Chapter V

Sanitary Drainage & Indirect/Special Waste

Content area 5 of the Vermont master plumber exam.

Sanitary Drainage Systems

Reference text for the sanitary drainage area. Every rule below is written from the printed line of

the 2024 International Plumbing Code (IPC 2024) that carries it, and each rule names the section it

comes from. Where the printed line does not state a value, no value is stated here.

1. General

The chapter governs the materials, design, construction and installation of sanitary drainage systems

(IPC 2024, 701.1). Sanitary drainage piping from plumbing fixtures in buildings, and sanitary drainage

piping systems from premises, must be connected to a public sewer; where a public sewer is not

available they must be connected to a private sewage disposal system in compliance with state or local

requirements, and, where such requirements do not exist, to an approved private sewage disposal system

in accordance with the International Private Sewage Disposal Code (IPC 2024, 701.2). The exception

covers piping and systems that convey only the discharge from bathtubs, showers, lavatories, clothes

washers and laundry trays, provided they are connected to a system in accordance with Chapter 13 or 14

(IPC 2024, 701.2, Exception).

A building having plumbing fixtures installed and intended for human habitation, occupancy or use on

premises abutting on a street, alley or easement in which there is a public sewer must have a separate

connection with the sewer; where located on the same lot, multiple buildings may connect to a common

building sewer that connects to the public sewer (IPC 2024, 701.3). Sewage or other waste deleterious

to surface or subsurface waters must not be discharged into the ground or into any waterway unless

first rendered innocuous through an approved form of treatment (IPC 2024, 701.4), and waste

detrimental to the public sewer system or to the functioning of the sewage-treatment plant must be

treated and disposed of in accordance with Section 1003 as directed by the code official (IPC 2024,

701.5). The sanitary drainage system is tested in accordance with Section 312 (IPC 2024, 701.6), and

engineered sanitary drainage systems must conform to Sections 316 and 713 (IPC 2024, 701.7).

2. Materials and joints

Sections 702.1 (above-ground sanitary drainage and vent pipe), 702.2 (underground building sanitary

drainage and vent pipe), 702.3 (building sewer pipe) and 702.4 (fittings) publish the materials and

the standards for those applications. Where the wastewater temperature will be greater than 140°F

(60°C), the sanitary drainage piping material must be rated for the highest temperature of the

wastewater (IPC 2024, 702.5). Section 702.6 governs chemical waste systems and Section 702.7 lead

bends and traps.

Section 705 contains the provisions applicable to joints specific to sanitary drainage piping

(IPC 2024, 705.1): 705.2 ABS plastic, 705.3 cast iron, 705.4 concrete joints, 705.5 copper pipe,

705.6 copper tubing, 705.7 borosilicate glass joints, 705.8 steel, 705.9 lead, 705.10 PVC plastic,

705.11 vitrified clay, 705.12 polyethylene plastic pipe, 705.13 polyolefin plastic, 705.14

polyvinylidene fluoride plastic, 705.15 polypropylene plastic, 705.16 joints between different

materials, 705.17 drainage slip joints, 705.18 caulking ferrules, 705.19 soldering bushings and

705.20 stainless steel drainage systems. Prohibited joints and connections in

drainage piping are: cement or concrete joints; mastic or hot-pour bituminous joints; joints made

with fittings not approved for the specific installation; joints between different diameter pipes made

with elastomeric rolling O-rings; solvent-cement joints between different types of plastic pipe except

where provided for in Section 705.16.4; and saddle-type fittings (IPC 2024, 707.1).

3. Building sewer

The proximity of a sewer to a water service must comply with Section 603.2 (IPC 2024, 703.1). Where a

building sewer or building drain is installed on filled or unstable ground, the drainage pipe must

conform to one of the standards for ABS plastic pipe, cast-iron pipe, copper or copper-alloy tubing,

PVC plastic pipe or polypropylene plastic pipe indicated in Table 702.3 (IPC 2024, 703.2). Where

separate systems of sanitary drainage and storm drainage are installed in the same property, the

sanitary and storm building sewers or drains may be laid side by side in one trench (IPC 2024, 703.3).

