研究生: |
劉冀唐 Liu, Chi-Tang |
---|---|
論文名稱: |
系統安全設計與管理分析-以太陽能電池廠為例 Safety Analysis of System Design and Management – A Case of Photovoltaic Plant |
指導教授: |
黃雪玲
Hwang, Sheue-Ling |
口試委員: |
林志聰
梁國鋒 |
學位類別: |
碩士 Master |
系所名稱: |
工學院 - 工業工程與工程管理學系 Department of Industrial Engineering and Engineering Management |
論文出版年: | 2013 |
畢業學年度: | 101 |
語文別: | 英文 |
論文頁數: | 57 |
中文關鍵詞: | 危害分析 、失效模式與影響分析 、失誤樹分析 |
相關次數: | 點閱:1 下載:0 |
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眾多危害分析方法中,失效模式與影響分析法及失誤樹分析法因其廣泛適用性、分析結果詳細等特點而被普遍採用於分析飛航安全、化工製程與產品服務中。然而在面對現今迅速發展的行業及快速變動的製程,分析團隊經常須以特定事件為分析目標,若採用上述兩方法以傳統方式結合進行分析將會耗費大量時間與人力;另外當目標系統龐大且複雜時,在無電腦軟體輔助資料儲存、傳送與運算之情況下,容易造成分析效率不佳和資料遺失等問題。因此,本研究期望藉改善兩分析方法的結合步驟,並搭配電腦軟體輔助以解決上述問題。
為完成研究目標,本研究修正了上述兩方法傳統結合的步驟,透過失誤樹分析中的定性分析找出最小切割集、定量分析排序其重要度,幫助分析團隊快速聚焦關鍵元件。接著藉由失效模式與影響分析發掘關鍵元件潛在的失效效應並討論其各項失效模式現行的偵測方法、警報設計與處理措施等缺失,提供改善建議予
管理階層做為參考。另外本研究也採用電腦軟體輔助分析進行與資料相互連結。
本研究依此分析方法,針對國內某一太陽能電池廠製程所使用的二乙
基鋅之存放、運輸系統進行安全性分析。研究結果揭示了個案廠兩系統安全設計的潛在問題並提出相對應的安全設計與管理之改善建議。
Failure mode and effects analysis (FMEA) and fault tree analysis (FTA) are widely used to analyze the aviation safety, chemical process, and servicing products because of their broad applicability and detailed outcomes. However, when facing a rapidly evolving industry and spontaneous changes in manufacturing processes, the analysis team often requires setting a specific event for analyzing target, and thus becomes a very time-consuming task if using these two methods in a the traditional combining way. In addition, when the target system is huge and complex, it will become inefficient and could result in possible data lost without the assistance of computer software. Therefore, this study attempts to solve the problems by revising the combination steps of FMEA and FTA as well as the computer software aiding.
To achieve the research objectives, the qualitative and quantitative analyses of FTA were performed respectively to find out the most critical components. Then, analysis of FMEA on the current detection methods, alert design, and reaction of each failure mode of critical components were conducted to provide recommendations to improve the safety design and management. Furthermore, an efficient computer software has been used to assist the running of analysis and data interconnection.
This study took a solar cell plant in Taiwan as a case and analyzed the safety design and management of two systems which related with a hazardous chemical, Diethylzinc. The result showed the weakness in two systems and safety suggestions presented.
AIChE, "Guidelines for Hazard Evaluation Procedures". (1992). 2nd, American Institute of Chemical Engineers, New York, NY.
Arabian-Hoseynabadi, H., Oraee, H., & Tavner, P. J. (2010). Failure Modes and Effects Analysis (FMEA) for wind turbines. International Journal of Electrical Power & Energy Systems, 32(7), pp. 817-824.
Arendt, J. S., & Lorenzo, D. K. (2010). Evaluating process safety in the chemical industry: A user's guide to quantitative risk analysis (Vol. 3). Wiley. com.
Barlow, R. E., & Proschan, F. (1975a). Importance of system components and fault tree events. Stochastic Processes and their applications, 3(2), pp.153-173.
Bluvband, Z., Polak, R., & Grabov, P. (2005, January). Bouncing failure analysis (BFA): the unified FTA-FMEA methodology. In Reliability and Maintainability Symposium, 2005. Proceedings. Annual (pp. 463-467). IEEE.
Bossche, A. (1991). Computer-aided fault tree synthesis I (system modeling and causal trees). Reliability Engineering & System Safety, 32(3), pp. 217-241.
Carter, D. A., Hirst, I. L., Maddison, T. E., & Porter, S. R. (2003). Appropriate risk assessment methods for major accident establishments. Process Safety and Environmental Protection, 81(1), pp. 12-18.
Chadwick, L., & Fallon, E. F. (2012). Evaluation and critique of Healthcare Failure Mode and Effect Analysis applied in a radiotherapy case study. Human Factors and Ergonomics in Manufacturing & Service Industries.
Chiozza, M. L., & Ponzetti, C. (2009). FMEA: a model for reducing medical errors. Clinica Chimica Acta, 404(1), pp. 75-78.
