Module 9
Module 9
Most machine design books generally use the term Case 1) Shaft acts as a cantilever with load P at free end
*
T T
Case 2) Shaft is simply supported with load P at midspan
*
D d D
L/2 P
y 𝐶𝐶𝑠𝑠𝑠𝑠 = 48
Solid shaft T Hollow shaft T
L
Maximum torsional stress
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Machine Design 1: BASAEN, RV
Note:
Transverse Deflection - If the shaft material is ductile, use the first
Transmission shaft: equation. A ductile material for a shaft is more
𝑦𝑦𝑎𝑎𝑎𝑎𝑎𝑎𝑎𝑎𝑎𝑎 = 0.01 inch per foot of length common than a brittle material.
between supports - If uncertainty arises as to the shaft material, use
Machinery shaft: the more conservative result of first and second
𝑦𝑦𝑎𝑎𝑎𝑎𝑎𝑎𝑎𝑎𝑎𝑎 = 0.002 inch per foot of length equations (e.g. for the shaft diameter, 𝐷𝐷, use the
between supports greater diameter from the equations).
- If the axial load is tensile 𝛼𝛼 = 1.0.
♦ COMBINED STRESSES - If loading conditions are not specified, the factors
𝐾𝐾𝑠𝑠 & 𝐾𝐾𝑚𝑚 become insignificant.
M T M 𝐾𝐾𝑠𝑠 = 𝐾𝐾𝑚𝑚 = 1.0
- If some loads are considerably low, they may
F F become negligible, thus, the first and second
D d equations may be simplified.
- From the possible loads on the shaft, bending
moment M is oftentimes the most difficult load to
compute.
T
From the Maximum Shear Stress equation
𝟏𝟏𝟏𝟏 𝟏𝟏 ♦ Transmission shafts from the PSME Code,
𝑺𝑺𝒔𝒔 𝒎𝒎𝒎𝒎𝒎𝒎 = � �
𝝅𝝅𝑫𝑫 𝟏𝟏 − 𝑩𝑩𝟒𝟒
𝟑𝟑
Machinery’s handbook, Kent’s M.E. handbook,
𝜶𝜶𝜶𝜶𝜶𝜶(𝟏𝟏 + 𝑩𝑩𝟐𝟐 )
𝟐𝟐
etc.
��(𝑲𝑲𝒔𝒔 𝑻𝑻)𝟐𝟐 + �𝑲𝑲𝒎𝒎 𝑴𝑴 + � � ⇒ 𝑺𝑺𝒔𝒔𝒔𝒔
𝟖𝟖
Note:
Main Power Transmitting Shafts
For combined torsion and bending on a solid shaft,
𝑫𝑫𝟑𝟑 𝑵𝑵
above formulas can be reduced to 𝑷𝑷 =
𝟖𝟖𝟖𝟖
16 Line Shafts Carrying Pulleys
𝑆𝑆𝑠𝑠 𝑚𝑚𝑚𝑚𝑚𝑚 = �(𝐾𝐾𝑠𝑠 𝑇𝑇)2 + (𝐾𝐾𝑚𝑚 𝑀𝑀)2 ⇒ 𝑆𝑆𝑠𝑠𝑠𝑠 𝑫𝑫𝟑𝟑 𝑵𝑵
𝜋𝜋𝐷𝐷3 𝑷𝑷 =
𝟓𝟓𝟓𝟓. 𝟓𝟓
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Machine Design 1: BASAEN, RV
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Machine Design 1: BASAEN, RV
Example 2: Solution:
A shaft is made of steel whose Sy = 300 MPa and Su a) Maximum Power
= 400 MPa, it is to transmit 300 kW at 600 rpm. (a)
Calculate the diameter of the shaft if the load is gradually
applied. Consider the effect of keyway on the shaft. (b) The
same as a), except that the load is suddenly applied.
Solution:
T Keyway
Solid shaft T
𝑎𝑎 𝑏𝑏 Driving Pulley
𝑇𝑇 𝑇𝑇
𝜃𝜃 Dp
Example 3: 𝑇𝑇
Shaft 𝛾𝛾 𝛾𝛾
a) What maximum horsepower can a 3-inch 𝐹𝐹1 𝐹𝐹2
diameter short shaft transmit at 600 rpm? 𝐹𝐹𝐵𝐵 𝐹𝐹𝐵𝐵
b) What diameter in mm is required by a main power
transmitting shaft to transmit 500 kW at 200 rpm?
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Machine Design 1: BASAEN, RV
[Σ𝑀𝑀+ = 0]:
𝟐𝟐𝟐𝟐
𝑭𝑭𝑩𝑩 = 𝑭𝑭𝒄𝒄𝒄𝒄 =
𝑫𝑫𝒔𝒔
where
T = torque transmitted by the shaft
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Machine Design 1: BASAEN, RV
𝐷𝐷𝑔𝑔 = 150
200 mm 𝐷𝐷
𝐹𝐹2
𝑇𝑇 𝛾𝛾 𝑭𝑭𝑩𝑩 = 𝑭𝑭𝑹𝑹
𝑇𝑇𝐷𝐷 = 𝑇𝑇𝐴𝐴 = 𝑇𝑇 = 1 591 500
Power = 20 kW
n = 600 rpm
𝑓𝑓 = 0.3
𝛾𝛾
𝐹𝐹1
Solution:
a) Bending load from belt and pulley, 𝐹𝐹𝐵𝐵 =?