Where the entire sanitary drainage system of an existing building is replaced, existing building

drains under concrete slabs and existing building sewers that will serve the new system must be

internally examined to verify that the piping is sloping in the correct direction, is not broken, is

not obstructed and is sized for the drainage load of the new plumbing drainage system to be installed

(IPC 2024, 703.4). Cleanouts on building sewers are located as indicated in Section 708 (IPC 2024,

703.5), and where the public sewer is a combined system for both sanitary and storm water the sanitary

sewer must be connected independently to the public sewer (IPC 2024, 703.6).

4. Drainage piping installation

4.1 Slope

Horizontal drainage piping must be installed in uniform alignment at uniform slopes. The slope must be

not less than Table 704.1 shows, except that where the drainage piping is upstream of a grease

interceptor the slope must be not less than 1/4 inch per foot (2 percent slope) (IPC 2024, 704.1).

Size (inches)Minimum slope (inch per foot)
2 1/2 or less1/4
3 to 61/8
8 or larger1/16

For SI: 1 inch = 25.4 mm, 1 inch per foot = 83.33 mm/m. Slopes for piping draining to a grease

interceptor comply with Section 704.1 (IPC 2024, Table 704.1, footnote a).

4.2 Size reduction, offsets and future fixtures

The size of the drainage piping must not be reduced in the direction of flow. The following are not

considered a reduction in size in the direction of flow: a 4-inch by 3-inch (102 mm by 76 mm) water

closet flange; a water closet bend fitting having a 4-inch (102 mm) inlet and a 3-inch (76 mm) outlet,

provided the 4-inch leg of the fitting is upright and below, but not necessarily directly connected

to, the water closet flange; and an offset closet flange (IPC 2024, 704.2).

Horizontal branches must connect to the bases of stacks at a point located not less than 10 times the

diameter of the drainage stack downstream from the stack, and must connect to horizontal stack offsets

at a point located not less than 10 times the diameter of the drainage stack downstream from the

upper stack (IPC 2024, 704.3). Drainage piping for future fixtures must terminate with an approved cap

or plug (IPC 2024, 704.4).

5. Connections and fittings

Connections and changes in direction of the sanitary drainage system must be made with approved

drainage fittings; connections between drainage piping and fixtures conform to Section 405 (IPC 2024,

706.1). Fittings must not have ledges, shoulders or reductions capable of retarding or obstructing

flow in the piping, and threaded drainage pipe fittings must be of the recessed drainage type; the

section does not apply to tubular waste fittings used to convey vertical flow upstream of the trap

seal liquid level of a fixture trap (IPC 2024, 706.2).

Fittings must be installed to guide sewage and waste in the direction of flow, and changes in

direction must be made by fittings installed in accordance with Table 706.3. Change in direction by

combination fittings, side inlets or increasers must be installed in accordance with Table 706.3 based

on the pattern of flow created by the fitting. Double sanitary tee patterns must not receive the

discharge of back-to-back water closets and fixtures or appliances with pumping action discharge;

back-to-back water closet connections to double sanitary tees are permitted where the horizontal

developed length between the outlet of the water closet and the connection to the double sanitary tee

pattern is 18 inches (457 mm) or greater (IPC 2024, 706.3 and Exception).

Table 706.3 — fittings for change in direction ("X" = permitted):

Type of fitting patternHorizontal to verticalVertical to horizontalHorizontal to horizontal
Sixteenth bendXXX
Eighth bendXXX
Sixth bendXXX
Quarter bendXXᵃXᵃ
Short sweepXXᵃ,ᵇXᵃ
Long sweepXXX
Sanitary teeXᶜ——
WyeXXX
Combination wye and eighth bendXXX

Fitting limitations, as the printed table carries them on the marked cells (IPC 2024,

Table 706.3, footnotes a, b and c): the fittings marked a are only permitted for a 2-inch or smaller

fixture drain; the cell marked b carries "three inches or larger"; and the double sanitary tee

limitation is Section 706.3.

Heel-inlet quarter bends are an acceptable means of connection except where the quarter bend serves a

water closet; a low-heel inlet must not be used as a wet-vented connection; side-inlet quarter bends

are an acceptable means of connection for drainage, wet venting and stack venting arrangements

(IPC 2024, 706.4).

6. Cleanouts

Cleanouts must be provided for drainage piping in accordance with Sections 708.1.1 through 708.1.12

(IPC 2024, 708.1). The principal requirements:

Horizontal drainage pipes in buildings must have cleanouts located at intervals of not more than

100 feet (30 480 mm), and building drains must have cleanouts at intervals of not more than 100 feet

(30 480 mm) except where manholes are used instead of cleanouts, in which case the manholes must be

located at intervals of not more than 400 feet (122 m); the interval is measured from the cleanout

or manhole opening, along the developed length of the piping, to the next drainage fitting providing

access for cleaning, the end of the horizontal drain or the end of the building drain (IPC 2024,

708.1.1).

