• Title/Summary/Keyword: 휠 모터 구동 시스템

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Development of the wheel motor drive system integrated into low-floor axle for the electric bus (전기버스용 초저상 액슬 일체형 휠모터 구동시스템 개발)

  • Cho, Sang-Joon;Yoon, Young-Deuk
    • Proceedings of the KIPE Conference
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    • 2011.11a
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    • pp.241-242
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    • 2011
  • 교통 약자 승객의 편의성 증대, 도심의 매연 감소 및 온실가스 저감 등 대중 교통 선진화를 위해 친환경 초저상 전기버스의 개발이 필요하다. 초저상 전기버스는 초저상 액슬 일체형 휠모터 구동시스템을 탑재한 형태로 구현이 가능하며, 초저상 액슬 일체형 휠모터 구동시스템은 구동 모터를 액슬 허브에 일체화 시킴으로써 기존 구동시스템 대비 무게 및 사이즈가 대폭 줄어들고, 동력 전달 매커니즘을 획기적으로 개선하여 효율 향상 및 차량 연비 개선이 가능하다. 특히 바퀴 중심과 액슬 출력 중심에 단차를 둠으로써 차량의 전방 바닥 뿐만 아니라 후방바닥을 평평하게 유지할 수 있어 실내 공간이 획기적으로 개선되어 교통 약자를 포함한 승객의 편의성을 향상시킬 수 있다. 또한, 액슬 일체형 휠모터 구동시스템은 각 휠의 분산 구동이 가능하므로 동특성 및 구동제어성이 뛰어나고, ESP(Electronic Stability Program), VDC(Vehicle Dynamic Control) 등과 연계하여 통합적인 지능형 시스템을 구현할 수 있다. 액슬 일체형 휠모터 구동시스템은 휠모터와 감속기 및 휠모터제어기 등으로 구성되며, 본 논문에서는 초저상 액슬 일체형 구동시스템용 120kW급 휠모터 및 휠모터제어기의 개발 및 다이나모 환경에서 T-N 특성 및 최대 출력 시험, 효율 시험을 통해 전기버스 등 대형 차량(Heavy Duty Vehicle)에 적용 가능한 전기동력시스템의 성능을 확인하였다.

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SVPWM Control using FPGA for In-Wheel Motor Synchronous Control of Electric Vehicle (EV용 인 휠 모터 동기 구동을 위한 FPGA 기반의 SVPWM 제어)

  • Ha, Sung-Pil;Lee, Jung-Hyo;Park, Jin-Ho;Choi, Chi-Hwan;Lee, Teack-Ki;Won, Chung-Yuen
    • Proceedings of the KIPE Conference
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    • 2011.07a
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    • pp.561-562
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    • 2011
  • 인 휠 모터를 이용하여 구동되는 전기차량은 각 모터의 동기 제어가 요구된다. 기존의 마이크로컨트롤러는 구동시킬 수 있는 모터의 개수가 제한되어 인 휠 모터를 이용하여 구동되는 전기차량과 같은 다축 제어 시스템에 적용하기가 어렵다. 따라서 본 논문에서는 FPGA(Field Programmable Gate Array)를 이용하여 4축 동기 SVPWM 기법을 구현하였으며, 시뮬레이션을 통하여 성능을 확인하였다.

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A Study on the Torque Distribution for Improving the Turning Performance of a Vehicle with Torque Vectoring System (토크 벡터링 시스템이 적용된 차량의 선회 성능 향상을 위한 토크 분배에 관한 연구)

  • SeHyeoun Kim;TaeKue Kim;SoongKeun Lee;DongGun Choi;InGyu Choi;Gunpyoung Kwak
    • Journal of Korea Society of Industrial Information Systems
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    • v.28 no.4
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    • pp.35-43
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    • 2023
  • In next-generation electric vehicles, research is being conducted on an in-wheel motor system that directly controls torque by each wheel to improve total cost and driving performance. Accordingly, in this paper, a study was conducted on an algorithm that distributes the torque applied to each wheel in a torque vectoring system applied to an in-wheel motor for driving an electric vehicle. In order to implement a vehicle model that applies actual vehicle characteristic parameters according to vehicle driving and steering, a simulation was conducted in the MATLAB Simulink environment, and it was confirmed that torque distribution was performed according to the proposed algorithm.

