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Fluid simulation software(cae) - List of Manufacturers, Suppliers, Companies and Products

Fluid simulation software Product List

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Optimization of globe valve shape

The purpose is to improve and investigate the performance of globe valves, connecting the cloud-based CFD solver SimScale with CAESES!

CAESES has been conducting optimization calculations for various types of valves and has implemented projects in collaboration with various companies. In this context, we would like to introduce one of the newly conducted projects, "Shape Optimization of a Globe Valve." This project was carried out in cooperation with GEMÜ Gebr. Müller Apparatebau, a German valve manufacturer and a global company specializing in aseptic valves, and SimScale, a leading engineering simulation company. *For more detailed information, please refer to the related links. You can download the PDF for more details or feel free to contact us.*

  • グローブバルブの形状最適化2.png
  • グローブバルブの形状最適化3.png
  • グローブバルブの形状最適化4.png
  • グローブバルブの形状最適化5.png
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  • グローブバルブの形状最適化7.png
  • グローブバルブの形状最適化8.png
  • Structural Analysis
  • Other CAD
  • valve

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Design and optimization of valves

The procedure explored using CAESES achieved a reduction in working time from several months to several days!

The optimization of valve design is one of many optimization targets, and by appropriately automating the design change process using CAESES and analyzing the number of implementation cases generated by the CFD solver, it is possible to significantly shorten the time to commercialization while exploring truly suitable designs under constraints. A valve is a device that opens, closes, or partially obstructs various passages to control, direct, or adjust the flow of fluid. In an open valve, fluid flows from high pressure to low pressure. Typically, the main objective of valve optimization is to adjust the flow rate passing through the valve at a specified pressure loss. This is often expressed as a flow coefficient, which serves as a relative measure of flow efficiency. *For more detailed information, please refer to the related links. For more details, you can download the PDF or feel free to contact us.*

  • バルブの設計と最適化2.jpg
  • バルブの設計と最適化3.gif
  • バルブの設計と最適化4.gif
  • バルブの設計と最適化5.gif
  • バルブの設計と最適化7.gif
  • バルブの設計と最適化8.gif
  • バルブの設計と最適化9.gif
  • バルブの設計と最適化10.gif
  • バルブの設計と最適化11.gif
  • valve

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Optimization of the poppet valve

This article explains the design system based on the collaboration between the CFD solver SimericsMP and CAESES, based on actual research conducted!

The Italian company OMIQ SRL, which sells software, conducted research on an automatic design system using the poppet valve of high-pressure pumps developed by the Danish machinery manufacturer Danfoss. In this case, we will introduce the design system that integrates the CFD solver SimericsMP with CAESES based on the research that was actually conducted. The issue in this case is that the poppet valve exhibits unacceptable unstable behavior during operation. It was found that when the poppet valve attempts to open to its maximum displacement (27.5 mm), the instability of the flow increases, resulting in a decrease in pressure on the poppet valve, ultimately preventing the valve from fully opening (closing to about 6 mm remaining). This unstable phenomenon was verified through unsteady analysis using SimericsMP. *For more detailed information, please refer to the related link. For further details, you can download the PDF or feel free to contact us.*

  • ポペットバルブの最適化2.png
  • ポペットバルブの最適化3.gif
  • ポペットバルブの最適化4.gif
  • ポペットバルブの最適化5.gif
  • ポペットバルブの最適化6.gif
  • ポペットバルブの最適化7.png
  • ポペットバルブの最適化8.png
  • ポペットバルブの最適化9.png
  • ポペットバルブの最適化10.png
  • valve

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Parametric model of end wall contouring

We will also introduce modeling approaches, the construction of more complex models, and application examples!

In the end wall section of power generation devices that convert the kinetic energy of fluids, such as turbines and compressors, into rotational motion, a secondary flow known as "cross flow" occurs due to the interaction between adjacent blades. To improve the performance of the device, it is crucial to reduce this cross flow and the resulting flow losses. The end wall contouring introduced here is a shape profile that adds irregularities to the end wall to suppress losses caused by cross flow, and it is modeled parametrically using CAESES. With the addition of these shape features and modeling techniques, it has become possible to modify the hub shape, thereby minimizing undesirable secondary flow losses. *For more detailed information, you can view the related links. For further details, please download the PDF or feel free to contact us.*

  • エンドウォールコンタリングのパラメトリックモデル2.png
  • エンドウォールコンタリングのパラメトリックモデル3.png
  • Structural Analysis

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