What Is API 660? Requirements for Shell-and-Tube Heat Exchangers

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Published Date:

2026-08-24

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Table of Contents
  1. What Is API 660?
  2. What Does API 660 Require for Shell-and-Tube Heat Exchangers?
  3. How Do API 660, ASME, and TEMA Work Together?
  4. FAQ About API 660
  5. Conclusion

API 660 is one of the key standards for shell-and-tube heat exchangers used in petroleum, petrochemical, and natural gas service. It helps establish consistent requirements for equipment that often operates under demanding pressure, temperature, corrosion, fouling, and thermal-cycling conditions.

Published by the American Petroleum Institute, API 660 covers key areas including design, materials, fabrication, inspection, and testing.

This guide explains what API 660 requirements cover and how the standard works with ASME, TEMA, and ISO 16812 in real heat exchanger projects.

CONTENT:

What Is API 660?

API 660 is an industry standard published by the American Petroleum Institute for shell-and-tube heat exchangers used in petroleum, petrochemical, and natural gas processing. It establishes a common technical basis for how these exchangers should be designed, manufactured, inspected, tested, and prepared for delivery.

The standard applies to common exchanger services such as heaters, coolers, condensers, and reboilers. It does not apply to vacuum-operated steam surface condensers or feed-water heaters.

API 660 at a Glance
ScopeShell-and-tube heat exchangers for petroleum, petrochemical, and natural gas service
EquipmentShell-and-tube heat exchangers
Main industriesPetroleum, petrochemical, natural gas
Typical servicesHeaters, coolers, condensers, reboilers
Main coverageMechanical design, materials, fabrication, inspection, testing, shipment preparation

Why is this important? In refinery and petrochemical service, a heat exchanger has to manage more than pressure alone. Temperature differences, thermal expansion, corrosion, fouling, vibration, erosion, and cyclic operation can all affect long-term reliability.

Specifying only the required heat duty is rarely enough. Exchanger configuration, materials, mechanical details, fabrication controls, inspection, and project requirements need to be considered together. API Standard 660 provides a consistent framework for doing that.

What Does API 660 Require for Shell-and-Tube Heat Exchangers?

API 660 requirements are not limited to a single design calculation. They follow the exchanger from mechanical design and material selection through fabrication, inspection, testing, and preparation for shipment.

For a typical project, the requirements can be understood in five connected areas:

Requirement AreaWhat It Covers
Mechanical DesignPressure and temperature conditions, tubes, tubesheets, baffles, thermal expansion, nozzle loads, vibration and other mechanical details
MaterialsMaterial selection, corrosion resistance and corrosion allowance
FabricationWelding, tube-to-tubesheet joints, dimensional tolerances and PWHT where required
Inspection & TestingNDE, dimensional inspection, pressure testing and leak testing
DocumentationDesign calculations, drawings, material records, welding/NDT records and final project documents

These requirements are closely connected. A change in operating temperature or material, for example, can affect mechanical design, welding procedures, heat treatment and inspection requirements at the same time.

The following sections look at each requirement area in more detail.

Mechanical Design Requirements

Mechanical design is the first major requirement area in API 660. Some values come from the project conditions, while others are defined by the standard as minimum limits or allowable values.

ItemSpecific API 660 Requirement*
Minimum tube outside diameter19.05 mm (3/4 in.), unless otherwise specified or approved
Minimum tube wall thickness – carbon / low-alloy steel2.11 mm (0.083 in.)
Minimum tube wall thickness – copper alloys1.47 mm (0.058 in.)
Minimum tube wall thickness – high-alloy steel / other nonferrous materials1.47 mm (0.058 in.)
Minimum tube wall thickness – titanium1.07 mm (0.042 in.)
U-bend radiusNormally at least 1.5 × tube OD; certain alloys require 2.0 × tube OD
Slip-on flange restrictionNot permitted above 2100 kPa(g) / 300 psig, above 400°C / 750°F, or under certain corrosive / cyclic services
Chemical-cleaning connectionMinimum DN 50 (NPS 2) when specified
Nozzle loadsAllowable forces and moments are specified by nozzle size and flange rating

*Values are based on API 660 Ninth Edition requirements and should be checked against the project-specified edition.