Design of a Hub BLDC Motor Driving Systems for the Patrol Vehicles (경계형 차량 구동용 허브 bldc 전동기 구동시스템 설계)

  • Park, Won-seok;Kunn, Young;Lee, Sang-hunn;Choi, Jung-keyng
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • 2013.10a
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    • pp.612-615
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    • 2013
  • Hub BLDC(Brushless Direct Current) motor, called wheel-in motor is a outer rotor type high efficient direct driving motor which have a multi-pole permanent magnet type rotor as a driving wheel. This study shows a hub BLDC motor speed controller design methode using PIC micro controller to drive 2 wheels or 3 wheels driving body having hub motor driving shaft. The motor driver unit consists of six discrete MOSFET switching devices and the gate driving module is directly designed for high economy.

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The Design of a Control & Measurement System for the Driving of Wheel-in Motor (휠인 모터 구동을 위한 제어 및 계측 시스템 설계)

  • Choi, Jung-Keyng
    • Journal of the Korean Institute of Intelligent Systems
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    • v.25 no.4
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    • pp.405-411
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    • 2015
  • This paper sugg ests speed measurement and control system desig n methods to drive the Wheel-in Motor that is transfer rotational force to the hub of the wheel and drives it directly. The dsPIC30F2010 16 bit microprocessor specified to motion controller is used as a intelligent controller. The minimum functions of dsPIC30F2010, system clock, PWM output, I/O, timer, communication, applicable to motor control are used and operating characteristics of hall signal measurement and control software functions are tested. Also the algorithm including PDFF speed control program was implemented using this software functions and show the experimental results..

Design of a Hub BLDC Motor Vector Control System for Patrol vehicle driving (경계형 차량 구동용 허브 BLDC 전동기 벡터제어 시스템 설계)

  • Park, Won-Seok;Son, Min-Ho;Lee, Min-Woo;Choi, Jung-keyng
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • 2014.05a
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    • pp.380-383
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    • 2014
  • Hub BLDC (Brushless Direct Current) motor is a multi-pole outer rotor-type high-efficiency electric motors and the Direct Drive Motor having permanent magnet rotor to drive shaft of the wheel, also called wheel-in motor. In this study, we design a speed controller with vector control technique using the dsPIC30f2010 16 bit micro-controller to drive Hub BLDC motor. Especially, we propose vector control method which reduce complex operation time, and design directly MOSFET inverter directly which gain high economics.

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A Study on Power loading Experiment & Performance Analysis for Dynamic Transient Effect of a Turbo-shaft Engine with Free Power Turbine (분리 축 가스 터빈 엔진의 동역학적 천이 효과를 고려한 성능 해석 및 부하 인가 시험에 관한 연구)

  • Kim Gyoung-du;Yang Soo-seok
    • Journal of the Korean Society of Propulsion Engineers
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    • v.8 no.3
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    • pp.17-26
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    • 2004
  • In this paper, power transmission systems converts the shaft power of a Turbo-shaft Engine with Free Power Turbine into the generator power and be composed of a method being supplied in the thrust motor driving a propellers. Being used this, Gas turbine engine works to flat rating about 110 kw (147 shp) that the thrust motor be extremely supplied from the engine of 317shp. In this test equipment, the engine is installed with the flywheel being able to the damping function when happen to the varying load between gas turbine engine output-shaft and generator. Then if the flywheel of inertial moment be not considered, the generator and motor not get the required power from the engine for raising the load. Also it is certified that the engine works the abnormal operation. Hence the flywheel of inertial moment is determined the required range to do the performance analysis with the dynamic transient from the given and tested engine data. This system is able to get the required power after a mounting test with the redesigned flywheel.

