(1) For a tight bolted connection with transverse load, the bolt is carried by . |sJ[0z
d\&U*=
A. shear stress B. tensile stress O40
?{v'
6y-@iJ*ld;
C. shear stress and tensile stress D. shear stress or tensile stress 7Kr*P<-G
IA fcT!{
(2) For a tight bolted connection with axial tensile load F and preload , the resultant tensile force in the bolt is . @N>\|!1CC
Q,,e+exbb5
A. B. C. D. J|
W<;
pxA?
(3) If the performance grade of a bolt is 6.8, then the yield limit stress of the bolt material is MPa.
9a[9i}_
]g#: KAqz
A. 600 B. 800 C. 680 D. 480 a(m2n.0'>
fF!Yp iI"
(4) The lubricating method of a journal bearing is dependent on . !4ocZmj\
Z\(q@3 C
A. average intensity of pressure p B. circle velocity of journal v C. pv D. =Pyj%4Rs
|QF7
uV
(5) For a hydrodynamic radial journal bearing, the valid method for increasing is to . S^JbyD_yoh
CQc+#nRe
A. increase relative clearance B. increase oil supply i7CX65&b
m;$b'pT
C. decrease D. replace lubricating oil with lower viscosity 77 Q5d"sIi
` _6C{<O
(6) For a hydrodynamic radial journal bearing, the relative clearance is the ratio of . 9sM!`Lz{
1>.Ev,X+e
A. diametral clearance and journal diameter B. radial clearance and journal diameter DcS+_>a\{l
xf'V{9*
C. minimal clearance and diametral clearance &.F4b~A7
1;* cq
D. minimal clearance and journal diameter oe ~'o'
i:dR\|B
(7) The axial preloading for rolling bearings is for _______. p0]=QH
QDZWX`qw{
A. increasing loading capacity B. decreasing noise 9v#CE!
xPdG*OcX!
C. improving running precision D. avoiding shaft displacement V~qNyOtA]
05|=`eJ
(8) The inner ring and outer ring of the bearing are separable. y1z4ik)Sd@
B 5L2<
A. deep-groove ball B. self-aligning ball C. tapered roller D. self-aligning roller eB2a-,
\-E^lIVF
(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 _______. PhLn8jNti
2y
75
A. B. C. D. uncertain XMZ,Y7
+tB=OwU%0
(10) For a cylindrical helical compressive spring, the maximal shear stress on spring wire happens at the ______. vo?9(+:|e
Z
<oaK
A. inner side of spring coil B. outer side of spring coil b\f
O8{k
eNh39er
C. center of spring wire D. arbitrary position on spring wire \eTwXe]Pv
"> ypIR<
(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 _____. 'JtBZFq
I]|Pq
A. decreased to 3/4 of the original value B. decreased to 9/16 of the original value 3l]lwV
SZ7:u895E
C. not changed D. increased to 4/3 of the original value m<G,[Yc
l03B=$
(12) For a static balanced rigid rotor, its mass center is located at the rotating axis. i%iL[id:w
xa'*P=<)C'
A. certainly B. not always C. certainly not .D~;u-%|F
2g
`o
(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 _________. Bg=wKwc8
UsG~row:!
