Inconel vs Stainless Steel: Which is Better?

Inconel vs Stainless Steel: Which is Better?

One of the most crucial decisions to make is the choice of the metal when it comes to the production of high-performance parts. Carbon steel could be used in low cost applications and more demanding environment needs metals that can withstand extreme conditions. With such reasons in mind, one will find the comparison of stainless steel vs Inconel to be the most significant. Both alloys are characterized by their durability, strength and resistance to corrosion, however, they are applicable in various applications. The knowledge on the distinction between Inconel and stainless steel will assist the engineers to choose the appropriate material depending on the project requirements.

In this article, we will explore the key properties, applications & advantages of Inconel Products & Stainless Steel Products for helping you determine which alloy is best suited for your specific industrial needs.

Why Comparing Inconel vs Stainless Steel Can Be Difficult?

The comparison between stainless steel and Inconel is largely relied on its composition since both alloys are available in various grades and formulations. There are many types of stainless steel which differ in tensile strength, corrosion resistance and the recommended operating temperatures. An example is SS 316 which is more resistant to chlorides than SS 304 but tends to be more expensive.

Likewise, the behavior of Inconel alloys may vary in relation to its grade and processing. As an illustration, an as-rolled bar of Inconel 625 120160 ksi (8271103 Mpa) has a tensile strength, as compared to a solution-treated bar with an 103130 ksi (714896 Mpa) tensile strength. These ranges are possible since even a slight variation in composition such as nickel, carbon or iron content can have a great influence on strength.

Difference Between Inconel & Stainless Steel

Here’s a comparison of two popular grades of Inconel and stainless steel materials to learn more about which one is more stronger?

Property Inconel 625® 304 Stainless Steel
Tensile Strength 103–160 ksi (714–1,103 MPa) 73.2 ksi (505 MPa)
Melting Point 2,350–2,460°F (1,290–1,350°C) 2,550–2,650°F (1,400–1,455°C)
Maximum Operating Temperature 1,800°F (982°C) 1,697°F (952°C)
Corrosion Resistance Excellent against high-temperature oxidation and many acids Excellent all-around, but weaker against chlorides and high-temp oxidation

From this comparison, it’s clear that Inconel 625 maintains higher strength at elevated temperatures and offers superior oxidation resistance. While its melting point is slightly lower than that of 304 stainless steel, its high-temperature performance is stronger due to its structural stability and resistance to scaling.

For assistance in selecting the right metal alloy for your project, including Inconel products, stainless steel prodcuts, contact us for complete guidance and technical support.

Inconel vs Stainless Steel: Comparing Key Properties

Inconel and stainless steel are two widely used metals, each offering unique advantages and limitations. This comparison below will highlight how each alloy performs in terms of high-temperature strength, corrosion resistance, machinability, cost, and common grades, making it easier to choose the right material for your application.

Property Inconel Stainless Steel Key Takeaway
High-Temp Strength Excellent, maintains integrity up to 1093°C (2000°F) Good, but strength drops significantly above 870°C (1600°F) Inconel is the clear choice for extreme heat applications.
Corrosion Resistance Superior, especially against acids, saltwater, and chlorides Good general resistance, but vulnerable to specific corrosives Inconel excels in harsh chemical and marine environments.
Machinability Difficult; work-hardens quickly, requires specialized tooling Generally easy to machine, especially austenitic grades Stainless steel is far more fabrication-friendly.
Common Grades 625, 718, 600 304, 316, 410 Grade selection depends on the specific performance requirements.

Inconel vs Stainless Steel Cost: Understanding the Difference

When it comes to cost, a noticeable distinction exists between Inconel and stainless steel. Inconel is a premium alloy that typically requires a higher investment due to its superior strength, corrosion resistance & performance in extreme conditions. In contrast, stainless steel provides a more affordable option for applications where such high-performance properties are not essential.

Understanding the Applications: Stainless Steel vs Inconel

It is made of stainless steel alloy and is resistant to corrosion, easy to maintain and is therefore suitable in construction projects like structural frameworks, roofing, bridges, and architectural facades. It is commonly applied in the medical sector in surgical tools, implants and medical devices because it is biocompatible and can be sterilized. Moreover, stainless steel has wide use in food and beverage sector in tanks, pipelines, and utensils; in automotive and transportation industries such as exhaust systems, engine parts, and structural components.

