) Hong J.*, Li X., 2013: Speeding up cleaner production in China through the improvement of cleaner production audit. Journal of Cleaner production. Vol.40, 129-135.

94) Hong J., Zhou J., Hong J.*, Xu X.: Environmental and economic assessment of life cycle assessment of aluminum-silicon alloys production –A case study in China. Journal of Cleaner Production Vol. 24, 11-19, 2012.

95) Hong J.*, Xu X..: Environmental impact assessment of caprolactam production in China-A case study in China. Journal of Cleaner Production. Vol. 27, 103-108, 2012.

96) Hong J.*, Li X.: Life Cycle Assessment Comparison of Substrates for Bioremediation of Pentachloroaniline under Acidogenic/Methanogenic Conditions. International Journal of Life Cycle Assessment. Vol.17 (1), 79-88, 2012.

97) Cui X., Hong J.*, Gao M.: Environmental impact assessment of three coal-based electricity generation scenarios in China. Energy. Vol. 45(1), 952-959, 2012

98) Hong J.*: Uncertainty propagation in life cycle assessment of biodiesel versus diesel-global warming and non-renewable energy. Bioresource Technology. Vol.113, 3-7, 2012.

99) Hong J.*, Li X.: Environmental assessment of recycled printing and writing paper: A case study in China. Waste Management. Vol.32 (2), 264-270, 2012.

100) Cui Z., Meng F., Hong J.*, Li X., Ren X.: Effects of Electron Donors on the Microbial Reductive Dechlorination of Hexachlorocyclohexane and on the Environment. Journal of Bioscience and Bioengineering. Vol.113 (6), 765-770, 2012.

101) Hong J.*, Li X.: Environment assessment of the sewage sludge as secondary raw material in cement production- A case study in China. Waste Management 2011, Vol.31(6), pp.1364-1371.

102) Cui Z., Hou Y., Hong J.*, Ismail Z.: Life cycle assessment of coated white board – A case study in China. Journal of Cleaner Production. 2011, Vol.19 (13), pp.1506-1512.

103) Hong J.*, Li X., Cui Z.: Life cycle assessment of four municipal solid waste management scenarios in China. Waste Management. Vol.30 (11), pp. 2362-2369, 2010.

104) Hong J.*, Shaked S., Rosenbaum R., and Jolliet O.*: Analytical Uncertainty Propagation in Life Cycle Inventory and Impact Assessment: Application to an Automobile Front Panel. International Journal of Life Cycle Assessment. Vol.15, No. 5, pp. 499-510, 2010.

105) Castella P.S., Blanc I., Gomez M., Ecabert B., Wakeman M., Manson J., Emery D., Hong J., Jolliet O.*: Integrating life cycle costs and environmental impacts of composite car-bodies for a Korean train. International journal of life cycle assessment. Vol.14, No.5, pp.429-442, 2009.

106) Hong J.*, Hong J., Otaki M. and Olivier J.: Environmental and economic life cycle assessment for sewage sludge treatment processes in Japan. Waste Management. Vol.29, No.2, pp. 696-703, 2009.


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