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Pipe Weight Chart 2026 – lb/ft, kg/m & Every Material

Pipe Weight Chart – lb/ft, kg/m & Multi-Material Reference | ConcreteCalculate.com
Multi-Material Pipe Reference

Pipe Weight Chart
lb/ft, kg/m & Every Material

Empty and water-filled pipe weight by NPS, schedule, and wall thickness for steel, stainless, PVC, and copper pipe, plus the formula behind every value on this chart.

ASME B36.10-2022 ASME B36.19-2022 W = 10.6802 × t × (OD – t) Empty & Filled Weight

Nominal pipe size alone does not determine pipe weight

You need outside diameter, wall thickness, and material density together. This page is the multi-material master reference covering steel, stainless, PVC, and copper weight per foot; for the complete steel-only dataset across every schedule, see the Steel Pipe Weight Chart.

Pipe Weight Chart, Quick Reference

Steel Schedule 40 pipe covers the majority of general U.S. piping search intent, so it leads this chart.

Steel Pipe Weight by Schedule

NPS (in)OD (in)Sch 10 lb/ftSch 40 lb/ftSch 80 lb/ftSch 160 lb/ft
1/20.8400.670.851.091.30
3/41.0500.861.131.471.94
11.3151.401.682.172.84
1-1/21.9002.092.723.634.86
22.3752.643.655.027.46
33.5004.347.5810.2514.32
44.5005.6110.7914.9822.51
66.6259.2918.9728.5745.30
88.62513.4028.5543.3974.69
✓ Verified Against ASME B36.10-2022 Weight Formula

Values calculated using the ASME B36.10 plain end weight formula, W (lb/ft) = 10.6802 × t × (OD – t), where t is wall thickness in inches. For the complete steel dataset across every schedule and larger sizes, see the Steel Pipe Weight Chart.

Material Quick Comparison

Pipe SystemWeight Basis
Carbon steelNPS + schedule + steel density
Stainless steelNPS + S schedule + alloy density
PVCNominal size + schedule + product-specific dimensions
CopperNominal size + Type K, L, M, or DWV
📌

Critical Scope Note

Pipe weight is not determined by nominal pipe size alone. The schedule or wall thickness and the material must also be known before a weight value means anything.

What determines pipe weight Pipe cross-section showing outside diameter and inside diameter with the wall material shaded, and the formulas for metal area and weight based on density and length Shaded = pipe material A_m = (π/4)(OD² – ID²) W = A_m × ρ × L A_m = metal cross-section area ρ = material density L = pipe length
Pipe weight comes from the metal cross-sectional area (the shaded ring) multiplied by material density and length, not from outside diameter alone.

What Is Pipe Weight?

The mass or weight of the pipe material itself, usually expressed per unit length.

Common U.S. units include lb/ft, lb per 20-ft length, and lb per 21-ft length. Metric equivalents use kg/m or kg per standard length.

TermDefinition
Empty Pipe WeightPipe material only, no contents
Filled Pipe WeightPipe material plus the contained fluid

These two values should never be mixed in the same chart column without a clear label.

What Determines Pipe Weight?

Four factors, working together.

FactorEffect
Outside diameterLarger OD generally increases metal area for a given wall thickness
Wall thicknessThicker wall means more metal area and more weight
Material densityDenser materials weigh more for the same volume
Pipe lengthTotal weight scales directly with length

For a fixed OD, a thicker wall means more material area and therefore greater weight per foot. This is why Schedule 80 pipe usually weighs more than Schedule 40 pipe of the same NPS and material.

Pipe Weight Formula

The general formula behind every value in this chart.

📑

Formula

Metal area: Am = (π/4)(OD² – ID²). Weight per length: W(L) = Am × ρ, where ρ is material density. Since ID = OD – 2t, this can also be written Am = (π/4)[OD² – (OD – 2t)²].