Building sewers smaller than 8 inches (203 mm) must have cleanouts at intervals of not more than

100 feet (30 480 mm); building sewers 8 inches (203 mm) and larger must have a manhole located not

more than 200 feet (60 960 mm) from the junction of the building drain and building sewer and at

intervals of not more than 400 feet (122 m) (IPC 2024, 708.1.2).

The junction of the building drain and the building sewer must be served by a cleanout located at

the junction or within 10 feet (3048 mm) of the developed length of piping upstream of the

junction; removal of the water closet must not be required to provide cleanout access (IPC 2024,

708.1.3).

Where a horizontal drainage pipe, a building drain or a building sewer has a change of horizontal

direction greater than 45 degrees, a cleanout must be installed at the change of direction; where

more than one such change occurs within 40 feet (12 192 mm) of developed length, the cleanout

installed for the first change serves all changes in direction within that 40 feet (IPC 2024,

708.1.4).

Cleanouts must be the same size as the piping served, except that cleanouts for piping larger than

4 inches (102 mm) need not be larger than 4 inches (102 mm); a removable P-trap with slip or ground

joint connections can serve as a cleanout for drain piping one size larger than the P-trap size;

cleanouts located on stacks can be one size smaller than the stack size; and the size of cleanouts

for cast-iron piping can be in accordance with the referenced standards for cast-iron fittings in

Table 702.4 (IPC 2024, 708.1.5 and Exceptions).

A fixture trap, or a fixture with integral trap, removable without altering concealed piping, is

acceptable as a cleanout equivalent (IPC 2024, 708.1.6). Cleanout plugs must be of copper-alloy,

plastic or other approved materials (borosilicate glass for borosilicate glass piping systems),

copper-alloy plugs conforming to ASTM A74 and limited to metallic piping systems, plastic plugs

conforming to the referenced standards for plastic pipe fittings in Table 702.4, with a raised

square head, a countersunk square head or a countersunk slot head, and manufactured with a blind

end threaded hole where a trim cover screw will be installed (IPC 2024, 708.1.7).

Manholes and manhole covers must be of an approved type, and manholes located inside a building

must have gas-tight covers that require tools for removal (IPC 2024, 708.1.8). The installation

arrangement of a cleanout must enable cleaning of drainage piping only in the direction of drainage

flow, except for test tees serving as cleanouts and a two-way cleanout installation approved for

meeting Section 708.1.3 (IPC 2024, 708.1.9).

Required clearance: cleanouts for 6-inch (153 mm) and smaller piping must have a clearance of not

less than 18 inches (457 mm) from, and perpendicular to, the face of the opening to any

obstruction; cleanouts for 8-inch (203 mm) and larger piping must have a clearance of not less than

36 inches (914 mm) (IPC 2024, 708.1.10).

Required cleanouts must not be installed in concealed locations; concealed locations include the

inside of plenums, within walls, within floor/ceiling assemblies, below grade and in crawl spaces

where the height from the crawl space floor to the nearest obstruction along the path from the

crawl space opening to the cleanout is less than 24 inches (610 mm). Cleanouts with openings at a

finished wall must have the face of the opening within 1 1/2 inches (38 mm) of the finished wall

surface; cleanouts located below grade must be extended to grade level so that the top of the

cleanout plug is at or above grade; and a cleanout installed in a floor or walkway without a trim

cover must have a countersunk plug installed so the top surface of the plug is flush with the

finished surface of the floor or walkway (IPC 2024, 708.1.11).

Trim covers and access doors for cleanout plugs must be designed for such purposes and approved;

trim cover fasteners that thread into cleanout plugs must be corrosion resistant, and cleanout plugs

must not be covered with mortar, plaster or any other permanent material (IPC 2024, 708.1.11.1).

Cleanout assemblies in accordance with ASME A112.36.2M must be installed where it is necessary to

protect a cleanout plug from the loads of vehicular traffic (IPC 2024, 708.1.11.2).

The use of a threaded cleanout opening to add a fixture or to extend piping is prohibited except

where another cleanout of equal size is installed with the required access and clearance (IPC 2024,

708.1.12).

