国产成人综合久久二区,色狠狠av一区二区三区,亚洲精品无码久久久久app,国产在线精品无码不卡手机免费

歡迎光臨錦工風機官方網站。提供優質羅茨鼓風機羅茨風機回轉式鼓風機星型供料器,氣力輸送設備等產品

Numerical of Transient Flow in Roots Blower

Numerical of Transient Flow in Roots Blower

The performance of rotary positive displacement machines highly depends on the operational clearances. It is widely believed that computational fluid dynamics (CFD) can help understanding internal leakage flows.

Developments of grid generating tools for analysis of leakage flows by CFD in rotary positive displacement machines have not yet been fully validated. Roots blower is a good representative of positive displacement machines and as such is convenient for optical access in order to analyse internal flows. The experimental investigation of flow in optical roots blower by phase-locked PIV (Particle Image Velocimetry) performed in the Centre for Compressor Technology at City, University of London provided ?the velocity field suitable for validation of the simulation model. This paper shows the results ?of the three-dimensional CFD transient simulation model of a Roots blower with the dynamic numerical grids generated by SCORG and flow solution solved in ANSYS CFX flow solver to obtain internal flow patterns. The velocity fields obtained by simulation agree qualitatively ?with the experimental results and show the correct main flow features in the working chamber. There are some differences in the velocity magnitude and vortex distribution. The flow field in roots blower is highly turbulent and three-dimensional. The axial clearances should be included, and the axial grids should be refined in the simulation method. The paper outlines some directions for future simulation and experimental work. The work described in this paper is a part of the large project set to evaluate characteristics of the internal flow in rotary positive displacement machines and to characterize leakage?flows.

Rotary positive displacement machines are widely used in many industrial fields. Depending on the application they may contain one or more rotating elements and a stator. Typical representatives of a single rotor machine are progressive cavity pumps and single screw compressors. Twin rotor machines are more common. These can be designed either with straight lobes as in roots blowers and gear pumps, or with helical lobes used in screw compressors, expanders and pumps. Screw machines can handle single phase fluids in the form of a gas, vapour or liquid or multi-phase fluids mixed from any combination of single phase fluids and solids and may operate above or under atmospheric pressures. Liquid and multiphase pumps are often configured with multiple rotors. In all these machines, gaps between rotating and stationary parts have to be maintained in order to allow a safe and reliable operation but are desired to be minimal in order to reduce leakage flows, which play critical role in theperim

performance. The challenge is to maintain the size of the gaps due to deformations of the machine elements which could be caused by thermal of physical loads.

Many researchers have studied leakage flows through clearance gaps in rotary positive displacement machines both experimentally and numerically. Numerical methods are mostly based either on chamber modelling [1], or computational fluid dynamics (CFD) model [2, 3]. In chamber models, it is usually assumed that the momentum change in the main domain is negligible due to the internal energy being dominant while the velocity of the leaking fluid is obtained based on the assumption of the isentropic flow through the nozzle. A CFD model allows more accurate calculation of velocities both in the main domain and in the leakage paths by numerically solving governing conservation equations such as mass, energy and momentum. This is of course subject to availability of an accurate numerical mesh which can capture both, the main flow domain and clearances. The latest developments in grid generation for screw machines described in detail in Rane et al. [4, 5] have led to the mesh which can be used in all flow calculations and for most rotary positive displacement machines. This grid generation methods allows use of any commercially available CFD solvers. The size of the mesh, the speed of its generation as well as the speed of calculation by commercial solvers is suitable for industrial application. However, it is yet not fully validated if it sufficiently accurately captures flow in clearances.

Numerical procedures for calculation of performance using either chamber models or 3D CFD are usually validated by measurements of the integral parameters such as the total mass flow rate and power as shown in recent studies by Kovacevic and Rane [6]. These indicate that the clearance flow is mostly well captured. However, unless the local velocities are measured, the leakage models cannot be fully validated. In addition, even the velocity distribution in the main flow of a rotary positive displacement machine has not been studied in detail experimentally. Therefore, for the full validation of numerical calculations it is required to obtain accurate measurements of the flow field both in the main working domain and in the clearance gaps of a rotary positive displacement machine.

山東錦工有限公司
地址:山東省章丘市經濟開發區
電話:0531-83825699
傳真:0531-83211205
24小時銷售服務電話:15066131928


上一篇:
下一篇:
錦工最受信賴的羅茨風機回轉風機品牌
版權所有:Copright ? m.hnggdc.com 山東錦工有限公司
備案信息:魯ICP備11005584號-5 ?
地址:山東省章丘市相公工業園
電話:0531-83825699傳真:0531-83211205 E-mail: sdroo@163.com 網站地圖
羅茨風機咨詢電話
主站蜘蛛池模板: 国产无码AV| 国产精品久久无码一区二区三区网| 欧美牲交a欧牲交aⅴ久久| 欧美性色黄大片www喷水| 欧美一区二区三区成人久久片| 亚洲国产精品久久一线不卡| 欧美熟妇色ⅹxxx欧美妇| 西西人体做爰大胆gogo| 又色又爽又黄18禁美女裸身无遮挡| 99久久99久久久精品齐齐综合色圆 | 国产免费又色又爽又黄的小说| 久艾草在线精品视频在线观看| 2021年国产精品每日更新| 人人爽人人澡人人人妻、百度| 内射女校花一区二区三区| 亚洲国产精品成人午夜在线观看| 无码色av一二区在线播放| 日韩精品久久无码人妻中文字幕| 射精情感曰妓女色视频| 狠狠色婷婷久久综合频道毛片 | 强开小婷嫩苞又嫩又紧视频| .一区二区三区在线 | 欧洲| 强奷乱码欧妇女中文字幕熟女| 国产99视频精品免费视频6| 强奷漂亮雪白丰满少妇av| 漂亮人妻被中出中文字幕| 日韩经典午夜福利发布| 99久热re在线精品99 6热视频 | 国产成人理论无码电影网| 99久久久国产精品消防器材| 少妇与子乱毛片| 国产愉拍91九色国产愉拍| 国产成人国产在线观看| 久久久久国产精品人妻照片| 色婷婷六月亚洲婷婷丁香| 国产自偷在线拍精品热| 爱色精品视频一区二区| 国产成人精品免费久久久久| 精品国产乱码久久久久软件| 欧美成人家庭影院| 国产亚洲精品久久av|