(1) For a tight bolted connection with transverse load, the bolt is carried by . zP{<0o
TQ 5MKqR$
A. shear stress B. tensile stress =7J|KoKK
@T,H.#bL
C. shear stress and tensile stress D. shear stress or tensile stress :~0^ib<v;
|`94W j<
(2) For a tight bolted connection with axial tensile load F and preload , the resultant tensile force in the bolt is . (4{@oM#H6
>jrz;r
A. B. C. D. x^='pEt{
q~g&hR}K
(3) If the performance grade of a bolt is 6.8, then the yield limit stress of the bolt material is MPa. <R`,zE@t'(
|S>J<]H
p
A. 600 B. 800 C. 680 D. 480 =-Q
H s4zJk
(4) The lubricating method of a journal bearing is dependent on . Z:B Y*#B
D
$CY:@
A. average intensity of pressure p B. circle velocity of journal v C. pv D. j]F#p R}p
;FgEE%
(5) For a hydrodynamic radial journal bearing, the valid method for increasing is to . |q!2i
A^r
[_dyZ
A. increase relative clearance B. increase oil supply &h4Z|h[01
eFXi
)tl
C. decrease D. replace lubricating oil with lower viscosity 1:;&wf
vu.S>2Wv
(6) For a hydrodynamic radial journal bearing, the relative clearance is the ratio of . X $9D0;L
YZ%f7BUk
A. diametral clearance and journal diameter B. radial clearance and journal diameter _"w!KNX>(~
sei!9+bZr
C. minimal clearance and diametral clearance <T.3ZZ%
B=Jd%Av
D. minimal clearance and journal diameter Jn:GA@[I
>A'!T'"~
(7) The axial preloading for rolling bearings is for _______. f
N*4(yw
aXK%m
A. increasing loading capacity B. decreasing noise E?q'|f
-ZoOX"N}
C. improving running precision D. avoiding shaft displacement IO)Ft
(zLIv9$
(8) The inner ring and outer ring of the bearing are separable. z#E,96R
R?9Plzt5
A. deep-groove ball B. self-aligning ball C. tapered roller D. self-aligning roller \=G
Xe.}4d
wsGq>F~
(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 _______. D>x'3WYR
?>\]%$5o
A. B. C. D. uncertain vLT12v:)`
\utH*;J|x
(10) For a cylindrical helical compressive spring, the maximal shear stress on spring wire happens at the ______. nu9k{owB T
xo 'w+Av
A. inner side of spring coil B. outer side of spring coil <sFf'W
_3{
m}'@S+k^
C. center of spring wire D. arbitrary position on spring wire S+xGHi)
<@j
(11) For a cylindrical helical compressive spring with working coils being 12, if the number of working coils is decreased by 3, then spring stiffness is _____. rHdP4: n
S"A_TH
A. decreased to 3/4 of the original value B. decreased to 9/16 of the original value d\Z4?@T<5
IguG03:.N
C. not changed D. increased to 4/3 of the original value }N9a!,{P=b
ziGL4c0p
(12) For a static balanced rigid rotor, its mass center is located at the rotating axis. i
&Cqw~.H
hgr ,v"
A. certainly B. not always C. certainly not <0qY 8
(V?`W7
(13) Shown in the figure is a cylindrical cam with uniform material, accurate manufacture and installation. When it rotates round the axis A-A, the cam is under the state of _________. 5.HztNL
(9_e>2_
A. static imbalance B. static balance C. complete imbalance D. dynamic balance ] "vdC}
A"ph!* i{
jtpN o~O
pR7G/]U$A
(14) The installation of flywheel in machinery is to . Z$K%@q,10+
!m5\w>
A. eliminate speed fluctuation B. realize steady running 9JeGjkG,
TEyPlSGG
C. decrease speed fluctuation D. balance the inertia forces }33Au-%*
U]&%EqLS
(15) In order to decrease the flywheel weight, the flywheel should be installed on the 。 BeCr){,3
Z{)|w=
A. equivalent link B. crankshaft with lower rotating speed .kDCcnm
o%Q'<0d
C. crankshaft with higher rotating speed D. spindle of machinery \aRB
~i {)J
udr'~,R
u-cC}DP
2. (7 points) In a tight bolted connection with axial tensile load, both the preload and the axial working load are constant. If the metal gasket between the connected components is replaced by a leather one, explain, with force-deformation diagram, the changes of the resultant tensile force in the bolt and residual compressive force on the connected components. yE/I)GOQjs
w8zQDPVB%
>CA1Ub&ls
49>yIuG
%tjEVQa
aMD?^
@g?z>n
n
0(.C f.B~
zy5bDL -
a#@opUn-
g:V6B/M&
P|4a}SWU
o{eG6
riQ?'!a7
WocFID:b
Z r*ytbt
@bE?WXY
!ym5'h
w-m2N-"='
(yVI<Os{a
6&cU*Io@
AUd}) UR
ul1Vsj
#YV;Gp(2h
6y5~Kh6
p
<NgT1"{
Si(?+bda0c
:>u{BG;=79
0Oq1ay^
Nsy.!,!c
3. (10 points) Shown in the figure are the four structure schemes of the moving pulley shaft system in a lifting device. In each structure scheme, the lifting load is constant; the shaft diameter, shaft material and method of heat treatment are the same, respectively. Ea1>]V
-u(#V#}OV?