Clemens, P. L. (2002). Fault tree analysis. JE Jacobs Severdurup.
Clifton A. Ericson II. Fault tree analysis – a history. (1999, August). In Proceedings of the 17th International System Safety Conference.
de Queiroz Souza, R., & Álvares, A. J. (2008). FMEA and FTA analysis for application of the reliability-centered maintenance methodology: case study on hydraulic turbines. In ABCM Symposium Series in Mechatronics (Vol. 3, pp. 803-812).
de Wild-Scholten, M. J., & Alsema, E. A. (2006, April). Environmental life cycle inventory of crystalline silicon photovoltaic module production. In MATERIALS RESEARCH SOCIETY SYMPOSIUM PROCEEDINGS (Vol. 895, p. 59). Warrendale, Pa.; Materials Research Society; 1999.
Ericson, C. A. (2005). Hazard analysis techniques for system safety. Wiley-Interscience.
European Photovoltaic Industry Association (2007). Solar Generation IV - 2007, Solar electricity for over one billion people and two million jobs by 2020.
Ferdous, R., Khan, F. I., Veitch, B., & Amyotte, P. R. (2007). Methodology for computer-aided fault tree analysis. Process Safety and Environmental Protection, 85(1), pp. 70-80.
Ferdous, R., Khan, F., Veitch, B., & Amyotte, P. R. (2009). Methodology for computer aided fuzzy fault tree analysis. Process Safety and Environmental Protection, 87(4), pp. 217-226.
Fthenakis, V. M. (2003, May). Hazard analysis for the protection of PV manufacturing facilities. In Photovoltaic Energy Conversion, 2003. Proceedings of 3rd World Conference on (Vol. 2, pp. 2090-2093). IEEE.
Fthenakis, V. M., & Bowerman, B. (2003, May). Environmental health and safety (EHS) issues in III-V solar cell manufacturing. In Photovoltaic Energy Conversion, 2003. Proceedings of 3rd World Conference on (Vol. 1, pp. 681-684). IEEE.
Fthenakis, V. M.,& Moskowitz, P. D. (2000). Photovoltaics: environmental, health and safety issues and perspectives. Progress in Photovoltaics: Research and Applications, 8(1), pp. 27-38.
Fussell, J. B. (1973). Formal methodology for fault tree construction. Nucl. Sci. Eng., v. 52, no. 4, pp. 421-432.
Goddard, P. L. (2000). Software FMEA techniques. In Reliability and Maintainability Symposium, 2000. Proceedings. Annual (pp. 118-123). IEEE.
Health and safety excecutive (2012), Failure Rate and Event Data for use within Risk
Assessments.
Jordan, W. (1972). Failure modes, effects and criticality analyses. In: Proceedings of the Annual Reliability and Maintainability Symposium, IEEE Press, pp. 30-37
Kennedy, M. (1998). Failure modes & effects analysis (FMEA) of flip chip devices attached to printed wiring boards (PWB). In Electronics Manufacturing Technology Symposium, 1998. Twenty-Third IEEE/CPMT (pp. 232-239). IEEE.
Kmenta, S., & Ishii, K. (2000, September). Scenario-based FMEA: a life cycle cost perspective. In Proc. ASME Design Engineering Technical Conf. Baltimore, MD.
Kmenta, S., & Ishii, K. (2004). Scenario-based failure modes and effects analysis using expected cost. Journal of Mechanical Design, 126(9), 1027.
Lapp, S. A., & Powers, G. J. (1977). Computer-aided synthesis of fault-trees. Reliability, IEEE Transactions on, 26(1), pp. 2-13.
Lee, W. S., Grosh, D. L., Tillman, F. A., & Lie, C. H. (1985). Fault Tree Analysis, Methods, and Applications - A Review. Reliability, IEEE Transactions on, 34(3), pp. 194-203.
Li, X., Yan, Y., Gessert, T. A., DeHart, C., Perkins, C. L., Young, D., & Coutts, T. J. (2003). p-type ZnO thin films formed by CVD reaction of diethylzinc and NO gas. Electrochemical and solid-state letters, 6(4), C56-C58.
Liu, C.L., Liu, C.T., Chang, Y.S., Cheng, C.M.,& Hwang, S.L. (2012). Facility Supply Systems Analysis of Abnormal events - take small and medium solar cell manufactory for example. The 4th International Conference on Advanced Manufacturing.
López, G. E., Rengel, G. R., Isorna, L. F., & Rosa, I. F. (2007). OPTIMIZATION OF A SOLAR HYDROGEN STORAGE SYSTEM: SAFETY CONSIDERATIONS. 2nd, International Conference on Hydrogen Safety (ICHS).
Lutz, R. R., & Woodhouse, R. M. (1999). Bi-directional analysis for certification of safety-critical software.
M+W Zander, (2002) “Challenges for the Semiconductor Industry”.
Majdara, A., & Wakabayashi, T. (2009). Component-based modeling of systems for automated fault tree generation. Reliability Engineering & System Safety, 94(6), pp. 1076-1086.
