Staitics: Lecture3c

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Today: Trusses continued - Method of sections - Rigid trusses - Frames Book: Chapter 6.4 & 6.6

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Transcript of Staitics: Lecture3c

Page 1: Staitics: Lecture3c

Today:

Trusses continued

- Method of sections

- Rigid trusses

- Frames

Book: Chapter 6.4 & 6.6

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Two Methods to Analyze Trusses

1) Method of joints

2) Method of sections

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Method of joints

Determine the force in the members by

calculating the equilibrium of the joints

1. Draw Free Body Diagram

2. Determine the reaction forces at the supports of the whole structure

3. Calculate the forces in a joint with max. 2 unknowns

4. Proceed to the next joint with max. 2 unknowns until all joints are analyzed

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Method of sections

Determine the force in a members by dividing

the structure in two sections by cutting the members and

calculating the equilibrium of one of the sections.

1) Determine the section by cutting just three members (in general)

2) Use the moment equilibrium equation in a clever way.

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Determine the force in member DE.

Source: R.C. Hibbeler,

"Engineering Mechanics – Statics"

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1) Determine the force in

member DE.

2) Determine the force in

member DL.

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A

B

C

D

E G

Calculate the forces in members

CE, DE, DF

H

F

K

L

M

N

R

Q

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A

B

C

D

E G

Calculate the forces in member

HG

H

F

K

L

M

N

R

Q

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Rigid truss Flexible truss (mechanism)

3 members, 3 joints 4 members, 4 joints

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3 members, 3 joints 5 members, 4 joints 7 members, 5 joints

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Rigid truss consisting of triangular elements

Where

s = number of members

k = number of joints

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Non-rigid truss

Rigid truss

This is a necessary condition, but not sufficient!!

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Rigid or non-rigid?

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Rigid or non-rigid?

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Rigid or non-rigid?

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Rigid or non-rigid?

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Rigid or non-rigid?

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Constraints

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Constraints

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Constraint truss structure

Where

n = difference between number of unknowns and equations

r = number of constraints

s = number of members

k = number of joints

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Constraint truss structure

n < 0 kinematically indeterminate (mechanism)

n >= 0 kinematically determinate (necessary, not sufficient)

n = 0 statically determinate

n > 0 statically indeterminate

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Statically determinate?

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Frames

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Calculate the reaction forces

in hinge A when the normal

reaction force on the nose

wheel is 24 kN.

Source: R.C. Hibbeler,

"Engineering Mechanics – Statics"

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O A

B

C

D

Source: R.C. Hibbeler,

"Engineering Mechanics – Statics"

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Law of sines and cosines

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Frame

A frame is a structure where at least one of its

individual members is a multi-force member.

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Calculate the angle of the

ramp in B for which the

reaction force in A is

completely horizontal. A

B

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Determine the orientation of

the reaction force in A

graphically .

A

B

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Compound-lever snips are

designed to replace regular

tinners’ snips when large

cutting forces are required.

For the gripping force of

150 N, what is the cutting

force P at a distance of 30

mm along the blade from

the pin at A

Source: R.C. Hibbeler,

"Engineering Mechanics – Statics"

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A

B C D

E

F G

Calculate the force in

member FG