7. Fixture units

Drainage fixture unit values in Table 709.1 designate the relative load weight of different kinds of

fixtures, to be used in estimating the total load carried by a soil or waste pipe and in connection

with Tables 710.1(1) and 710.1(2) (IPC 2024, 709.1).

Fixture typeDrainage fixture unit valueMinimum size of trap (inches)
Automatic clothes washers, commercial32
Automatic clothes washers, residential22
Bathroom group as defined in Section 202 (1.6 gpf water closet)5—
Bathroom group as defined in Section 202 (water closet flushing greater than 1.6 gpf)6—
Bathtub (with or without overhead shower or whirlpool attachments)21 1/2
Bidet11 1/4
Combination sink and tray21 1/2
Dental lavatory11 1/4
Dental unit or cuspidor11 1/4
Dishwashing machine, domestic21 1/2
Drinking fountain1/21 1/4
Emergency floor drain02
Floor drains22
Floor sinksNote h2
Kitchen sink, domestic21 1/2
Kitchen sink, domestic with food waste disposer, dishwasher or both21 1/2
Laundry tray (1 or 2 compartments)21 1/2
Lavatory11 1/4
Service sink21 1/2
Sink21 1/2
Urinal4Note d
Urinal, 1 gallon per flush or less2Note d
Urinal, nonwater supplied1/2Note d
Wash sink (circular or multiple), each set of faucets21 1/2
Water closet, flushometer tank, public or private4Note d
Water closet, private (1.6 gpf)3Note d
Water closet, private (flushing greater than 1.6 gpf)4Note d
Water closet, public (1.6 gpf)4Note d
Water closet, public (flushing greater than 1.6 gpf)6Note d

Table notes that carry rules: a showerhead over a bathtub or whirlpool bathtub attachment does not

increase the drainage fixture unit value (footnote b); trap size must be consistent with the fixture

outlet size (footnote d); and for traps larger than 3 inches, Table 709.2 is used (footnote a).

Showers are rated on the total flow rate through showerheads and body sprays: 5.7 gpm or less = 2 dfu

with a 1 1/2-inch trap; greater than 5.7 gpm to 12.3 gpm = 3 dfu with a 2-inch trap; greater than

12.3 gpm to 25.8 gpm = 5 dfu with a 3-inch trap; greater than 25.8 gpm to 55.6 gpm = 6 dfu with a

4-inch trap (IPC 2024, Table 709.1).

Where discharges to a waste receptor or to a drainage system are known only in gallons per minute, the

drainage fixture unit values for those flows are computed on the basis that 1 gpm (0.06 L/s) of flow

is equivalent to two drainage fixture units (IPC 2024, 709.3). The drainage fixture unit load of an

indirect waste receptor receiving the discharge of indirectly connected fixtures is the sum of the

drainage fixture unit values of the fixtures that discharge to the receptor, but not less than the

value given for the indirect waste receptor in Table 709.1 or 709.2 (IPC 2024, 709.4). Waste receptors

such as floor drains, floor sinks and hub drains that receive only clear-water waste from display

cases, refrigerated display cases, ice bins, coolers and freezers have a drainage fixture unit value

of one-half (IPC 2024, 709.4.1).

8. Drainage system sizing

The maximum number of drainage fixture units connected to a given size of building sewer, building

drain or horizontal branch of the building drain is determined using Table 710.1(1), and the maximum

number connected to a given size of horizontal branch or vertical soil or waste stack is determined

using Table 710.1(2) (IPC 2024, 710.1).

Table 710.1(1) — building drains and sewers:

Diameter of pipe (inches)1/16 inch slope1/8 inch slope1/4 inch slope1/2 inch slope
1 1/4——11
1 1/2——33
2——2126
2 1/2——2431
3—364250
4—180216250
5—390480575
6—7008401,000
81,4001,6001,9202,300
102,5002,9003,5004,200
123,9004,6005,6006,700
157,0008,30010,00012,000

The minimum size of any building drain serving a water closet is 3 inches (IPC 2024,

Table 710.1(1), footnote a).

9. Offsets in drainage piping in buildings of five stories or more

If a horizontal branch connects to the stack within 2 feet (610 mm) above or below a vertical stack

offset, and the offset is located more than four branch intervals below the top of the stack, the

offset must be vented in accordance with Section 907; those vents are not required where the stack and

its offset are sized as a building drain (IPC 2024, 711.1 and 711.1.1).