How to Calculate Steel Pipe Weight

ASME B36.10 provides a simplified formula for steel that avoids manually working through the full area equation.

📑

ASME B36.10 Plain End Weight Formula

W (lb/ft) = 10.6802 × t × (OD – t), where t is wall thickness in inches and OD is outside diameter in inches. This is the standardized simplification of the general metal-area formula for steel density.

1

Example: NPS 4 Schedule 40

Given: OD = 4.500 in, wall t = 0.237 in
1
W = 10.6802 × 0.237 × (4.500 – 0.237)
2
W = 10.6802 × 0.237 × 4.263
Result: W ≈ 10.79 lb/ft

This matches independently published ASME B36.10 weight tables and the value used in the Steel Pipe Weight Chart.

Pipe Weight in lb/ft vs kg/m

The exact conversion factor between U.S. and metric weight units.

📑

Conversion Factors

1 lb/ft ≈ 1.48816 kg/m. 1 kg/m ≈ 0.67197 lb/ft.

lb/ftkg/m
11.488
57.441
1014.882
2029.763
5074.408

Steel Pipe Weight Chart

A summary rather than a duplicate of the dedicated steel-only page.

NPS (in)OD (in)ScheduleWall (in)lb/ftkg/m
22.375400.1543.655.44
22.375800.2185.027.47
44.500400.23710.7916.06
44.500800.33714.9822.29
66.625400.28018.9728.24
66.625800.43228.5742.53

For the complete NPS × schedule × wall × weight dataset across every ASME B36.10 schedule, see the full Steel Pipe Weight Chart, which owns the detailed steel-only reference.

Schedule 10 Pipe Weight Chart

Schedule 10 has a thinner wall than Schedule 40 for many common sizes, so it generally weighs less for the same NPS and material.

NPS (in)OD (in)Sch 10 Wall (in)lb/ftkg/m
1/20.8400.0830.671.00
11.3150.1091.402.09
22.3750.1092.643.93
44.5000.1205.618.35
66.6250.1349.2913.82
88.6250.14813.4019.94

Not every pipe size or specification offers a Schedule 10 product; check the Pipe Schedule Chart for size-by-size availability.

Schedule 40 Pipe Weight Chart

Likely the strongest search sub-intent on this entire page.

NPS (in)OD (in)Wall (in)Empty Weight (lb/ft)kg/m
1/20.8400.1090.851.27
3/41.0500.1131.131.68
11.3150.1331.682.50
1-1/21.9000.1452.724.04
22.3750.1543.655.44
33.5000.2167.5811.27
44.5000.23710.7916.06
66.6250.28018.9728.24
88.6250.32228.5542.49
1010.7500.36540.4860.25
1212.7500.40653.5379.65
✓ Verified Against ASME B36.10-2022

For sizes beyond NPS 12, see the Schedule 40 Pipe Chart.

Schedule 80 Pipe Weight Chart

Same NPS and OD, but a thicker wall means more pipe material and higher empty weight.

NPS (in)OD (in)Sch 80 Wall (in)lb/ftkg/m
1/20.8400.1471.091.62
3/41.0500.1541.472.19
11.3150.1792.173.23
22.3750.2185.027.47
33.5000.30010.2515.25
44.5000.33714.9822.29
66.6250.43228.5742.53
88.6250.50043.3964.61

For sizes beyond NPS 8, see the Schedule 80 Pipe Chart.

Schedule 160 Pipe Weight Chart

A heavy-wall schedule used in high-pressure industrial piping.

NPS (in)OD (in)Wall (in)ID (in)lb/ftkg/m
1/20.8400.1870.4661.301.93
11.3150.2500.8152.844.23
22.3750.3441.6877.4611.10
44.5000.5313.43822.5133.49
66.6250.7185.18945.3067.42
88.6250.9066.81374.69111.14

Not every nominal size or product line offers Schedule 160; where a size is not standardized, treat it as not available rather than assuming a zero or extrapolated weight.

