首页> 外文期刊>Canadian Journal of Fisheries and Aquatic Sciences >Effect of velocity on the filter feeding of dreissenid mussels (Dreissenapolymorpha and Dreissena bugensis): implications for trophic dynamics
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Effect of velocity on the filter feeding of dreissenid mussels (Dreissenapolymorpha and Dreissena bugensis): implications for trophic dynamics

机译:速度对藻类贻贝(Dreissenapolymorpha和Dreissena bugensis)滤食的影响:对营养动力学的影响

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Fluid dynamic forces were found to significantly affect the ability of freshwater dreissenid mussels (Dreissena polymorpha and Dreissena bugensis) to clear plankton. Tests conducted in a flow chamber at <1 cm s(-1) were consistent with published clearance rates from standard tests involving unstirred containers (i.e., 60-70 mt mussel(-1).h(-1) for 11-mm-long mussels). Increasing ambient velocity up to similar to 10 cm.s(-1) led to clearance rates at least twice those of standard testing methods. Higher velocities (similar to 20 cm.s(-1)) were inhibitory and resulted in reduced clearance rates. There were no detectable differences in the clearance rates of D. polymorpha and D. bugensis of equal size tested at similar to 10 cm.s(-1), but large mussels had greater clearance rates than small ones. These results were found to be consistent with observations from marine bivalves and indicate that fluid dynamic issues are of importance in freshwater ecosystems, especially those that are shallow and (or) flowing. The trophic dynamics of these ecosystems will be better understood when the effects of fluid dynamics on the organism's ability to filter feed and the local delivery of seston through turbulent mixing are considered. [References: 57]
机译:发现流体动力显着影响淡水水藻类贻贝(Dreissena polymorpha和Dreissena bugensis)清除浮游生物的能力。在小于1 cm s(-1)的流动室中进行的测试与公布的涉及未搅拌容器的标准测试(即60-70 mt mussel(-1).h(-1)为11mm-长贻贝)。将环境速度提高到接近10 cm.s(-1)导致的清除率至少是标准测试方法的两倍。较高的速度(类似于20 cm.s(-1))具有抑制作用,并导致清除率降低。在相似的10 cm.s(-1)上测试的同等大小的D. bug和D. bugensis的清除率没有可检测的差异,但是大贻贝的清除率比小贻贝的清除率高。发现这些结果与海洋双壳类动物的观察结果一致,表明流体动力学问题在淡水生态系统中尤其是浅水和(或)流动的生态系统中至关重要。当考虑流体动力学对生物体过滤饲料的能力以及湍流混合引起的局部局部传递的影响时,将会更好地理解这些生态系统的营养动力学。 [参考:57]

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