{"title":"全球半导体代工行业的环境绩效和发展趋势","authors":"Marcello Ruberti","doi":"10.1111/jiec.13529","DOIUrl":null,"url":null,"abstract":"<p>The semiconductor foundry industry faces the challenge of reducing its high environmental impact, mainly due to its energy- and water-intensive processes and significant generation of waste. To date, no other study has focused on the assessment of the environmental performance and related historical trends of this industry as a whole. Methodologically, the first step was to analyze and process a large quantity of economic, production, and environmental data, available in the Corporate Social Responsibility reports of a companies’ sample, highly representative of the entire world's foundry industry (about 70% of the global revenue of the related sector). It was thus possible to calculate, using a common manufacturing index (MI) and after appropriate data processing, some key performance indicators, along a significant decade (2012–2021), marked by deep political, economic, and health crises. Some of the main findings of this study are that, over this 10-year period, the increases in technological capacity (patents), wafer production, and revenue (400%, 183%, and 172%, respectively) are matched by a significant increase in hazardous waste generation per MI (20%; 239% in absolute value) and a much larger increase in general waste generation per MI (135%; 568% in absolute value). The indicators of energy, water, and revenue per MI are substantially unchanged. A substantial decrease occurs in GHG<sub>1&2</sub> emissions per MI (−32%), mainly due to significant investments in renewable energy sources. The findings of this research could help and guide upcoming sustainability policy decisions and encourage business-to-business collaboration and the adoption of better environmental production practices.</p>","PeriodicalId":16050,"journal":{"name":"Journal of Industrial Ecology","volume":"28 5","pages":"1183-1197"},"PeriodicalIF":4.9000,"publicationDate":"2024-07-16","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://onlinelibrary.wiley.com/doi/epdf/10.1111/jiec.13529","citationCount":"0","resultStr":"{\"title\":\"Environmental performance and trends of the world's semiconductor foundry industry\",\"authors\":\"Marcello Ruberti\",\"doi\":\"10.1111/jiec.13529\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p>The semiconductor foundry industry faces the challenge of reducing its high environmental impact, mainly due to its energy- and water-intensive processes and significant generation of waste. 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引用次数: 0
摘要
半导体代工行业面临着减少其对环境高影响的挑战,这主要是由于其能源和水密集型工艺以及大量废物的产生。迄今为止,还没有其他研究侧重于评估整个行业的环境绩效和相关历史趋势。在方法上,第一步是分析和处理企业社会责任报告中的大量经济、生产和环境数据,这些数据在全球铸造业(约占相关行业全球收入的 70%)中具有很强的代表性。因此,在经历了深刻的政治、经济和健康危机的重要十年(2012-2021 年)后,我们可以使用通用的制造指数(MI)并经过适当的数据处理,计算出一些关键绩效指标。本研究的一些主要发现是,在这 10 年间,在技术能力(专利)、硅片产量和收入(分别为 400%、183% 和 172%)增长的同时,每个 MI 产生的危险废物大幅增加(20%;绝对值为 239%),每个 MI 产生的一般废物增幅更大(135%;绝对值为 568%)。每个管理信息系统的能源、水和收入指标基本保持不变。每个管理信息系统的温室气体 1&2 排放量大幅下降(-32%),这主要归功于对可再生能源的大量投资。这项研究的结果可以帮助和指导即将出台的可持续发展政策决策,鼓励企业间的合作和采用更好的环保生产实践。
Environmental performance and trends of the world's semiconductor foundry industry
The semiconductor foundry industry faces the challenge of reducing its high environmental impact, mainly due to its energy- and water-intensive processes and significant generation of waste. To date, no other study has focused on the assessment of the environmental performance and related historical trends of this industry as a whole. Methodologically, the first step was to analyze and process a large quantity of economic, production, and environmental data, available in the Corporate Social Responsibility reports of a companies’ sample, highly representative of the entire world's foundry industry (about 70% of the global revenue of the related sector). It was thus possible to calculate, using a common manufacturing index (MI) and after appropriate data processing, some key performance indicators, along a significant decade (2012–2021), marked by deep political, economic, and health crises. Some of the main findings of this study are that, over this 10-year period, the increases in technological capacity (patents), wafer production, and revenue (400%, 183%, and 172%, respectively) are matched by a significant increase in hazardous waste generation per MI (20%; 239% in absolute value) and a much larger increase in general waste generation per MI (135%; 568% in absolute value). The indicators of energy, water, and revenue per MI are substantially unchanged. A substantial decrease occurs in GHG1&2 emissions per MI (−32%), mainly due to significant investments in renewable energy sources. The findings of this research could help and guide upcoming sustainability policy decisions and encourage business-to-business collaboration and the adoption of better environmental production practices.
期刊介绍:
The Journal of Industrial Ecology addresses a series of related topics:
material and energy flows studies (''industrial metabolism'')
technological change
dematerialization and decarbonization
life cycle planning, design and assessment
design for the environment
extended producer responsibility (''product stewardship'')
eco-industrial parks (''industrial symbiosis'')
product-oriented environmental policy
eco-efficiency
Journal of Industrial Ecology is open to and encourages submissions that are interdisciplinary in approach. In addition to more formal academic papers, the journal seeks to provide a forum for continuing exchange of information and opinions through contributions from scholars, environmental managers, policymakers, advocates and others involved in environmental science, management and policy.