• Title/Summary/Keyword: Pedal

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A Study on the System of Vehicle Pedal Based on Simple Reaction Time of Visual Information (시각정보의 단순반응시간을 고려한 페달 시스템의 관한 연구)

  • 고관명;이근희
    • Journal of Korean Society of Industrial and Systems Engineering
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    • v.14 no.23
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    • pp.37-46
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    • 1991
  • This study deals with the designing of vehicle pedal considering simple reaction time of visual information. Because vehicle accidents may bring about fatal results, the vehicle design which is considered with safity is very important. Though the vehicle design considered with safity is important in the whole parts of vehicle, the designing of pedal which is directly connected the designing of pedal which can minimize reaction time to risk through simple experiments. In the experiments, the experience of driving, the location of brake pedal and the space between brake and accelerator pedal are considered. Using experiment equipment and IBM-PC, simple reaction time was measured. The data which was result from measurement was analyzed with SPSS/PC+. When brake pedal located right side and the space between brake and accelerator pedal was 35cm, reaction was minimized. Based on this results, the vehicle pedal should be designed.

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Effects of Different Car Pedal Systems and Driving Skills on Drivers' Lower Extremity Postures during Fatigue (피로 시 운전 숙련도와 자동차 페달시스템 유형이 운전자의 하지자세에 미치는 영향)

  • Hah, Chong-Ku;Oh, Hyung-Sool;Jang, Young-Kwan;Yi, Jae-Hoon;Oh, Seong-Geun
    • Journal of the Korea Safety Management & Science
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    • v.14 no.4
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    • pp.93-105
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    • 2012
  • The purpose of this study was to investigate drivers' postures in different car pedal systems and skilled levels under fatigue. Twenty four subjects participated in this experiment. For three-dimensional analyses, six cameras (Proreflex MCU-240, Qualisys) were used to acquire raw data. The parameters were calculated and analyzed with Visual-3D. In conclusion, ROAs of two leg-pedal system were less than one leg pedal system by pattern analysis. Through statistical tests, skilled levels have effects on ROAs(X, Y, Z) of ankle joint at breaking a pedal and ROAs(Y, Z) of ankle joint at accelerating a pedal. Also, car pedal systems have effects on ROAs(Y, Z) of ankle joint, and ROA(Z) of knee joint at accelerating a pedal. In addition, skilled levels and car pedal systems (cross effects) have an effect on ROA(Z) of ankle joint. These findings suggested that we should improve a present single pedal system.

Strength Analysis of Die-cast Aluminum-alloy Brake Pedals for use in Lightweight Cars (자동차 경량화를 위한 다이캐스팅용 알루미늄합금 브레이크 페달의 강도해석)

  • Cho, Seunghyun;Jang, Junyoung
    • Journal of the Korean Society of Manufacturing Technology Engineers
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    • v.25 no.2
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    • pp.138-142
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    • 2016
  • In this study, a strength analysis was performed to assess die-cast aluminum alloy brake pedals as an improved alternative to wrought alloys. Aluminum brake pedal shapes are considered to be suitable for the die-casting process. The strength criterion of Volvo trucks was used as the criterion for the pedal strength. The results of this analysis showed that the frame thickness of the aluminum brake pedal must be increased from 12 mm to 18 mm to have a strength superior to that of a steel brake pedal. Additionally, the stress and weight of the aluminum brake pedal were found to be approximately 24% and 26% lower than those of the steel brake pedal, respectively. Mounting tests and strength assessments verified that the proposed die-cast aluminum alloy brake pedal demonstrated sufficient strength.

Effect of Driver's Posture with Different Car Pedal Systems and Skilled Levels (운전 숙련도에 따른 자동차 페달시스템 유형이 운전자세에 미치는 영향)

  • Yi, Jae-Hoon;Jang, Young-Kwan;Oh, Hyung-Sool;Hah, Chong-Ku
    • Journal of the Korea Safety Management & Science
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    • v.14 no.2
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    • pp.11-22
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    • 2012
  • The purpose of this study was to compare drivers' postures with different car pedal systems and skilled levels. Fourteen subjects participated in this experiment and for three-dimensional analyses, six cameras (Proreflex MCU-240, Qualisys) were used to acquire raw data. The parameters were calculated and analyzed with Visual-3D. In conclusion, the patterns of pelvic, hip, knee and ankle joint angles were different as to pedal systems and skilled levels, and distal joints ROA pelvis have large angles. ROA(range of angle) of a double pedal system was small, but ROA of a single pedal system was large. These findings suggested that we should improve a present single pedal system.

Shape Optimal Design of an Automotive Pedal Arm Using the Taguchi Method (다구찌 기법을 이용한 자동차 페달 암의 형상 최적설계)

  • Lee, Boo-Youn;Lee, Hyun-Woo
    • Journal of the Korean Society for Precision Engineering
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    • v.24 no.3 s.192
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    • pp.76-83
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    • 2007
  • The Taguchi method is applied to obtain the optimal design of an automotive pedal arm in consideration of the stiffness test specification. Design parameters are defined to describe shape of the pedal arm. Volume, maximum Von-Mises stress and maximum displacement of the pedal arm are established as the smaller-the-better characteristics. Optimal parameters are determined on the basis of the analyzed level averages of the characteristics.