Schedule 40 vs Schedule 80 Pipe Weight

Direct comparison showing exactly how much heavier the thicker-wall schedule becomes.

NPS (in)Sch 40 (lb/ft)Sch 80 (lb/ft)Difference (lb/ft)% Heavier
1/20.851.090.2428%
11.682.170.4929%
23.655.021.3738%
410.7914.984.1939%
618.9728.579.6051%

The percentage difference is not constant across sizes, which is why “Schedule 80 weighs twice Schedule 40” is not a reliable general rule; each NPS has its own wall-thickness relationship.

Schedule 40 vs Schedule 80 NPS 2-inch steel pipe comparison showing the same 2.375-inch outside diameter but different wall thicknesses and inside diameters.
NPS 2 Schedule 40 and Schedule 80 steel pipes have the same 2.375-inch outside diameter, while Schedule 80 has a thicker wall and smaller inside diameter.

How Pipe Schedule Affects Weight

Schedule itself is not a unit of weight; it identifies a wall thickness series.

💡

The Chain of Cause and Effect

Schedule determines wall thickness, wall thickness determines metal cross-sectional area, and metal area combined with density determines weight. Do not create shortcut rules such as “Schedule 80 weighs twice Schedule 40,” since the actual ratio varies by NPS as shown in the comparison above.

Same NPS with different schedule and weight Three pipe cross-sections of the same nominal pipe size showing identical outside diameter but progressively thicker walls and increasing weight per foot for Schedule 10, Schedule 40, and Schedule 80 Sch 10 2.64 lb/ft Sch 40 3.65 lb/ft Sch 80 5.02 lb/ft
More wall material at the same NPS 2 outside diameter directly increases weight per foot from Schedule 10 to Schedule 80.

ASME B36.10-2022 Steel Pipe Weight Basis

The dimensional authority behind the steel weight tables on this page.

ASME B36.10-2022 standardizes dimensions of welded and seamless wrought steel pipe for high or low temperature and pressure service. This page uses B36.10 values for NPS, OD, and nominal wall thickness, then derives weight from those dimensional values using the applicable density convention. The B36.10 dimensional standard and a material specification such as ASTM A53 or A106 are not the same thing; B36.10 governs dimensions, while separate material specifications govern chemistry and mechanical properties.

✓ Verified Against ASME B36.10-2022

STD, XS, and XXS Pipe Weight

Historical wall designations with weight implications that vary by size.

NPS (in)STD Weight (lb/ft)XS Weight (lb/ft)XXS Weight (lb/ft)
1/20.851.091.72
11.682.173.66
23.655.029.04

Do Not Assume Universal Equivalence

STD is not equal to Schedule 40 at every size, and XS is not equal to Schedule 80 at every size. Because their weights derive from wall thickness, STD and XS weights diverge from the equivalent numeric schedule at larger NPS values where the wall thickness relationships change.

Stainless Steel Pipe Weight Chart

ASME B36.19-2022 is the dimensional reference for stainless pipe.

NPS (in)OD (in)10S (lb/ft)40S (lb/ft)80S (lb/ft)
1/20.8400.670.851.09
11.3151.401.682.17
22.3752.643.655.02
44.5005.6110.7914.98

B36.19 standardizes welded and seamless wrought stainless pipe dimensions. Weight varies slightly with actual alloy density as well as wall geometry; not all stainless grades share exactly identical density, so these values use a representative austenitic stainless density convention rather than a single alloy-specific figure.

✓ Verified Against ASME B36.19-2022

Schedule 40/80 vs 40S/80S Weight

A dedicated distinction because the wall thicknesses are not universally identical.

40S Does Not Always Equal 40, and 80S Does Not Always Equal 80

ASME B36.19 notes that some stainless S-schedule wall thicknesses differ from the corresponding B36.10 schedule dimensions at certain sizes, including specific larger NPS values. Because weight derives directly from wall thickness, weight can differ between these designations wherever the wall thickness differs, even though many common smaller sizes align closely.

