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基于APSO算法的拖拉機(jī)牽引性能預(yù)測通用模型建立與試驗
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國家重點(diǎn)研發(fā)計劃項目(2022YFD2001200)


General Model Building and Experiment on Traction Performance Prediction Based on APSO Algorithm
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    摘要:

    針對現(xiàn)有輪式拖拉機(jī)牽引性能預(yù)測模型通用性差,、預(yù)測精度低等問題,提出了一套涵蓋系統(tǒng)建模,、預(yù)測優(yōu)化,、實例驗證全過程的適用于四輪驅(qū)動與二輪驅(qū)動拖拉機(jī)的牽引性能預(yù)測通用模型。通過深入分析土壤力學(xué),、輪胎力學(xué),、傳動系統(tǒng)之間的相互作用,將拖拉機(jī)牽引性能抽象為輪-壤模型,、驅(qū)動力模型,、滑轉(zhuǎn)率模型、牽引力模型4個基本模型,,以建立適用于四輪驅(qū)動與二輪驅(qū)動拖拉機(jī)的整機(jī)牽引性能預(yù)測通用模型,。為了提高預(yù)測精度,以整機(jī)滑轉(zhuǎn)率為優(yōu)化目標(biāo),,建立基于自適應(yīng)粒子群優(yōu)化算法(APSO)的牽引性能預(yù)測優(yōu)化方法,。通過線上優(yōu)化,驗證了模型準(zhǔn)確性和通用性,。為了進(jìn)一步驗證該通用模型優(yōu)越性和工程實用性,,以東方紅某105kW拖拉機(jī)作為試驗樣機(jī),在中國一拖集團(tuán)有限公司田間全地型試驗場,,完成線下試驗,。試驗結(jié)果表明,與現(xiàn)有預(yù)測模型相比,,對于四輪驅(qū)動拖拉機(jī),,基于APSO的牽引性能預(yù)測方法的滑轉(zhuǎn)率和滾動阻力平均絕對誤差分別為1.9%和0.18kN。對于二輪驅(qū)動拖拉機(jī),,相應(yīng)的平均絕對誤差分別為2.7%和0.25kN,,精度大幅提升。

    Abstract:

    Aiming at the problems of poor generality and low prediction accuracy of existing models for traction performance of wheeled tractors, a set of general model for traction performance prediction of four-wheel drive and two-wheel drive tractors was proposed, which covered the whole process of system modeling, prediction optimization and case verification. By analyzing the interaction of many physical fields such as soil mechanics, tire mechanics and transmission system, the tractor traction performance was abstracted into four basic models, namely wheel-soil model, driving force model, slip rate model and tractive force model, in order to establish a general model for the whole machine traction performance prediction of four-wheel drive and twowheel drive tractors. In order to improve the prediction accuracy, the traction performance prediction optimization algorithm based on adaptive particle swarm optimization (APSO) was established with the overall machine slip rate as the optimization objective. Through on-line optimization, the accuracy and universality of the model were verified. In order to further verify its superiority and engineering practicability, a 105kW tractor of YTO was used as a test prototype to complete the offline test in the whole field test site. The experimental results showed that compared with the existing prediction models, the error of slip rate and rolling resistance of the APSO-based prediction method was 1.9% and 0.18kN, respectively. For two-wheel drive tractors, the corresponding errors were 2.7% and 0.25kN, respectively, and the accuracy was greatly improved.The general model of traction performance prediction for four-wheel drive and two-wheel drive tractors was studied, which had certain research significance in the fields of traction control and performance of wheeled tractors.

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趙靜慧,趙騰龍,徐立友,李妍穎,張靜云,劉永紅,孫麗.基于APSO算法的拖拉機(jī)牽引性能預(yù)測通用模型建立與試驗[J].農(nóng)業(yè)機(jī)械學(xué)報,2024,55(12):519-529. ZHAO Jinghui, ZHAO Tenglong, XU Liyou, LI Yanying, ZHANG Jingyun, LIU Yonghong, SUN Li. General Model Building and Experiment on Traction Performance Prediction Based on APSO Algorithm[J]. Transactions of the Chinese Society for Agricultural Machinery,2024,55(12):519-529.

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  • 收稿日期:2024-08-18
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  • 在線發(fā)布日期: 2024-12-10
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