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壓力補(bǔ)償?shù)晤^流動(dòng)阻力分析與流量預(yù)測(cè)研究
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國(guó)家自然科學(xué)基金項(xiàng)目(52079112、51679205)和山東省重大科技工程創(chuàng)新項(xiàng)目(2020CXGC010808)


Flow Resistance Analysis and Flow Rate Prediction of Pressure Compensating Emitters
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    摘要:

    為探究壓力補(bǔ)償?shù)晤^流動(dòng)阻力產(chǎn)生的主要部位,、變化及對(duì)滴頭流量的影響,,采用基于雷諾平均維納-斯托克斯(RANS)模型的瞬態(tài)和穩(wěn)態(tài)流固耦合計(jì)算方法,模擬研究了壓力補(bǔ)償?shù)晤^流體與彈性片之間的相互作用,,分析了工作壓力0~300kPa范圍內(nèi)彈性片變形,、流動(dòng)阻力與流量之間的關(guān)系。結(jié)果表明:數(shù)值模擬能夠準(zhǔn)確預(yù)測(cè)一定工作壓力范圍內(nèi)壓力補(bǔ)償?shù)晤^的流量,,不同工作壓力下滴頭流量模擬值與實(shí)測(cè)值的平均誤差為12.32%,。彈性片的變形經(jīng)歷快速變形、緩慢變形和長(zhǎng)期微小變形3個(gè)階段,。隨著彈性片變形程度增加,,迷宮流道壓力損失占比逐漸減小,壓力補(bǔ)償腔和副流道壓力損失明顯增加。流動(dòng)阻力主要發(fā)生在迷宮流道,、彈性片與凸臺(tái)之間,,彈性片接觸凸臺(tái)前,流動(dòng)阻力主要取決于迷宮流道的能耗,,滴頭流量隨工作壓力的增加而增長(zhǎng),。彈性片接觸凸臺(tái)后,流動(dòng)阻力為工作壓力的線性函數(shù),,滴頭流量在一定壓力范圍內(nèi)保持恒定,;主流道結(jié)構(gòu)影響壓力補(bǔ)償?shù)晤^的最小補(bǔ)償壓力,副流道結(jié)構(gòu)對(duì)壓力補(bǔ)償?shù)晤^的流量調(diào)節(jié)作用具有重要影響,。

    Abstract:

    Pressure compensating (PC) emitters exhibit excellent performance in maintaining a constant flow rate over a wide range of working pressures, which are widely used in agricultural irrigation. However, the compensation mechanism of PC emittters is still not clear, which causes huge obstacle in designing and optimizing the structure of PC emitters. To explore the flow restriction mechanism of the PC emitter, the interaction between the elastic diaphragm of the PC emitter and the fluid was investigated by fluid-structure interaction (FSI) numerical simulation method. The deformation characteristics of elastic diaphragm, the dynamic change process of flow resistance and the flow rate of the PC emitter were analyzed. The results indicated that the average error of flow rate between numerical simulation and experiment was 12.32%, which verified the correctness of the numerical simulation. The deformation process of an elastic diaphragm during the entire working process could be divided into three phases: rapid deformation, slow deformation and long-term tiny deformation. With the deformation degree of the elastic diaphragm increasing, the proportion of pressure loss in the labyrinth channel was gradually decreased, while the pressure loss in the PC chamber and overflow groove was significantly increased. The flow resistance mainly occurred in the labyrinth channel, PC chamber and overflow groove. Before the diaphragm contacted convex land, the flow resistance was determined by the capacity of energy consumption of the labyrinth channel, the flow rate of the PC emitter was increased as working pressure was increased. After the diaphragm contacted convex land, the flow resistance and working pressure showed a linear function relationship, the flow rate remained comparatively constant over a wide range of working pressures. Labyrinth channel structure affected the minimum compensation pressure of the PC emitter, overflow groove structure had an important influence on flow rate regulation of the PC emitter. Overall, the research result can provide a basis for formulating a reasonable design method of PC emitters.

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牛文全,孫丹,甘海成,董愛(ài)紅,鄔夢(mèng)龍,呂暢.壓力補(bǔ)償?shù)晤^流動(dòng)阻力分析與流量預(yù)測(cè)研究[J].農(nóng)業(yè)機(jī)械學(xué)報(bào),2023,54(1):306-316. NIU Wenquan, SUN Dan, GAN Haicheng, DONG Aihong, WU Menglong, Lü Chang. Flow Resistance Analysis and Flow Rate Prediction of Pressure Compensating Emitters[J]. Transactions of the Chinese Society for Agricultural Machinery,2023,54(1):306-316.

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  • 收稿日期:2022-07-15
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  • 在線發(fā)布日期: 2023-01-10
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