Carbon Steel vs Stainless Steel Pipe Weight

Two variables can separate these values: wall thickness and density.

For equal OD and equal wall geometry, carbon steel and stainless steel densities are relatively close but not identical, and stainless density itself varies somewhat by grade. Weight differences between carbon and stainless pipe of the same nominal size can arise from different wall tables (B36.10 vs B36.19) as well as from small material density differences. Do not apply a single universal percentage rule such as “stainless is X percent heavier”; compare the actual wall thickness and alloy density for the specific products being evaluated.

Pipe Weight per Foot vs Total Pipe Weight

The conversion every estimator needs.

📑

Formula

W(total) = w(L) × L, where w(L) is weight per unit length and L is total pipe length.

1

Example: 20 ft of NPS 4 Schedule 40

Given: w = 10.79 lb/ft, L = 20 ft
1
W = 10.79 × 20
Result: W ≈ 215.8 lb

10-ft, 20-ft, and 21-ft Pipe Weight Chart

Common commercial pipe lengths for purchasing, handling, and trucking calculations.

Weight (lb/ft)10-ft Piece (lb)20-ft Piece (lb)21-ft Piece (lb)
1.6816.833.635.3
3.6536.573.076.7
10.79107.9215.8226.6
18.97189.7379.4398.4

Not every product is commercially supplied in all three lengths; verify actual stock lengths with the supplier before finalizing a material take-off.

Empty Pipe vs Water-Filled Pipe Weight

An extremely useful distinction for support and handling calculations.

📑

Formula

W(filled) = W(pipe) + W(fluid). Water weight per length is based on bore cross-sectional area: W(water) = (πID²/4) × L × ρ(water), using 62.4 lb/ft³ for water.

NPS (in)Empty (lb/ft)Water-Filled (lb/ft)
23.655.10
410.7916.31
618.9731.49
828.5550.23
✓ Verified: Water Weight Calculated at 62.4 lb/ft³
Empty versus water filled pipe weight Split diagram showing an empty pipe cross-section with only the pipe shell and a filled pipe cross-section with the pipe shell plus a fluid column, with the formula operating weight equals pipe weight plus fluid weight Empty Pipe shell only Full of Water Pipe shell + fluid W_op = W_pipe + W_fluid
Operating weight adds the weight of the contained fluid to the empty pipe weight, and this addition can be substantial for larger bore sizes.

Pipe Weight With Other Fluids

Water is only one reference case.

📑

Formula

W(fluid) = ρ(fluid) × V, so operating weight varies directly with fluid density. Glycol solutions, oils, chemicals, and slurries all have different densities than water.

Do not apply one universal full-pipe weight figure across different services. For project design, use the actual fluid density at the applicable operating temperature and concentration.

Pipe Weight for Supports and Hangers

Empty pipe weight alone is rarely the correct design load.

Pipe support loads can include pipe self-weight, contained fluid, insulation, valves, flanges, fittings, and other accessories, and sometimes snow, ice, or other environmental loads depending on the installation context. Do not design pipe supports using empty-pipe weight alone when the system operates full; actual support design, including load combinations and safety factors, is outside the scope of this reference chart and should follow project-specific engineering.

Pipe Weight for Handling, Lifting, and Transport

Why contractors care about weight per foot in the first place.

Weight matters for manual lifting, rigging, forklift capacity, crane selection, trucking, and storage rack loads. Published lb/ft multiplied by length gives pipe-body weight only; add fittings, coatings, linings, or other components separately when they are present.

Crane lifting a bundle of NPS 2-inch Schedule 40 steel pipes, illustrating how pipe weight per foot, length, and quantity determine the total lifting load.
Total steel pipe bundle weight depends on the pipe weight per foot, actual length, quantity, and any additional fittings or loads that must be considered for safe transport and lifting.

