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Bài giảng Công nghệ ô tô: Chương 4.2

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4.2 QUY TRÌNH CÔNG NGHỆ SƠN ÔTÔ. 4.2.1 QUY TRÌNH XỬ LÝ BỀ MẶT TRƯỚC KHI SƠN. 4.2.2 CÔNG NGHỆ SƠN LÓT. 4.2.3 QUY TRÌNH CÔNG NGHỆ SƠN SAU SƠN LÓT. 4.2.6 THIẾT KẾ KỸ THUẬT DÂY TRUYỀN SƠN 4.2.4 QUY TRÌNH CÔNG NGHỆ SƠN XE BUÝT. 4.2 QUY TRÌNH CÔNG NGHỆ SƠN ÔTÔ DU LỊCH - PHẦN A. 4.2...

Century Manufacturing - Phần 1

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This textbook series is published at a very opportunity time when the discipline of industrial engineering is experiencing a phenomenal growth in China academia and with its increased interests in the utilization of the concepts, methods and tools of industrial engineering in the workplace. Effective utilization of these industrial engineering approaches in the workplace should result in increased productivity, quality...

Century Manufacturing - Phần 2

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2 Ftpre2.2 The market adoption curve, modified to include several products. cloned sheep would be way down in the bottom left corner.) Whether or not one of these technologies will climb the market adoption curve depends on the following:. The cost benefit to the consumer. The robustness and usefulness of the technology to the consumer. In the early stages of...

Advanced Vehicle Technology P2

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designed to be used with convergent `V' formation engine suspension system where the blocks are inclined on either side of the engine. on either side of the power unit's bell housing at principal axis level may be used. This `V' and wedge configuration pro- vides a combined shear and compressive strain to the rubber when there is a relative fore...

Automotive Science and Mathematics P1

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All rights reserved The right of Allan Bonnick to be identified as the author of this work has been asserted in accordance with the Copyright, Designs and Patents Act 1988 No part of this publication may be reproduced, stored in a retrieval system or transmitted in any form or by any means electronic, mechanical, photocopying, recording or otherwise without the...

Automotive Science and Mathematics P2

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2.2 Pie chart showing composition of the vehicle repair and servicing industry. Example 2.3 The pie chart. In the example of the composition of the garage industry in Britain the total number of garages is . The proportions that each sector represents as a fraction of the total are:. Independents Franchised Immediate Fit Each sector occupies an equivalent proportion of...

Vehicle Crash Dynamics P1

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This is the deceleration time history at a point in the vehicle during impact. The crash pulse at a point on the rocker panel at the B-pillar is presumed to identify the significant structural behavior and the gross motion of the vehicle in a frontal impact. The nature of the crash response depends on the mass, structural stiffness, damping at...

Vehicle Crash Dynamics P2

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0.9 shown in the plot). shown in the plot).. The difference of the first two terms is then the minimum safe distance needed for no collision. The third term is the extra distance needed due to the reaction time of the driver in the following vehicle to apply his brakes.. (This excludes the reaction times of the drivers shown in...

Vehicle Crash Dynamics P3

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CRASH PULSE CHARACTERIZATION 2.1 INTRODUCTION. To achieve this objective, it is frequently desirable to characterize vehicle crash pulses such that parametric optimization of the crash performance can be defined. In addition, the kinematic responses of the test such as transient acceleration, velocity, displacement in time domain, and energy absorption in the displacement domain are compared. Each one of the approximation...

Vehicle Crash Dynamics P4

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(2.34) The power rate densities based on the original FEW coefficients and the all-negative coefficients for the three full-size vehicle tests are shown in Figs. Note that in Fig.. 2.31, the must-activate tests, #2' and #3', are well separated from the #1 test after the introduction of the all-negative coefficients.. The application of the methodology to real time sensing application,...

Vehicle Crash Dynamics P5

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A crash pulse is the time history of the response of a vehicle system subjected to an impact or excitation. The dynamic characteristics of the system can be described by using a “hardware” or a. Then, under a different impact condition, the torso response in the non-impacting side can then be predicted by convoluting the FIR coefficients with the accelerometer...

Vehicle Crash Dynamics P6

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3.31 TT of the Body Mount in Truck F. 3.31 shows the accelerometer data of the frame and body at the B-Pillar of truck F (with type F body mount) with a duration of 20 ms in a 35 mph rigid barrier test. The duration of the frame impulse lasts about 10 ms and the peak magnitude is about -135...

Vehicle Crash Dynamics P7

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During the ridedown, the vehicle undergoes a deformation process which is the first collision of the event, followed by the second collision where the occupant travels and contacts the vehicle interior surface or restraint. Using a simple occupant vehicle model, the ridedown mechanism is described mathematically and the computation of the ridedown efficiency is shown in closed-form solutions. Consequently, the...

Vehicle Crash Dynamics P8

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Shown in Fig. 4.39, the impulses of the two vehicles between 0 to 20 ms are mainly due to the stiff front rail design and damping of the body mount. They are not considered the decelerations of the main body of the truck. It will be shown in Chapter 5 that the impulsive transient responses at the beginning of the...

Vehicle Crash Dynamics P9

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The purpose of the closed-form analysis is to investigate the dynamic responses of two dynamically equivalent hybrid models. The unloading of one mass in a model may produce loading of the neighboring masses, thereby, affecting the total system model responses.. The hybrid model has been used in an impact dynamics study of the body mount in a body-on- frame vehicle...

Vehicle Crash Dynamics P10

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(5.36) and shown in Fig. The slope of the curve at point F i is f '(F i. F i is the value of the independent variable at iteration i. The iteration process continues until F i and F i+1 converge to the solution of the function in which f(F i+1 ) approaches zero.. In the dynamic simulation during the...

Vehicle Crash Dynamics P11

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This is followed by the application of the CG (center of gravity) motion theorem in an analysis of multiple vehicle collisions and the circle of constant acceleration (COCA) for the g-loading of vehicles.. Before presenting applications of the principles of impulse and momentum, definitions of these important dynamic variables will be made:. its magnitude is the mass of the object...

Vehicle Crash Dynamics P12

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Substituting this in the above equation gives for the maximum deformation. The spring mass is uniformly distributed along the length of the spring and has a finite weight, W s = W b. First, it should be noted that the spring mass will contribute to the kinetic energy during deflection of the spring, since each differential element of mass along...

Vehicle Crash Dynamics P13

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In the development of a new vehicle platform, its crashworthiness is an important concern, and it is imperative to compare the impact severity of the vehicle and occupants under various test and design conditions. Recognizing the existence of the impact and/or excitation, the closed-form formulas derived in Section 4.11 of Chapter 4 can be utilized to solve problems. In the...

Vehicle Crash Dynamics P14

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This section presents a model with power curve force deflection, as shown in Fig. The crash severity of the Merkur will then be analyzed and compared with that of NCAP (New Car Assessment Program) at a 35 mph rigid barrier test condition.. Modeling of the two-vehicle impact was effected using a two-mass and two-EA (non-linear- spring Energy Absorber) model. In...