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Optimized runner systems for multicavity injection molds. I. Runner sizing

机译:优化的多腔注塑模具流道系统。一,跑步者的尺码

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A strategy has been developed for optimizing the design of runners in injection molds with multiple identical cavities. This approach is based on mathematically rigorous derivations using the power-law viscosity model under conditions where the pressure drop in runners is not significantly influenced by temperature variation. The design rule to minimize runner volume for specified injection pressure and rate is simple: The diameter of any runner downstream from a junction is determined by dividing the diameter of the upstream runner by the cube root of the number of downstream branches at the junction. This rule has been extended to noncircular runners using the hydraulic radius approximation and the requirement of equal velocities in the circular and noncircular runners. Miniumum volume cross-sectional shapes have been determined for U-shaped and trapezoidal shaped runners. For circular runners a method for estimating the pressure drop for non-isothermal flow quantifies the deviation from the pressure drop for isothermal flow at the melt temperature. As runner size decreases, the trend is for viscous heating to dominate over cooling and for the estimated nonisothermal pressure drop to be lower than the isothermal pressure drop.
机译:已经开发出一种策略,用于优化具有多个相同型腔的注塑模具中流道的设计。该方法基于幂律粘度模型在流道压力降不受温度变化影响显着的条件下使用数学上严格的推导得出。对于指定的注射压力和速率,最小化流道容积的设计规则很简单:接点下游任何流道的直径是通过将上游流道的直径除以该接点下游分支数的立方根来确定的。使用液压半径近似以及在圆形和非圆形流道中具有相等速度的要求,已将此规则扩展到非圆形流道。已确定U型和梯形流道的最小体积横截面形状。对于圆形流道,用于估计非等温流动的压降的方法量化了在熔融温度下与等温流动的压降的偏差。随着流道尺寸的减小,趋势是粘性加热胜于冷却,并且估计的非等温压降低于等温压降。

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