Galvanized, Coated, and Lined Pipe Weight

Additional layers add mass beyond the bare-pipe chart value.

Galvanizing adds zinc coating mass, so galvanized pipe weighs slightly more than bare steel pipe. Do not apply one universal percentage, since coating mass depends on surface area, coating thickness, and the applicable product specification. Other additions such as epoxy coating, polyethylene coating, cement-mortar lining, or rubber lining also add weight beyond the nominal bare-pipe value. Distinguish nominal bare pipe weight from finished installed component weight, and use manufacturer or shipping weight when logistics accuracy is critical.

PVC Pipe Weight Chart

Where this master page distinguishes itself most clearly from steel-only weight data.

PVC pipe weight is based on manufacturer and current product data rather than steel density calculations, since PVC compound density and product-specific wall thickness differ substantially from steel.

Nominal Size (in)Sch 80 Weight (lb/100 ft)Sch 80 Weight (lb/ft)
1/220.30.203
3/427.50.275
140.50.405
293.60.936
3194.21.942
4279.32.793
6532.75.327

These values reflect one manufacturer’s published Schedule 80 PVC product data; other manufacturers may publish slightly different weights for the same nominal size. For complete PVC-specific dimensional data, see the PVC Pipe Size Chart.

Schedule 40 vs Schedule 80 PVC Weight

The same principle as steel, applied to PVC.

For the same nominal PVC pipe size and OD family, Schedule 80 has more wall material than Schedule 40 and therefore generally weighs more per foot. Use manufacturer tables rather than assuming a universal PVC density calculation from nominal size alone, since compound formulation and product-specific dimensions vary by manufacturer.

Copper Pipe/Tube Weight Chart

Copper Development Association data for tube-only weight by type.

Nominal Size (in)Type K (lb/ft)Type L (lb/ft)Type M (lb/ft)
1/20.3440.2850.203
3/40.6410.4550.328
10.8390.6550.465
✓ Verified Against Copper Development Association Copper Tube Handbook

These are tube-only weights and do not include fittings or contained fluid. For complete copper-specific dimensional data, see the Copper Pipe Size Chart.

Type K vs L vs M Copper Weight

Wall thickness drives weight differences across copper tube types.

For the same nominal copper size, Type K, the thickest common water-tube wall, generally has the highest empty weight. Type L is intermediate, and Type M, with the thinnest common wall, is the lightest. Do not mix these copper values with NPS steel schedule tables, since the two systems use entirely different dimensional conventions.

Comparison of 2-inch steel, PVC, and copper pipes showing how pipes with similar nominal sizes can have different dimensions, materials, and weights per foot.
Steel, PVC, and copper pipes of similar nominal sizes can have significantly different weights because material density, outside diameter, and wall thickness vary.
Same nominal size, different materials and weight Three pipe cross-sections at a similar nominal size showing steel, PVC, and copper with very different weight per foot due to material density and wall system differences Steel 3.65 lb/ft PVC 0.94 lb/ft Copper 0.34 lb/ft
Similar nominal sizes across steel, PVC, and copper produce dramatically different weight per foot because material density and wall system both change.

Pipe vs Tube Weight

An important sizing distinction before using any weight table.

Tube may be specified by actual OD, wall thickness, or gauge, while pipe typically uses NPS and schedule. The weight lookup needs the correct dimensional system for the product in question; do not use an NPS steel pipe chart to estimate structural HSS or mechanical tubing weight. For structural steel shape and tubing weight, see the structural steel weight reference on this site.

How to Calculate Pipe Weight From OD and Wall Thickness

A practical workflow that works for nonstandard or unusual pipe.

Calculation Workflow

1
Measure or obtain outside diameter (OD).
2
Obtain wall thickness (t).
3
Calculate ID = OD – 2t.
4
Calculate wall area: Am = (π/4)(OD² – ID²).
5
Multiply area by material density to get weight per unit length.
6
Multiply by total length for total weight.
7
Convert units if needed (lb/ft to kg/m, or vice versa).
This workflow applies to any pipe material once OD, wall thickness, and density are known, including nonstandard products.