The API 660 nozzle loads table is a good example of how specific the standard can be: it provides defined allowable forces and moments instead of leaving piping loads entirely to engineering judgment.

Other items, such as design pressure, design temperature, and thermal expansion, depend on the actual service conditions. These design choices also affect material selection, which is covered next.

Material Requirements

Material selection follows the actual process conditions. Pressure, temperature, fluid chemistry, corrosion mechanisms, and expected service life all influence the final choice.

API 660 also sets several specific material requirements:

Material AreaSpecific API 660 Requirement*
Alloy liningMust be weld overlay, integrally clad, or explosion-bonded. Loose liners or sleeves require purchaser approval.
Weld overlaySpecified chemical composition must be maintained to a depth of at least 1.5 mm (1/16 in.) from the finished surface.
Tubesheet cladding – tube sideMinimum 10 mm (3/8 in.) for expanded-only tube joints and 5 mm (3/16 in.) for welded tube joints.
Tubesheet cladding – shell sideMinimum 10 mm (3/8 in.).
Carbon steel in sour / wet H₂S serviceNormally supplied in the normalized condition, unless otherwise approved by the purchaser.
Sour-service material recordsPressure-retaining components require a Certified Material Test Report (CMTR) with chemistry needed to determine carbon equivalent.
GasketsAsbestos is prohibited. Metallic gasket materials must have corrosion resistance at least equal to the gasket-contact surface.
Compressed-sheet gasketsNot permitted for hydrocarbon, steam, hydrogen, sour, or wet-H₂S service.

*Values are based on API 660 Ninth Edition requirements and should be verified against the edition specified for the project.

For sour or high-temperature hydrogen service, additional material requirements may also come from NACE MR0103 / ISO 17945 or API RP 941.

Corrosion allowance is project-specific. A typical value may be around 1.5–3 mm, but the final requirement should follow the actual corrosion assessment and purchaser specification.

Once the material requirements are confirmed, the next step is controlling how those materials are welded, machined, and assembled during fabrication.

Fabrication Requirements

Fabrication turns the approved design into the finished exchanger. Key controls include welding procedures, tube-to-tubesheet joints, machining tolerances, and PWHT where required. WPS, PQR, qualified welders, and controlled tube joining are therefore part of the fabrication basis.

API 660 also gives specific fabrication limits:

Fabrication ItemAPI 660 Requirement*
Tube holes for selected alloy tubesAustenitic stainless steel, duplex, titanium, cupronickel, and nickel-alloy tubes require TEMA Special Close Fit tube holes
Roller-expanded jointsMaximum tube-wall reduction: 8% for carbon/low-alloy steel, 6% for stainless/high-alloy steel, and 5% for titanium/work-hardening nonferrous materials
Welded + expanded jointsTube expansion should begin at least 6 mm (1/4 in.) from the weld
Expansion near shell-side faceExpansion should stop at least 3 mm (1/8 in.) from the shell-side tubesheet face
Weld hardnessMaximum 225 HBW for carbon steel and Cr steel up to 3% Cr; 241 HBW for 5–17% Cr steel
Stacked exchanger flange alignmentMating nozzle flanges: out-of-parallel ≤ 0.8 mm (1/32 in.); separation after gasket installation ≤ 3 mm (1/8 in.)

*Values are based on API 660 Ninth Edition requirements and should be checked against the edition specified for the project.

Tube-to-tubesheet joints may use expansion, strength welding, seal welding, or a combination of welding and expansion. The method must achieve a leak-tight joint without excessive tube-wall thinning or damage.

PWHT is not defined by one universal API 660 temperature or thickness limit. Its need depends on the material, thickness, service, welding configuration, and applicable pressure design code. Where PWHT is required, subsequent hardness testing and inspection must account for the heat-treated condition.

These fabrication controls are then verified through inspection and testing.

Inspection and Testing Requirements

After fabrication, inspection and testing are used to verify weld quality, joint integrity, dimensional accuracy, and pressure containment.

