• 제목/요약/키워드: 인휠

검색결과 48건 처리시간 0.02초

인휠 모터의 냉각 구조 개선에 관한 연구 (A Study on the Enhancement of the Cooling Structure for In-wheel Motor)

  • 김대건;김성철
    • 한국자동차공학회논문집
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    • 제21권1호
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    • pp.36-42
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    • 2013
  • Recently, the automobile of the future will be able to substitute an electric vehicle for an internal combustion engine, so the following research is actively in the process of advancing. A traction motor is one of the core parts which compose the electric vehicle. Especially, it is difficult to connect cooling water piping to an in-wheel motor because the in-wheel motor is located within the wheel structure. This structure has disadvantage for closed type and air cooling, so the cooling design of motor housing and internal in-wheel motor is important. In this study, thermo-flow analysis of the in-wheel motor for vehicles was performed in consideration of ram air effect. In order to improve cooling efficiency of the motor, we variously changed geometries of housing and internal shape. As a result, we found that the cooling efficiency was most excellent, in case the cooling groove direction was same with air flow direction and arranged densely. Furthermore, we investigated the cooling performance enhancement with respect to variable geometries of internal in-wheel motor.

후륜 구동 인휠 전기 자동차의 구동 및 현가 통합제어시스템 (Integrated Chassis Control System of a Rear In-wheel Motor Vehicle)

  • 김현동;최규재
    • 한국자동차공학회논문집
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    • 제24권4호
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    • pp.439-446
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    • 2016
  • An in-wheel motor vehicle is a type of car that is equipped with an electric motor for each wheel. It is possible to acquire vehicle stability through a seperate driving torque control per wheel, since it directly generates the driving torque via the wheel motors. However, the vehicle ride comfort and road holding performance worsen depending on the increase of the wheel weights. In order to compensate for the impaired performance, an integrated chassis control system of the rear in-wheel motor vehicle is proposed. The proposed integrated chassis control system is composed of a driving torque control system, a semi-active suspension system, and an ESC system. According to the vehicle dynamic simulation of an in-wheel motor vehicle equipped with the integrated chassis control system, it is found that the system can improve the driving stability, ride comfort, and driving efficiency of the in-wheel motor vehicle.

후륜 인휠 모터 전기자동차의 구동 및 반능동 현가시스템 동시 제어를 통한 주행 성능 분석 (Driving Performance Analysis of a Rear In-wheel Motor Vehicle with Simultaneous Control of Driving Torque and Semi-active Suspension System)

  • 신슬기;최규재
    • 한국자동차공학회논문집
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    • 제23권1호
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    • pp.11-17
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    • 2015
  • Recently, the in-wheel motor vehicle is rapidly developed to solve energy exhaustion and environmental problems. Especially, it has the advantage of independently driving the torque control of each wheel in the vehicle. However, due to the weight increase of wheel, the comfort of vehicle riding and performance of road holding become worse. In this paper, to compensate the poor performance, a simultaneous control of the driving torque and semi-active suspension system is investigated. A vehicle model is generated using CarSim Software and validated by field tests. Co-simulation of CarSim and MATLAB/Simulink with control logics is carried out, and it is found that simultaneous control of the driving torque and semi-active suspension system can improve driving stability and durability of the in-wheel motor system.

독립구동 인휠 전기자동차의 주행 효율 최적화를 위한 구동력 분배 알고리즘 (Development of Power Distribution Algorithm for Driving Efficiency Optimization of Independently Driven Vehicle)

  • 박진현;송현우;정호운;박찬호;황성호
    • 드라이브 ㆍ 컨트롤
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    • 제11권2호
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    • pp.16-21
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    • 2014
  • The purpose of this paper is to construct a control algorithm for improving the driving efficiency of 4-wheel-drive in-wheel electric vehicles. The main parts of the vehicle were modeled and the input-output relations of signals were summarized using MATLAB/Simulink. A performance simulator for 4-wheel-drive in-wheel electric vehicles was developed based on the co-simulation environment with a commercial dynamic behavior analysis program called Carsim. Moreover, for improving the driving efficiency of vehicles, a torque distribution algorithm, which distributes the torque to the front and rear wheels, was included in the performance simulator. The effectiveness of the torque distribution algorithm was validated by the SOC simulation using the FTP-75 driving cycle.

