RESOURCES AND ENVIRONMENT IN THE YANGTZE BASIN >> 2016, Vol. 25 >> Issue (06): 974-980.doi: 10.11870/cjlyzyyhj201606014

Previous Articles     Next Articles

EXPERIMENTAL STUDY ABOUT ATTRACTIVE EFFECTS FOR FISH IN DIFFERENT FLOW VELOCITY BY THE MODEL OF THE NO.1 SHIP LOCK OF THE GEZHOU DAM

WANG Cong-feng1,2, CHEN Ming-ming1, LIU De-fu3, XIONG Feng1, LIU Hui-jie1, ZHU Liang-kang1   

  1. 1. College of Hydraulic and Environmental Engineering, China Three Gorges University, Yichang 443002, China;
    2. Synergistic Innovation Center of Geological Disasters and Ecological Environment in the Three Gorges Region in Hubei Province, Yichang 443002, China;
    3. College of Resources and Environmental Engineering, Hubei University of Technology, Wuhan 430068, China
  • Received:2015-09-21 Revised:2016-01-15 Online:2016-06-20
  • Supported by:
    Special Funds for Public Industry Research Projects of the National Ministry of Water Resources (Grant No.201201030);Science and Technology Innovation Foundation for the CTGU in 2015(Grant No.2015CX014)

Abstract: This research takes the Hypophthalmichthys molitrix as the object in the study toexplore the technology for inducing fish to swim cross the ship lock in a home-made Gezhou Dam ship lock mode. All fish are with an average length of 12.5±2.4cm and height of 21.3±3.5 g. The temperature is controlled in the range of (20±1)and DO is larger than 7 mg/L. One hundred fish were randomly selected for each experiment and tested for only once. When viewed video processing data, each region took a 2 hour continuous observation with 1 min intervals for a screenshot to record the distribution of fishes. The fish average aggregation rate (P), trapping efficiency index (I), gate crossing frequency (f) and the upstream and downstream residence time ratio (Tr) were the evaluation index to evaluate the actual effect of luring fish. The results show that an appropriate range of flow velocity had a certain attraction effect to induce the fish into the lock. When the average flow velocity at the gate section was about 0.45 m/s, the average aggregate rate and trapping efficiency index on the both side of the lock reached the maximum value, the rate of fish through the gate recurrence was the highest. When the flow velocity was 0 m/s (control group), the activity routines of fish was not obvious ,only given a certain flow rate, the activity of fish was regular, that was, the phenomenon of the top flow. When the flow velocity was between 0 and 0.45m/s, barycenter of fish mainly concentrated in high velocity area of the gate. When the velocity was greater than 0.45 m/s, then gradually increased, the frequency of the fish into the lock was on the decline, barycenter of fish mainly concentrated in the downstream side of gate, in where the flow velocity was relatively stable. When the velocity reached to 0.75 m/s, the fish reached the limit rate of swimming velocity in the silver carp. To through the gate of high-speed flow area, the fish must accelerate the tail beat frequency or burst slide. Because the gate guide wall distance is long and and the fish need to consume a lot of energy to get through the gate upstream, high-speed flow of fish produce certain drive effect. Therefore, appropriate velocity on the gate region downstream of fish had a certain induction, and fish trapping efficiency between the frequency and velocity of the ship lock showed significantly correlated. When the velocity was greater than 0.75m/s, fish failed to against the stream gradually, and no longer gathered around the gate, then escaped. This paper is expected to provide basic data for the feasibility study of low-head hydro project combined with fishway, and also offer reference for the study of the fish behavior in the future.

