• 제목/요약/키워드: airbag

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차량 운동에 따른 GMLAN 차량 속도와 실제 차량 속도 비교 (A COMPARATIVE STUDY BETWEEN GMLAN SPEED AND GPS REPORTED VEHICLE SPEED BY VEHICLE MANEUVER)

  • 원유진;김진원;강성기
    • 자동차안전학회지
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    • 제5권1호
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    • pp.16-24
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    • 2013
  • Some GM (General Motors) vehicles are using a GMLAN (General Motors Local Area Network) communication protocol for control and diagnostics. The airbag control module uses vehicle speed information from the GMLAN to record the vehicle speed as pre-crash information. In order to use the vehicle speed information for crash reconstruction purposes, it helps to be able to understand the accuracy of the data. The actual vehicle speed is not expected to be the same as the GMLAN indicated speed in some situations like a spin or if there is hard braking. This paper compares the actual vehicle speed and vehicle speed information during specific vehicle maneuvers. Actual vehicle speed is calculated from a GPS sensor, while GMLAN vehicle speed is calculated from transmission output sensor by the Engine control module (ECM). Vehicle maneuvers defined as Mode #1, Mode #2, Mode #3. The Mode #1 maneuver simulates wheel lock-up and skidding f by hard-braking at a specific speed. The Mode #2 maneuver simulates a 90degree turn using a J-turn maneuver at a specific speed. The Mode#3 maneuver simulates a 180 degree turn using a spin type of maneuver at a specific speed. The study then compares the GMLAN speed and GPS speed to see what speed difference exists between them. The results of this paper are applicable to GM vehicles only. This paper catalogs the performance and limitations of two vehicles as useful reference for crash reconstructions where there is a need to understand the speed indicated in the pre-crash section of the SDM data.

Computational evaluation of experimental methodologies of out-of-plane behavior of framed-walls with openings

  • Anic, Filip;Penava, Davorin;Abrahamczyk, Lars;Sarhosis, Vasilis
    • Earthquakes and Structures
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    • 제16권3호
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    • pp.265-277
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    • 2019
  • Framed masonry wall structures represent a typical high-rise structural system that are also seismically vulnerable. During ground motions, they are excited in both in-plane and out-of-plane terms. The interaction between the frame and the infill during ground motion is a highly investigated phenomenon in the field of seismic engineering. This paper presents a numerical investigation of two distinct static out-of-plane loading methods for framed masonry wall models. The first and most common method is uniformly loaded infill. The load is generally induced by the airbag. The other method is similar to in-plane push-over method, involves loading of the frame directly, not the infill. Consequently, different openings with the same areas and various placements were examined. The numerical model is based on calibrated in-plane bare frame models and on calibrated wall models subjected to OoP bending. Both methods produced widely divergent results in terms of load bearing capabilities, failure modes, damage states etc. Summarily, uniform load on the panel causes more damage to the infill than to the frame; openings do influence structures behavior; three hinged arching action is developed; and greater resistance and deformations are obtained in comparison to the frame loading method. Loading the frame causes the infill to bear significantly greater damage than the infill; infill and openings only influence the behavior after reaching the peak load; infill does not influence initial stiffness; models with opening fail at same inter-storey drift ratio as the bare frame model.

무폭약 시험 장치 개발을 위한 수중폭발 특성에 대한 연구 (A Study on the Characteristics of Underwater Explosion for the Development of a Non-Explosive Test System)

  • 이한솔;박규동;나양섭;이승규;박경훈;정현
    • 대한조선학회논문집
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    • 제57권6호
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    • pp.322-330
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    • 2020
  • This study deals with underwater explosion (UNDEX) characteristics of various non-explosive underwater shock sources for the development of non-explosive underwater shock testing devices. UNDEX can neutralize ships' structure and the equipment onboard causing serious damage to combat and survivability. The shock proof performance of naval ships has been for a long time studied through simulations, but full-scale Live Fire Test and Evaluation (LFT&E) using real explosives have been limited due to the high risk and cost. For this reason, many researches have been tried to develop full scale ship shock tests without using actual explosives. In this study, experiments were conducted to find the characteristics of the underwater shock waves from actual explosive and non-explosive shock sources such as the airbag inflators and Vaporizing Foil Actuator (VFA). In order to derive the empirical equation for the maximum pressure value of the underwater shock wave generated by the non-explosive impact source, repeated experiments were conducted according to the number and distance. In addition, a Shock Response Spectrum (SRS) technique, which is a frequency-based function, was used to compare the response of floating bodies generated by underwater shock waves from each explosion source. In order to compare the magnitude of the underwater shock waves generated by each explosion source, Keel Shock Factor (KSF), which is a measure for estimating the amount of shock experienced by a naval ship from an underwater explosionan, was used.