A stack with a horizontal offset located more than four branch intervals below the top of the stack

must be vented in accordance with Section 907 and sized as follows: the portion of the stack above

the offset is sized as for a vertical stack based on the total number of drainage fixture units above

the offset; the offset is sized in accordance with Section 710.1.1; and the portion of the stack below

the offset is sized as for the offset or based on the total number of drainage fixture units on the

entire stack, whichever is larger (IPC 2024, 711.2). Those vents are not required where the stack and

its offset are one pipe size larger than required for a building drain and the entire stack and offset

are not less in cross-sectional area than that required for a straight stack plus the area of an

offset vent as provided in Section 907 (IPC 2024, 711.2.1).

Where a vertical offset occurs in a soil or waste stack below the lowest horizontal branch, a change

in diameter of the stack because of the offset is not required; if a horizontal offset occurs below

the lowest horizontal branch, the required diameter of the offset and of the stack below it must be

determined as for a building drain in accordance with Table 710.1(1) (IPC 2024, 711.3).

10. Sumps and ejectors

Building subdrains that cannot be discharged to the sewer by gravity flow must be discharged into a

tightly covered and vented sump from which the liquid is lifted and discharged into the building

gravity drainage system by automatic pumping equipment or other approved method; in other than

existing structures, the sump must not receive drainage from any piping within the building capable of

being discharged by gravity to the building sewer (IPC 2024, 712.1). A check valve and a full-open

valve located on the discharge side of the check valve must be installed in the pump or ejector

discharge piping between the pump or ejector and the gravity drainage system, with access to such

valves; they must be located above the sump cover required by Section 712.1 or, where the discharge

pipe from the ejector is below grade, accessibly outside the sump below grade in an access pit with a

removable access cover (IPC 2024, 712.2).

The sump pit must be not less than 18 inches (457 mm) in diameter and not less than 24 inches (610 mm)

in depth unless otherwise approved, provided with access, located so that all drainage flows into the

pit by gravity, constructed of tile, concrete, steel, plastic or other approved materials, with a

solid bottom providing permanent support for the pump, and fitted with a gastight removable cover

installed not more than 2 inches (51 mm) below grade or floor level, adequate to support anticipated

loads; the sump pit is vented in accordance with Chapter 9 (IPC 2024, 712.3.2). The effluent level

control must be adjusted and maintained to at all times prevent the effluent in the sump from rising

to within 2 inches (51 mm) of the invert of the gravity drain inlet into the sump (IPC 2024, 712.3.4).

Discharge pipe and fittings must be constructed of copper or copper-alloy, CPVC, ductile iron, PE or

PVC, rated for the maximum system operating pressure and temperature, compatible with the pipe

material, and suitable for burial where buried in the earth (IPC 2024, 712.3.3.1 and 712.3.3.2).

Pumps connected to the drainage system must connect to a building sewer, building drain, soil stack,

waste stack or horizontal branch drain; where the discharge line connects into horizontal drainage

piping, the connection must be made through a wye fitting into the top of the drainage piping, and

that wye fitting must be located not less than 10 pipe diameters from the base of any soil stack,

waste stack or fixture drain (IPC 2024, 712.3.5).

A sewage pump or sewage ejector must automatically discharge the contents of the sump to the building

drainage system (IPC 2024, 712.4). Macerating toilet systems must comply with ASME A112.3.4/CSA B45.9

and be installed in accordance with the manufacturer's instructions (IPC 2024, 712.4.1). A sewage pump

or ejector must have the capacity and head for the application requirements: pumps or ejectors that

receive the discharge of water closets must be capable of handling spherical solids with a diameter of

up to and including 2 inches (51 mm), and other pumps or ejectors must be capable of handling

spherical solids up to and including 1/2 inch (13 mm). Capacity based on the diameter of the discharge

pipe must be not less than Table 712.4.2 shows; grinder pumps or grinder ejectors that receive the

discharge of water closets must have a discharge opening of not less than 1 1/4 inches (32 mm), and

macerating toilet assemblies that serve single water closets must have a discharge opening of not less

than 3/4 inch (19.1 mm) (IPC 2024, 712.4.2 and Exceptions).

