• 제목/요약/키워드: gerotor

검색결과 60건 처리시간 0.021초

에너지보존과 토크평형을 이용한 제로터 유압모터의 배제용적 해석 - 내부로터 공·자전 경우 - (An Analysis on Volumetric Displacement of Gerotor Hydraulic Motor using Energy Conservation and Torque Equilibrium - Second Report: The Case of a Revolving and Rotating Inner Rotor -)

  • 김성동;김대명;함영복
    • 드라이브 ㆍ 컨트롤
    • /
    • 제11권4호
    • /
    • pp.15-24
    • /
    • 2014
  • It is difficult to analytically derive a volumetric displacement formula for a gerotor hydraulic motor due to the complexity of the geometric shape of its gear lobes. This work proposes an analytical method for the volumetric displacement, a relatively easy method based upon two physical concepts: conservation between hydraulic energy and mechanical shaft energy, and torque equilibrium for the rotor's motion. The first research using these concepts was conducted on inner and outer rotors rotating with respect to each rotor axis. This work represents the second report conducted on an inner rotor revolving as a planetary motion on the stationary outer rotor. The formula equations regarding the volumetric displacement and flow rate are derived, and the proposed formula about the volumetric displacement is proven to be the same as another analytical displacement formula: the so-called vane length method. From the formula, volumetric displacement is calculated for an example geometry of the gear lobes. The resultant displacement is confirmed to be the same as the value calculated from the chamber volume method. The proposed analytical formula can be utilized in the analysis and design of gerotor hydraulic motors. Because it is based on torque equilibrium, this formula can provide a better understanding of torque performance, such as torque ripple, in designing a gerotor type motor.

회전날개 길이를 이용한 제로터 펌프/모터의 배제용적에 관한 연구 (An Analysis on Volumetric Displacement of Gerotor Pump/Motor Using Vane Length)

  • 김성동;김대명;함영복;한철호
    • 유공압시스템학회논문집
    • /
    • 제8권2호
    • /
    • pp.8-16
    • /
    • 2011
  • It is hard and complicated to analytically derive the volumetric-displacement formula of a gerotor pump/motor. Analytical formulas for calculating the volumetric-displacement are derived in this work, which is relatively easy and based upon vane lengths. The vane lengths mean the distances from axis of inner rotor or outer rotor to contact points between inner and outer rotors. Two kinds of formula were studied for two different kinematic motions of rotors. The first one is the case that outer rotor is fixed in space and inner rotor is in mixed motion of planetary revolution and rotation with respect to the spinning axis. And the second is the case that both inner and outer rotors simultaneously rotate. The proposed formula is verified through comparison with volumetric-displacement obtained from numerical CAD calculation.

제로터 유압 모터의 설계 변수에 관한 연구 (On the Design Parameters of Gerotor Hydraulic Motors)

  • 김충현;김두인;안효석;정태형;이성철
    • Tribology and Lubricants
    • /
    • 제15권1호
    • /
    • pp.17-23
    • /
    • 1999
  • A Gerotor hydraulic motor is a planar mechanism consisting of a pair of rotors one of which encloses another rotor. The motion of the inner-rotor relative to the outer-rotor is produced by the pressure difference between the adjacent chambers. A design method of inner-rotor tooth profile using unit tangential vectors is presented in this work. Based on the relationships derived, the influence of the eccentricity of inner-rotor and the radius of circular arc tooth on the flow rate, torque and curvatures were investigated. It was shown that the flow rate and mean torque is proportional to eccentricity, but inversely proportional to the radius of circular arc teeth. Also, the maximum value of the equivalent curvature is increased as the eccentricity and the radius of circular arc teeth increased.

엔진 윤활용 제로터 오일펌프 유동해석 (Numerical Simulation in the IC Engine Lubricating Gerotor Oil Pump)

  • 조석현;박재인;남경우
    • 대한기계학회논문집B
    • /
    • 제30권10호
    • /
    • pp.1019-1025
    • /
    • 2006
  • Numerical simulations were conducted on the gerotor type oil pump. Three oil pump models having different port and groove shape were considered. Firstly, two original models (baseline & variant.1 model) were simulated in order to validate the accuracy of the simulation results and to better understand the flow characteristics in the pump. It was found that the cavitation phenomenon as well as the teeth tip leakage is most important parameter on the pump performance. Based on the simulation results of the original models, final model (variant.2 model) which has improved port shape and pressure relief valve is suggested to enhance pump performance and to reduce driving torque. The volumetric efficiency and the hydraulic torque of the Variant.2 model is improved 4% and reduced 6.1% each at 2000RPM in experiment.

