Journal of Guangdong University of Technology ›› 2023, Vol. 40 ›› Issue (05): 8-14.doi: 10.12052/gdutxb.220166
• Extenics and Innovation Methods • Previous Articles
Rui Guo-xiang1, Feng Jian-sheng1, Chen Xin2,3, Yang Chun-yan2,3
CLC Number:
[1] 谢鹏程, 陈青山, 李响. 基于机器视觉的工矿现场粉尘实时监测[J]. 工矿自动化, 2017, 43(3): 61-65. XIE P C, CHEN Q S, LI X. Real-time dust monitoring for industrial site based on machine vision [J]. Industry and Mine Automation, 2017, 43(3): 61-65. [2] 靳华伟, 谢品华, 胡仁志, 等. 呼吸性粉尘吸收系数的光声光谱探测[J]. 光谱学与光谱分析, 1993, 39(7): 1993-1998. JIN H W, XIE P H, HU R Z, et al. Study on photo-acoustic spectrum detection technology of respiratory dust absorption coefficient [J]. Spectroscopy and Spectral Analysis, 19, 39(7):, 1993, 39(7): 1993-1998. [3] 谭德军, 谢巨天, 简季, 等. 万盛采矿区粉尘污染农作物光谱特性分析[J]. 国土资源遥感, 2013, 25(2): 121-130. TAN D J, XIE J T, JIAN J, et al. Analysis on spectral characteristics of dust polluted crops in Wansheng coal mining district [J]. Remote Sensing for Land and Resources, 2013, 25(2): 121-130. [4] 付士根, 亢永, 王庆. 基于光散射法粉尘个体监测仪研制[J]. 中国安全生产科学技术, 2021, 17(6): 149-153. FU S G, KANG Y, WANG Q. Development of individual dust monitor based on light scattering method [J]. Journal of Safety Science and Technology, 2021, 17(6): 149-153. [5] 李德文, 陈建阁, 安文斗, 等. 电荷感应式粉尘浓度检测技术[J]. 能源与环保, 2018, 40(8): 5-9. LI D W, CHEN J G, AN W D, et al. Dust concentration detection technology based on charge induction method [J]. China Energy and Environmental Protection, 2018, 40(8): 5-9. [6] 黄成玉, 张全柱, 邓永红, 等. 新型煤矿粉尘浓度监测系统的设计[J]. 矿业研究与开发, 2011, 31(1): 53-55. HUANG C Y, ZHANG Q Z, DENG Y H, et al. Design of a new type dust concentration detection system for coal mine [J]. Mining Research and Development, 2011, 31(1): 53-55. [7] 李宗伦, 赵修良, 彭丽婧, 等. β射线粉尘测量仪在煤矿粉尘浓度监测中的应用[J]. 中国煤炭, 2010, 36(3): 65-67. LI Z L, ZHAO X L, PENG L J, et al. Application of β-ray dust tester for dust monitoring in coal mines [J]. China Coal, 2010, 36(3): 65-67. [8] 叶方平, 方朝阳, 徐显金, 等. 基于图像透光率的粉尘浓度测量算法研究[J]. 应用光学, 2022, 43(3): 496-502. YE F P, FANG C Y, XU X J, et al. Dust concentration measurement algorithm based on image transmittance [J]. Journal of Applied Optics, 2022, 43(3): 496-502. [9] ZHANG H, NIE W, LIANG Y, et al. Development and performance detection of higher precision optical sensor for coal dust concentration measurement based on Mie scattering theory [J]. Optics and Lasers in Engineering, 2021, 144: 106642. [10] LI L, ZHANG R, SUN J, et al. Monitoring and prediction of dust concentration in an open-pit mine using a deep-learning algorithm [J]. Journal of Environmental Health Science and Engineering, 2021, 19(1): 401-414. [11] CHENG X Z, CAO M Y, COLLIER M. An on-line detection system for coal mine dust[C]// LARRY Y C. The World Congress on Intelligent Control and Automation. Piscataway: IEEE, 2008: 4166-4171. [12] 周兆海, 姚有利, 程超男. 基于FAHP-GRA的煤矿粉尘综合安全评价体系研究[J]. 山西大同大学学报(自然科学版), 2021, 37(3): 82-86. ZHAO Z H, YAO Y L, CHENG C N. Study on comprehensive safety evaluation system of coal mine dust based on FAHP-GRA [J]. Journal of Shanxi Datong University (Natural Science Edition), 2021, 37(3): 82-86. [13] WANG W, WANG H, ZHANG B, et al. Coal and gas outburst prediction model based on extension theory and its application [J]. Process Safety and Environmental Protection, 2021, 154: 329-337. [14] CABALLERO-GALLARDO K, OLIVERO-VERBEL J. Mice housed on coal dust-contaminated sand: a model to evaluate the impacts of coal mining on health [J]. Toxicology and Applied Pharmacology, 2016, 294: 11-20. [15] OPARIN V N, POTAPOV V P, GINIYATULLINA O L, et al. Evaluation of dust pollution of air in Kuzbass coal-mining areas in winter by data of remote earth sensing [J]. Journal of Mining Science, 2014, 50(3): 549-558. [16] 杨春燕, 蔡文. 可拓学[M]. 北京: 科学出版社, 2014: 34-167. [17] 杨春燕. 可拓创新方法[M]. 北京: 科学出版社, 2017: 118-144. [18] 王芳, 张磊, 胡建勋. 基于可拓层次分析法的工作面粉尘危险性评价研究[J]. 中小企业管理与科技(上旬刊), 2014(3): 315-316. [19] 中华人民共和国卫生部. 工作场所空气中粉尘测定 第1部分: 总粉尘浓度: GBZ/T 192.1-2007 [S]. 北京: 人民卫生出版社, 2007. [20] 中华人民共和国卫生部. 工作场所空气中粉尘测定 第2部分: 呼吸性粉尘浓度: GBZ/T 192.1-2007 [S]. 北京: 人民卫生出版社, 2007. [21] 荆登峰. 阳泉某矿岩巷粉尘危害现状[J]. 煤矿机械, 2022, 43(4): 95-97. JING D F. Present situation of dust hazard in rock roadway of mine in Yangquan [J]. Coal Mine Machinery, 2022, 43(4): 95-97. [22] 李德文, 隋金君, 刘国庆, 等. 中国煤矿粉尘危害防治技术现状及发展方向[J]. 矿业安全与环保, 2019, 46(6): 1-7. LI D W, SUI J J, LIU G Q, et al. Technical status and development direction of coal mine dust hazard prevention and control technology in China [J]. Mining Safety & Environmental Protection, 2019, 46(6): 1-7. [23] 王文宽. 煤矿粉尘综合防治体系构建探索[J]. 山西煤炭, 2021, 41(3): 2-8. WANG W K. Exploration on comprehensive dust prevention and control system construction in mines [J]. Shanxi Coal, 2021, 41(3): 2-8. [24] 张立. 矿井粉尘综合治理技术的研究[J]. 煤, 2017, 26(5): 36-37. [25] 刘增超, 史东涛. 煤矿粉尘治理技术现状及展望[J]. 科技信息(科学教研), 2008(7): 299. |
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