Diameter of the discharge pipe (inches)Capacity of pump or ejector (gpm)
221
2 1/230
346

11. Computerized drainage design, backwater valves and rehabilitation

The sizing, design and layout of the drainage system may be designed by approved computer design

methods; the load is computed from the simultaneous or sequential discharge conditions from fixtures,

appurtenances and appliances or the peak usage design condition; discharge profiles for flow rates

versus time follow the manufacturer's specifications; pipe must be sized to prevent full-bore flow;

pipe size calculations use the pipe wall roughness factor (ks) per the manufacturer's specifications

as modified for aging roughness factors with deposits and corrosion; and horizontal drainage piping

must be designed and installed at slopes in accordance with Table 704.1 (IPC 2024, 713.1, 713.2,

713.2.1, 713.3, 713.3.1 and 713.3.2).

Where plumbing fixtures are installed on a floor with a finished floor elevation below the elevation

of the manhole cover of the next upstream manhole in the public sewer, such fixtures must be protected

by a backwater valve installed in the building drain or horizontal branch serving such fixtures;

fixtures installed on a floor with a finished floor elevation above the elevation of that manhole

cover must not discharge through a backwater valve, except that in existing buildings fixtures above

that elevation are not prohibited from discharging through a backwater valve (IPC 2024, 714.1 and

Exception). Backwater valves must comply with ASME A112.14.1, CSA B181.1 or CSA B181.2 (IPC 2024,

714.2), and must be installed so that access is provided to the working parts (IPC 2024, 714.3).

Sections 715 through 718 govern vacuum drainage systems, replacement of underground building sewers

and building drains by pipe-bursting methods, relining of building sewers and building drains, and

rehabilitation of building sewers and building drains; vacuum drainage systems must be designed per

the manufacturer's instructions and the plans, specifications and other data submitted to the code

official for review and approval prior to installation (IPC 2024, 715.1, 715.2, 716.1, 717.1 and

718.1).

12. Testing the sanitary drainage system

Section 312 governs the tests (IPC 2024, 701.6):

Drainage and vent water test: the water test is applied to the whole system or in sections, all

openings in the piping tightly closed except the highest opening, the system filled with water to

the point of overflow; if tested in sections, each opening tightly plugged except the highest

openings of the section under test and each section filled with water, but no section tested with

less than a 10-foot (3048 mm) head of water; in testing successive sections, not less than the upper

10 feet of the next preceding section must be tested, so that no joint or pipe in the building,

except the uppermost 10 feet of the system, is submitted to a test of less than a 10-foot head of

water. The pressure must be held for not less than 15 minutes, and the system must then be tight at

all points (IPC 2024, 312.2).

Drainage and vent air test: plastic piping must not be tested using air; an air test is made by

forcing air into the system until there is a uniform gauge pressure of 5 psi (34.5 kPa) or enough

to balance a 10-inch (254 mm) column of mercury, held for not less than 15 minutes, with adjustments

for ambient temperature or gasket seating made before the test period begins (IPC 2024, 312.3).

Drainage and vent vacuum test: the portion under test is evacuated of air by a vacuum-type pump to a

uniform gauge pressure of negative 5 pounds per square inch or a negative 10 inches of mercury

column, held without removal of additional air for 15 minutes (IPC 2024, 312.4).

Drainage and vent final test: the final test of the completed drainage and vent systems is visual

and in sufficient detail to determine compliance; where a smoke test is used it is made by filling

all traps with water and introducing into the entire system a pungent, thick smoke produced by one

or more smoke machines; when the smoke appears at stack openings on the roof, the stack openings

must be closed and a pressure equivalent to a 1-inch water column (248.8 Pa) held for a test period

of not less than 15 minutes (IPC 2024, 312.5).

Indirect and Special Waste

Reference text for the indirect and special waste area. Every rule below is written from the printed

line of the 2024 International Plumbing Code (IPC 2024) that carries it, and each rule names the

section it comes from. Where the printed line does not state a value, no value is stated here.

1. Why indirect waste exists

There are drainage applications in buildings where a backup of liquid waste in a drainage system could

contaminate equipment and appliances. Chapter 8 covers the applications that require an indirect

discharge connection to the building's drainage system, and it carries the provisions for the types of

indirect connections and waste receptor configurations (IPC 2024, Chapter 8, About this chapter).