Conversely, Inconel alloys are designed to withstand high temperatures, are more heat-resistant, corrosive, and oxidative. This renders them essential in the aerospace industry in gas turbine blades, jet engines parts, exhaust systems and combustion chambers. Inconel is applied in the oil and gas industry in downhole tools, oil and gas wellhead components, and oil and gas offshore drilling equipment that are required to withstand harsh and corrosive conditions. It is also used in chemical processes, nuclear reactor, and also in the marine setting where the ability to withstand high temperature and corrosive conditions is of paramount importance.

Frequently Asked Questions About Inconel Vs Stainless Steel

How does Inconel 718 compare to 316 stainless steel?

Inconel 718 performs better than 316 stainless steel due to high-temperature strength and corrosion resistance. It also offers superior resistance to oxidation and scaling.

Should I choose Inconel 600 or stainless steel 304?

Stainless steel 304 is a versatile, cost-effective choice for general applications, while Inconel 600 excels in harsh conditions involving high heat, chemicals, or corrosive environments.

Is Inconel more expensive than stainless steel?

Yes, Inconel is significantly more expensive than stainless steel due to its high nickel content and complex manufacturing processes.

What makes Inconel better than stainless steel?

Inconel offers superior corrosion resistance and strength at high temperatures compared to stainless steel. However, at lower temperatures, certain steels like 17-4PH stainless may provide higher strength.

Inconel Alloy 625 Vs Inconel Alloy 718

Inconel Alloy 625 Vs Inconel Alloy 718

Among nickel-based superalloys, the decision between Inconel 625 and Inconel 718 may be the most crucial one that an engineer will have to make. Although they are members of the same family, the atomic structure and performance properties of the two are radically different. One is a guru of corrosion resistance, weldability and the other one is an unquestioned titan of high-temperature tensile strength.

Before diving into the technical specifications, you can browse our complete Inconel Products range to see the available forms for your project.

Key Differences at a Glance

The primary difference lies in how these alloys are hardened. Inconel 625 is a solid-solution strengthened alloy (using molybdenum and niobium), whereas Inconel 718 is precipitation hardenable (using aluminum and titanium to create an “age-hardening” effect).

Feature Inconel 625 (UNS N06625) Inconel 718 (UNS N07718)
Primary Attribute Exceptional Corrosion Resistance Exceptional Yield & Tensile Strength
Hardening Method Solid Solution Strengthening Precipitation (Age) Hardening
Weldability Excellent; rarely requires PWHT Good; requires careful heat control
Max Service Temp Up to 1800°F (982°C) Up to 1300°F (704°C)
Common Forms Inconel 625 Round Bars Inconel 718 Round Bars

Chemical Composition Comparison of Inconel 625 vs 718

The addition of Titanium and Aluminum in 718 allows it to undergo age-hardening, while the higher Molybdenum content in 625 provides its superior “pitting” protection.

Element Inconel 625 (%) Inconel 718 (%)
Nickel (Ni) 58.0 min 50.0 – 55.0
Chromium (Cr) 20.0 – 23.0 17.0 – 21.0
Iron (Fe) 5.0 max Balance
Molybdenum (Mo) 8.0 – 10.0 2.8 – 3.3
Niobium (Nb) 3.15 – 4.15 4.75 – 5.5
Titanium (Ti) 0.40 max 0.65 – 1.15
Aluminum (Al) 0.40 max 0.2 – 0.8

Mechanical Properties Comparison of Inconel 625 vs 718

When comparing Inconel 718 tensile strength vs 625, 718 is the clear winner. Its yield strength is nearly double that of 625 at room temperature, making it the preferred choice for high-stress fasteners and rotating components.

Property Inconel 625 Inconel 718 (Aged)
Tensile Strength 120–150 ksi (827–1034 MPa) 180–210 ksi (1241–1448 MPa)
Yield Strength (0.2%) 60–90 ksi (414–620 MPa) 150–175 ksi (1034–1206 MPa)
Elongation (%) 30–50% 12–25%
Hardness (Rockwell) B90 – C35 C36 – C44

Corrosion Resistance of Inconel 625 vs 718

Inconel 625 becomes victorious in the aqueous and chemical environments. Due to the Molybdenum and Chromium content, Alloy 625 has virtually complete immunity to the effect of chloride on the development of stress corrosion cracking. It is the gold standard of seawater service, sour gas (H 2 S ) and mineral acids.

Inconel 718 also has good corrosion resistance though it is a bit pitting prone under severe chloride conditions than 625. Most commonly it is selected due to its strength in corrosive environments and not necessarily its chemical inertness.

