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TUPY standards

TUPY Fittings Standards

TUPY products are designed and manufactured to the most respected international standards, to guarantee the highest level of quality, safety and durability across every industry they serve.

International Standards

International manufacturing standards for TUPY Brazil fittings
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10-year warranty mark on TUPY Brazil fittings

About the 10-year warranty

TUPY is proud to be the only threaded fitting in the Middle East carrying a 10-year warranty, guaranteeing safety, durability and confidence on your projects. Made in Brazil, built to international standards, and trusted for generations across the Gulf and Iraq.

10-year warranty on TUPY Brazil fittings
Guaranteed quality of TUPY Brazil fittings

Guaranteed quality

TUPY products are made under the strictest testing and quality control in fully equipped, modern laboratories, so that every international standard is met and what reaches you is a reliable, long-lasting product.

Mechanical testing of TUPY Brazil malleable cast iron fittings

Mechanical tests

Pressure and leak testing of TUPY Brazil fittings

Pressure and leak tests

Chemical and corrosion resistance testing of TUPY Brazil fittings

Chemical and corrosion resistance tests

Dimensional and tolerance control of TUPY Brazil fittings

Dimensional and tolerance control

Quality control and final inspection of TUPY Brazil fittings

Quality control and final inspection

Production and inspection line at the TUPY Brazil foundry

Technical data, working pressure and temperature of TUPY Brazil fittings

TUPY Brazil BSP threaded fittings are manufactured to ABNT NBR 6943, ISO 49 and EN 10242 and are used for the general conveyance of fluids in sizes ¼ to 6 inch: hot and cold water, steam, liquid and gaseous fuels, hydraulic oil, compressed air and gases. These fittings seal on the thread, to NBR NM-ISO 7-1.

Material and grade

TUPY BSP fittings are produced in blackheart malleable cast iron, grade JMB 350-10, to ISO 5922, ABNT NBR 6590 and EN 1562. The table below gives the malleable cast iron grades and the mechanical properties of each.

Core typeMaterial specificationTest piece diameter d (mm)Minimum tensile strength LR (MPa)Minimum yield strength LE 0,2 (MPa)Minimum elongation at 3d (%)Brinell hardness
WhiteheartJMW 350-4153603
JMW 400-5154202304220
ASTM A 197162752005
BlackheartJMB 275-512 or 152755150
JMB 300-612 or 153006150
JMB 350-10 (TUPY BSP fittings)12 or 1535020010150
The grades are classified to ISO/TR 15931:2004; JMB for blackheart malleable cast iron and JMW for whiteheart. Under ISO 5922, grade JMB 300-6 should not be used in applications where pressure matters more than strength and ductility.

Maximum working pressure by temperature

Working temperature (°C)Maximum working pressure (bar)
−20 to +12025
Between +120 and +300Interpolated values
Above +30020

One bar equals 1.02 kgf/cm² or 14.5 psi. For temperatures between 120 and 300 °C the permitted pressure is obtained from the following linear interpolation:

X = D + (A−B) × (E−D) / (C−B)
Example 1 — working temperature 180 °C: the permitted pressure comes to 23.33 bar.
Example 2 — working pressure 22 bar: the maximum permitted temperature comes to 228 °C.
In system design, a safety factor of at least 4 times the maximum working pressure must be allowed for.

Hydrostatic test pressure

Type of fitting⅛ to 4 inch5 to 6 inch
All other fittings100 bar64 bar
Unions37.5 bar

Threads

Finish and use in drinking water

TUPY BSP fittings are produced with a black finish (oiled only) and hot-dip galvanised to ABNT NBR 6323 and ISO 1461. They are approved for drinking water networks, because the materials used in them meet the parameters of the Brazilian Ministry of Health. Other special coatings such as epoxy paint, cataphoretic (KTL), double and hybrid galvanising can be supplied on request.

Threaded fittings installation and tightening guideBSP threads: BSPT versus BSPPTUPYPRES technical dataFittings with FM and UL approval

Source: TUPY Brazil BSP fittings technical catalogue, pages 5 and 6.

Metallurgy and surface coatings of TUPY Brazil fittings

Metallurgical specification, mechanical and physical properties, and surface coating processes for TUPY malleable cast iron fittings, taken from the official digital catalogue of the TUPY Brazil foundry.

Blackheart malleable cast iron (FMP)

Blackheart malleable cast iron is essentially iron, carbon and silicon. In the as-cast condition its microstructure holds the carbon fully combined. After the graphitising heat treatment (annealing), the graphite takes a compacted form in a ferritic or pearlitic matrix, tempered and drawn, with no significant eutectic carbides. This structure conforms to EN 1562, ISO 5922 and ABNT NBR 6590.

In the as-cast condition, before heat treatment, blackheart iron is simply white cast iron.

Microstructure of TUPY Brazil blackheart malleable cast iron at 100x and 500x magnification
Microstructure of blackheart malleable cast iron — 500× magnification (right) and 100× magnification (left)

Heat treatment cycle

White cast iron is turned into malleable cast iron by malleablising (Maleabilização): a long process under a heat cycle of controlled temperature, time and atmosphere, until part of the combined carbon converts to graphite.

