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- 2015
基于自然控制论的核化事故应急优化控制理论框架
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Abstract:
摘要 核化事故应急是一个典型的自然规律与人类活动相互作用的问题.以自然环境的合理或最优利用和调控为最终目标的自然控制论是解决核化事故应急优化控制问题的有效方法.核化事故应急优化控制是自然控制论新的发展方向和应用领域.本文给出核化事故应急优化控制问题一般提法的理论方程, 建立核化事故应急优化控制数学模型, 提出应急行动代价和事故损失函数的具体表达式, 将应急行动代价和事故损失定量化, 并给出事故源控制、警戒、疏散、防护、洗消、人员伤亡、医学救治等计算方法.本文为核化事故最优应急控制方案提供了计算理论框架.
[1] | Sharan M, Gopalakrishnan S G. Bhopal gas accident: a numerical simulation of the gas dispersion event[J]. Environmental Modeling & Software, 1997, 12 (2/3): 135-141. |
[2] | Claudia L, Jurgen P S, Wolfgang R. The decision support system RODOS [R]. The Risks of Nucled Energy Technology Science Policy Reports, 2014:337-348. |
[3] | Huang S X, Liu F, Zeng Q C, et al. Modeling and optimal control of atmospheric pollution hazard in nuclear and chemical disasters [C]. IUTAM Symposium on the Dynamics of Extreme Events Influenced by Climate Change,Lanzhou, China, Sep. 23-25, 2013. |
[4] | Zhu J, Lin C Y, WangZF. Dust storm ensemble forecast experiments in East Asia[J]. Advances in Atmospheric Sciences, 2009, 26 (6): 1 053-1 070,doi: 10.1007/s00376-009-8218-0. |
[5] | Marchuk G I. Adjoint equations and analysis of complex systems[M]. Dordrecht: Kluwer Academic Publishers, 1994. |
[6] | 黄顺祥,陈海平,周学志,等. 有毒化学品的毒害效果度量方法:中国,CN1709875-A . 2013-01-02. |
[7] | 刘峰,黄顺祥,陈海平,等. 一种针对化学风险源的危害事故优化控制方法:中国,CN101667325B [P]. 2010-12-08. (continued from page 157)</p> |
[8] | <p> Chino M, Nakayama H, Nagai H, et al. Preliminary estimation of release amounts of 131I and 137Cs accidentally discharged from the Fukushima Daiichi nuclear power plant into the atmosphere[J]. Journal of Nuclear Science and Technology, 2011, 48(7):1 129-1 134. |
[9] | Morino Y, Ohara T, Nishizawa M. Atmospheric behavior, deposition, and budget of radioactive materials from the Fukushima Daiichi nuclear power plant in March 2011[J]. Geophysical Research Letters, 2011, 38, L00G11, doi:10.1029/ 2011GL048689. |
[10] | Galmarini S, Stohl A, Wotawa G. Fund experiments on atmospheric hazards[J]. Nature, 2011, 473: 285. |
[11] | 周永增. 切尔诺贝利事故与居民健康[J]. 辐射防护通讯, 1996, 16(4):42-44. |
[12] | Yasunaria T J, Stohl A, Hayano R S, et al. Cesium-137 deposition and contamination of Japanese soils due to the Fukushima nuclear accident[J]. PNAS, 2011, 108(49): 19 530-19 534. |
[13] | Imai K, Chino M, Ishikawa H, et al. SPEEDI: a computer code system for the real-time prediction of radiation dose to the public due to an accidental release [R]. JAERI-1297, Japan Atomic Energy Research Institute, Tokyo, Japan, 1985. |
[14] | 黄顺祥,陈海平,刘峰,等.大气污染化学事故危害预测数值模拟(CDM)与验证[J]. 北京大学学报:自然科学版. 2011,47(4):664-670. |
[15] | Huang S X, Liu F, Liu P. Study on a chemical hazard early warning technology platform [C]//Progress in Safety Science and Technology(Vol.Ⅶ), Beijing: Science Press, 2008:394-398. |
[16] | Zeng Q C. Silt sedimentation and relevant engineering problem—an example of Natural Cybernetics [C]//ICIAM-95 Proceedings of the Invited Lectures Including Prandte Memorial Lecture, Akademic Veclag, Berlin, 1995. |
[17] | 吴琳, 曾庆存, 洪钟祥.控制论与人工影响天气 II: 工程控制论在人工增雨作业中的应用与建模[J]. 气候与环境研究,2012, 17 (6):979-985. |
[18] | Stone R. Inside Chernobyl [R/OL]. Washington (DC): National Geographic Society, 2006, [2014-05-06]. http://ngm.national geographic.com/2006/04/inside-chernobyl/stone-text.html. |
[19] | Boybeyi Z, Raman S, Zannetti P. Numerical investigation of possible role of local meteorology in Bhopal gas accident[J]. Atmospheric Environment, 1995, 29(4): 479-496. |
[20] | Gupta J P. The Bhopal gas tragedy: could it have happened in a developed country?[J]. Journal of Loss Prevention in the Process Industries, 2000, 15: 1-4. |
[21] | 赵灵敏. 青岛爆炸事故的应急之殇 [N]. 华夏时报, 2014, 23:1-2. |
[22] | 侯瑞宁. 四问爆燃事故[J]. 工程科技I ·安全科学与灾害防治, 2013, 23:26-29. |
[23] | 黄顺祥,胡非,王自发. 大气扩散在防化领域中的研究进展[J]. 安全与环境学报,2015, 15(1):183-187. |
[24] | Thomas J S, James S E, Connee S F, et al. Atmospheric release advisory capability: real-time modeling of airborne hazardous materials[J]. Bulletin of the American Meteorological Society, 1993, 74(12): 2 343-2 361. |
[25] | Thatcher M, Robson M, Henriquez L R, et al. User guide version 1.4: chemical hazard assessment and risk management (CHARM)[M]. Charm Implementation Network, 2005. |
[26] | 曾庆存. 自然控制论[J]. 气候与环境研究, 1996, 1(1):11-20. |
[27] | 雷恒池, 魏蕾, 曾庆存.控制论与人工影响天气 I:人工增雨作业中的正反问题及最优调控[J]. 气候与环境研究,2012, 17 (6):968-978. |
[28] | 刘峰,黄顺祥. 大气环境风险控制的优化理论与应用[M]. 北京: 气象出版社,2011. |
[29] | Marchuk G I. Mathematical models in environmental problems[M]. Holland: Elsevier Science Publishers B V, 1986. |
[30] | Huang S X, Liu P, Chen H P. The potential risk assessment of JACWs based on the monte carlo model [C]//Progress in Safety Science and Technology (Vol.Ⅵ), Beijing: Science Press, 2006: 1 362-1 365. |
[31] | 曾庆存, 吴琳, 洪钟祥. 控制论与人工影响天气 III: 自然控制论在人工增雨作业中的应用框架[J]. 气候与环境研究,2012, 17 (6):986-990. |