The chapter governs indirect waste piping and special wastes, and further controls food-handling

establishments, sterilizers, humidifiers, clear-water waste, swimming pools, methods of providing air

breaks or air gaps, and neutralizing devices for corrosive wastes (IPC 2024, 801.1). Devices,

appurtenances, appliances and apparatus intended to serve some special function — such as

sterilization, humidification, distillation, processing, cooling, or storage of ice or foods — and

that discharge to the drainage system, must be provided with protection against backflow, flooding,

fouling, contamination and stoppage of the drain (IPC 2024, 801.2).

2. Where an indirect waste connection is required

Food-handling equipment (in other than dwelling units), clear-water waste, humidifiers, dishwashing

machines and utensils, pots, pans and dishwashing sinks must discharge through an indirect waste pipe

as specified in Sections 802.1.1 through 802.1.7. Fixtures not required to be indirectly connected by

that section, and the exception to Section 301.6, must be directly connected to the plumbing system in

accordance with Chapter 7 (IPC 2024, 802.1). (Section 301.6 prohibits plumbing systems in an elevator

shaft or elevator equipment room, with an exception permitting floor drains, sumps and sump pumps at

the base of the shaft where they are indirectly connected to the plumbing system and comply with

Section 1003.4 — IPC 2024, 301.6 and Exception.)

The specific applications:

Food handling. Equipment and fixtures used for the storage, preparation and handling of food must

discharge through an indirect waste pipe by means of an air gap, and each well of a

multiple-compartment sink must discharge independently to a waste receptor (IPC 2024, 802.1.1).

Floor drains in food storage areas. Floor drains located within walk-in refrigerators or freezers in

food service and food establishments must be indirectly connected to the sanitary drainage system by

means of an air gap. Where a floor drain is located within an area subject to freezing, the waste

line serving the floor drain must not be trapped and must indirectly discharge into a waste receptor

located outside of the area subject to freezing. Exception: where protected against backflow by a

backwater valve, such floor drains must be indirectly connected to the sanitary drainage system by

means of an air break or an air gap (IPC 2024, 802.1.2).

Potable clear-water waste. Where devices and equipment such as sterilizers and relief valves

discharge potable water to the building drainage system, the discharge must be through an indirect

waste pipe by means of an air gap (IPC 2024, 802.1.3).

Swimming pools. Where wastewater from swimming pools, backwash from filters and water from pool

deck drains discharge to the building drainage system, the discharge must be through an indirect

waste pipe by means of an air gap (IPC 2024, 802.1.4).

Nonpotable clear-water waste. Where devices and equipment such as process tanks, filters, drips and

boilers discharge nonpotable water to the building drainage system, the discharge must be through an

indirect waste pipe by means of an air break or an air gap (IPC 2024, 802.1.5).

Commercial dishwashing machines. The discharge from a commercial dishwashing machine must be through

an air gap or air break into a waste receptor in accordance with Section 802.3 (IPC 2024, 802.1.6).

Food utensils, dishes, pots and pans sinks. Sinks, in other than dwelling units, used for the

washing, rinsing or sanitizing of utensils, dishes, pots, pans or service ware used in the

preparation, serving or eating of food, must discharge indirectly through an air gap or an air break

to the drainage system (IPC 2024, 802.1.7).

3. Air gap against air break

The distinction the chapter draws is which method is required, not which is convenient:

ApplicationMethod required
Food handling equipment and fixturesAir gap (IPC 2024, 802.1.1)
Floor drains in walk-in refrigerators or freezersAir gap; air break or air gap where protected by a backwater valve (IPC 2024, 802.1.2)
Potable clear-water waste (sterilizers, relief valves)Air gap (IPC 2024, 802.1.3)
Swimming pools, filter backwash, pool deck drainsAir gap (IPC 2024, 802.1.4)
Nonpotable clear-water waste (process tanks, filters, drips, boilers)Air break or air gap (IPC 2024, 802.1.5)
Commercial dishwashing machinesAir gap or air break (IPC 2024, 802.1.6)
Sinks for washing, rinsing or sanitizing utensils (other than dwelling units)Air gap or air break (IPC 2024, 802.1.7)

The two connections are defined by measurement: the air gap between the indirect waste pipe and the

flood level rim of the waste receptor must be not less than twice the effective opening of the

indirect waste pipe (IPC 2024, 802.3.1), while an air break must be provided between the indirect

waste pipe and the trap seal of the waste receptor (IPC 2024, 802.3.2).

4. Materials and installation of indirect waste piping

Materials, joints, connections and methods used for the construction and installation of indirect

waste piping systems must comply with the applicable provisions of Chapter 7 (IPC 2024, 802.2).