Key words: ship lock, dam-passing buildings, flow velocity, attractiveeffects, fish behavior

CLC Number: 

  • S917.4
[1] BEAMISH R J, NORTHCOTE T G. Extinction of a population of anadromous parasitic lamprey, Lampetra tridentata, upstream of an impassable dam[J]. Canadian Journal of Fisheries and Aquatic Sciences, 1989, 46(3): 420-425.
[2] NERAAS L P, SPRUELL P. Fragmentation of riverine systems: the genetic effects of dams on bull trout (Salvelinus confluentus) in the Clark Fork River system[J]. Molecular Ecology, 2001, 10(5): 1153-1164.
[3] 陈 进, 黄 薇, 张 卉. 长江上游水电开发对流域生态环境影响初探[J]. 水利发展研究, 2006, 6(8): 10-13, 17. [CHEN J, HUANG W, ZHANG H. The influence of hydropower development in the upper reaches of the Yangtze River on the ecological environment of the river basin[J]. Water Resources Development Research, 2006, 6(8): 10-13, 17.]
[4] CHEONG T S, KAVVAS M L, ANDERSON E K. Evaluation of adult white sturgeon swimming capabilities and applications to fishway design[J]. Environmental Biology of Fishes, 2006, 77(2): 197-208.
[5] 刘洪波. 鱼道建设现状、问题与前景[J]. 水利科技与经济, 2009, 15(6): 477-479. [LIU H B. Current situation and questions and prospect of fishways construction[J]. Water Conservancy Science and Technology and Economy, 2009, 15(6): 477-479.]
[6] 王兴勇, 郭 军. 国内外鱼道研究与建设[J]. 中国水利水电科学研究院学报, 2005, 3(3): 222-228. [WANG X Y, GUO J. Brief review on research and construction of fish-ways at home and abroad[J]. Journal of China Institute of Water Resources and Hydropower Research, 2005, 3(3): 222-228.]
[7] ARGENT D G, KIMMEL W G. Influence of navigational lock and dam structures on adjacent fish communities in a major river system[J]. River Research and Applications, 2011, 27(10): 1325-1333.
[8] JOHNSON R A, WICHERN D W. Applied Multivariate Statistical Analysis[M]. 5th ed. New Jersey: Prentice Hall, 2002: 5.
[9] NIELSEN A C. Computational fluid dynamics applications for the Lake Washington Ship Canal[D]. Iowa: Master Dissertation of The University of Iowa, 2011.
[10] 熊 锋, 王从锋, 刘德富, 等. 葛洲坝1号船闸启闭闸门对近闸区域鱼类活动规律的影响[J]. 水生态学杂志, 2014, 35(5): 8-14. [XIONG F, WANG C F, LIU D F, et al. Fish assemblages under different running status of the No. 1 ship lock of the Gezhou dam[J]. Journal of Hydroecology, 2014, 35(5): 8-14.]
[11] 王从锋, 向经文, 刘德富, 等. 一种利用船闸实现过鱼的装置: 中国, 103485314A [P]. 2014-01-01. [WANG C F, XIANG J W, LIU D F, et al. A fish passage structure by ship lock: China, 103485314A[P]. 2014-01-01.]
[12] 何大仁, 施养明. 鱼礁模型对黑鲷的诱集效果[J]. 厦门大学学报(自然科学版), 1995, 34(4): 653-658. [HE D R, SHI Y M. Attractive effect of fish reef model on Black porgy (Sparus macrocephalus)[J]. Journal of Xiamen University (Natural Science), 1995, 34(4): 653-658.]