For quick calculations without manual math, use the Pipe Weight Calculator or the general Metal Weight Calculator.

Nominal vs Actual Pipe Weight

An important limitation for procurement and logistics.

Chart weight is typically based on nominal OD, nominal wall thickness, and a nominal material density convention. Actual shipping or field weight can differ because of dimensional tolerances, actual alloy density, coatings, lining, moisture or debris, and normal manufacturing variation.

Important

Use manufacturer shipping weights for procurement and logistics calculations where exact shipping mass matters, rather than relying on the nominal chart value alone.

Common Pipe Weight Chart Mistakes

Using NPS alone to determine weight

NPS alone leaves out schedule and material, both required for a real weight value.

Ignoring schedule

Weight changes significantly with wall thickness even at the same NPS.

Assuming Schedule 80 weighs twice Schedule 40

The actual ratio varies by NPS and is generally well below double.

Assuming same NPS means same weight across materials

Steel, PVC, and copper weigh very differently at the same nominal size.

Using steel values for stainless

Wall tables and alloy density both differ between B36.10 and B36.19 systems.

Assuming 40 and 40S are universally identical

Some sizes have different wall thickness and therefore different weight.

Confusing lb/ft with total weight

Weight per foot must be multiplied by actual length for a project total.

Confusing kg/m with kg/ft

Always keep unit systems consistent through the calculation.

Treating nominal pipe weight as exact shipping weight

Actual weight can differ due to manufacturing tolerances and coatings.

Ignoring coatings or lining

Galvanizing, epoxy, and cement-mortar lining all add weight beyond bare pipe.

Ignoring fluid weight

Operating weight can be substantially higher than empty pipe weight.

Using empty-pipe weight for pipe-support design

Supports must generally account for the full operating condition.

Using water-filled weight for a different-density fluid

Oils, glycols, and slurries have different densities than water.

Confusing pipe and tube

Tube dimensional systems differ from NPS pipe systems.

Using steel schedule tables for copper Type K/L/M

Copper uses its own dimensional and weight system entirely.

Using steel weight for PVC

PVC density and wall systems are entirely different from steel.

Ignoring fittings, valves, flanges, and insulation

These add substantial weight beyond bare pipe in a real system.

Using ID instead of metal area for pipe self-weight

Self-weight comes from the metal wall area, not the bore.

Forgetting wall exists around the full circumference

The metal area formula accounts for the entire ring, not one side.

Assuming all stainless grades have identical density

Density varies somewhat by specific stainless alloy grade.

Pipe Weight Chart Limitations

Read Before Using for Procurement, Logistics, or Support Design

Pipe weight depends on material and wall thickness; NPS alone is insufficient. Schedule is not itself a weight, only a wall-thickness series. Published weights are generally nominal or calculated values, and actual weights vary with manufacturing tolerances. Stainless alloy densities can vary by grade. PVC product weight should follow the applicable product and manufacturer data rather than a steel-based calculation. Copper Type K, L, and M use a different dimensional system from steel schedules. Coatings and linings add weight beyond bare-pipe values. Filled operating weight depends on actual fluid density at service conditions. Valves, fittings, flanges, and insulation are not included in bare-pipe weight. Critical support, lifting, transportation, and structural calculations should use project-specific or manufacturer product data rather than this general reference chart alone.

