12,764 research outputs found

    Investigation of the Dynamic Interaction between the Human Body and Car Seat Using a Unique Simulation Technique

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    Numerical simulations and mathematical models have been developed over last many years on the certain portions of human body, car seat or automobile to characterise, monitor and assess the level of vibration and its effects on the human occupant inside the automotive. Though, the numerical simulations can define the level and nature of vibration and its transmissibility up to a certain stage, vibration measurement techniques have also been gaining importance for last several years to fill the limitations of the theoretical models. Efforts have also been made to carry out vibration related investigations using combined numerical simulation and measurement procedure for the car seat and the seated human body inside car, though the numbers of case studies carried out with the combination of simulation and measurement procedure are very less. Some technologies have been achieved to judge the level of vibration inside the car seat and its human occupant, though those technologies cover only effects of vibration, dynamics or measurement techniques on specific portions of the car or the human body without considering all the real life factors, e.g., human gender, shape of the human portions, size specific stiffness properties, in-vehicle operating conditions and damping factors. Approaches to provide a comprehensive solution to estimate the level of vibration without real life testing have not been carried out by the existing technologies very well. More than that the existing technologies investigate only particular modules of the entire human-car dynamic systems, e.g., a specific human part, seat and human interaction, vibration transmission from seat to human body or the vibration measurement technique. So, there is enormous scope of further improvement and the aim of this research work is to provide a unique simulated system considering all the critical real life factors. Outcome of this simulation study will evaluate the vibration levels inside the segments of seated human body inside a car and car seat omitting the necessity of real-life practical testing and provide the solution by linking module-wise investigations of human body and car seat. Initiative has been taken to fill up the gaps in the existing technologies and offer a novel study on the comprehensive simulation model of the combined human body and car seat bio-dynamic system to optimize the health, safety and comfort levels of the car seated human body. Present research work covered the tasks of establishing the simulations for non-linear bio-dynamic model of the seated human body, feasibility and behaviour inspection of polyurethane foam cushions, contact mechanism assignment between the human body and the car seat and establishing the simulation of car seated human occupant under the real life environment. Vertical displacements, vertical accelerations and frequencies at designated points of human body and car seat have been extracted from the simulation outcome and the obtained results have been validated though real-life vibration testing data. This unique simulation methodology can successfully be implemented to predict the final vibration levels inside the car seat and the car seated human body to optimize the health, safety and comfort of the human-car seat system. The outlined novel technique contributed knowledge to the entire human body and car seat dynamic system rather than focusing only on a very specific portion of the system. An industrial guideline has been presented to implement this unique simulation methodology in similar sectors, which will lead various industries to avoid time consuming and expensive bio-dynamic vibration testing methods and help to understand the impact of vibration on the in-vehicle human body in a better way

    An Effective pTp_T Cutoff for the Isolalated Lepton Background from Bottom Decay --

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    There is a strong correlation between the pTp_T and isolation of the lepton coming from BB decay. Consequently the isolated lepton background from BB decay goes down rapidly with increasing lepton pTp_T; and there is a pTp_T cutoff beyond which it effectively vanishes. For the isolation cut of ETAC<10E^{AC}_T < 10 GeV, appropriate for LHC, the lepton pTp_T cutoff is 80 GeV. This can be exploited to effectively eliminate the BB background from the like sign dilepton channel apropriate for Majorana particle searches, as well as the unlike sign dilepton and the single lepton channels appropriate for the top quark search. We illustrate this with a detailed analysis of the BB background in these channels along with the signals at LHC energy using both parton level MC and ISAJET programs.Comment: TIFR/TH/93-23 (LATEX, 20 pages, 7 figures available on request

    Compact System for Measuring Vibration at Different locations of Car Seat and Human Driver in Dynamic Condition

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    Vibration occurrence during the transportation is one of the key factors to characterize the driver’s and passenger’s comfort level. Piezoelectric accelerometers are most commonly used for measuring the vibration, though not suitable for low frequency ranges. For precise measurement of low level frequency, sensors capable of measuring accelerations to be utilized. Micro-electro-mechanical-system (MEMS) or Integrated Electronics Piezo-Electric (IEPE) are known as most appropriate sensors to be used to measure vibration to the sub-Hertz region. An in-vehicle compact vibration measurement system had been designed using NI 9234 Module and single axis IEPE transducer. Dytran 3055 was connected to data acquisition software in a laptop through USB cable. The signalfrom Digital Read Out (DRO) system were gathered in .SOT format and was processed through the “m+p Analyzer” software tool developed by m+p international. Vertical vibration data in terms of acceleration at various locations of car seat and human driver had been collected from the test run and presented in this paper
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