• 제목/요약/키워드: Tractor cabin

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트랙터 운전실의 소음 저감에 관한 연구 (Noise Reduction in Tractor Cabin)

  • 김원진;은명우
    • 한국생산제조학회지
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    • 제23권4호
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    • pp.380-384
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    • 2014
  • This study focused on identifying the major noise source in a tractor cabin using experimental methods. The noise levels in a tractor cabin for different engine revolution speeds were analyzed to identify the noise source. The results showed that the power steering unit (PSU) was the major noise source in a tractor cabin. The PSU was moved to the outside from the inside of the cabin in order to reduce the noise in the tractor cabin. As a result, the noise levels on the left and right sides of the operator in the tractor cabin were reduced by 6.8 and 3.9 dB, respectively. Finally, the window method was introduced to evaluate the contribution of the transmission noise. The orders of significance in the tractor noise were the front, bottom, and left area, successively.

90kW급 트랙터 캐빈의 승차 진동 저감을 위한 현가장치 설계 최적화 (Optimization of the Suspension Design to Reduce the Ride Vibration of 90kW-Class Tractor Cabin)

  • 정우진;오주선;박윤나;김대철;박영준
    • 한국기계가공학회지
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    • 제16권5호
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    • pp.91-98
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    • 2017
  • This study was conducted to optimize the spring constant and the damping coefficient, which are design parameters of the tractor cabin suspension system, to minimize the ride vibration. A 3D tractor MBD (multi-body dynamics) model with a cabin suspension system was developed using a dynamic analysis program (Recurdyn). Using the developed model and optimization algorithm, the spring constant and the damping coefficient, which are the design parameters of the cabin suspension for the tractor, was were optimized so thatto minimize the maximum overshoot for the vertical displacement of the cabin was minimized. The percent maximum overshoot of the tractor cabin was simulated for the 13 initial models, which were obtained using the ISCD-II method, and for the 3 additional SAO models presented in the optimization algorithm software. The model that represents with the smallest percent maximum overshoot among the 16 models was selected as the optimized model. The percent maximum overshoot of the optimized model was about approximately 5% lower than that of the existing model.

OECD 인증을 위한 농업용 트랙터 캐빈의 구조 해석 (Structural Analysis of an Agricultural Tractor Cabin for OECD Certification)

  • 김현진;권영두;하창욱;정한경;구남서
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2001년도 추계학술대회논문집A
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    • pp.431-436
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    • 2001
  • A finite analysis of tractor cabin for ROPS design was performed. Finite element model was made to take account of the tractor cabin structures. Four tests were defined in OECD standard; (1) longitudinal loading (2) rear crushing test (3) side loading (4) front crushing test. The results of four independent analyses and sequential analysis are compared with test results.

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캐빈 동특성에 대한 형상변수의 기여도 해석 (Effects of Configurational Parameters on the Dynamic Characteristics of a Cabin)

  • 안태길;안세환;박민수;소병업;김중호
    • 자동차안전학회지
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    • 제6권2호
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    • pp.18-22
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    • 2014
  • A new concept tractor is developed, which can conduct multi-functional complex tasks such as excavating and working with attached various equipments. A cabin of the agricultural tractor is designed to protect the driver from vibration transmitted due to the irregular ground and overturning of the tractor. In this paper, the dynamic characteristic of the cabin is identified through finite element analysis and effects of configurational parameters are investigated to insure the dynamic stiffness of the cabin.

제작 오차를 고려한 트랙터 캐빈의 구조 해석 (Structural Analysis of a Tractor Cabin Considering Structure Production Error)

  • 박장우
    • 한국융합학회논문지
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    • 제8권5호
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    • pp.155-160
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    • 2017
  • 트랙터는 각종 작물을 생산하는 농용작업 외에 건설작업, 임야작업, 가정용 등에 사용되는 다목적 작업차량으로 경작용의 가래, 쟁기, 써레, 수확기 등을 견인하는 농업 작업에 없어서는 안 되는 필수 장비이다. 트랙터 운전자의 작업공간인 캐빈은 트랙터가 전도되었을 때 운전자가 입게 될 피해를 최소화하고 운전자가 전락하여 상해를 입지 않도록 보호하여야 한다. 일반적으로 캐빈은 프레임과 판들의 용접으로 제작되기 때문에 용접상태에 따라 구조물의 강성이 크게 영향을 받게 된다. 본 연구에서는 유한요소 해석을 이용하여 캐빈의 제작 시 예상되는 구조물의 용접 오차가 캐빈 구조물의 정적, 동적 강성에 미치는 영향을 파악하고, 캐빈의 강성을 확보하기 위한 방안을 제시하고자 한다.