사이클로이드 및 원호 곡선을 이용한 제로터 개발 (Design of Gerotor Using Cycloid and Circular-Arc Curves)

  • 최태훈;김문생;이근수;정성윤;김철
    • 대한기계학회논문집A
    • /
    • 제35권3호
    • /
    • pp.241-250
    • /
    • 2011
  • 본 논문에서는 하이포 및 에피 사이클로이드 곡선 사이에 원호 곡선을 삽입하여 내부로터를 설계하고 로터 회전시뮬레이션 및 간섭회피를 위한 수정법을 통해 외부로터를 설계하는 방식의 제로터를 개발하였다. 또한 접촉점을 이용한 기존의 유량계산법을 사용할 수 없는 경우에 유량 및 유량맥동을 도출할 수 있는 챔버면적 계산법을 개발하였다. 이와 같은 방식의 제로터는 로터 설계시 첨점 및 루프가 발생하지 않으며, 내부로터의 하이포 사이클로이드 및 원호 곡선 연결점에서 새로운 설계변수인 경사각 $\gamma$가 추가되어 편심량 설정시 첨점 및 루프 발생 방지조건 또는 이끝폭의 설계 한계조건으로부터 제한을 받지 않는다. 따라서 설계자는 편심량 및 각도 $\gamma$를 조절함으로써 실제 산업현장에서 보다 효과적으로 로터 최적설계를 수행할 수 있다.

파워 스티어링 유닛용 일반형상 제로터의 설계 및 해석 (Design and Analysis of Gerotor with Generalized Shapes for Power-Steering Units)

  • 정재택;신수식;김갑태
    • 대한기계학회논문집A
    • /
    • 제34권7호
    • /
    • pp.891-896
    • /
    • 2010
  • 제로터는 유압모터나 펌프뿐만 아니라 조향장치인 파워 스티어링 유닛(PSU)에도 사용된다. 제로터의 내치차는 일상적인 경우 단일 원호형상의 외치차에 의하여 생성된다. 본 논문에서 PSU의 특성 개선을 위하여 보다 일반화 된 외치차의 형상으로부터 내치차를 생성하는 방법을 해석하였다. 해석의 결과로서, 외치차의 형상곡선이 특별한 2중곡률을 갖는 원호인 경우에 대하여, 내치차의 형상과 곡률, 제로터의 유량 및 접촉점의 위치와 슬립속도 등의 설계자료를 구하여 제시하였다. 이러한 해석은 새로운 PSU의 개발과 소형화를 가능케 한다.

지로터 오일 펌프용 통합적 설계 자동화 시스템 개발 (Development of an Integrated System for Automated Design of Gerotor Oil Pump)

  • 김재훈;김철
    • 한국정밀공학회지
    • /
    • 제23권2호
    • /
    • pp.88-96
    • /
    • 2006
  • A gerotor pump is suitable for oil hydraulics of machine tools, automotive engines, compressors, constructions and other various applications. Especially the pump is an essential machine element of an automotive engine to feed lubricant oil. The subject of this paper is the theoretical analysis of the internal lobe pump which is a particular type of positive displacement pump. The main components of the pump are rotors; usually the outer rotor profile is characterized by lobes with circular shape, while the inner rotor profile is determined as conjugate as the outer rotor profile. For this reason the topic presented here is the definition of the geometry of the rotors starting from the design parameters. The choice of these parameters is subject to some limitations in order to avoid cusp and loop between rotors. And the integrated system which is composed of three main modules has been developed through AutoLISP & Visual Basic and CAD considering various design parameters. It generates automatically an designed model for a general type of a gerotor pump and allows us to calculate two performances indexes commonly used for the study of positive displacement pumps: the flow rate and flow rate irregularity. Results obtained using the system enable the designer and manufacturer of oil pump to be more efficient in this field.

직동식 오일 펌프의 소음 발생 메커니즘 규명과 개선에 관한 실험적 연구 (An Experimental Study on Identification of Noise Generation Mechanism And Its Improvement in Gerotor Oil Pump)

  • 정병환;정원조;신달흔
    • 한국소음진동공학회:학술대회논문집
    • /
    • 한국소음진동공학회 2012년도 춘계학술대회 논문집
    • /
    • pp.121-127
    • /
    • 2012
  • Whine noise in engine oil pump system was issued in developing an engine. Generally, A noise of engine oil pump largely are classified two cases. The first one is a gearing noise caused by relative motion of inner rotor and outer rotor. The other is fluid pulsation noise caused by oil pressure fluctuation. The aim of the paper is to identify a noise mechanism in engine oil pump and improve its Noise. Also, it suggests to the guide line on the design of oil pump.

  • PDF