Problem Solution

Problem 6.19

Given

Load P_D = 400 lb
P_L = 1600 lb

Load combination D+L (ASD)
1.2D+1.6L_r (LRFD)

Span L₁ = 8 ft
L₂ = 4 ft

Member size 4x12

Stress grade and species Sel. Str. SP

Unbraced length l_u = 0

Moisture content MC > 19%

Live load deflection limit Allow. Δ_{free end} ≤ L₂/180 = 0.2667 in.
Allow. Δ_{between supports} ≤ L₁/360 = 0.2667 in.

Dry-service conditions

Normal temperatures

Bending about strong axis

Size Category (NDS Supplement tables 1A and 1B)

dimension lumber
dressed size: 3.5" x 11.25"
A = 39.38 in.²
S_xx = 73.83 in.³
I_xx = 415.3 in.⁴

Reference Design Values (NDS Supplement table 4B)

F_b = 2,850 psi
F_v = 175 psi
E = 1,800,000 psi

Adjusted ASD Values: F'_b, F'_v , E'

NDS Supplement table 4B

C_F = 1.1 for F_b, 1 for others
C_r = 1
C_fu = 1
C_M = 0.85 for F_b, 1 for F_t, 0.97 for F_v, 0.67 for F_c⊥, 0.8 for F_c, 0.9 for E and E_min

NDS Supplement section 2.3

C_D = 1 (L)
C_t = 1

NDS Supplement section 3.3

C_L = 1 (l_u = 0)

NDS Supplement section 3.7

C_P = 1 (not a column)

NDS Supplement section 3.10

C_b = 1 (not enough info given)

NDS Supplement section 4.3

C_i = 1

NDS Supplement section 4.4

C_T = 1 (not a truss)

Property Reference Design
Values (psi)
(Table 4B) Adjustment Factors (Table 4.3.1) Adjusted Design
Values (psi)

C_D C_M C_t C_L C_F C_fu C_r C_P C_i C_T C_b

bending stress F_b 1,900 1 0.85 1 1 1.1 1 1 1 1,777

tension stress parallel to grain F_t 1,600 1 1 1 1 1 --

shear stress parallel to grain F_v 175 1 0.97 1 1 170

compression stress perpendicular to grain F_c_⊥ 565 0.67 1 1 1 --

compression stress parallel to grain F_c 2,100 1 0.8 1 1 1 1 --

modulus of elasticity (or MOE) E 1,800,000 0.9 1 1 1,620,000

modulus of elasticity for stability calculations E_min 660,000 0.9 1 1 1 --

Actual Stresses (ASD) and Deflection

See formula 8 for the deflection of the simply-supported portion of the beam and formulas 7 and 20 for the cantilever portion.

f_b = M/S = (96,000 in-lb) / 73.83 in.³ = 1300 psi

f_v = 1.5V/A = 1.5 (2000 lb) / 39.38 in.² = 76.18 psi

Δ_{main span} = 0.08442 in.

Δ_{free end} = 0.3290 in.

Is Member Adequate? (ASD)

bending: 1,777 psi > 1,300 psi  ✓

shear: 170 psi > 76.18 psi  ✓

deflection in main span: 0.2667 in. > 0.08442 in.  ✓

deflection at free end: 0.2667 in. > 0.3290 in.  ✘

Nominal LRFD Values

F_bn, F_vn, E

Adjusted LRFD Values

F'_bn, F'_vn, E'

Adjusted LRFD Moment and Shear Resistances

M'_n, V'_n

Factored Moment and Shear (LRFD) and Actual Deflection

M_u, V_n, Δ

Is Member Adequate? (LRFD)

Load	P_D = 400 lb P_L = 1600 lb
Load combination	D+L (ASD) 1.2D+1.6L_r (LRFD)
Span	L₁ = 8 ft L₂ = 4 ft
Member size	4x12
Stress grade and species	Sel. Str. SP
Unbraced length	l_u = 0
Moisture content	MC > 19%
Live load deflection limit	Allow. Δ_{free end} ≤ L₂/180 = 0.2667 in. Allow. Δ_{between supports} ≤ L₁/360 = 0.2667 in.
Dry-service conditions
Normal temperatures
Bending about strong axis

Property		Reference Design Values (psi) (Table 4B)	Adjustment Factors (Table 4.3.1)											Adjusted Design Values (psi)
Property		Reference Design Values (psi) (Table 4B)	C_D	C_M	C_t	C_L	C_F	C_fu	C_r	C_P	C_i	C_T	C_b	Adjusted Design Values (psi)
bending stress	F_b	1,900	1	0.85	1	1	1.1	1	1		1			1,777
tension stress parallel to grain	F_t	1,600	1	1	1		1				1			--
shear stress parallel to grain	F_v	175	1	0.97	1						1			170
compression stress perpendicular to grain	F_c_⊥	565		0.67	1						1		1	--
compression stress parallel to grain	F_c	2,100	1	0.8	1		1			1	1			--
modulus of elasticity (or MOE)	E	1,800,000		0.9	1						1			1,620,000
modulus of elasticity for stability calculations	E_min	660,000		0.9	1						1	1		--