首页> 外文期刊>Journal of Fluids Engineering: Transactions of the ASME >Cavitating Flow Suppression for a Two-Phase Liquefied Natural Gas Expander Through Collaborative Fine-Turning Design Optimization of Impeller and Exducer Geometric Shape
【24h】

Cavitating Flow Suppression for a Two-Phase Liquefied Natural Gas Expander Through Collaborative Fine-Turning Design Optimization of Impeller and Exducer Geometric Shape

机译:通过叶轮和救济运动员几何形状的协同细压设计优化,对两相液化天然气膨胀器进行空气抑制

获取原文
获取原文并翻译 | 示例
           

摘要

Cryogenic liquid turbine expanders have been increasingly used in liquefied natural gas (LNG) production plants to save energy. However, high-pressure LNG commonly needs to be throttled to or near a two-phase state, which makes the LNG turbine expander more vulnerable to cavitation. Although some work has been reported on cryogenic turbomachine cavitation, no work has been reported on designing a cavitation-resistant two-phase LNG liquid turbine expander. Motivated by the urgent requirement for two-phase liquid turbine expanders, an effective design optimization method is developed that is well-suited for designing the cavitation-resistant two-phase liquid turbine expanders. A novel optimization objective function is constituted by characterizing the cavitating flow, in which the overall efficiency and local cavitation flow behavior are incorporated. The adaptive-Kriging surrogate model and cooperative coevolutionary algorithm (CCEA) are incorporated to solve the highly nonlinear design optimization problem globally and efficiently. The former maintains high-level prediction accuracy of the objective function but uses much reduced computational fluid dynamics (CFD) simulations while the later solves the complex optimization problem at a high convergence rate through decomposing them into some readily solved parallel subproblems. By means of the developed optimization method, the impeller and exducer blade geometries and their axial gap and circumferential indexing are fine-tuned. Consequently, cavitating flow in both the impeller and exducer of the two-phase LNG expander is effectively mitigated.
机译:低温液体涡轮扩展器越来越多地用于液化天然气(LNG)生产植物以节省能量。然而,通常需要将高压LNG省略到或接近两相状态,这使得液化液晶涡轮机膨胀器更容易被空化。虽然在低温涡轮机空化上报道了一些工作,但在设计耐污水的两相液化液晶涡轮机膨胀器上没有报道任何工作。通过对两相液涡轮机扩展器的紧急要求,开发了一种有效的设计优化方法,其非常适合于设计空化的两相液涡轮机扩展器。通过表征空化流程来构成新颖的优化目标函数,其中整体效率和局部空化流动行为被掺入。 Adaptive-Kriging代理模型和协作共同算法(CCEA)被纳入全球和有效地解决高度非线性设计优化问题。前者维持目标函数的高级预测精度,但使用大量的计算流体动力学(CFD)模拟,而后者通过将它们分解成一些容易解决的并行子问题,以高收敛速度解决复杂的优化问题。通过开发的优化方法,叶轮和exder叶片几何形状及其轴向间隙和周向索引是微调的。因此,有效地减轻了两相LNG膨胀器的叶轮和凸起的空腔流动。

著录项

相似文献

  • 外文文献
  • 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