(1) Determine the loads carried by the shaft and shaft types in each structure scheme. ?xega-l
-`JY] H
(2) Determine the stresses on the shaft and their changing characteristics in each structure scheme. j
jQ=
m;|I}{r
(3) Compare the strength difference of the four shafts. =>Efrma
"
7d_$.Z
!`o=2b=N
%vI
]"a@
(a) (b) (c) (d) %$Uw]a
F~6[DqF\|
78kk"9h'
U8z,N1]r*`
x1Uj4*Au
k 'o?/
BC3I{Y|
}j
QwP3eY
u<[Y6m
V_:/#G]jeG
RN;Tqq):
V*)gJg
!^%b|=[
5E]I
gBN;j
Lgy }Gm8u5
4. (8 points) Shown in the figure is a transmission layout for a belted conveyer. The arrangement for speed reduction is as follows: 1(motor)→2(chain drive)→3(gear reducer)→4(belt drive)→5(conveyer). Point out the unreasonable aspects of the arrangement and give a correct order represented with the drive number. t_3XqjuA
FRr<K^M
6w'^,V
I2b[
5. (15 points) Shown in the figure, a helical gear shaft is supported by a pair of angular contact ball bearings (7208AC) with ; the radial loads acting on the bearings are , ; the externally axial load on the shaft is ; the rotating speed of the shaft is . 4GJsVA (d|
h
c"n?
(1) Find the axial forces on the two bearings: , . #'8E%4
AO/R2a(:
(2) If , find the equivalent dynamic loads of the two bearings: , . 8ARpjYZP
Oo,<zS=ICk
(3) Find the bearing lives: , . N.uw2Y%
yZKj>P1
V`G]4}
/W%{b:
3.Y/ZWON
Al!P=h
2$|WXYY
<EJC.WWJa
cxVnlgq1
dx|j,1e
74>.E^/x
f>dWl$/_s
~R3@GaL1
hC,EO&
xGN&RjPk\
mI-$4st]
/K1YDq<=
Z{|wjZb(
f $R]m2
N,L$+wm
6. (15 points) In a gear train shown in the figure, , , , , , , , , , the rotating direction of the gear 1 is as shown in the figure. Find both the magnitude and the direction of . I;9>$?t[
qn:3s
SD |5v*
YjAwt;%-D
y]+q mNw"+
ar }F^8Ku
~0eJ6i
!c/G'se
Y<odXFIS
zyTeF~_
sk6C/
'0:
@uXF(KDX
7. (15 points) Shown in Fig. (a) is the dynamically equivalent model of a mechanical system. The equivalent resistant moment of force is a given function of the rotating angle shown in Fig. (b) with the period . The equivalent driving moment of force is constant. The equivalent moment of inertia of the system is (constant). The average rotating speed of the equivalent link is . Z$"E|nRN
F[5[@y
(1) Find the equivalent driving moment of force. k"7l\;N
VG'M=O{)3
(2) Find the coefficient of speed fluctuation , maximal rotating speed and minimal rotating speed of the equivalent link. K?`Fpg(
7,X5]U&A<x
(3) If the allowable coefficient of speed fluctuation is , find the minimum moment of inertia of the flywheel on the crankshaft A of the equivalent link. bLuAe
EA
L;6L@D6
"k
&QS@l
[M?'Nw/[S
zg>4/10P1q
H}vq2 |MN
()%NotN;
VEFUj&t;xW
Vh=10Et
{-a8^IK,
D[#6jJAb
JlaT
-j
xQ~}9Kt\
4@0y$Dv\
: ZehBu
9\f%+?p
t:$^iU
rx
% XvJJ
-0P(lkylf
u]`ur#_
a]NH >d
2d:IYCl4q
]&+,`1_q
;cpQ[+$nKp
1>)q5D
7^bde<0
^t0Yh%V7
SobOUly5{
9lU"m_
QT4
V =9
OUM^u*
N Ftmus
FV~ENpncP
Lkf}+aY
(Vz\02,K
!TwH;#U w
hAi`2GP.
{BI5lvx:
P70]Ju
q\uzmOh
)}3!iDA
9$Dsm@tX
8. (15 points) Point out all the mistakes in the shaft system shown in the figure and explain them with brief words.