[13] 周艳波, 蔡文贵, 陈海刚, 等. 10种人工鱼礁模型对黑鲷幼鱼的诱集效果[J]. 水产学报, 2011, 35(5): 711-718. [ZHOU Y B, CAI W G, CHEN H G, et al. Attraction effect of various artificial reef models on Sparus macrocephalus[J]. Journal of Fisheries of China, 2011, 35(5): 711-718.]
[14] PUERTAS J, PENA L, TEIJEIRO T. Experimental approach to the hydraulics of vertical slot fishways[J]. Journal of Hydraulic Engineering, 2004, 130(1): 10-23.
[15] 石小涛, 陈求稳, 黄应平, 等. 鱼类通过鱼道内水流速度障碍能力的评估方法[J]. 生态学报, 2011, 31(22): 6967-6972. [SHI X T, CHEN Q W, HUANG Y P, et al. Review on the methods to quantify fish's ability to cross velocity barriers in fish passage[J]. Acta Ecologica Sinica, 2011, 31(22): 6967-6972.]
[16] FARRELL A P. Comparisons of swimming performance in rainbow trout using constant acceleration and critical swimming speed tests[J]. Journal of Fish Biology, 2008, 72(3): 693-710.
[17] HE P, WARDLE C S. Endurance at intermediate swimming speeds of Atlantic mackerel, Scomber scombrus L. , herring, Clupea harengus L. , and saithe, Pollachius virens L. [J]. Journal of Fish Biology, 1988, 33(2): 255-266.
[18] PLAUT I. Critical swimming speed: its ecological relevance[J]. Comparative Biochemistry and Physiology Part A: Molecular & Integrative Physiology, 2001, 131(1): 41-50.
[19] 郑金秀, 韩德举, 胡望斌, 等. 与鱼道设计相关的鱼类游泳行为研究[J]. 水生态学杂志, 2010, 3(5): 104-110. [ZHENG J X, HAN D J, HU W B, et al. Fish swimming performance related to fishway design[J]. Journal of Hydroecology, 2010, 3(5): 104-110.]
[20] STARRS D, EBNER B C, LINTERMANS M, et al. Using sprint swimming performance to predict upstream passage of the endangered Macquarie perch in a highly regulated river[J]. Fisheries Management and Ecology, 2011, 18(5): 360-374.
[21] PARAMO J, QUIÑONES R A, RAMIREZ A, et al. Relationship between abundance of small pelagic fishes and environmental factors in the Colombian Caribbean Sea: an analysis based on hydroacoustic information[J]. Aquatic Living Resources, 2003, 16(3): 239-245.
[22] 刘 稳, 诸葛亦斯, 欧阳丽, 等. 水动力学条件对鱼类生长影响的试验研究[J]. 水科学进展, 2009, 20(6): 812-817. [LIU W, ZHUGE Y S, OUYANG L, et al. Experimental study of the effect of hydrodynamic conditions on fish growth[J]. Advances in Water Science, 2009, 20(6): 812-817.]
[23] 何大仁, 蔡厚才. 鱼类行为学[M]. 厦门: 厦门大学出版社, 1998. [HE D R, CAI H C. Fish Ethology[M]. Xiamen: Xiamen University Press, 1998.]
[24] 袁 喜, 涂志英, 韩京成, 等. 流速对鲫游泳行为和能量消耗影响的研究[J]. 水生态学杂志, 2011, 32(4): 103-109. [YUAN X, TU Z Y, HAN J C, et al. Effects of folw rate on swimming behavior and energy consumption of Carassius auratus[J]. Journal of Hydroecology, 2011, 32(4): 103-109.]
[25] TUDORACHE C, VIAENE P, BLUST R, et al. A comparison of swimming capacity and energy use in seven European freshwater fish species[J]. Ecology of Freshwater Fish, 2008, 17(2): 284-291.