전륜 인휠모터 후륜구동 차량의 선회 특성 변형을 위한 요모멘트 제어 (Yaw Moment Control for Modification of Steering Characteristic in Rear-driven Vehicle with Front In-wheel Motors)

  • 차현수;좌은혁;박관우;이경수;박재용
    • 자동차안전학회지
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    • 제13권1호
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    • pp.6-13
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    • 2021
  • This paper presents yaw moment control for modification of steering characteristic in rear-driven vehicle with front in-wheel motors (IWMs). The proposed control algorithm is designed to modify yaw rate response of the test vehicle. General approach for modification of steering characteristic is to define the desired yaw rate and track the yaw rate. This yaw rate tracking method can cause the chattering problem because of the IWM actuator response. Large overshoot and settling time in IWM torque response can amplify the oscillation in control input and yaw rate. To resolve these problems, open-loop IWM controller for cornering agility was designed to modify the understeer gradient of the vehicle. The proposed algorithm has been investigated via the computer simulations and the vehicle tests. The performance evaluation has been conducted on dry asphalt using E-segment test vehicle. The performance of the proposed algorithm has been compared to general yaw rate tracking algorithm in the vehicle tests. It has been shown that the proposed control law improved the cornering agility without chattering problem.

인휠형 스마트 휠체어를 위한 힘 보조 제어기 설계 (Design of the Power Assist Controller for the In-Wheel Type Smart Wheelchair)

  • 공정식;백승엽
    • 한국지능시스템학회논문지
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    • 제21권1호
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    • pp.80-85
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    • 2011
  • 본 논문은 인휠형 휠체어에 있어 휠 림에 걸리는 외력을 차량의 전압과 회전 속도를 통해 예측하고 이를 통해 각 바퀴에 사용자의 힘에 따라 차량의 방향 및 속도를 제어할 수 있도록 고안된 제어기 설계에 관한 논문이다. 최근 노인 인구의 증가로 인해 노인 및 장애인을 위한 이동기기에 대한 관심이 증가되고 있다. 특히 많은 수의 고령자들이 휠체어를 이용하고 있다. 하지만 고령자의 경우 수동 휠체어 사용 시 국내 지형상의 문제로 인해 구동에 어려움을 겪는다. 또한 전동 휠체어의 경우 조이스틱으로 구동하므로 하체 근력 약화로 인해 휠체어를 이용하는 고령자의 경우, 상체 근력 또한 약화될 수 있다. 이를 극복하기 위해 림(rim)에 힘이 가해지는 힘의 크기를 파악하여 이에 상응하는 모터를 구동시키는 힘 보조형 인휠 전동기에 대한 연구가 진행되고 있다. 하지만 대부분의 힘 보조형 인휠 전동기의 경우 힘의 크기를 측정하기 위한 센서 모듈이 장착되어야 하며 이를 위해 힘의 크기를 측정하기 위한 별도의 림을 설계해야 하는 등 기구적 장치가 요구된다. 이에 본 논문에서는 이러한 힘의 크기를 측정하기 위한 림 설계 대신에 모터의 수학적 모델을 기초로 모터에 전달되는 전압과 바퀴의 현재 속도를 토대로 인휠형 모터에 걸리는 외력을 추정하고 이를 토대로 사용자의 이동 속도와 방향을 추정하여 모터를 이동시킬 수 있도록 하였다. 본 논문은 제안된 수학적 모델을 기초로 사용자의 구동 의지력을 정확하게 측정할 있었다. 또한 이를 기초로 한 제어기를 적용할 경우 인휠 휠체어를 사용자의 의지에 따라 이동할 수 있음을 시뮬레이션을 통해 검증하였다.