Development of Integrated Control Logic of Wheel Motor Drive Electric Bus considering Stability and Driving Performance (휠 모터 구동 전기 버스의 차량 안정성 및 주행 성능을 고려한 통합 제어 로직 개발)

  • Jeong, Jongryeol;Choi, Jongdae;Shin, Changwoo;Lee, Daeheung;Lim, Wonsik;Park, Yeong-Il;Cha, Suk Won
    • Transactions of the Korean Society of Automotive Engineers
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    • v.21 no.6
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    • pp.40-48
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    • 2013
  • Recently, many types of electric vehicles including a heavy duty vehicle have been developed and released because of the better fuel economy and less gas products. In this study, research about an electric bus which utilizes the wheel motor drive system was conducted. The wheel motor is a motor connected to the wheel directly only with a simple gear so that the developer can utilize the space efficiently and the whole system efficiency will be better because of simple structure. However, because it is different from former types of vehicles which use the differential gear, the development of the integrated control logic is required in order to meet the vehicle stability and driving performance. The developed control logic is composed with direct yaw moment control, regenerative braking control and slip control logics. It is compared to the control logics which does not consist of direct yaw moment control and slip control when the vehicle is exposed in tough situations. For the unification of the control logic, a few maps were developed and applied to determine the output torque of each motor according to the driving status. As a result, it is shown that the developed control logic is more safe and well follow the target speed than the other control logic applied simulations.

Development of 100Nm-class Control Moment Gyroscopes for Industrial Applications (100Nm급 산업용 제어모멘트자이로 개발)

  • Lee, Seon-Ho;Kim, Dae-Kwan;Kim, Yong-Bok;Yong, Ki-Lyuk;Choi, Dong-Soo;Park, Do-Hwan;Kim, Il-Jong
    • Journal of the Korean Society for Aeronautical & Space Sciences
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    • v.43 no.2
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    • pp.172-178
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    • 2015
  • The control moment gyroscope(CMG) which is well known as an effective high-torque-generating device is applicable to space vehicles, airplanes, ships, automobiles, robotics, etc. for attitude stabilization and maneuver. This paper deals with the overall details of 100Nm-class CMG development for various industrial applications, and provides the activities and results associated with the CMG system-level requirement analysis, the motor subsystem design/manufacturing/integration, the construction of ground support equipment, and the performance test and evaluation. The performance test reveals that the CMG generates the torque output more than 120Nm in as-designed operation of spin motor and gimbal motor.

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

  • Kong, Jung-Shik;Baek, Seung-Yub
    • Journal of the Korean Institute of Intelligent Systems
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    • v.21 no.1
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    • pp.80-85
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    • 2011
  • This paper presents the design of the power-assisted controller for the in-wheel type smart wheelchair by using torque estimation that is predicted by relationship between input voltage and output wheel angular velocity. Nowadays, interest of the moving assistant aids is increased according to the increase in population of the elderly and the handicapped person. However some of the moving assistant aids have problems. For example, manual wheelchair has difficulty moving at the slope, because users lack the muscular strength of their arm. In electric wheelchair case, users should be weak by being decreased muscles of upper body. To overcome these problems, power-assisted electric wheelchair are proposed. Most of the power-assisted electric wheelchair have the special rims that can measure the user's power. In here, the rims have to be designed to install the sensors to measure user's power. In this paper, we don't design the rim to measure the man power. To predict the man power, we propose a control algorithm of the in-wheeled electric wheelchair by using torque estimation from the wheel. First, we measure the wheel velocity and voltage at the in-wheel electric wheelchair. And then we extract driving will forces by using proposed mathematical model. Also they are applied at the controller as the control input, we verify to be able to control in-wheel type smart wheelchair by using simulation.