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Design optimization of a helical endothelial cell culture device

机译:螺旋内皮细胞培养装置的设计优化

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The specific roles of mass transfer and fluid dynamic stresses on endothelial function, important in atherogenesis, are not known. Further, the effects of mass transfer and fluid dynamic stresses are difficult to separate because areas of "abnormal" mass transfer and "abnormal" wall shear stress tend to co-localize (where abnormal is defined as any deviation from the mass transfer rate or wall shear stress present in a long straight artery with the same flow rate and diameter). Our goal was to design a cell culture device which gives maximum separation between areas of abnormal shear stress and areas of abnormal mass transfer. We used design optimization principles to design a helical cell culture device. Using shear stress and mass transfer fields predicted by solving the governing equations, the area of the device which was exposed to low rates of mass transfer and normal levels of wall shear stress was determined. The design optimization method then maximized this area by varying the design variables, resulting in the optimum design. The optimum design had Reynolds number = 50, helical radius = 3.23 and helical pitch = 3.82. The area of the device which was exposed to low rates of mass transfer and regular levels of wall shear stress was about 4.5 times the inlet cross-sectional area of the device or about 5% of the device total internal surface area. An optimum design was successfully determined and the methodology used was shown to be robust. The area of the device which was exposed to low rates of mass transfer and regular levels of wall shear stress occurred in a defined region which should aid further experimental work.
机译:在动脉粥样硬化中起重要作用的传质和流体动力应力对内皮功能的具体作用尚不清楚。此外,由于“异常”传质和“异常”壁切应力的区域趋于共定位(因此,异常定义为与传质速率或壁的任何偏差),因此难以区分传质和流体动应力的影响。在相同的流速和直径的长直动脉中存在的剪切应力)。我们的目标是设计一种细胞培养装置,该装置可在异常剪切应力区域和异常传质区域之间实现最大程度的分离。我们使用设计优化原则来设计螺旋细胞培养设备。使用通过求解控制方程式预测的切应力和传质场,确定了暴露于低传质速率和正常水平的壁切应力的器件面积。然后,设计优化方法通过更改设计变量来最大化此区域,从而获得最佳设计。最佳设计的雷诺数= 50,螺旋半径= 3.23,螺旋螺距= 3.82。暴露于低质量传递速率和规则水平的壁切应力的装置面积约为装置入口横截面面积的4.5倍,或约为装置总内表面积的5%。成功确定了最佳设计,并且所显示的方法可靠。器件的暴露于低质量传递速率和规则水平的壁切应力的区域发生在确定的区域,这将有助于进一步的实验工作。

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