실차 주행 조건을 고려한 인휠 차량 거동 해석 및 동력 시험계 부하 토크 인가를 위한 구동 모터의 동적 부하 도출시스템 개발 (Dynamic Performance Analyzing of In-wheel Vehicle considering the Real Driving Conditions and Development of Derivation System for Applying Dynamometer Using Drive Motor's Dynamic Load Torque)

  • 손승완;김기영;차석원;임원식;김정윤
    • 한국자동차공학회논문집
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    • 제24권3호
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    • pp.294-301
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    • 2016
  • This paper discusses about analyzing in-wheel vehicle's dynamic motion and load torque. Since in-wheel vehicle controls each left and right driving wheels, it is dangerous if vehicle's wheels are not in a cooperative control. First, this study builds the main wheel control logic using PID control theory and evaluates the stability. Using Carsim-Matlab/Simulink, vehicle dynamic motion is simulated in virtual 3D driving road. Through this, in-wheel vehicle's driving performance can be analyzed. The target vehicle is a rear-wheel drive in D-class sedan. Second, by using the first In-wheel vehicle's performance results, it derivate the drive motor's dynamic load torque for applying the dynamometer. Extracted load torque impute to dynamometer's load motor, linear experiment in dynamometer can replicated the 3-D road driving status. Also it, will be able to evaluate the more accurate performance analysis and stability, as a previous step of actual vehicle experiment.

토크센서 기반 사용자의도 파악이 가능한 보행보조기용 인휠 구동기 개발 (Development of In-wheel Actuator for Active Walking Aids Equipped with Torque Sensor for User Intention Recognition)

  • 임승환;김태근;김동엽;황정훈;김봉석;박창우;이재민;홍대희
    • 한국정밀공학회지
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    • 제31권12호
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    • pp.1141-1146
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    • 2014
  • As life expectancy becomes longer, reduction of human muscular strength threatens quality of human life. Many robotic devices have thus been developed to support and help human daily life. This paper deals with a new type of in-wheel actuator that can be effectively used for the robotic devices. BLDC motor, drive board, brake, ARS (Attribute Reference System), and torque sensor are combined in the single actuator module. The torque sensor is used to recognize human intention and the in-wheel actuator drives walking aids in our system. Its feasibility was tested with the active walking aid device equipped with the in-wheel actuator. Based on it, we designed an admittance filter algorithm to react on uphill and downhill drive. By adjusting mass, damping, and spring parameters in accordance with the ARS output, it provided convenient drive to the old on uphill and downhill walks.

1인승 전기차량의 임베디드 전동제어장치 설계 (Design of Embedded Electrical Power Control Unit for Personal Electrical Vehicle)

  • 신규재;차현록
    • 전기전자학회논문지
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    • 제18권2호
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    • pp.282-290
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    • 2014
  • 본 논문은 1인승 전기차량의 임베디드 전동 제어장치 설계를 제안하였다. 제안된 임베디드 장치는 PIC18F8720 프로세서, 16Mb flash ROM, 32Mb SDRAM과 신호처리회로로 설계되었다. 제안된 1인승 전기차량은 4KW 인휠 BLDCM, $180^{\circ}$ 도통 공간 벡터제어 3상 전압형 인버터, PID 속도제어기와 전동제어 장치와 임베디드 제어장치로 구성된다. 이 1인승 전기차량은 역 3륜 형태의 기계적인 구조를 가지고 있으며, 인휠 BLDCM과 틸팅 기능을 가지는 조향 메카니즘이 적용되었다. 또한 제안된 임베디드 전동제어장치의 성능은 PEV에 대한 Lab 실험과 도로 주행시험을 통하여 검증하였다.