农业工程学报
農業工程學報
농업공정학보
2014年
4期
18-24
,共7页
谢斌%李静静%鲁倩倩%毛恩荣
謝斌%李靜靜%魯倩倩%毛恩榮
사빈%리정정%로천천%모은영
计算机仿真%联合收割机%制动%系统%产品快速设计%虚拟样机%性能参数
計算機倣真%聯閤收割機%製動%繫統%產品快速設計%虛擬樣機%性能參數
계산궤방진%연합수할궤%제동%계통%산품쾌속설계%허의양궤%성능삼수
computer simulation%combines%braking%systems rapid product design (RPD)%virtual prototype%performance parameter
在农业机械产品快速设计系统中,农业车辆的制动性能应满足一定的安全技术标准,该文采用了一种基于虚拟样机技术研究联合收割机制动系统性能的方法,可为农机专业底盘制动系统的设计和性能评价提供参考。该文研究对象是前轮液压钳盘式制动系统,首先依据国产某型联合收割机参数,应用 Pro/E 建立整车及制动器三维模型,然后在此基础上导入ADAMS/View中建立整车和制动系统虚拟样机,并依据实测数据配置仿真模型属性,选定Ⅱ挡10 km/h、Ⅲ挡20 km/h 2种典型工况对虚拟样机进行制动性能仿真。对比硬路面条件下仿真和实车试验性能分析结果,踏板力实测95.6 N时,车辆III挡速度下,制动盘上接触力为4272 N,制动距离为7.83 m,与踏板力为100 N时仿真结论(接触力为4827 N和制动距离为7.398 m)较一致,表明该虚拟样机研究方法可行。
在農業機械產品快速設計繫統中,農業車輛的製動性能應滿足一定的安全技術標準,該文採用瞭一種基于虛擬樣機技術研究聯閤收割機製動繫統性能的方法,可為農機專業底盤製動繫統的設計和性能評價提供參攷。該文研究對象是前輪液壓鉗盤式製動繫統,首先依據國產某型聯閤收割機參數,應用 Pro/E 建立整車及製動器三維模型,然後在此基礎上導入ADAMS/View中建立整車和製動繫統虛擬樣機,併依據實測數據配置倣真模型屬性,選定Ⅱ擋10 km/h、Ⅲ擋20 km/h 2種典型工況對虛擬樣機進行製動性能倣真。對比硬路麵條件下倣真和實車試驗性能分析結果,踏闆力實測95.6 N時,車輛III擋速度下,製動盤上接觸力為4272 N,製動距離為7.83 m,與踏闆力為100 N時倣真結論(接觸力為4827 N和製動距離為7.398 m)較一緻,錶明該虛擬樣機研究方法可行。
재농업궤계산품쾌속설계계통중,농업차량적제동성능응만족일정적안전기술표준,해문채용료일충기우허의양궤기술연구연합수할궤제동계통성능적방법,가위농궤전업저반제동계통적설계화성능평개제공삼고。해문연구대상시전륜액압겸반식제동계통,수선의거국산모형연합수할궤삼수,응용 Pro/E 건립정차급제동기삼유모형,연후재차기출상도입ADAMS/View중건립정차화제동계통허의양궤,병의거실측수거배치방진모형속성,선정Ⅱ당10 km/h、Ⅲ당20 km/h 2충전형공황대허의양궤진행제동성능방진。대비경로면조건하방진화실차시험성능분석결과,답판력실측95.6 N시,차량III당속도하,제동반상접촉력위4272 N,제동거리위7.83 m,여답판력위100 N시방진결론(접촉력위4827 N화제동거리위7.398 m)교일치,표명해허의양궤연구방법가행。
The brake system performance of an agricultural vehicle shall meet the technical safety standards. At present, the performance and reliability of the combine brake system in our country cannot fully meet the work requirements, and the studies about the braking performance of the combine are scarce. Virtual prototyping technology is an important process of Rapid Product Design (RPD), which has been gradually applied in the agricultural machinery industry. This paper presents a research method of the brake system performance based on virtual prototype technology. The front wheel hydraulic caliper disc brake system is debated, which was widely used in the self-propelled grain combine harvester. Firstly, the three-dimensional models of the vehicle and brake are established using Pro/E. The configuration setting of models come from a certain type of domestic combine harvester parameters. Then, the virtual prototypes of the vehicle and brake system are established in ADAMS/View. The configure parameters include the Fiala tire model, hard pavement, IMPACT function, and STEP input function, etc. The Kulun model was adopted by IMPACT function, and the pedal force data which comes from the experimental values was put into STEP function. Two typical working conditions of vehicle speed, II shift 10 km/h, III shift 20 km/h, are selected to simulate braking performance of the virtual prototype and real vehicle experiment. Simulated when III shift with the two kinds of pedal force, 100 and 200 N, the maximum contact force between brake disc and pad are 4 827 and 9 200 N. In the process of braking at the same speed, the contact force between the brake disc and the pad increases as the pedal force increases, and the increased tendency is accordant. By simulating the vehicle brake system, the maximum braking decelerations are 4.6 and 5.8 m/s2, braking distances are 2.3 and 1.49 m, when the pedal forces are 100 and 200 N with II shift speed. The maximum braking decelerations are 4.6 and 7.23 m/s2, braking distances are 7.398 and 7.004 m, when the pedal forces are 100 N and 200 N with III shift speed. In a certain gear speed, the greater the pedal force, the shorter the braking distance and braking time. At a certain pedal force, the higher the vehicle speed, the longer the braking distance and braking time. Mounted with a sensor and acquired by a measurement system, the data from the braking experiment which is composed of the displacement of the pedal, pressing of the left and right wheel cylinders, deceleration, and braking distance are analyzed with II shift and III shift speeds. The contact force between brake disc and pad is 4 272 N and the braking distance is 7.83 m when test with pedal force is 95.6 N, which is similar with results of simulation. Compared with simulation and a real vehicle test, both of the braking performance parameters are consistent. Between left and right braking are good synchronization; the response time is less than 0.6 s, the braking distance is less than 7.83 m, and the maximum braking deceleration is 2.43 m/s2 when pedal force is less than 100 N, which are in line with national standards on braking performance. The performance results verified the correctness of the virtual prototype simulation model of the combine brake system, providing an effective method for design and performance evaluation of agricultural machinery chassis braking systems.