Frequently Asked Questions

How much does 1/2-inch pipe weigh per foot?
A 1/2-inch NPS Schedule 40 steel pipe weighs approximately 0.85 lb/ft. Schedule 80 weighs more, about 1.09 lb/ft, because of its thicker wall.
How much does 1-inch Schedule 40 pipe weigh?
A 1-inch NPS Schedule 40 steel pipe weighs approximately 1.68 lb/ft.
How much does 2-inch Schedule 40 pipe weigh per foot?
A 2-inch NPS Schedule 40 steel pipe weighs approximately 3.65 lb/ft.
How much does 4-inch Schedule 40 pipe weigh?
A 4-inch NPS Schedule 40 steel pipe weighs approximately 10.79 lb/ft empty, or about 16.3 lb/ft when full of water.
How much does 6-inch Schedule 40 pipe weigh?
A 6-inch NPS Schedule 40 steel pipe weighs approximately 18.97 lb/ft empty.
How much does 8-inch pipe weigh per foot?
An 8-inch NPS Schedule 40 steel pipe weighs approximately 28.55 lb/ft empty, or about 50.2 lb/ft when full of water.
How much does Schedule 80 pipe weigh?
Schedule 80 weight depends on NPS. For example, 2-inch Schedule 80 steel pipe weighs about 5.02 lb/ft, and 4-inch Schedule 80 weighs about 14.98 lb/ft, both heavier than the same NPS in Schedule 40.
Does Schedule 80 weigh more than Schedule 40?
Yes, for the same NPS, Schedule 80 has a thicker wall than Schedule 40, which adds more pipe material and increases weight per foot, even though the outside diameter stays the same.
How do you calculate pipe weight?
Calculate the metal cross-sectional area using Am = (pi/4) times (OD squared minus ID squared), then multiply by material density and length. For steel using inch dimensions, this simplifies to the formula W = 10.6802 times t times (OD minus t) in lb/ft.
How do I convert pipe weight from lb/ft to kg/m?
Multiply lb/ft by 1.48816 to get kg/m. To convert kg/m back to lb/ft, multiply by 0.67197.
How much does a 20-foot pipe weigh?
Multiply the weight per foot by 20. For example, a 4-inch Schedule 40 steel pipe at 10.79 lb/ft weighs about 215.8 lb for a 20-foot length.
How much does pipe weigh when full of water?
Filled weight equals empty pipe weight plus the weight of water filling the bore. For a 4-inch Schedule 40 steel pipe, this adds roughly 5.5 lb/ft of water, bringing the total to about 16.3 lb/ft.
Does pipe schedule affect weight?
Yes. Schedule identifies a wall thickness series. A higher schedule number generally means a thicker wall and more material, which increases weight per foot for the same NPS and material.
Does pipe diameter affect weight?
Yes. Larger outside diameter generally increases the metal cross-sectional area for a given wall thickness, which increases weight per foot.
Does stainless pipe weigh more than carbon steel?
Not necessarily by a fixed amount. Weight differences between stainless and carbon steel pipe of the same NPS and schedule arise from both wall thickness differences between B36.19 and B36.10 schedules and small alloy density variations, so there is no single universal percentage difference.
How much does PVC pipe weigh?
PVC pipe weighs much less than steel pipe of the same nominal size. For example, 2-inch Schedule 80 PVC weighs approximately 0.94 lb/ft based on manufacturer data, compared to about 5.02 lb/ft for 2-inch Schedule 80 steel.
How much does copper pipe weigh per foot?
Nominal 1/2-inch copper water tube weighs approximately 0.344 lb/ft for Type K, 0.285 lb/ft for Type L, and 0.203 lb/ft for Type M, based on Copper Development Association data.
Which is heavier, Type K or Type L copper?
Type K is heavier than Type L at the same nominal size because Type K has a thicker wall. Type M is the lightest of the three common water-tube types.
Does galvanizing add pipe weight?
Yes, slightly. Galvanizing adds a zinc coating that increases weight over bare steel pipe, but the added mass depends on surface area and coating thickness, so no single universal percentage applies.
Is chart weight exact or nominal?
Chart weight is a nominal or calculated reference value based on standardized dimensions and density conventions. Actual manufactured weight can differ slightly due to manufacturing tolerances, so procurement and shipping calculations should use manufacturer-published or product-specific weights when precision matters.

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