Shigley's Mechanical Engineering Design (McGraw-Hill Series in Mechanical Engineering)
Shigley's Mechanical Engineering Design (McGraw-Hill Series in Mechanical Engineering)
10th Edition
ISBN: 9780073398204
Author: Richard G Budynas, Keith J Nisbett
Publisher: McGraw-Hill Education
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Chapter 11, Problem 1P
Manufacturer Rating Life, Revolutions Weibull Parameters Rating Lives
x0 θ b
1 90(106) 0 4.48 1.5
2 1(106) 0.02 4.459 1.483

Tables 11-2 and 11-3 are based on manufacturer 2.

11-1 A certain application requires a ball bearing with the inner ring rotating, with a design life of 25 kh at a speed of 350 rev/min. The radial load is 2.5 kN and an application factor of 1.2 is appropriate. The reliability goal is 0.90. Find the multiple of rating life required. xD, and the catalog rating C10 with which to enter a bearing table. Choose a 02-series deep-groove ball bearing from Table 11-2, and estimate the reliability in use.

Expert Solution & Answer
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To determine

The multiple of rating life of the bearing.

The catalog rating of the bearing.

The reliability of the bearing.

Answer to Problem 1P

The multiple of rating life required is 525.

The catalog rating of the bearing is 25.5kN.

The reliability of the bearing is 0.92.

Explanation of Solution

Write the expression for multiple of rating life for bearing.

xD=LDLR (I)

Here, multiple of rating life for design is xD, desired life is LD, and rating life is LR.

Write the regression equation for bearing load life.

FBxB1a=FDxD1aFB=FD(xDxB)1a (II)

Here, the bearing load for design is FD, the basic bearing load is FD, bearing life in revolutions is L, arbitrary constant is a and multiple of rating life for basic is xB.

Write the equation for bearing life.

L=60ln (III)

Here, the rating life in hour is l and rating speed in revolutions per minute is n.

The following figure shows the relationship between bearing load and dimensionless life in terms of logarithmic values.

Shigley's Mechanical Engineering Design (McGraw-Hill Series in Mechanical Engineering), Chapter 11, Problem 1P , additional homework tip  1Shigley's Mechanical Engineering Design (McGraw-Hill Series in Mechanical Engineering), Chapter 11, Problem 1P , additional homework tip  2

Figure-(1)

Write the equation for reliability along a constant load line AB.

RD=exp[(xBx0θx0)b]xB=x0+(θx0)(ln1RD)1b (IV)

Here, the characteristic parameter is θ, and Weibull parameters are x0 and b.

Write the expression for catalog rating in terms of application factor.

C10=afFB (V)

Here, catalog rating is C10 and application factor is af.

Conclusion:

Substitute 25kh for l and 350rpm for n in Equation (III).

LD=(60min/h)(25kh)(350rev/min)=(60min/h)(25kh)(1000h1kh)(350rev/min)=(1500000min)(350rev/min)=525×106rev

Substitute 106rev for LR and 525×106rev for LD in Equation (I).

xD=525×106rev106revxD=525

Thus, the multiple of rating life of bearing is 525.

Substitute 0.90 for RD, 0.02 for x0, 4.459 for θ and 1.483 for b in Equation (IV).

xB=0.02+(4.4590.02)(ln(10.90))11.483=0.02+(4.457)(0.1053)0.674=0.02+(4.457)(0.2193)=0.997

For ball bearing, the value of constant a is 3.

Substitute 0.997 for xB, 525 for xD, 3 for a and 2.5kN for FD in Equation (II).FB=(2.5kN)(5250.997)13=(2.5kN)(1000N1kN)(526.57)0.33=(2500N)(7.908)=19770N

Substitute 1.2 for af and 19770N for FB in Equation (V).

C10=1.2×19770N=24226.4N=(23724N)(1kN1000N)=23.7kN

Refer table 11-2 "Dimensions and Load Rating of Ball Bearing”, to obtain the ball bearing at catalog rating of 25.5kN as 0235mm.

Thus, the catalog rating of the bearing is 25.5kN.

Substitute 25.5kN for C10, and 1.2 for af in Equation (V).

25.5kN=1.2×FBFB=25.5kN1.2FB=21.25kN

Substitute 21.25kN for FB, 525 for xD, 3 for a and 2.5kN for FD in Equation (II).

(21.25kN)×xB13=(2.5kN)(525)13xB13=(2.5kN21.25kN)(525)13xB13=0.1176×(525)13xB=0.948

Substitute 0.948 for xB, 0.02 for x0, 4.459 for θ and 1.483 for b in Equation (IV).

R=exp[(0.9480.024.4590.02)1.483]R=exp[(0.9284.439)1.483]R=exp[(0.2)1.483]R0.92

The reliability of the bearing is 0.92.

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Chapter 11 Solutions

Shigley's Mechanical Engineering Design (McGraw-Hill Series in Mechanical Engineering)

Ch. 11 - 11-8 to 11-13 For the bearing application...Ch. 11 - 11-8 to 11-13 For the bearing application...Ch. 11 - 11-8 to 11-13 For the bearing application...Ch. 11 - A countershaft carrying two V-belt pulleys is...Ch. 11 - A countershaft carrying two V-belt pulleys is...Ch. 11 - A countershaft carrying two V-belt pulleys is...Ch. 11 - A countershaft carrying two V-belt pulleys is...Ch. 11 - For the shaft application defined in Prob. 3-77,...Ch. 11 - For the shaft application defined in Prob. 3-79,...Ch. 11 - An 02-series single-row deep-groove ball bearing...Ch. 11 - An 02-series single-row deep-groove ball bearing...Ch. 11 - 11-22 to 11-26 An 02-series single-row deep-groove...Ch. 11 - 1122 to 1126 An 02-series single-row deep-groove...Ch. 11 - 1122 to 1126 An 02-series single-row deep-groove...Ch. 11 - 1122 to 1126 An 02-series single-row deep-groove...Ch. 11 - 1122 to 1126 An 02-series single-row deep-groove...Ch. 11 - The shaft shown in the figure is proposed as a...Ch. 11 - Repeat the requirements of Prob. 11-27 for the...Ch. 11 - The shaft shown in the figure is proposed as a...Ch. 11 - Repeat the requirements of Prob. 11-29 for the...Ch. 11 - Shown in the figure is a gear-driven squeeze roll...Ch. 11 - The figure shown is a geared countershaft with an...Ch. 11 - The figure is a schematic drawing of a...Ch. 11 - A gear-reduction unit uses the countershaft...Ch. 11 - The worm shaft shown in part a of the figure...Ch. 11 - In bearings tested at 2000 rev/min with a steady...Ch. 11 - A 16-tooth pinion drives the double-reduction...Ch. 11 - Estimate the remaining life in revolutions of an...Ch. 11 - The same 02-30 angular-contact ball bearing as in...Ch. 11 - A countershaft is supported by two tapered roller...Ch. 11 - For the shaft application defined in Prob. 3-74,...Ch. 11 - For the shaft application defined in Prob. 3-76,...Ch. 11 - Prob. 43PCh. 11 - The gear-reduction unit shown has a gear that is...
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