A. static imbalance B. static balance C. complete imbalance D. dynamic balance cdH>n)
5PCqYN(:B
-]Bq|qTH[(
d7^}tM
(14) The installation of flywheel in machinery is to . (y'hyJo
b)#hSjWO#
A. eliminate speed fluctuation B. realize steady running NSMyliM1Y
]OhiYU4
C. decrease speed fluctuation D. balance the inertia forces .Z`R^2MU
O^PKn_OJ
(15) In order to decrease the flywheel weight, the flywheel should be installed on the 。
x^qVw5{n
hR
n <em
A. equivalent link B. crankshaft with lower rotating speed .~db4d]
'c&Ed
C. crankshaft with higher rotating speed D. spindle of machinery hW')Sp
UXz<)RvB
bRDYGuC
]]![EHi(\
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. ~D+bh~
Z#jZRNU%ox
PQt")[
)}R0Y=e
5pG}Yk_(x
+ 480 l}
M^Yh|%M
,,.QfUj/&
7"D",1h
+/7?HG
f
yzn%<H~
!n!*/
[}X
c):/!Q
VCfl`Aq'l
p>N(Typ0b
EWt[z.`T1
**0~K" ;\
]cvwIc">
>uB?rGcM
uZYF(Yu
B@))8.h]
dQX6(Jj
jd"@t*ZV
O\tb R=
qkqIV^*R
\l0[rcEf
{fM'6;ak
W
i.&e
>6-`}G+|
}v{LRRi
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. E&w
7GZNt
a-tmq]]E
(1) Determine the loads carried by the shaft and shaft types in each structure scheme. QIEJ6`
Yh7t"=o
(2) Determine the stresses on the shaft and their changing characteristics in each structure scheme. C): 1?@
H8jpxzXv
(3) Compare the strength difference of the four shafts. 4J?0bZ
372rbY
|e&\<LwsP
pki%vRY
(a) (b) (c) (d) kZ:ZtE
2,F.$X
Ax@$+/Z!
J;e2&gB
} OR+Io
q2j{tP#
Or+U@vAnk
+sA2WK]
xo&_bMO
V!=,0zy~Z
A)!*]o>U
c?-H>u
p
l0\2e)
?l )[7LR4
reWot&;
n\DV3rXI9
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. 4$<JHo
@.
[q-h|m
"8MF_Gu):
KpGhQdR#
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 . tWRC$
4HlQ&2O%#
(1) Find the axial forces on the two bearings: , . pnOAs&QAm
o*
H<K
aX
(2) If , find the equivalent dynamic loads of the two bearings: , . zF<R'XP
Z9|P'R(l
(3) Find the bearing lives: , . bn5 Su=]
ICQKP1WFp
C'x&Py/#
T~e.PP
L8B!u9%
1+s;FJ2}
k,*XG$2h
Zy/_
E@C}u
0=YI@@n)
hVY$;s
<P_-s*b
}K(TjZR
o]V^};B
75lA%|
*X
%N._w!N<5n
L4W5EO$
tw@X>
G1
z
SXh-A1t
:ws<-Qy
h?U
O&(
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 .
YmG("z
{qVZ
NXDn
Ewz!O`
d'> x(Yi
Hl=xW/%6y
i|kRK7[6B
bN.Pex
Y]a@j!
Fr-SvsNFB
3so%gvY.'
* 4
n)
zQ PQ
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 . kx^/*~ex
46;uW{EY
(1) Find the equivalent driving moment of force.
!
VpoZ
;.C\Ss<>*
(2) Find the coefficient of speed fluctuation , maximal rotating speed and minimal rotating speed of the equivalent link. zuCSj~
,zc(t<|-y
(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. :T~ [
h+
,@G,|D
\)e'`29;
wIgS3K
Ys7]B9/1O
;{6~Bq9
PvL[e"p
JXxwr)i
fQFk+C
'%;m?t%q
PY'2h4IL
p7~!z.)o
ry]l.@o;
{`_i`
\. S/|
{RPI]DcO/
SrJE_~i
-g<oS9
=pr7G+_u
A}w/OA97RO
O0:q;<>z
iRBfx
kf9X$d6
ig"L\ C"T
bd`P0f?
MfkZ
&j6erwaT
{[F A#
h`KU\X )A
U!]dEW|G
q\)-BXw:
/Kbl%u
,,TnIouy
31)&vf[[
d5d@k
TZ`SZDc7_
q(}bfIf
.^.z2
e
>3bCTE
E"0>yl)
adw2x pj
%)wjR/o
8. (15 points) Point out all the mistakes in the shaft system shown in the figure and explain them with brief words.