Relationship between Particle Size Distribution and Pollutant Content during the Transport of Storm Runoff

Flood season runoff is an important factor affecting reservoir operation, and timely understanding of the runoff transport and the corresponding water quality responses during flood season can provide suggestions for reservoir operation. In-situ field monitoring is conducted at the Jinpen Reservoir,...

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Main Authors: GAO Aiping, HUANG Tinglin, MA Xu, ZHANG Guorong, FAN Wenwei, QI Yunzhi, ZHANG Bo, DU Juanjuan, CUI Hongjun
Format: Article
Language:zho
Published: Editorial Office of Pearl River 2024-12-01
Series:Renmin Zhujiang
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Online Access:http://www.renminzhujiang.cn/thesisDetails#10.3969/j.issn.1001-9235.2024.12.007
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author GAO Aiping
HUANG Tinglin
MA Xu
ZHANG Guorong
FAN Wenwei
QI Yunzhi
ZHANG Bo
DU Juanjuan
CUI Hongjun
author_facet GAO Aiping
HUANG Tinglin
MA Xu
ZHANG Guorong
FAN Wenwei
QI Yunzhi
ZHANG Bo
DU Juanjuan
CUI Hongjun
author_sort GAO Aiping
collection DOAJ
description Flood season runoff is an important factor affecting reservoir operation, and timely understanding of the runoff transport and the corresponding water quality responses during flood season can provide suggestions for reservoir operation. In-situ field monitoring is conducted at the Jinpen Reservoir, and water quality is analyzed through photometry and atomic absorption to study the reservoir runoff. It is found that the runoff's transport progress and the location where it enters the reservoir area are mainly influenced by its volume. The inflow on October 3 is three times larger than that on April 4 and 2.6 times larger than that on June 3, while the TP content is five times higher than that on June 3, and the COD<sub>Mn</sub> is 1.8 times and 1.7 times higher than that on these two days, respectively, indicating that the TP and COD<sub>Mn</sub> in the inflow are related to its volume. The inflow on April 4 and June 3 is nearly the same, but the TN and NO<sub>3</sub>-N on April 4, when the initial runoff happens, are 2.2 times and 1.7 times larger than that on June 3 respectively, indicating that TN and NO<sub>3</sub>-N are greatly influenced by the initial runoff. On October 3, the runoff contains over 70% of suspended particles larger than 10 μm. The turbidity reduction turned slow when it decreased to 30 NTU after the runoff entered the reservoir. Moreover, the pollutants carried by the particle are inversely proportional to the particle's size, leading to substandard water quality in the reservoir during the flood season. Under the rapid deterioration of reservoir water quality during the flood season, the quality of the water supply can be improved by releasing the high-turbidity water carried by the runoff through the flood discharge tunnel to ensure clean water storage and using elevated water intakes.
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spelling doaj-art-0dd5dc9c3f2d493f9a38efca73fce6192025-01-15T03:08:37ZzhoEditorial Office of Pearl RiverRenmin Zhujiang1001-92352024-12-0145597363941151Relationship between Particle Size Distribution and Pollutant Content during the Transport of Storm RunoffGAO AipingHUANG TinglinMA XuZHANG GuorongFAN WenweiQI YunzhiZHANG BoDU JuanjuanCUI HongjunFlood season runoff is an important factor affecting reservoir operation, and timely understanding of the runoff transport and the corresponding water quality responses during flood season can provide suggestions for reservoir operation. In-situ field monitoring is conducted at the Jinpen Reservoir, and water quality is analyzed through photometry and atomic absorption to study the reservoir runoff. It is found that the runoff's transport progress and the location where it enters the reservoir area are mainly influenced by its volume. The inflow on October 3 is three times larger than that on April 4 and 2.6 times larger than that on June 3, while the TP content is five times higher than that on June 3, and the COD<sub>Mn</sub> is 1.8 times and 1.7 times higher than that on these two days, respectively, indicating that the TP and COD<sub>Mn</sub> in the inflow are related to its volume. The inflow on April 4 and June 3 is nearly the same, but the TN and NO<sub>3</sub>-N on April 4, when the initial runoff happens, are 2.2 times and 1.7 times larger than that on June 3 respectively, indicating that TN and NO<sub>3</sub>-N are greatly influenced by the initial runoff. On October 3, the runoff contains over 70% of suspended particles larger than 10 μm. The turbidity reduction turned slow when it decreased to 30 NTU after the runoff entered the reservoir. Moreover, the pollutants carried by the particle are inversely proportional to the particle's size, leading to substandard water quality in the reservoir during the flood season. Under the rapid deterioration of reservoir water quality during the flood season, the quality of the water supply can be improved by releasing the high-turbidity water carried by the runoff through the flood discharge tunnel to ensure clean water storage and using elevated water intakes.http://www.renminzhujiang.cn/thesisDetails#10.3969/j.issn.1001-9235.2024.12.007water source reservoirrunoff evolutionwater qualityparticle size
spellingShingle GAO Aiping
HUANG Tinglin
MA Xu
ZHANG Guorong
FAN Wenwei
QI Yunzhi
ZHANG Bo
DU Juanjuan
CUI Hongjun
Relationship between Particle Size Distribution and Pollutant Content during the Transport of Storm Runoff
Renmin Zhujiang
water source reservoir
runoff evolution
water quality
particle size
title Relationship between Particle Size Distribution and Pollutant Content during the Transport of Storm Runoff
title_full Relationship between Particle Size Distribution and Pollutant Content during the Transport of Storm Runoff
title_fullStr Relationship between Particle Size Distribution and Pollutant Content during the Transport of Storm Runoff
title_full_unstemmed Relationship between Particle Size Distribution and Pollutant Content during the Transport of Storm Runoff
title_short Relationship between Particle Size Distribution and Pollutant Content during the Transport of Storm Runoff
title_sort relationship between particle size distribution and pollutant content during the transport of storm runoff
topic water source reservoir
runoff evolution
water quality
particle size
url http://www.renminzhujiang.cn/thesisDetails#10.3969/j.issn.1001-9235.2024.12.007
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AT zhangguorong relationshipbetweenparticlesizedistributionandpollutantcontentduringthetransportofstormrunoff
AT fanwenwei relationshipbetweenparticlesizedistributionandpollutantcontentduringthetransportofstormrunoff
AT qiyunzhi relationshipbetweenparticlesizedistributionandpollutantcontentduringthetransportofstormrunoff
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