環境資源報告成果查詢系統

化學物質安全替代案例之生命週期衝擊評估計畫

中文摘要 本計畫旨為建置環境衝擊及風險潛勢之化學物質安全替代評估架構,以作為化學物質安全替代評估之基礎。延續前期計畫之成果,本期計畫研擬整合環境衝擊評估與風險潛勢評估方法,以生命週期評估為主軸,並依循健康風險評估架構,完成化學物質替代方案之環境衝擊及風險潛勢評估。計畫中強化化學物質安全替代思維,參考國際及臺灣現有環境議題趨勢篩選適用環境衝擊類別,另考量化學物質替代係數,提出關鍵化學物質之系統性量化評估架構。本計畫並依循辦理化學物質生命週期衝擊評估推廣專題演講 2 場及專家諮詢會 2 場;專題演講中分別以介紹生命週期評估方法及其發展、結果闡釋、熱點分析之判斷與避免化學物質後悔的替代為題進行相關研究分享;在專家諮詢會中,以專家建議建構環境衝擊類別篩選步驟與彙整問卷調查結果,共計篩選12項臺灣關注環境議題之衝擊類別。計畫中彙整化學物質替代案例之劑量效應因子及暴露參數,用於完成化學物質替代方案案例評估2例及以化學品功能角度進行分析化學品配方1例,並完成環境衝擊及風險潛勢之化學物質安全替代評估架構;在鄰苯二甲酸二(2-乙基己基)酯(Di-(2-ethylhexyl) phthalate, DEHP)與其替代品二乙基羥胺(Di(2-ethylhexyl) adipate, DEHA )以及二甲基乙醯胺(Dimethylacetamide, DMAc)與其替代品N-甲基吡咯烷酮(1-Methyl-2-pyrrolidone, NMP)評估案例中,結果顯示替代品皆顯示其使用階段人體健康毒性較低,而以全生命週期環境衝擊觀點,替代品多無顯著環境優勢,於多項衝擊類別中衝擊結果顯著高於既有化學品;化學品配方案例-乙烯膠地板亦與DEHP替代案例有相似之結果。鑑此,為避免後悔性替代(意旨僅考慮人體健康危害優劣進行替代,而忽略其他隱性環境衝擊或影響),建議未來化學品替代評估可以全生命週期思維,整合化學品製備與供應鏈之環境衝擊評估結果,作為實際替代評估依據,以達成環境與人體健康危害減量之目標。
中文關鍵字 化學物質安全替代評估、生命週期評估、CLiCC 平臺

基本資訊

專案計畫編號 經費年度 112 計畫經費 1290 千元
專案開始日期 2023/05/25 專案結束日期 2023/12/20 專案主持人 李孟珊
主辦單位 化學署綜合規劃組 承辦人 林昆穎 執行單位 國立高雄科技大學

成果下載

類型 檔名 檔案大小 說明
期末報告 112DD008.pdf 13MB

Life Cycle Impact Assessment for Chemical Substance Safety Substitution Case

英文摘要 This project aims to establish a framework for assessing the environmental impact and risk potential of hazard chemical substances, serving as the foundation for chemical substance substitution assessments. This project intends to integrate environmental impact assessment into risk assessment methods, considering a focus on life cycle thinking. The project also aims to strengthen the mindset of non-regretable chemical substance substitution, adopting internationally-concerned environmental indicators with the integration of Taiwan's current environmental issues, to screen out key environmental impact categories for the assessment. This project also encourage consideration of chemical substitution factors during alternative assessment, which can be used toward a systematic quantitative assessment framework for key chemical substances. Two lectures on topics regarding chemical substance life cycle impact assessment and two expert consultation meetings were conducted in this project. The lectures cover topics related to the introduction of life cycle assessment methods and their development, impact results interpretation, application of hotspot analysis, and the avoidance of regrettable substitutions for hazard chemicals. Based on the discussion through the expert consultation meetings, a total of 12 impact categories related to environmental concerns in Taiwan were ranked. The project compiles chemical substance substitution case studies, including two assessments on chemical substance substitution schemes, considering both associated environmental impacts and potential risk, followed by a case study analysis through the perspective of chemical functionality (i.e., substation factor and whole prodct life cycle analysis). According to the results from the two case studies for the substitution assessment of hazard chemical substances, including Di-(2-ethylhexyl) phthalate (DEHP) and its substitute Di(2-ethylhexyl) adipate (DEHA), as well as Dimethylacetamide (DMAc) and its substitute N-Methyl-2-pyrrolidone (NMP), the assessment results indicated that substitutes generally exhibited lower human health toxicity during the usage stage. However, from a holistic life cycle environmental impact perspective, substitutes often showed little environmental advantages, meaning that their impact results were significantly higher than those of existing chemicals in multiple impact categories. In the case of the product life cycle analysis example of vinyl flooring, similar results were observed compared to the DEHP substitution case. To avoid regrettable substitutions, it is suggested to adopt a holistic life cycle perspective for chemicals substitution assessment, combining the environmental impact assessment results of chemical preparation and supply chains and potential health risk during end-use stages. This approach serves as a foundation for practical substitution assessments, with the aim of minimizing the environmental impacts and human health hazards.
英文關鍵字 Chemical Substance Substitution Assessment, Life Cycle Assessment, CLiCC (Chemical Life Cycle Collaborative) Tool