...
首页> 外文期刊>Ecological Modelling >Simulation of thermal/dissolved oxygen habitat for fishes in lakes under different climate scenarios - Part 1. Cool-water fish in the contiguous US
【24h】

Simulation of thermal/dissolved oxygen habitat for fishes in lakes under different climate scenarios - Part 1. Cool-water fish in the contiguous US

机译:不同气候情景下湖中鱼类热/溶解氧栖息地的模拟-第1部分。美国连续水域的冷水鱼类

获取原文
获取原文并翻译 | 示例

摘要

Fish habitat is strongly constrained by water temperature and available dissolved oxygen (DO). Thermal/DO habitat for cool-waterfish in small lakes was therefore determined from simulated daily water temperature and DO profiles. Twenty-seven types of lakes were simulated with past (1961-1979) climate conditions observed at 209 weather stations in the contiguous USA as input, and with a 2xCO(2) climate scenario that is projected to occur at the same locations. The output of the Canadian Climate Centre General Circulation Model (CCC GCM) was used to determine the climate data increments for a doubling of atmospheric CO2. A verified, process-oriented, unsteady and one-dimensional (vertical) lake water quality model (MINLAKE96) was used for the year-round temperature and DO simulations, which were run in a continuous mode over a 19-year simulation period. Water temperature and DO criteria for survival and good-growth of cool-water fish were provided by the United States Environmental Protection Agency. Cool-water fish in this study comprise seven species, northern pike, white sucker, black crappie, white crappie, yellow perch, sauger, and walleye. Nine fish habitat parameters were developed to quantify thermal habitat of cool-water fish and were extracted for the 27 lake types at 209 locations of the contiguous US. Fish habitat parameters were found to depend more strongly on lake geometry (surface area and maximum depth) and less on trophic state. Winterkill which occurs in eutrophic and mesotrophic, shallow lakes of the north-central and northeastern states of the contiguous US under present climate conditions, is projected to disappear under the 2xCO(2) climate scenario due to a shortening of the ice cover period. Climate warming is projected to increase the good-growth period of cool-water fish by up to 137 days in lakes in the north-central and northeastern states and to decrease it by up to 103 days in lakes at several south-central and southeastern states of the contiguous US. Due to climate warming, the good-growth period, the good-growth habitat areas and the good-growth habitat volumes of cool-water fish are projected to increase by 20, 10, and 8% from the past values, respectively, in medium-depth lakes of the contiguous US. Climate warming is projected to reduce the number of locations, where lakes have suitable cool-water fish habitat, by up to 62 out of 209 (30%). Average reductions are 56, 42, and 7 locations (27, 20, and 3%) for shallow (4 m), medium-depth (13 m), and deep (24 m) lakes, respectively. Summerkill under the projected 2xCO(2) CCC climate scenario is a projected significant negative impact on cool-water fish in southern lakes of the contiguous US, where suitable habitat existed under past conditions. (C) 2003 Elsevier B.V. All rights reserved. [References: 54]
机译:鱼的栖息地受到水温和可用溶解氧(DO)的强烈限制。因此,根据模拟的每日水温和DO曲线确定了小湖中冷水鱼的热/ DO栖息地。对二十七个类型的湖泊进行了模拟,以过去(1961-1979年)在美国连续209个气象站观测到的气候条件作为输入,并模拟了预计在相同地点发生的2xCO(2)气候情景。加拿大气候中心总循环模型(CCC GCM)的输出用于确定大气CO2倍增的气候数据增量。经过验证的,面向过程的,不稳定的一维(垂直)湖水质量模型(MINLAKE96)用于全年的温度和溶解氧模拟,并在19年的模拟期内以连续模式运行。美国环境保护局提供了水温和凉水鱼生存和良好生长的溶解氧标准。这项研究中的冷水鱼类包括七个物种,北梭鱼,白吸盘,黑black鱼,白cr鱼,黄鲈鱼,索格鱼和角膜白鲑。开发了九个鱼类栖息地参数以量化冷水鱼类的热栖息地,并提取了美国连续209个位置的27个湖泊类型的水栖生物。发现鱼类的栖息地参数在很大程度上取决于湖泊的几何形状(表面积和最大深度),而较少取决于营养状态。在目前的气候条件下,在美国北部中部和东北部地区的富营养和中营养的浅湖中发生的温特基尔杀灭活动由于冰盖期缩短而在2xCO(2)气候情景下预计会消失。预计气候变暖将使中北部和东北州的湖泊中的冷水鱼的生长期延长多达137天,而使中南部和东南部几个州的湖泊中的冷水鱼的生长期延长多达103天连续的美国。由于气候变暖,在中期,凉水鱼的旺盛时期,旺盛栖息地面积和旺盛栖息地数量预计将分别比过去增加20%,10%和8%。美国毗连的深湖。预计气候变暖将使湖泊中有合适的凉水鱼栖息地的地点数量减少,最多可减少209个地区中的62个(30%)。浅水(4 m),中深度(13 m)和深水(24 m)的平均减少量分别为56、42和7个位置(27%,20%和3%)。在预计的2xCO(2)CCC气候情景下,Summerkill将对美国连续湖泊南部的凉水鱼产生严重的负面影响,在过去的条件下,该湖有合适的栖息地。 (C)2003 Elsevier B.V.保留所有权利。 [参考:54]

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号