Question

asked Jul 11, 2021 116k views

1 Answer

Cwin · Answer 1 · 2021-07-17T12:24:46+0000

Answer:

nf=1.11 (Goodman criterion)

ny=2.41 (factor of safety for fatigue)

Step-by-step explanation:

From the table A-20 Deterministic ASTM minimum tensile and yield strengths for HR and CD steels, we have approximately:

Sut=120 kpsi

Sy=66 kpsi

Due Sut<1400 Mpa, the endurance limit is:

Se=0.5Sut=0.5*120=60 kpsi

The surface condition modification factor is:

ka=a(Sut)^(b)=2.7(120)^(-0.265) =0.759

The effective diameter is:

de=0.37d=0.37*2.09=0.7733 in

The size factor is:

kb=0.879de^(-0.107) =0.879(0.7733)^(-0.107) =0.9

The endurance limit at critical location is:

See=ka*kb*kc*kd*kd*ke*kf*Se=0.759*0.9*1*60=40.986 kpsi

$(D)/(d)=(2.32)/(2.09) =1.11\\(r)/(d)=(0.117)/(2.09) =0.056$

From Figure A-15-15 chart, the Kf = 2.1

The notch sensitivity is:

√(a)=0.246-3.08(10^(-3))Sut+1.51(10^(-5))Sut^(2)-2.67(10^(-8))Sut^(3)

√(a)=0.246-3.08(10^(-3))(120)+1.51(10^(-5))(120^(2))-2.67(10^(-8))(120^(3))=0.048

q=(1)/(1+(√(a) )/(√(r) ) )=(1)/(1+(0.048)/(√(0.117) ) )=0.877

The fatigue stress is:

Kf=1+q(Kt-1)=1+0.877(2.1-1)=1.96

The moment of inertia is:

$I=(\pi )/(64) d^(4)=(\pi )/(64) (2.09^(4))=0.936 in^(4)$

The maximum stress is:

omax=(M*c)/(I)=(25000*(2.09)/(2) )/(0.936) =27911.32 psi=27.911 kpsi

The mean stress is:

om=Kf(omax+omin)/(2) =1.96(27.911+0)/(2)=27.35 kpsi

The alternate stress is:

oa=Kf|(omax-omin)/(2)|=27.35 kpsi

The fatigue factor using Goodman is:

$(1)/(nf)=(oa)/(See)+(om)/(Sut)\\(1)/(nf)=(27.35)/(40.986)+(27.35)/(120)$

nf=1.11

the factor of safety is:

ny=(Sy)/(omax)=(66)/(27.35) =2.41

Please log in or register to add a comment.