B 4/2 L By MCX) = -0.5Px1 El d' = dx² -0.5PX+G ΣM=OP - By L + 1.5 PL=0 = By 1.SPK K Σ= 0 A = 1.5 P -0.5PX3 2 E₁₁ = -0- SPX³ +4x+cz Ay L + PL = 0 2 Ay= -0.5 P A₁ = 0·5P+ Boundary Conditions @x=0 v=0 0 = -0.5P (0) + ((0) + Cz. C₂ =0 О @x₁ = L √=0 6=-0.5√(2)³ + GL 0.5P22 6 Elv₁ = -0.5Px,³ 2 + 1. PL² 6 -X, Elastic equatio M₂ (x) = - Px₂ Elds = -P² + Cs 2 0= - P(42)³ 6 + C½) + Ca EIV₂ = - Px Cate + Ca C₂L + C₁ = PL 6 48 @X=L, X₂ = 4/2 -0.5PX 0.522 2 + ما 0.5PL : dvi dv₂ 1 dx, dx = X2+ C3 2 -OSPL², OSR² = - P² + C3 052-PL + 2 ما C3= - PL² 24 8 A X1 L- B 22 Р x2

I asked this question from my book before "Determine the equations of the elastic curve for the beam using the X₁ and X₂ coordinates. Specify the beam's maximum deflection. EI is constant. Use the double integration method."

But I don't understand why X₂ is L insteand of L/2.

Transcribed Image Text:

B 4/2 L By MCX) = -0.5Px1 El d' = dx² -0.5PX+G ΣM=OP - By L + 1.5 PL=0 = By 1.SPK K Σ= 0 A = 1.5 P -0.5PX3 2 E₁₁ = -0- SPX³ +4x+cz Ay L + PL = 0 2 Ay= -0.5 P A₁ = 0·5P+ Boundary Conditions @x=0 v=0 0 = -0.5P (0) + ((0) + Cz. C₂ =0 О @x₁ = L √=0 6=-0.5√(2)³ + GL 0.5P22 6 Elv₁ = -0.5Px,³ 2 + 1. PL² 6 -X, Elastic equatio M₂ (x) = - Px₂ Elds = -P² + Cs 2 0= - P(42)³ 6 + C½) + Ca EIV₂ = - Px Cate + Ca C₂L + C₁ = PL 6 48 @X=L, X₂ = 4/2 -0.5PX 0.522 2 + ما 0.5PL : dvi dv₂ 1 dx, dx = X2+ C3 2 -OSPL², OSR² = - P² + C3 052-PL + 2 ما C3= - PL² 24 8

Transcribed Image Text:

A X1 L- B 22 Р x2