Inspection / TestSpecific API 660 Requirement
Welded-and-expanded tube-to-tubesheet jointsPneumatic leak test at 50–100 kPa (7.5–15 psi) before final tube expansion
Shell and tube sidesIndependent hydrostatic tests are required, except for differential-pressure designs
Hydrostatic test durationTest pressure maintained for at least 1 hour
Test waterPotable water
Austenitic stainless steelChloride content in test water ≤ 50 mg/kg (50 ppm)
Helium leak testingPerformed after final expansion when specified by the purchaser
Nonmagnetic weldsLiquid penetrant testing is used where magnetic-particle examination is not applicable
After PWHTRequired weld examinations and final visual inspection are carried out after heat treatment where applicable

*Values are based on API 660 Ninth Edition requirements and should be checked against the edition specified for the project.

API 660 does not use one fixed hydrostatic test pressure for every exchanger. The test pressure depends on the applicable pressure design code, material allowable stresses, and project conditions.

Radiographic testing (RT), liquid penetrant testing (PT), dimensional inspection, hydrostatic testing, and leak testing may therefore be combined according to the exchanger design and specified inspection scope.

These records are then included in the final documentation package.

Documentation Requirements

API 660 also requires the exchanger to be supported by a complete technical record. These documents allow the purchaser to verify design, materials, fabrication, inspection, and final as-built condition.

Document TypeTypical Contents
Design documentsMechanical calculations, stress calculations, thermal rating data
DrawingsGeneral arrangement, fabrication drawings, nozzle schedules, component details
Material recordsMaterial Test Certificates, mill certificates, heat-number traceability
Welding recordsWPS, PQR, welder qualifications
Inspection recordsRT, PT and other NDT reports, dimensional inspection records
Test recordsHydrostatic and leak-test reports
Final documentationAs-built drawings and approved vendor data

These records remain useful well after delivery. They support installation, commissioning, future inspection, maintenance, revamp, and replacement work.

The heat exchanger specification and API 660 datasheet bring together the process conditions, design basis, materials, exchanger configuration, and purchaser requirements used by the manufacturer.

How Do API 660, ASME, and TEMA Work Together?

A shell-and-tube heat exchanger project may reference all three, but they serve different purposes:

  • ASME Section VIII: Focuses on pressure-vessel safety, including pressure-boundary design, allowable stress, welding, examination, and pressure testing.
  • TEMA: Defines how shell-and-tube heat exchangers are configured and mechanically constructed, including exchanger types, tubesheets, baffles, bundles, clearances, and fabrication practices.
  • API 660: Adds more specific requirements for shell-and-tube exchangers used in refinery, petrochemical, and natural-gas service. In many areas, it places additional limits or requirements beyond the basic TEMA provisions.

For an ASME heat exchanger design, Section VIII establishes the pressure-boundary basis, while TEMA and API 660 address exchanger-specific construction and service requirements.

A typical project may therefore specify:

ASME Section VIII + TEMA Class R + API 660 + purchaser specification

Because ASME mainly governs the pressure boundary, the most direct requirement-by-requirement comparison is between API 660 and TEMA.