Fatigue and Robust Analysis for Improving the Suspended Pedal of Vehicles (차량용 서스펜디드 페달 구조체의 피로 내구 분석 및 설계 개선)

  • Lee, Woo-Hyung;Hwang, Bum-Chul;Kim, Chul;Bae, Won-Byong
    • Journal of the Korean Society for Precision Engineering
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    • v.26 no.7
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    • pp.105-111
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    • 2009
  • This study was carried out to evaluate structural stability of the suspended plastic pedal used in vehicles and to predict its fatigue life with the results obtained from finite element analysis. And also shape optimization was performed to reduce its weight. Structural analysis of the suspended plastic pedal was based on the evaluation tests such as static test, stiffness test, and fatigue test in the actual field, which were frequently carried out in the companies manufacturing plastic pedals. The evaluation for the plastic pedal was carried out by structural and fatigue analyses using a commercial FEA program and according to it, maximum stress and strain and fatigue life of the pedal satisfied all the requirements in the evaluation tests. The results of structural analysis of the suspended plastic pedal were used in the fatigue analysis. Fatigue test was performed to verify validity of the theoretical fatigue life of the plastic pedal. And the life by theoretical calculation was in good agreement with that by the experiment. Object function for optimizing shape of the plastic pedal is its volume, and total volume of the plastic pedal was reduced to about 11.7% through shape optimization.

Design and Performance Validation of Tactile Force Generating Type Eco-pedal to Improve Fuel Economy (연비 향상을 위한 반력 생성형 에코페달의 설계와 성능검증)

  • Kim, Ji Soo;Tak, Tae Oh
    • Transactions of the Korean Society of Mechanical Engineers A
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    • v.40 no.11
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    • pp.963-970
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    • 2016
  • This research deals with design and performance validation of eco-pedals that generate tactile pedal force to guide fuel saving driving behavior. For eco-pedal control logic, allowable fuel consumption at given driving speed is calculated based on pre-defined "allowable acceleration", and if the actual fuel consumption exceeds the allowable fuel consumption, then pedal force is activated. Pedal force should be recognizable to driver while not causing unpleasantness, and should not interfere with normal operation of pedal. Reaction forces that increase pedal stiffness abruptly, such as step and ramp shape, turn out to be not suitable due to pedal overshoot after release of reaction force. With this regards, vibration type reaction force is adopted, and its optimal frequency, magnitude and duration is determined through subjective evaluation with consideration to effect to fuel efficiency. Though highway and city driving test, it is demonstrated that fuel efficiency increase of 13% for highway and 15% for city is achieved.

Development of Assistive Mobility Equipment Modeled on Pedal Crawling Locomotion of Terrestrial Gastropod

  • Morikawa, Hirohisa;Fujihara, Ryousen;Fukaya, Yuhya;Kobayashi, Shunichi;Sakai, Hiroshi
    • Proceedings of the Korean Fiber Society Conference
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    • 2003.10a
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    • pp.79-80
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    • 2003
  • In order to develop an indoor assistive mobility equipment, we paid attention to the mechanism of locomotion in a snail, or a terrestrial gastropod molluscs. It is known that the snail moves by propagation of a pedal wave generating on a pedal surface of the snail and a pedal locomotion has flexibility far ground condition. An air mattress with a function of a pedal-like locomotion mechanism was developed and the performance of the pedal locomotory air mattress as mobility equipment was discussed.

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EFFECT OF BRAKE PEDAL IMPEDANCE ON BRAKING PERFORMANCE IN EH-BBW SYSTEM

  • PARK S.
    • International Journal of Automotive Technology
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    • v.6 no.4
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    • pp.391-402
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    • 2005
  • Despite its superior braking performance to conventional vehicles on test tracks, the performance of the ABS-equipped car seems disappointing on real highway. The poor braking performance results from questionable design of the human-machine interface(HMI) of the brake system. Force-displacement relation at the brake pedal has a strong effect on the braking performance. Recently developed brake-by-wire (BBW) system may allow us to tailor the force feel at the brake pedal. This study aims at exploring analytical ways of designing human-machine interface of BBW system. In this paper, mathematical models of brake pedal feel for electro-hydraulic BBW (EH-BBW) system are developed, and the braking motion and the characteristics of the driver's leg action are modeled. Based on the dynamic characteristics of the brake pedal and the driver, two new HMI designs for EH-BBW system are proposed. In the designs, BBW system is modeled as a type of master-slave teleoperator. The effectiveness of the proposed designs is investigated using driving simulation.

Design and Analysis of Electromagnetic Tubular Linear Actuator for Higher Performance of Active Accelerate Pedal

  • Lee, Jae-Yong;Kim, Jin-Ho;Lee, Jeh-Won
    • Journal of Magnetics
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    • v.14 no.4
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    • pp.175-180
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    • 2009
  • This paper describes the design and analysis of a tubular linear actuator for intelligent AAP (Active Accelerate Pedal) system. In a driving emergency, the electromagnetic actuator produces an additional pedal force such as the active pedal force and vibration force to release the driver's foot on accelerator pedal. A prior study found that the linear actuator with a ferromagnetic core had a problem in transferring the additional force naturally to a driver due to the cogging force. To reduce the cogging force and obtain higher performance of the AAP system, a coreless tubular linear actuator is suggested. Electromagnetic finite element analysis is executed to analyze and design the coreless tubular actuator, and dynamic analysis is performed to characterize the dynamic performance of the AAP system with the suggested tubular actuator for two types of thrust force.