汽车工程
汽車工程
기차공정
AUTOMOTIVE ENGINEERING
2014年
10期
1262-1266,1277
,共6页
杨晓峰%沈钰杰%陈龙%汪若尘%孙晓强
楊曉峰%瀋鈺傑%陳龍%汪若塵%孫曉彊
양효봉%침옥걸%진룡%왕약진%손효강
车辆悬架%动力吸振器%惯容器%设计%性能分析
車輛懸架%動力吸振器%慣容器%設計%性能分析
차량현가%동력흡진기%관용기%설계%성능분석
vehicle suspension%dynamic vibration absorber%inerter%design%performance analysis
ISD( inerter-spring-damper)悬架是由惯容器、弹簧和阻尼器构成的一种新型车辆被动悬架。本文中基于动力吸振器在振动控制中的作用,利用惯容器动力学特性,建立了ISD悬架的单轮模型,设计出含有动力吸振器结构的ISD悬架,并对其进行仿真,用多目标遗传算法确定元件参数,分析ISD悬架的主频率特性和各性能指标(车身加速度、悬架动行程和轮胎动载荷)的振动传递特性。仿真结果表明,在0~15Hz低频段,与等刚度的传统被动悬架相比,ISD悬架改善了各性能指标的振动传递幅频特性,降低了各性能指标在共振频率1Hz附近的功率谱密度峰值。
ISD( inerter-spring-damper)懸架是由慣容器、彈簧和阻尼器構成的一種新型車輛被動懸架。本文中基于動力吸振器在振動控製中的作用,利用慣容器動力學特性,建立瞭ISD懸架的單輪模型,設計齣含有動力吸振器結構的ISD懸架,併對其進行倣真,用多目標遺傳算法確定元件參數,分析ISD懸架的主頻率特性和各性能指標(車身加速度、懸架動行程和輪胎動載荷)的振動傳遞特性。倣真結果錶明,在0~15Hz低頻段,與等剛度的傳統被動懸架相比,ISD懸架改善瞭各性能指標的振動傳遞幅頻特性,降低瞭各性能指標在共振頻率1Hz附近的功率譜密度峰值。
ISD( inerter-spring-damper)현가시유관용기、탄황화조니기구성적일충신형차량피동현가。본문중기우동력흡진기재진동공제중적작용,이용관용기동역학특성,건립료ISD현가적단륜모형,설계출함유동력흡진기결구적ISD현가,병대기진행방진,용다목표유전산법학정원건삼수,분석ISD현가적주빈솔특성화각성능지표(차신가속도、현가동행정화륜태동재하)적진동전체특성。방진결과표명,재0~15Hz저빈단,여등강도적전통피동현가상비,ISD현가개선료각성능지표적진동전체폭빈특성,강저료각성능지표재공진빈솔1Hz부근적공솔보밀도봉치。
Inerter-spring-damper( ISD) suspension is a new type of vehicle passive suspension, consisting of inerter, spring and damper. In this paper, based on the role of dynamic vibration absorber( DVA) in vibration con-trol, and by utilizing the dynamic characteristics of inerter, a single wheel model for ISD suspension is built and an ISD suspension incorporating the structure of DVA is designed. Then a simulation on ISD suspension is conducted, in which the parameters of its components are determined with multi-objective genetic algorithm, and its main fre-quency characteristics and the vibration transmission characteristics for all three performance indicators( vehicle body acceleration, suspension dynamic travel and dynamic tire load) are analyzed. Simulation results show that compared with traditional passive suspension with same stiffness, the amplitude-frequency characteristics of vibration transmis-sion for all suspension performance indicators are improved at low frequency range of 0 ~15Hz, and the peaks of power spectral density for all performance indicators are reduced effectively at resonance frequency near 1Hz.