Development and application of test calibration device for low concentration particulate matter in coal-fired flue gas
CHEN Weixiang1,2,, GUO Jun1,2, YANG Ding1,3, YE Xinglian1,3,,, LUO Yi2, LIN Qichao1 1.State Environmental Protection Engineering and Technology Center for Power Industrial Dust Control, Fujian Longking Co. Ltd., Longyan 364000, China 2.Experimental Research Centre, Fujian Longking Co. Ltd., Longyan 364000, China 3.Key Laboratory for Ecological Metallurgy of Multimetallic Mineral of Ministry of Education, School of Metallurgy, Northeastern University, Shenyang 110819, China
Abstract:Under ultra-low emission conditions, how to accurately measure low-concentration particulate matter has become a key technical issue. According to the test standards of HJ 836-2017, a low-concentration particle test calibration device with traceable value was developed. The main units and performance evaluation of the calibration device were elaborated, which was also applied in practice. The application results show that the particle concentration of the calibration device increased with the increase of the feed frequency, and the result parallelism of the samples was better. The feeding frequency had a good linear relationship with the particle concentration in dry flue gas and wet flue gas, which showed high credibility and could be used as a calibration device standard curve to calibrate the particle concentration. The polynomial was recommended for the calculation and installation when on-line monitoring was used to calibrate low concentration particulate matter. Under dry and wet flue gas conditions, the calibration factors for on-line monitoring particulate matter were different, and the accuracy of factory calibration was poor. The device could provide stable, uniform and reliable output of low concentration particulate matter under high humidity, low temperature and acid flue gas conditions, which could be used to simulate the complicated flue gas condition in the field, and provide technical reference for the accuracy in verifying the manual testing and on-line monitoring particulate matter with low concentration. Key words:coal-fired flue gas/ low-concentration particulate matter/ test calibration for particulate matter.
图1给料发生装置示意图 Figure1.Schematic diagram of the feeding device
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1.State Environmental Protection Engineering and Technology Center for Power Industrial Dust Control, Fujian Longking Co. Ltd., Longyan 364000, China 2.Experimental Research Centre, Fujian Longking Co. Ltd., Longyan 364000, China 3.Key Laboratory for Ecological Metallurgy of Multimetallic Mineral of Ministry of Education, School of Metallurgy, Northeastern University, Shenyang 110819, China Received Date: 2018-10-22 Accepted Date: 2019-06-05 Available Online: 2020-11-11 Keywords:coal-fired flue gas/ low-concentration particulate matter/ test calibration for particulate matter Abstract:Under ultra-low emission conditions, how to accurately measure low-concentration particulate matter has become a key technical issue. According to the test standards of HJ 836-2017, a low-concentration particle test calibration device with traceable value was developed. The main units and performance evaluation of the calibration device were elaborated, which was also applied in practice. The application results show that the particle concentration of the calibration device increased with the increase of the feed frequency, and the result parallelism of the samples was better. The feeding frequency had a good linear relationship with the particle concentration in dry flue gas and wet flue gas, which showed high credibility and could be used as a calibration device standard curve to calibrate the particle concentration. The polynomial was recommended for the calculation and installation when on-line monitoring was used to calibrate low concentration particulate matter. Under dry and wet flue gas conditions, the calibration factors for on-line monitoring particulate matter were different, and the accuracy of factory calibration was poor. The device could provide stable, uniform and reliable output of low concentration particulate matter under high humidity, low temperature and acid flue gas conditions, which could be used to simulate the complicated flue gas condition in the field, and provide technical reference for the accuracy in verifying the manual testing and on-line monitoring particulate matter with low concentration.