Heat treatment cycle diagram for TUPY Brazil malleable cast iron showing martensite, pearlite and ferrite
Heat treatment cycle — critical transformation temperature and the martensite, pearlite and ferrite routes
Microstructure of ferritic and pearlitic blackheart malleable cast iron at 100x and 500x magnification
Image 1: ferritic blackheart — Image 2: pearlitic blackheart (100× and 500× magnification)

Properties of blackheart malleable cast iron (FMP 350-10)

Mechanical properties — material determined to ISO 5922 / JMB 350-10
Brinell hardness HBMinimum elongation A-3D (%)Minimum yield strength LE 0.2 (MPa)Minimum tensile strength LR (MPa)Body diameter (mm)
1501020035012 or 15

Approximate hardness to ABNT NBR 6943 and NBR 6925.

Other mechanical properties
PropertyUnitResult
Modulus of elasticityN/mm²175,000 to 195,000
Compressive strengthN/mm²4× tensile strength
0.2% yield strengthN/mm²0.5× tensile strength
Bending strengthN/mm²2× tensile strength
Shear strengthN/mm²0.9× tensile strength
Impact bending strength (ambient temperature)mN/cm²100
Physical properties
PropertyUnitResult
Densityg/cm³7.2
Specific heat (10 to 100 °C)J/g.K0.46
Thermal conductivity (10 to 100 °C)W/cm.K0.42
Coefficient of thermal expansion (20 to 400 °C)°C12
Electrical resistivity (20 °C)Ωmm²/m0.3
Magnetic properties
PropertyUnitResult
Magnetic induction at a field strength of 30 oerstedgauss13,000
Magnetic induction at a field strength of 60 oerstedgauss14,000
Magnetic induction at a field strength of 125 oerstedgauss15,000
Remanent magnetismgauss6,000
Coercive forceoersted1.5
Maximum permeabilitygauss per oersted2,500

Malleability test and BSP line control

To confirm that casting and finishing are sound, a malleability test is carried out: after heat treatment the parts must be compressed by 10% of the outside diameter for fittings up to DN 2, and by 5% of the outside diameter for fittings above DN 2, without cracks or splits appearing on the inside. Parts with a wall thickness of more than 10 mm must not be crushed.

Weldability

The carbon content of the part in the area to be welded is essentially what decides how weldable the material is. High carbon content leads to the formation of martensite and cementite and to gas pores in the heat-affected zone, and increases brittleness; the result is porous and ultimately weak welds.

Important: for these reasons TUPY does not recommend or approve welding of its fittings. The practice is common in the market, but it can cause structural damage to the parts and leakage problems in the pipework.

Surface coatings

1. Galvanised finish

The main purpose of hot-dip galvanising (hot zinc coating) is to prevent corrosion of the iron. Zinc oxidises more readily than iron and so protects the base metal; hot-dip galvanising — coating iron with zinc — is probably the most environmentally compatible process there is for preventing corrosion.

Hot-dip galvanising process stages for TUPY Brazil fittings: degreasing, pickling, rinsing, fluxing, immersion in molten zinc and cooling
Hot-dip galvanising process: degreasing → pickling → rinsing → fluxing → immersion in molten zinc → cooling

Because hot-dip galvanising takes place at high temperature, the zinc and the base metal fuse together, producing a highly adherent coating that is not easily lost to mechanical damage.

Service life chart for galvanised coating and microstructure of the ETA, ZETA and DELTA layers on TUPY fittings
The effect of molten zinc on the metal and the tested service life — the ETA, ZETA and DELTA layers

2. Oiled finish

After machining (thread cutting), a final protective surface coating is applied to the product; its job is to protect the fitting from corrosion while it is stored in its packaging. The oil is a water-soluble corrosion inhibitor based on white oil, intended for the temporary protection of metal surfaces. Diluted in water it forms a white, stable, long-lasting emulsion. Once the water evaporates the remaining film is thin, oily and semi-drying (semi-secative).

3. KTL paint coating

Electrodeposition is the most effective way of coating metal parts with a complex geometry. It is also known as e-coat, electrodip, electrophoretic painting or KTL — cathodic dip coating. The part is connected to the positive pole (anode) and the paint tank forms the negative pole (cathode).

Anodic KTL painting system diagram and electro-immersion line for TUPY Brazil fittings
Anodic electrodeposition system and the KTL painting line

Electrodeposition also reaches hidden surfaces and internal areas, thanks to a well-known effect called throwing power; complex surfaces are therefore coated easily and corrosion resistance improves.

Corrosion and abrasion resistance

Testing was carried out to the ASTM B117 salt spray test and the ASTM D4060 Taber abrasion test. This type of paint can achieve results of more than 1,000 hours of salt mist resistance (in a chamber saturated with NaCl solution mist) and a mass loss of less than 14 mg after 100 cycles.

Results of 500-hour and 2000-hour salt spray tests and the Taber abrasion test on TUPY Brazil fittings
Test results: 500 hours salt spray, 2,000 hours salt spray, and the abrasion test (mass loss of 13.1 mg after 100 cycles)

Advantages of KTL painting

  • Non-toxic product, free of ethylene glycol and heavy metals
  • Low level of volatile organic compounds (VOC)
  • Excellent corrosion protection and high adhesion to bare metal
  • High resistance to chemical agents and to UV (ultraviolet) light
  • Abrasion resistant and harmless to the environment
  • Uniform layer thickness, without interfering with threaded assemblies
  • Greater flexibility in areas of difficult access and in hollow parts

Source: official digital BSP fittings catalogue of the TUPY Brazil foundry, pages 34 to 37 — download the full catalogue from the Download Centre

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