- Establish the allowable spacing of the bridging
To do this, compare the moments of inertia with respect to the principal axes. Thus, Iy -
2(1/12)(5.5)(4.875)
3- 2(0.5)(40)(2.875)
2
= 433 in
4
(18,022.8 cm
4
); then IxIIy.=
16,080/433 = 37.1.
For this ratio, the Wood Handbook specifies that "the beam should be restrained by
bridging or other bracing at intervals of not more than 8 ft (2.4 m)."
- 2(0.5)(40)(2.875)
DETERMINING THE CAPACITY OF
A SOLID COLUMN
An 8 x 10 in (203.2 x 254 mm) column has an unbraced length of 10 ft 6 in (3.20 m). the
allowable compressive stress is 1500 lb/in
2
(10,342.5 kPa), and E = 1,760,000 lb/in
2
(12,135.2 MPa). Calculate the allowable load on this column (a) by applying the recom-
mendations of the Wood Handbook; (b) by applying the provisions of the National De-
sign Specification.
Calculation Procedure:- Record the properties of the member; evaluate k; classify
the column
Let L = unbraced length of column, in (mm); d = smaller side of rectangular section, in
(mm);/, = allowable compressive stress parallel to the grain in short column of the same
species, lb/in
2
(kPa);/= allowable compressive stress parallel to grain in column under
investigation, lb/in
2
(kPa).
The Wood Handbook divides columns into three categories: short, intermediate, and
long. Let K denote a parameter defined by the equation K = Q.64(E/fc)°-
5
.
The range of the slenderness ratio and the allowable stress for each category of col-
umn are as follows: short column, LId ^ 11 and/=/; intermediate column, 11 < LId ^ K
and/=/[l -^1 A(LMK)^4 ]; long column, LId > K and/= 0.274E/(L/d)^2.
For this column, the area A - 71.3 in^2 (460.03 cm^2 ), using the dressed dimensions.
Then/,/</= 126/7.5 = 16.8. Also, K= 0.64(1,760,000/150O)^05 = 21.9. Therefore, this is an
intermediate column because LId lies between K and 11. - Compute the capacity of the member
Use the relation capacity, Ib(N) = P = Af= 71.3(150O)[I-^1 Xs(16.8/21.9)^4 ] = 94,600 Ib
(420,780.8 N). This constitutes the solution to part a, using data from the Wood Hand-
book. For part Z?, data from the National Design Specification are used. - Compute the capacity of the column
Determine the stress from/= 0.3QE/(L/d)^2 = 0.30(1,760,000)/16.8^2 = 1870 lb/in^2
(12,893.6 kPa). Setting/= 1500 lb/in^2 (10,342.5 kPa) gives P = Af= 71.3(1500) =
107,000 Ib (475,936 N). Note that the smaller stress value is used when the column ca-
pacity is computed.
DESIGN OFA SOLID WOODEN COLUMN
A 12-ft (3.7-m) long wooden column supports a load of 98 kips (435.9 kN). Design a sol-
id section in the manner recommended in the Wood Handbook, using/ = 1400 lb/in^2
(9653 kPa) and E= 1,760,000 lb/in^2 (12,135.2 MPa).