탑승자 교통사고에서 경추손상 판단을 위한 중증도 요인 분석 (Parameter Analysis to Predict Cervical Spine Injury on Motor Vehicle Accidents)

  • 이희영;육현;공준석;강찬영;성실;이정훈;김호중;김상철;추연일;전혁진;박종찬;최지훈;이강현
    • 자동차안전학회지
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    • 제10권3호
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    • pp.20-26
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    • 2018
  • It was a pilot study for developing an algorithm to determine the presence or absence of cervical spine injury by analyzing the severity factor of the patients in motor vehicle occupant accidents. From August 2012 to October 2016, we used the KIDAS database, called as Korean In-Depth Accident Study database, collected from three regional emergency centers. We analyzed the general characteristics with several factors. Moreover, cervical spine injury patients were divided into two groups: Group 1 for from Quebec Task Force (hereinafter 'QTF') grade 0 to 1, and group 2 for from QTF grade 2 to 4. The score was assigned according to the distribution ratio of cervical spine injured patients compared to the total injured patients, and the cut-off value was derived from the total score by summation of the assigned score of each factors. 987 patients (53.0%) had no cervical spine injuries and 874 patients (47.0%) had cervical spine injuries. QTF grade 2 was found in 171 patients (9.2%) with musculoskeletal pain, QTF grade 3 was found in 38 patients (2.0%) with spinal cord injuries, and QTF grade 4 was found in 119 patients (6.4%) with dislocation or fracture, respectively. We selected the statistically significant factors, which could be affected the cervical spine injury, like the collision direction, the seating position, the deformation extent, the vehicle type and the frontal airbag deployment. Total score, summation of the assigned each factors, 10 was presented as a cut-off value to determine the cervical spine injury. In this study, it was meaningful as a pilot study to develop algorithms by selecting limited influence factors and proposing cut-off value to determine cervical spine injury. However, since the number of data samples was too small, additional data collection and influencing factor analysis should be performed to develop a more delicate algorithm.

(111) 실리콘 웨이퍼를 이용한 6빔 가속도센서의 유한요소법 해석 (Analysis of 6-Beam Accelerometer Using (111) Silicon Wafer by Finite Element Method)

  • 심준환;김동권;서창택;류인식;이종현
    • 센서학회지
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    • 제6권5호
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    • pp.346-355
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    • 1997
  • 본 논문에서는 범용 유한요소 구조해석 프로그램인 ANSYS를 이용하여 가속도센서의 미세기계구조부의 스트레스 분포와 주파수특성을 해석하였다. 해석된 결과로 부터 자동차의 에어백 시스템에 들어가는 가속도센서의 사양에 적합한 새로운 형태의 6빔 압저항형 가속도센서의 파라미터 값을 설정하였다. 이때, 설계된 가속도 센서의 매스 패드의 반경 및 빔 길이, 빔 폭, 빔 두께의 각 파라미터 값은 $500{\mu}m$, $350{\mu}m$, $100{\mu}m$, $5{\mu}m$였으며, 그리고 같은 구조의 센서에서 진동질량은 0.4 mg과 0.8mg인 두가지 종류로 정의하였다. 설계된 구조를 가지고 (111)면 n 실리콘웨이퍼에 $n^{+}$ 영역이 선택적으로 확산된 $n/n^{+}/n$ 3층 구조를 사용하여 6빔 압저항형 실리콘 가속도센서를 제조하고, 특성을 조사하였다. 이때, 센서의 미세기계구조를 형성하기 위하여 다공질 실리콘 에칭법을 이용한 마이크로머시닝 기술을 사용하였다.

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3.0m급 저고도 장기체공 태양광 무인기 시스템 연구 (A Study on 3.0m Low-Altitude Long-Endurance Solar Powered UAV System)

  • 정재백;김태림;김도영;문석민;배재성;박상혁
    • 항공우주시스템공학회지
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    • 제17권4호
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    • pp.10-17
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    • 2023
  • 본 논문은 한국항공대학교에서 연구 및 개발한 태양광 무인기에 관한 것으로, 주익 4.2 m 장기체공 태양광 무인항공기 KAU-SPUAV-2019에 대한 연구를 기반으로 하여 임무 비행을 위해 개발한 주익 3.0 m 태양광 무인항공기 KAU-SPUAV-2020의 시스템 설계에 관하여 기술하였다. 기체의 경량화를 위하여 동체에 복합재료를 적용하였고, 태양광 충전 시스템을 적용하였다. 임무 수행 활용성을 위하여 비상시 긴급하게 착륙하기 유리하도록 Deep Stall Landing이 가능하도록 제작하였으며, 강제 실속 착륙 시 항공기에 가해지는 충격을 흡수하기 위한 에어백 모듈을 장착하였다. 개발된 3.0 m 태양광 무인항공기의 비행 성능 및 임무 수행 능력은 비행 실험을 통해 그 수행 능력을 검증하였으며, 147 km에 달하는 제주도 해안선을 3 시간 50 분 만에 비행하는 것에 성공함으로 태양광 무인항공기가 다양한 분야에서 촬영, 모니터링 임무에 활용 가능함을 확인하였다.