Example 5:
A 150mm diameter spur pinion transmits 20 kW at 600
rpm. Considering a pressure angle of 20o and the distance
between bearing supports as shown, recommend the
standard shaft diameter necessary if Ssd = 60 MPa.
𝐓𝐓
𝐷𝐷𝑔𝑔 = 150mm
𝐓𝐓
100mm 150mm
Solution:
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Machine Design 1: BASAEN, RV
Example 7:
A centrifugal pump is directly coupled to a motor. The
pumping rate is 3600 li/min, against a total head of 8 meters
of water. The pump efficiency is 65% at a shaft speed of
about 500 rpm. Determine the motor shaft diameter if the
shear design stress of the shaft is 60 MPa. Neglect the
bending load from the centrifugal force due to the coupling.
Water
Coupling 𝜂𝜂𝑝𝑝 = 65%
Example 6: Shaft
The shaft of a heavy tractor transmits 120 kW at 600
rpm. It acts as a cantilever supporting a load of 2800 N
located 60 cm from the supporting bearing. The allowable Motor Pump
stresses are 137 MPa for normal stress and 62 MPa for Water IN
shear. If axial load is negligible, find the shaft diameter. 𝑄𝑄 = 3600𝑚𝑚 3/𝑚𝑚𝑚𝑚𝑚𝑚
Solution:
Sketch of shaft loading from the description:
Solution:
F =2800 N
T
𝐴𝐴 300 𝐵𝐵
M
T
L=600mm
𝑹𝑹
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Machine Design 1: BASAEN, RV
Example 8:
A transmission shaft ‘𝑥𝑥’ carries a pulley and a pinion at
points A and D, respectively. The shaft is supported by
bearings at B and C. Dimensions given are in mm.
Recommend the diameter of this shaft ‘𝑥𝑥’. Use 𝑆𝑆𝑦𝑦 =
300 𝑀𝑀𝑀𝑀𝑀𝑀 & 𝑆𝑆𝑢𝑢 = 400 𝑀𝑀𝑀𝑀𝑀𝑀 and the given load factors
𝐾𝐾𝑠𝑠 = 1.2, 𝐾𝐾𝑚𝑚 = 1.5 and coefficient of belt friction 𝑓𝑓 =
0.3. Also consider the effect of keyway in the shaft:
shaft 'x'
𝐴𝐴 𝐷𝐷 150
400
𝐵𝐵 𝐶𝐶
15 kg pinion
wt = 147.2 N
motor
50 kW
600 rpm
200
spur gears
𝜙𝜙 = 20𝑜𝑜
90 𝑘𝑘𝑘𝑘 pulley
15 𝑘𝑘𝑘𝑘
i i
𝐶𝐶𝑑𝑑 800
motor 60𝑜𝑜
50 kW
600 rpm
𝑓𝑓 = 0.3
Solution:
Shaft ‘x’ is under combined torsion and bending.
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Machine Design 1: BASAEN, RV
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Machine Design 1: BASAEN, RV
Example 9:
A transmission shaft made of steel whose Sy = SHAFT SIZES AND MATERIALS:
300 MPa & Su = 400 MPa is subjected to a torque of • Transmission shafting comes in the following
500,000 N − mm & a bending moment of 400 N − m, sizes:
simultaneously. Determine the following: 15 3 7 11 15 3 7 15 7
,1 ,1 ,1 ,1 ,2 ,2 ,2 ,3
a. Equivalent twisting moment of the shaft. 16 16 16 16 16 16 16 16 16
Determine the diameter of the shaft using this
moment and the pure torsion formula. 15 7 15 7 15 1 1
3 ,4 ,4 ,5 ,5 ,6 , 7 ,7 ,8
b. Equivalent bending moment of the shaft. 16 16 16 16 16 2 2
Calculate the shaft diameter using this bending
moment & the pure bending formula. • Transmission shafting has the following typical
c. Is the shaft diameter in (a) satisfactory on the basis sizes:
of the angle of twist of a transmission shaft? 1
d. Determine the outside diameter of the hollow By 16 " increments in this range
1
shaft described above if d = 0.5D & the loads to 1 in. with tolerance of -0.002 in.
2
are to be suddenly applied with minor shock. 1
1 16 to 2 in. with tolerance of -0.003 in.
Consider the effect of keyways in the shaft.
1 1
e. If the above shaft has a negligible bending 2 16 to 2 2 in. with tolerance of -0.004 in.
moment and is described to be a line of shaft, what
1
solid shaft diameter in inches is necessary at By 8 " increments in this range
300 rpm? 5
2 8 to 4 in. with tolerance of -0.004 in.
1
T 4 4 to 6 in. with tolerance of -0.005 in.
M M 1
6 4 to 8 in. with tolerance of -0.006 in.
D • Material for shafting:
The most commonly used stock material for
T
shafting is carbon steel with 30 to 40 points of carbon.
However, all kinds of materials, including
Example 10: nonferrous metals and mon metallic materials are also
The shaft loaded as shown, used.