Manian, R., Bechta Dugan, J., Coppit, D., & Sullivan, K. J. (1998, November). Combining various solution techniques for dynamic fault tree analysis of computer systems. In High-Assurance Systems Engineering Symposium, 1998. Proceedings. Third IEEE International (pp. 21-28). IEEE.
Maskuniitty, M. & Pulkkinen, U., 1994, Fault treeand failure mode and effects analysis of a digitalsafety function. AVV(94)TR2, Technical ResearchCentre of Finland, 35 p.+app.
McDermott, R. E., Mikulak, R. J., & Beauregard, M. R. (2008). The basics of FMEA. Productivity Press.
Onodera, K. (1997, January). Effective techniques of FMEA at each life-cycle stage. In Reliability and Maintainability Symposium. 1997 Proceedings, Annual (pp. 50-56). IEEE.
Ozgur, U., Alivov, Y. I., Liu, C., Teke, A., Reshchikov, M. A., Dogan, S., Avrutin, V., Cho, S. J., Morkoc, H. (2005). A comprehensive review of ZnO materials and devices. Journal of applied physics, 98(4), 041301-041301.
Pentti, H., & Atte, H. (2002). Failure mode and effects analysis of software-based automation systems. STUK-Y TO-TR-19 0, August, 2(00), 2.
Pickard, K., Muller, P., & Bertsche, B. (2005, January). Multiple failure mode and effects analysis-an approach to risk assessment of multiple failures with FMEA. In Reliability and Maintainability Symposium, 2005. Proceedings. Annual (pp. 457-462). IEEE.
Popović, V., & Vasić, B. (2008). Review of hazard analysis methods and their basic characteristics. FME Transactions, 36(4), pp. 181-187.
Seidel, F. (2009, February). X-by-Wire. In Operating Systems, Chemnitz University of Technology, In seminar Transportation Systems.
Sinnamon, R. M., & Andrews, J. D. (1997). Improved accuracy in quantitative fault tree analysis. Quality and Reliability Engineering International, 13(5), pp. 285-292.
Spanggaard, H., & Krebs, F. C. (2004). A brief history of the development of organic and polymeric photovoltaics. Solar Energy Materials and Solar Cells, 83(2), pp. 125-146.
Stamatis, D. H. (2003). Failure mode effect analysis: FMEA from theory to execution. ASQ Quality Press.
Teng, S. H. G., & Ho, S. Y. M. (1996). Failure mode and effects analysis: an integrated approach for product design and process control. International Journal of Quality & Reliability Management, 13(5), pp. 8-26.
Teoh, P. C., & Case, K. (2004). Failure modes and effects analysis through knowledge modelling. Journal of Materials Processing Technology, 153, pp. 253-260.
United States Nuclear Regulatory Commission (2011), Industry Performance of Relief Valves at U.S. Commercial Nuclear Power Plants through 2007.
van Duijne, F. H., van Aken, D., & Schouten, E. G. (2008). Considerations in developing complete and quantified methods for risk assessment. Safety Science, 46(2), pp. 245-254.
Vemuri, K. K., Dugan, J. B., & Sullivan, K. J. (1999). Automatic synthesis of fault trees for computer-based systems. Reliability, IEEE Transactions on, 48(4), pp. 394-402.
Vesely, B. (2006). Fault Tree Analysis (FTA): Concepts and Applications. NASA document.
Vesely, W. E., & Roberts, N. H. (1987). Fault tree handbook. Nuclear Regulatory Commission.
Walker, M., Papadopoulos, Y., Parker, D., Lönn, H. T. M., Chen, D., & Johansson, R. S. A. (2009, October). Semi-Automatic FMEA supporting complex systems with combinations and sequences of failures. In SAE 2009 World Congress, Paper (pp. 01-0738).
Weng, K.S., Liu, N.Y., Peng, C.J. and Horng, J.L. (2008), Industry status and development opportunities of photovoltaic materials industry. Journal of Industrial Materials, Prog 255, pp. 124-135.
Xiao, N., Huang, H. Z., Li, Y., He, L., & Jin, T. (2011). Multiple failure modes analysis and weighted risk priority number evaluation in FMEA. Engineering Failure Analysis, 18(4), 1162-1170.
呂順意,張小栓,,張健, & 張虎 (2010)。基於 FTA/FMECA 的肉類食品危害溯源方法。食品科學, 31(17), pp. 115-119。.
沈翠霞,吳重光 (2004)。計算機輔助危險與可操作性分析技術的發展。計算機工程與應用。40(36), pp. 208-212。.
陳俊維 (2002)。FMEA應用於提升潔淨室H.V.A.C.系統可靠度之研究。國立成功大學資源工程學系碩士論文。
陳焜燿 (2006)。危害分析應用於製程持續改善之研究-以高科技產業矽甲烷混合氣供應系統為例。國立交通大學工學院產業安全與防災學程碩士論文。
游原鑑 (2009)。矽甲烷供氣系統作業人為可靠度評估。國立中央大學環境工程研究所碩士論文。