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(2) For a tight bolted connection with axial tensile load F and preload , the resultant tensile force in the bolt is . 5q<kt{06\
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(3) If the performance grade of a bolt is 6.8, then the yield limit stress of the bolt material is MPa. myo/}58Nv
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(4) The lubricating method of a journal bearing is dependent on . * n[6H
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(5) For a hydrodynamic radial journal bearing, the valid method for increasing is to . ugCc&~`
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(6) For a hydrodynamic radial journal bearing, the relative clearance is the ratio of . !=-l760
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(7) The axial preloading for rolling bearings is for _______. b w cPY
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(8) The inner ring and outer ring of the bearing are separable. 8>w/Es5
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(9) In an important application, if the reliability of rolling bearings is increased to 95%, then the relation between the dynamic load rating relative to 95% reliability to the basic dynamic load rating C is _______. W}EO]A%f.\
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(10) For a cylindrical helical compressive spring, the maximal shear stress on spring wire happens at the ______. JiRW|+`pe
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(11) For a cylindrical helical compressive spring with working coils being 12, if the number of working coils is decreased by 3, then spring stiffness is _____. s'i1!GNF
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(12) For a static balanced rigid rotor, its mass center is located at the rotating axis. |3vQmd !2}
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(13) Shown in the figure is a cylindrical cam with uniform material, accurate manufacture and installation. When it rotates round the axis A-A, the cam is under the state of _________. \Q]2Zq
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(14) The installation of flywheel in machinery is to . 9fyk7~V
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2. (7 points) In a tight bolted connection with axial tensile load, both the preload and the axial working load are constant. If the metal gasket between the connected components is replaced by a leather one, explain, with force-deformation diagram, the changes of the resultant tensile force in the bolt and residual compressive force on the connected components. JPS L-j
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3. (10 points) Shown in the figure are the four structure schemes of the moving pulley shaft system in a lifting device. In each structure scheme, the lifting load is constant; the shaft diameter, shaft material and method of heat treatment are the same, respectively. $gJMF(
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(1) Determine the loads carried by the shaft and shaft types in each structure scheme. x|F6^d
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(2) Determine the stresses on the shaft and their changing characteristics in each structure scheme. QEQ8gfN9>
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(3) Compare the strength difference of the four shafts. nDMNaMYb
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