API 660 vs TEMA: Key Requirement Differences

SubjectAPI 660 RequirementTEMA Requirement
Tubesheet cladding thicknessMinimum 10 mm for expanded tube-to-tubesheet joints; 5 mm for welded jointsClass R/B: 7.8 mm expanded, 3.2 mm welded; Class C: 4.8 mm expanded, 3.2 mm welded
Sliding saddle anchor-bolt slotSlot width = anchor-bolt diameter + 8 mm (5/16 in.); slot length also includes longitudinal movement allowanceNo specific numerical slot dimensions
Floating-head exchanger typesTEMA Type P and W exchangers are not allowedType P is allowed; Type W is allowed for limited services
Backing-device corrosion allowanceShell-side corrosion allowance is included on the back side of the floating-head backing deviceNo corrosion allowance required
Minimum tube OD19.05 mm (3/4 in.)Smaller tubes, down to about 6.4 mm, may be permitted
Minimum tube thicknessMinimum thickness defined according to tube materialNo equivalent material-specific minimum thickness requirement
Tubesheet extensionFull-diameter stationary tubesheet required for removable bundles with bonnet-type front headsNo specific tubesheet-extension requirement
Baffle thicknessCarbon/low-alloy steel baffles and support plates must include the specified shell-side corrosion allowanceThickness based mainly on shell diameter and plate spacing; corrosion allowance not generally required
Impingement plate thicknessMinimum 6 mm (1/4 in.)No specific minimum thickness
Perforated impingement platePerforated impingement-plate baffles are not permittedPerforated distribution devices may be used
Bypass sealing devicesSpecific provisions for seal strips, tie rods, dummy tubes, and other bypass-control devicesNo equivalent numerical requirement
Seal-strip thicknessAt least the transverse-baffle thickness or 6 mm (1/4 in.), whichever is lessNo specific thickness requirement
Stud washersHardened washers required for studs 38 mm (1½ in.) and larger; minimum washer thickness 6 mm (1/4 in.)No equivalent requirement
Flange allowable stressShort-time tensile-strength-based allowable stress is not permitted for girth flanges, gasketed tubesheets, and gasketed flat coversNo equivalent restriction
Thin-wall expansion jointsDetailed requirements covering service, cycle life, liner design, and related conditionsNot specifically covered
Gasket constructionRequirements specified for welded/non-welded, serrated, jacketed, corrugated, and spiral-wound gasketsNo equivalent detailed requirement
Integrally finned copper-alloy tubesRequired in the annealed-temper condition in accordance with ASTM B359/B359MNo specific requirement
Shell ovalityFor removable bundles, ovality checked using a metal template made from at least two disks and spaced at least 300 mm apartFabricated shell ID limited by circumferential measurements; no metal-template requirement
Pass-partition plate weldFirst 50 mm from gasket face must be full-penetration welded where partition plate is welded on both sidesNo equivalent full-penetration requirement
PWHT – channelAdditional PWHT requirements apply to certain CS/LAS channels, including multi-pass or high nozzle-to-ID ratio designsNo equivalent specific requirement
PWHT – floating headCS/LAS floating heads fabricated from dish-and-ring construction require PWHTNo equivalent specific requirement
Stacked exchanger tolerancesMating nozzle-flange tolerances are more restrictiveUses standard TEMA Figure F-1/F-2 tolerances
Tube holes“Special Close Fit” holes required for austenitic stainless steel, duplex, titanium, cupronickel, and nickel-alloy tubesNo equivalent material-based requirement for standard vs special close fit
Maximum tube-wall reductionSpecific maximum roller-expansion reduction defined for different tube materialsNo equivalent material-specific limit
Expansion length inside tubesheetFor welded-and-expanded joints, expansion begins 6 mm from the weld and stops 3 mm from the shell-side faceExpansion generally extends through the tubesheet with a smaller end clearance
Pneumatic test for welded tube jointsAdditional pneumatic test required before final expansion of welded-and-expanded tube-to-tubesheet jointsNo equivalent specific requirement

*The detailed values above are based on the API 660/TEMA comparison data provided for this article. Exact requirements should always be checked against the editions and purchaser specifications specified for the project.

This comparison shows why API 660 vs TEMA is not simply a question of choosing one standard. TEMA provides the basic exchanger construction framework, while API 660 adds more prescriptive requirements in areas where refinery service demands tighter control of corrosion allowance, tube construction, flow distribution, fabrication, and inspection.

FAQ About API 660

Is API 660 mandatory for all shell-and-tube heat exchangers?

No. API 660 applies when it is specified by the purchaser, EPC contractor, project specification, or applicable regulatory requirements. It is most commonly used for petroleum, petrochemical, and natural-gas projects.

Is API 660 only for shell-and-tube heat exchangers?

Yes. API 660 specifically covers shell-and-tube heat exchangers. These units may serve as heaters, coolers, condensers, or reboilers, but they remain shell-and-tube exchangers.

How does ISO 16812 relate to API 660?

ISO 16812:2019 covers the same general type of equipment and explicitly supplements API 660 Ninth Edition, with specified exceptions and additions. ISO confirmed the 2019 edition again in 2024, so it remains current.

Does API 660 replace ASME or TEMA?

No. ASME provides the pressure-vessel design code, TEMA provides the shell-and-tube exchanger construction framework, and API 660 adds requirements for refinery and related process services. Projects often reference all three.

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Conclusion

API 660 sets key requirements for shell-and-tube heat exchangers used in demanding refinery, petrochemical, and natural-gas service. It covers mechanical design, materials, fabrication, inspection, testing, and documentation.

In practice, API 660 is often used together with ASME, TEMA, and project specifications. For API 660 exchanger projects, Gelan can support design clarification, fabrication, testing, and documentation.

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