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FLOW REACTIONS PREDICTION IN ROTO-TRANSLATING VALVE THROUGH CFD SIMULATIONS

机译:通过CFD仿真预测转子平移阀中的流动反应

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In this work a Computational Fluid Dynamic (CFD) analysis was applied to the design and optimization of a novel concept roto-translating (RT) valve. A Roto-Translating valve is a spool type valve assembled to a moving sleeve. The two parts are controlled by two independent actuators and are placed inside the valve body. The valve features both basic logic functions (AND, OR), and advanced control techniques. From the safety viewpoint it offers a fail-operational characteristic thanks to operational redundancy and functional diversity. Moreover the control flexibility allows to get rid of the need of a specific spool design for each different application. One of the goals of the valve is to enhance the speed and precision achievable by the use of two concurrent actuators; for this reason it is fundamental to study the flow forces effect that could adversely affect both rotating and linear motion. In the field of hydraulic valves design the Flow Force, generated by the acceleration of fluid flow across the metering edges, is an important phenomenon to be considered for the study of the operation and dynamics of the valve. Differently from common spool valves, in this new kind of valve two types of reaction to fluid flow are present: the Flow Force and the Flow Torque. The first is the well-known axial Flow Force which is generated from the variation of axial component of momentum of the fluid flow and was studied by several authors. The second type of reaction can be identified as a Flow Torque, a less investigated argument. Basically the Flow Torque, equivalently to Flow Force, is linked to the variation of the component of fluid momentum, but in this case in circumferential direction and effects the mutual rotation of the two metering elements. A complete map of operative conditions, 5 angular positions and 5 linear displacements have been investigated, simulating all the combinations of 4 different pressure ranges. This approach generates a quite large matrix of 25 results for each of the 4 working pressure conditions. For each run the pressure and velocity gradients have been recorded and the flow and torques forces have been computed. These data allow the validation of the sizing of both electric valve actuators, in order to define the operational limits of the valve in terms of pressure drop and flow rate. This activity could also inspire new solutions for a further geometric optimization of the design.
机译:在这项工作中,将计算流体动力学(CFD)分析应用于新颖概念旋转平移(RT)阀的设计和优化。旋转平移阀是组装到活动套筒上的滑阀式阀。这两个部分由两个独立的执行器控制,并放置在阀体内。该阀具有基本逻辑功能(AND,OR)和先进的控制技术。从安全的角度来看,由于操作冗余和功能多样性,它提供了故障操作特性。此外,控制灵活性还可以消除针对每种不同应用的特定线轴设计的需求。阀门的目标之一是通过使用两个同时的执行器来提高速度和精度。因此,研究可能对旋转运动和线性运动均产生不利影响的流体力效应至关重要。在液压阀设计领域,由流过计量边缘的流体加速产生的流动力是研究阀的运行和动力学时要考虑的重要现象。与普通的滑阀不同,在这种新型阀中,存在两种对流体流动的反应:流动力和流动扭矩。第一个是众所周知的轴向流力,它是由流体流的动量的轴向分量的变化产生的,并由几位作者进行了研究。可以将第二种反应类型识别为“流动扭矩”,这是一个研究较少的论点。基本上,与流动力等效的流动转矩与流体动量分量的变化有关,但在这种情况下,是在圆周方向上,并影响两个计量元件的相互旋转。已研究了完整的操作条件图,5个角位置和5个线性位移,模拟了4种不同压力范围的所有组合。对于4种工作压力条件中的每一种,此方法都会生成一个包含25个结果的相当大的矩阵。对于每次运行,都记录了压力和速度梯度,并计算了流量和扭矩力。这些数据可以验证两个电动阀门执行器的尺寸,以便根据压降和流量来定义阀门的操作极限。这项活动还可以激发新的解决方案,以进一步优化设计的几何形状。

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