农业工程学报
農業工程學報
농업공정학보
2013年
9期
39-47
,共9页
Le Van Quynh%张建润*%刘晓波%王园%P.V.Thoan
Le Van Quynh%張建潤*%劉曉波%王園%P.V.Thoan
Le Van Quynh%장건윤*%류효파%왕완%P.V.Thoan
计算机仿真%动力学模型%驾驶平顺性%评价%振动压路机%土壤地面
計算機倣真%動力學模型%駕駛平順性%評價%振動壓路機%土壤地麵
계산궤방진%동역학모형%가사평순성%평개%진동압로궤%토양지면
computer simulation%dynamic models%riding qualities%evaluation%vibratory roller%soil ground
实际工况中振动压路机车轮会在各种土壤地面上作业和行驶,为了评价振动式压路机在不同土壤路面上的行驶平顺性,该文针对车轮―不同土壤地面的接触分析,建立了某单钢轮振动压路机非线性动力学模型;描述了振动轮在弹塑性土壤下压实对前车架产生垂直激励力.基于Adam D和Kopf F的弹塑性土壤模型,建立了振动轮在作业时的三自由度振动模型;采用软性土壤地面的Bekker假设,建立了轮胎―变形土壤地面接触模型.对建立的非线性动力学模型进行了仿真,并根据ISO2631-1:1997(E)标准分析与评价了不同路况、工况和速度对驾驶员乘坐舒适性的影响.结果表明,刚性路面不平度等级对振动压路机行驶平顺性有较大影响,路面等级越差,驾驶员的主观感觉越不舒适;路面的变形对驾驶室水平晃动有较大影响,土壤路面越软,驾驶室晃动越大;弹塑性土壤对振动压路机的影响表现在低频工况压实时,车辆平顺性比较差.该研究可为振动式压路机的平顺性设计提供参考.
實際工況中振動壓路機車輪會在各種土壤地麵上作業和行駛,為瞭評價振動式壓路機在不同土壤路麵上的行駛平順性,該文針對車輪―不同土壤地麵的接觸分析,建立瞭某單鋼輪振動壓路機非線性動力學模型;描述瞭振動輪在彈塑性土壤下壓實對前車架產生垂直激勵力.基于Adam D和Kopf F的彈塑性土壤模型,建立瞭振動輪在作業時的三自由度振動模型;採用軟性土壤地麵的Bekker假設,建立瞭輪胎―變形土壤地麵接觸模型.對建立的非線性動力學模型進行瞭倣真,併根據ISO2631-1:1997(E)標準分析與評價瞭不同路況、工況和速度對駕駛員乘坐舒適性的影響.結果錶明,剛性路麵不平度等級對振動壓路機行駛平順性有較大影響,路麵等級越差,駕駛員的主觀感覺越不舒適;路麵的變形對駕駛室水平晃動有較大影響,土壤路麵越軟,駕駛室晃動越大;彈塑性土壤對振動壓路機的影響錶現在低頻工況壓實時,車輛平順性比較差.該研究可為振動式壓路機的平順性設計提供參攷.
실제공황중진동압로궤차륜회재각충토양지면상작업화행사,위료평개진동식압로궤재불동토양로면상적행사평순성,해문침대차륜―불동토양지면적접촉분석,건립료모단강륜진동압로궤비선성동역학모형;묘술료진동륜재탄소성토양하압실대전차가산생수직격려력.기우Adam D화Kopf F적탄소성토양모형,건립료진동륜재작업시적삼자유도진동모형;채용연성토양지면적Bekker가설,건립료륜태―변형토양지면접촉모형.대건립적비선성동역학모형진행료방진,병근거ISO2631-1:1997(E)표준분석여평개료불동로황、공황화속도대가사원승좌서괄성적영향.결과표명,강성로면불평도등급대진동압로궤행사평순성유교대영향,로면등급월차,가사원적주관감각월불서괄;로면적변형대가사실수평황동유교대영향,토양로면월연,가사실황동월대;탄소성토양대진동압로궤적영향표현재저빈공황압실시,차량평순성비교차.해연구가위진동식압로궤적평순성설계제공삼고.
In realistic working conditions, a vibratory roller operates and moves on various kinds of soil ground and when it does vibration excitation sources, such as soil ground, drum and engine are transmitted to the driver through the isolation systems of the cab and seat, which has direct influence on the driver’s health and their working efficiency. Thus, in order to evaluate the riding comfort of a vibratory roller under the different soil grounds, a nonlinear dynamics model of a single drum vibratory roller was established in this paper, based on the analysis of the contact physics of the wheel with different soil grounds. In order to describe the vertical excitation force acting on the front frame generated by a vibratory drum with elastic-plastic soil, a 3-DOF vibration model which describes vibratory drum operating is developed in this study, based on Adam D. and Kopf F’s elastic-plastic soil model. Using Bekker’s hypothesis of the soft soil ground, the tire- deformation soil surface contact model was established to analyze the vertical excitation force acting on the rear frame. Matlab/Simulink software was used to simulate the nonlinear dynamic models and calculate the values of the vertical weighted r.m.s acceleration responses of driver’s seat and cab. The nonlinear dynamics model of the whole vehicle was analyzed according to the ISO 2631: 1997 (E) standard, the influence of noise and vibration to human health which evaluates the influence of the different road conditions, operating conditions, and vehicle speeds on the driver’s ride comfort. The results showed that the rigid road surface roughness level has a greater influence on vibratory roller ride comfort that a driver subjectively feels is very uncomfortable when the vehicle moves on a poor road surface roughness. The deformation of the road surfaces dominate cab sloshing when a vehicle moves on relatively soft soil road surface. And in a low frequency region, vehicle ride comfort becomes worse when there are vibratory compacts and moves on elastic-plastic soil. The study can provide a reference for vibration roller ride comfort design.