Indirect waste piping must discharge through an air gap or air break into a waste receptor; waste

receptors must be trapped and vented and must connect to the building drainage system (IPC 2024,

802.3). Indirect waste piping that exceeds 30 inches (762 mm) in developed length measured

horizontally, or 54 inches (1372 mm) in total developed length, must be trapped. The exception: where

a waste receptor receives only clear-water waste and does not directly connect to a sanitary drainage

system, the receptor does not require a trap (IPC 2024, 802.3 and Exception).

5. Waste receptors

For other than hub drains that receive only clear-water waste and standpipes, a removable strainer or

basket must cover the outlet of waste receptors. Waste receptors must not be installed in concealed

spaces, and must not be installed in plenums, crawl spaces, attics, interstitial spaces above ceilings

and below floors. Ready access must be provided to waste receptors (IPC 2024, 802.4).

Sizing: a waste receptor must be sized for the maximum discharge of all indirect waste pipes served by

the receptor, and receptors must be installed to prevent splashing or flooding (IPC 2024, 802.4.1).

For the drainage load, the drainage fixture unit load of an indirect waste receptor receiving the

discharge of indirectly connected fixtures is the sum of the drainage fixture unit values of the

fixtures that discharge to the receptor, but not less than the drainage fixture unit value given for

the indirect waste receptor in Table 709.1 or 709.2 (IPC 2024, 709.4); and waste receptors such as

floor drains, floor sinks and hub drains that receive only clear-water waste from display cases,

refrigerated display cases, ice bins, coolers and freezers have a drainage fixture unit value of

one-half (IPC 2024, 709.4.1).

Hub drains. A hub drain must be in the form of a hub or a pipe extending not less than 1 inch

(25 mm) above a water-impervious floor (IPC 2024, 802.4.2).

Standpipes. Standpipes must be individually trapped, must extend not less than 18 inches (457 mm)

but not greater than 42 inches (1067 mm) above the trap weir, and access must be provided to

standpipes and drains for rodding (IPC 2024, 802.4.3).

Laundry tray connected to a standpipe. As an alternative for a laundry tray fixture connecting

directly to a drainage system, a laundry tray waste line without a fixture trap may connect to a

standpipe for an automatic clothes washer drain. The standpipe must extend not less than 30 inches

(762 mm) above the weir of the standpipe trap and must extend above the flood level rim of the

laundry tray; the outlet of the laundry tray must not be greater than 30 inches (762 mm) horizontal

distance from the side of the standpipe (IPC 2024, 802.4.3.1).

6. Special wastes

Corrosive liquids, spent acids or other harmful chemicals that destroy or injure a drain, sewer, soil

or waste pipe, or create noxious or toxic fumes, or interfere with sewage treatment processes, must

not be discharged into the plumbing system without being thoroughly diluted, neutralized or treated by

passing through an approved dilution or neutralizing device. Such devices must be automatically

provided with a sufficient supply of diluting water or neutralizing medium so as to make the contents

noninjurious before discharge into the drainage system, and the nature of the corrosive or harmful

waste and the method of its treatment or dilution must be approved prior to installation (IPC 2024,

803.1).

A chemical drainage and vent system must be designed and installed in accordance with the code, and

chemical drainage and vent systems must be completely separated from the sanitary systems. Chemical

waste must not discharge to a sanitary drainage system until it has been treated in accordance with

Section 803.1 (IPC 2024, 803.2). The vent system for a chemical waste drainage system must be

independent of any sanitary drainage vent system, and its termination must be through the roof to the

outdoors or to an air admittance valve complying with ASSE 1049 (IPC 2024, 901.3).

Air admittance valves must not be installed in nonneutralized special waste systems as described in

Chapter 8, except where such valves comply with ASSE 1049, are constructed of materials approved in

accordance with Section 702.5, and are tested for chemical resistance in accordance with ASTM F1412

(IPC 2024, 918.8).

7. The indirect connection in the drainage load calculation

An indirect waste receptor is a drainage point of the building drain, so its load is computed as the

greater of the sum of the fixture units discharging to it and the value given for the receptor itself

in Table 709.1 or 709.2 (IPC 2024, 709.4). Where the discharge is known only as a flow rate, drainage

fixture unit values are computed on the basis that 1 gpm (0.06 L/s) of flow is equivalent to two

drainage fixture units (IPC 2024, 709.3).

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