[26] 张 硕, 陈 勇. 黑鲪幼鱼趋流性的初步研究[J]. 上海水产大学学报, 2005, 14(3): 282-287. [ZHANG S, CHEN Y. Preliminary study on the rheotaxis of juvenile sebastodes fuscescens[J]. Journal of Shanghai Fisheries University, 2005, 14(3): 282-287.]
[27] 赵希坤, 韩桢锷. 鱼类克服流速能力的试验[J]. 水产学报, 1980, 4(1): 31-37. [ZHAO X K, HAN Z E. Experiments on the current overcoming ability of some freshwater fishes[J]. Journal of Fisheries of China, 1980, 4(1): 31-37.]
[28] 汤荆燕, 高 策, 陈 旻, 等. 不同流态对鱼道进口诱鱼效果影响的实验研究[J]. 红水河, 2013, 32(1): 34-39, 44. [TANG J Y, GAO C, CHEN M, et al. Study on influence of different flow patterns on fish attracting effect at fish way entrance[J]. Hongshui River, 2013, 32(1): 34-39, 44.]
No related articles found!
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
[1] PENG Chang-qing,FENG Jin-fei,BIAN Xin-min. OPTIMIZATION OF SPATIAL DISTRIBUTION IN PADDY FIELD CROPPING SYSTEM BASED ON GIS AND GENE ALGORITHM IN THE SCALE OF COUNTY[J]. RESOURCES AND ENVIRONMENT IN THE YANGTZE BASIN, 2006, 15(1): 66 -70 .
[2] TANG Qi, YU Xiao-gan. PROBLEMS IN THE ECONOMIC SUSTAINABLE DEVELOPMENT IN THE YANGTZE RIVER DELTA[J]. RESOURCES AND ENVIRONMENT IN THE YANGTZE BASIN, 2006, 15(3): 269 -273 .
[3] WANG Haiyun, GAO Taizhong,GAO Jing,HUANG Qunxian. WATER RESOURCES OPTIMAL ALLOCATION IN THE MIDDLE LINE OF SOUTH TO NORTH WATER TRANSFER PROJECT USING AHP LP[J]. RESOURCES AND ENVIRONMENT IN THE YANGTZE BASIN, 2007, 16(5): 588 .
[4] ZHANG Yan, ZHANG Hong, PENG Buzhuo. EVALUATING COORDINATION AMONG LAND USE, NATURAL ENVIRONMENT AND ECONOMIC DEVELOPMENT[J]. RESOURCES AND ENVIRONMENT IN THE YANGTZE BASIN, 2008, 17(4): 529 .
[5] HUANG Xi-sheng,TANG Shao-jun. MECHANISMS FOR THE ENFORCEMENT OF ENVIRONMENTAL SAFETY AND SECURITY PROTECTION LAWS IN THETHREE GORGES RESERVOIR AREA[J]. RESOURCES AND ENVIRONMENT IN THE YANGTZE BASIN, 2004, 13(6): 611 -615 .
[6] ZHANG Xiao-fei,LIN Yu-suo, YU Fei,LI Bo. POLLUTION OF HEAVY METALS IN URBAN SOILS OF TYPICAL INDUSTRIAL[J]. RESOURCES AND ENVIRONMENT IN THE YANGTZE BASIN, 2005, 14(4): 512 -515 .
[7] LIAO Fuqiang, LIU Ying,YE Muya,ZHENG Lin. VULNERABILITY ASSESSMENT AND PRESSURE ANALYSIS ON ECOLOGICAL ENVIRONMENT OF TYPICAL WETLAND IN POYANG LAKE[J]. RESOURCES AND ENVIRONMENT IN THE YANGTZE BASIN, 2008, 17(1): 133 .
[8] ZHAO Yao-yang, PU Li-jie, HU Xiao-tian. APPLICATION OF BP NEURAL NETWORK IN THE PREDICTION OF URBAN CONSTRUCTION LAND AREA——A CASE STUDY OF JIANGSU PROVINCE[J]. RESOURCES AND ENVIRONMENT IN THE YANGTZE BASIN, 2006, 15(1): 14 -18 .
[9] XU Jianmin,LV Kaiyu,LOU Bojie. ECONOMIC ANALYSIS ON THE IMPACT OF AGRICULTURAL PRODUCTION ON SOIL SALINIZATION[J]. RESOURCES AND ENVIRONMENT IN THE YANGTZE BASIN, 2009, 18(2): 132 .
[10] LIU Dun, Liu-Yu-Qi-. DYNAMIC CHANGE OF LAND USE STRUCTURE IN DEVELOPED AREA[J]. RESOURCES AND ENVIRONMENT IN THE YANGTZE BASIN, 2009, 18(4): 307 .