다구찌 실험계획을 이용한 트랙터 캐빈 프레임의 최적설계 (Optimal Design of Tractor Cabin Frame Using Design of Experiment of Taguchi)

  • 장효성;이부윤
    • 한국산학기술학회논문지
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    • 제16권11호
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    • pp.7377-7384
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    • 2015
  • 농업용 트랙터는 전도 사고 발생 시 운전자를 보호하기 위해 전도보호구조(ROPS: Roll Over Protective Structures)의 역할을 할 수 있어야 한다. 본 연구에서는 ROPS 강도시험 규격을 만족하는 트랙터 캐빈 프레임의 제작 기간과 비용을 줄이기 위해서 유한요소해석과 최적설계를 수행하였다. 해석 결과로부터 얻은 변위와 주 변형률의 크기를 통해 캐빈 프레임의 초기설계안은 ROPS 강도시험에 합격하는 것으로 나타났다. 또한 캐빈 프레임의 경량화 설계안을 도출하기 위하여 다구찌 실험계획을 이용해 최적설계를 수행하였다. 이를 통하여 캐빈 프레임 무게가 초기설계안보다 7% 저감된 최적설계안을 도출하였다.

다구찌법을 이용한 트랙터 캐빈 방진고무의 형상최적설계 (Shape Optimal Design of Anti-vibration Rubber Assembly in Tractor Cabin Using Taguchi Method)

  • 서지환;이부윤;이상훈
    • 한국기계가공학회지
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    • 제18권4호
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    • pp.34-40
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    • 2019
  • We performed shape optimization of an anti-vibration rubber assembly which is used in the field option cabin of agricultural tractors to improve the vibration isolation capability. To characterize the hyper-elastic material property of rubber, we performed uniaxial and biaxial tension tests and used the data to calibrate the material model applied in the finite element analyses. We conducted a field test to characterize the input excitation from the tractor and the output response at the cabin frame. To account for the nonlinear behavior of rubber, we performed static analyses to derive the load-displacement curve of the anti-vibration rubber assembly. The stiffness of the rubber assembly could be calculated from this curve and was input to the harmonic analyses of the cabin. We compared the results with the test data for verification. We utilized Taguchi's parameter design method to determine the optimal shape of the anti-vibration rubber assembly and found two distinct shapes with reduced stiffness. Results show that the vibration at the cabin frame was reduced by approximately 35% or 47.6% compared with the initial design using the two optimized models.

Experimental Study of the Dynamic Characteristics of Rubber Mounts for Agricultural Tractor Cabin

  • Choi, Kyujeong;Oh, Jooseon;Ahn, Davin;Park, Young-Jun;Park, Sung-Un;Kim, Heung-Sub
    • Journal of Biosystems Engineering
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    • 제43권4호
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    • pp.255-262
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    • 2018
  • Purpose: To obtain the dynamic characteristics (spring stiffness and damping coefficient) of a rubber mount supporting a tractor cabin in order to develop a simulation model of an agricultural tractor. Methods: The KS M 6604 rubber mount test method was used to test the dynamic characteristics of the rubber mount. Of the methods proposed in the standard, the resonance method was used. To perform the test according to the standard, a base excitation test device was constructed and the accelerations were measured. Results: Displacement transmissibility was measured by varying the frequency from 3-30 Hz. The vibration transmissibility at resonance was confirmed, and the dynamic stiffness and damping coefficient of the rubber mount were obtained. The front rubber mount has a spring constant of 1247 N/mm and damping ratio of 3.27 Ns/mm, and the rear rubber mount has a spring constant of 702 N/mm and damping ratio of 1.92 Ns/mm. Conclusions: The parameters in the z-direction were obtained in this study. In future studies, we will develop a more complete tractor simulation model if the parameters for the x- and y-directions can be obtained.

OECD규정(제4항)에 기초한 농업용 트랙터 캐빈의 유한요소 해석 (Finite Element Analysis of an Agricultural Tractor Cabin based on the OECD Standard(code 4))

  • 하창욱;김현진;구남서;권영두
    • Journal of Biosystems Engineering
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    • 제28권4호
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    • pp.305-314
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    • 2003
  • The ROPS of an agricultural tractor is designed to protect its driver when the tractor overturns. Although the current OECD tests to determine whether the ROPS meets the requirements of the OECD regulation are desirable, they need long time to test. We experimental time and effort by using CAE. We conducted a finite element analysis for the ROPS design of a Dae-Dong tractor cabin in an attempt to reduce the design and manufacturing time. This study shows the interpretative skill using MARC(v.2000) for designing ROPS and difference between the results of testing and FEA. Design process is generally divided into two phases: a concept and a detail design. The concept design uses simple analysis to predict structural behavior, whereas the detail design involves a finite element analysis performed by the results of the concept design. This study focused on the detail design and used Patran(v.2000r2) and MARC(v.2000) of the MSC software corporation. The model consisted of 4812 elements and 4582 nodes. Four tests. specified in the OECD standards, were performed: (1) longitudinal loading test (2) rear crushing test (3) side loading test (4), and front crushing test. Independent analyses were also performed for each test, along with a sequential analysis. When compared, the results of the independent and sequential analyses were found to be similar to the test results.