Combustion Air Examples

Sample Units:

Furnace 80,000 BTU + Water Heater 40,000 BTU = 120,000 BTU Total

Minimum Indoor Air Communicating with the Appliances:

The minimum required volume shall be 50 cubic feet per 1,000 Btu/h of the appliance input rating. ( (Total BTU Input of all Appliances / 1,000) x 50 = Volume Required )

(120,000 BTU / 1,000) x 50 ft³ = 6,000 ft³

Combustion Air Supplied From Same Story:

The minimum free area of 1 square inch per 1,000 Btu/h of the total input rating of all appliances in the enclosure.
(Total BTU Input of all Appliances / 1,000 = Free Area of Each Opening Required )

(120,000 BTU / 1,000) x 1 in² = 120 in² minimum free area for each of the required (2) openings

Utilizing metal louvers requires (120 in²/.75 = 160 in²) to obtain 120 in² of free area.

Confirmation: 75% of 160 in² = .75 x 160 in² = 120 in²

One opening 160 in² within 12 inches of the top and one opening 160 in² within 12 inches of the bottom of the enclosure would meet the minimum requirements.

Note: the appliances must be communicating with a minimum of 6,000 ft³ of space as calculated above.

Combustion Air Supplied From Different Story:

The minimum free area of 2 square inches per 1,000 Btu/h of total input rating of all appliances in the enclosure.

( Total BTU Input of all Appliances / 1,000 x 2 = Total Free Area Required )

(120,000 BTU / 1,000) x 2 in² = 240 in² minimum free utilizing one or more openings

Utilizing metal louvers requires (240 in²/.75 = 320 in²) to obtain 240 in² of free area.

Confirmation: 75% of 320 in² = .75 x 320 in² = 240 in²

One or more openings in doors or floors 320 in² communicating with a different story would meet the minimum requirements.  

Minimum Outdoor Air Communicating with the Appliances:

Two-permanent-openings method:

Vertical Ducts:

The minimum free area of each opening shall have a minimum free area of 1 square inch per 4,000 Btu/h of total input rating of all appliances in the enclosure.
(Total BTU Input of all Appliances / 4,000 = Total Free Area Required )

(120,000 BTU / 4,000) x 1 in² = 30 in² minimum free area for each of the required (2) openings

Assume duct is communicating with the attic space and louvers are not utilized.

One opening 30 in² within 12 inches of the top and one opening 30 in² within 12 inches of the bottom of the enclosure would meet the minimum requirements.

Horizontal Ducts:

The minimum free area of each opening shall have a minimum free area of 1 square inch per 2,000 Btu/h of total input rating of all appliances in the enclosure.
( Total BTU Input of all Appliances / 2,000 = Total Free Area Required )

(120,000 BTU / 2,000) x 1 in² = 60 in² minimum free area for each of the required (2) openings

Utilizing metal louvers requires (60 in²/.75 = 80 in²) to obtain 60 in² of free area.

Confirmation: 75% of 80 in² = .75 x 80 in² = 60 in²

One opening 80 in² within 12 inches of the top and one opening 80 in² within 12 inches of the bottom of the enclosure would meet the minimum requirements.

One-permanent-opening method:

The minimum free area of 1 square inches per 3,000 Btu/h of total input rating of all appliances in the enclosure.

( Total BTU Input of all Appliances / 3,000 = Total Free Area Required ).

(120,000 BTU / 3,000) x 1 in² = 40 in² minimum free utilizing one or more openings

Utilizing metal louvers requires (40 in²/.75 = 53.3 in²) to obtain 53.3 in² of free area. Confirmation: 75% of 53.3 in² = .75 x 53.3 in² = 40 in²

One opening 53.3 in² within 12 inches of the top of the enclosure would meet the minimum requirements.

Combination Indoor & Outdoor Combustion Air:

For example we have 3,000 ft³ of indoor combustion air available from the same story

As calculated above we will need one opening 160 in² within 12 inches of the top and one opening 160 in² within 12 inches of the bottom of the enclosure to meet part of the combustion air requirements.

Without the indoor air, utilizing only the one-permanent-opening method as shown above we would need one opening 53.3 in², however, we can reduce this because we are utilizing some indoor air for combustion.

The reduction factor equals the calculated total free area based on the outdoor combustion air section x (1 - available volume/required volume).

53.3 in² x (1 - (3,000ft³/6,000ft³)) = 26.65in²

Therefore, we need the two 160in² openings communicating with the indoor air and one opening 26.65 in² within 12 inches of the top of the enclosure in order to meet the minimum requirements.