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基于Porous模型的多旋翼植保無人機下洗氣流分布研究
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國家重點研發(fā)計劃項目(2017YFD0701400、2016YFD0200700)


Spatio-temporal Distribution of Down-wash Airflow for Multi-rotor Plant Protection UAV Based on Porous Model
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    摘要:

    植保無人機進行果樹施藥時,果樹冠層周圍及內(nèi)部的下洗氣流時空分布對霧滴的附著和分布有重大影響,為明確無人機下洗氣流時空分布規(guī)律,針對六旋翼植保無人機,結(jié)合RANS方程、RNG k-ε湍流模型、Porous模型、滑移網(wǎng)格技術(shù)及SIMPLE算法,建立了六旋翼植保無人機懸停施藥下洗氣流時空分布的三維CFD模型。數(shù)值模擬結(jié)果表明:無果樹時,旋翼下洗氣流近似呈“圓柱形”向下發(fā)展,到達地面后形成地面鋪展,在旋翼正下方0.6~1.7m區(qū)域內(nèi)出現(xiàn)速度范圍為3.0~4.0m/s的“Z方向(豎直向下)速度穩(wěn)定區(qū)”;有果樹時,冠層對旋翼下洗氣流有明顯的阻擋作用,不再出現(xiàn)“Z方向速度穩(wěn)定區(qū)”。以本文模擬的3棵果樹為例,Ⅰ號果樹冠層周圍氣流從冠層上半部區(qū)域開始呈“圓錐形”向下發(fā)展,以一傾斜角發(fā)展到地面形成小范圍地面鋪展,地面鋪展末端出現(xiàn)近地面卷揚,Ⅱ、Ⅲ號果樹冠層周圍氣流卷揚嚴(yán)重,在計算區(qū)域內(nèi)無明顯地面鋪展;旋翼中心正下方Z方向速度最大接近8m/s,隨著冠層壓力損失系數(shù)的增大,旋翼中心正下方Z方向速度衰減加快,同時旋翼氣流向四周產(chǎn)生擴散;計算冠層內(nèi)部Z方向最大速度衰減比發(fā)現(xiàn),除Ⅲ號果樹冠層下半部,無果樹和Ⅰ、Ⅱ、Ⅲ號果樹冠層內(nèi)部Z方向最大速度衰減比依次增大。試驗表明,無果樹時旋翼正下方0.3、0.8、1.3、1.8m處和近地面2.3m處試驗值與模擬值的相對誤差分別在10%以內(nèi)和不大于25%,總體擬合優(yōu)度0.9846,數(shù)值模擬準(zhǔn)確;試驗果樹與模擬果樹冠層內(nèi)部的氣流速度分布規(guī)律具有很好的一致性。

    Abstract:

    When the plant protection UAV is used to spray pesticides on orchard, the spatiotemporal distribution of downwash airflow inside and around the canopy has a major impact on the adhesion and distribution of the droplets. In order to clarify the spatiotemporal distribution of downwash airflow inside and around the canopy of trees when applying multirotor plant protection UAV to spraying, combining RANS equation, RNG k-ε turbulence model, porous model, sliding mesh technology and SIMPLE algorithm, a three-dimensional CFD model for the spatio-temporal distribution of the down-wash airflow of six-rotor plant protection UAV in hover was established. The results of numerical simulation showed that when without tree, the downwash airflow of the rotor developed downward was approximately in a “cylindrical” shape, and formed the ground spreading after reached the ground, and the “Z-direction (vertically downward) speed stable region” appeared in the region of 0.6~1.7m below the rotor, where the speed range was from 3.0m/s to 4.0m/s. When tree existed, the canopy had an obvious effect on blocking the downwash airflow of the rotor, and it would not appear “Z-direction speed stable zone”. Taking the three trees simulated as an example, the airflow around the canopy of No.Ⅰ tree began to develop downward from the upper part of the canopy in a “conical” shape, and developed to the ground at an inclined angle to form a small area of ground spread. There was a nearground hoisting at the end of the ground spread. The airflow around the canopy of No.Ⅱ and No.Ⅲ trees was heavily hoisted, and it did not have obvious ground spread in the calculation area;the maximum speed in Z-direction was close to 8m/s directly below the rotor center. With the increase of canopy pressure loss coefficient, the speed attenuation in Z-direction was accelerated, while the rotor airflow was spreaded around. Calculating the maximum speed decay ratio in Z-direction inside the canopy, it was found that the maximum speed decay ratio in Z-direction in the canopy of No.Ⅰ, No.Ⅱ and No.Ⅲ trees was increased successively except the No.Ⅲ lower part of the canopy. The relative errors between the test values and the simulated values at 0.3m, 0.8m, 1.3m and 1.8m below the rotor and 2.3m near the ground were less than 10% and not more than 25%, respectively. The overall goodness of fit was 0.9846, and the numerical simulation was accurate. The test results of down-wash airflow speed of trees showed that the airflow speed distribution inside canopy of the experimental tree was in good agreement with that of the simulated tree.

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張豪,祁力鈞,吳亞壘,劉婠婠,程湞湞,MUSIU E.基于Porous模型的多旋翼植保無人機下洗氣流分布研究[J].農(nóng)業(yè)機械學(xué)報,2019,50(2):112-122. ZHANG Hao, QI Lijun, WU Yalei, LIU Wanwan, CHENG Zhenzhen, MUSIU E. Spatio-temporal Distribution of Down-wash Airflow for Multi-rotor Plant Protection UAV Based on Porous Model[J]. Transactions of the Chinese Society for Agricultural Machinery,2019,50(2):112-122.

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  • 收稿日期:2018-08-22
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  • 在線發(fā)布日期: 2019-02-10
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