Temperature Performance of Inconel 625 vs 718

Cryogenic Behavior: Both alloys perform exceptionally well in sub-zero temperatures, maintaining ductility where carbon steels would shatter.

High Temperature: Inconel 625 maintains its stability up to higher absolute temperatures (1800°F) for oxidation resistance. However, Inconel 718 is preferred for load-bearing applications up to 1300°F because 625 begins to lose significant mechanical strength above 1200°F.

Weldability & Fabrication of Inconel 625 vs 718

Inconel 625 is widely considered the most weldable of all nickel alloys. It does not require post-weld heat treatment (PWHT) to maintain its properties. If you are welding Inconel 625 Pipes & Tubes, the process is straightforward with the right filler wire.

Inconel 718 is designed to be weldable without spontaneous cracking (a common issue with other age-hardened alloys), but it usually requires a full solution anneal and age-hardening cycle post-welding to regain its high-strength properties.

Industry Applications of Inconel 625 vs 718

Where you find Inconel 625:

  • Marine Engineering: Propulsion motors, exhaust ducts, and Inconel 625 Flanges.
  • Chemical Processing: Vessels handling highly corrosive acids.
  • Nuclear: Reactor core components.

Where you find Inconel 718:

  • Aerospace: Jet engine components, gas turbine blades.
  • Oil & Gas: High-pressure Inconel 718 Fasteners and wellhead components.
  • Space Exploration: Rocket motors and cryogenic tanks.

Decision Guide: When to Choose Which?

Choose Inconel 625 if:

  • Your primary concern is corrosion (seawater, acids, sour gas).
  • You need excellent weldability without complex post-weld heat cycles.
  • The application involves high-temperature oxidation but lower mechanical loads.
  • You are sourcing Inconel 625 Pipes & Tubes.

Choose Inconel 718 if:

  • Highest possible yield and tensile strength is required.
  • The component must withstand high stress at temperatures up to 1300°F.
  • You are manufacturing bolts, fasteners, or rotating shafts.
  • You are looking for Inconel 718 Seamless Pipes & Tubes for high-pressure service.

Price Comparison of Inconel 625 vs 718

Generally, Inconel 718 is slightly more expensive than Inconel 625. This is due to the more complex alloying elements (Al, Ti, Nb) and the intensive heat-treatment processes required to achieve its final strength properties. However, for many aerospace and high-pressure applications, the strength-to-weight ratio of 718 provides a lower “total system cost.”

View Inconel 625 Pipes & Tubes  |  View Inconel 718 Pipes & Tubes

See how all Inconel grades compare here or contact our technical team today for a custom quote.

Frequently Asked Questions About Inconel 625 vs Inconel 718

Is Inconel 718 stronger than 625?

Yes. Due to precipitation hardening, Inconel 718 has nearly double the yield strength of Inconel 625 at room temperature.

Which is more corrosion resistant?

Inconel 625 is generally more resistant to pitting and crevice corrosion, especially in seawater and harsh chemical environments, due to its higher Molybdenum content.

Can 625 replace 718?

Only if high strength is not the primary requirement. If a part is designed to take advantage of 718’s 150 ksi yield strength, 625 will likely fail under the same load.

Which Inconel is used in aerospace?

Both are used, but Inconel 718 is the “aerospace superalloy” staple for engine parts, while 625 is more common in exhaust systems and ducting.

Whether your project demands the corrosion-fighting power of 625 or the extreme strength of 718, Kalpataru Piping provides certified materials with full MTRs.

What is the difference between Inconel 625 and Inconel 718?
Inconel 625 is known for its excellent corrosion resistance, especially in seawater. Inconel 718 is stronger at higher temperatures and used in demanding structural applications like aerospace.
Incoloy 825 vs Inconel 625: The Ultimate Nickel Alloy Comparison

Incoloy 825 vs Inconel 625: The Ultimate Nickel Alloy Comparison

Incoloy 825 vs Inconel 625 is considered to be one of the most popular material selection choices in marine industry in oil and gas, chemical processing and engineering. They are both good corrosion alloys, both nickel-based, although they cannot be interchanged. Incoloy 825 (UNS N08825 / W.Nr. 2.4858) is a nickel iron chromium alloy that is used to reduce acidic conditions in the middle temperature regime. Inconel 625 (also known as UNS N06625, W.Nr. 2.4856) is a high temperature limit and chloride-resistant nickel-chromium-molybdenum alloy that is available in high mechanical strength.

Choose incorrect alloy and you will have to contend with premature corrosion, incomplete welds or overspecification that costs you your project budget. This is compared in terms of chemical composition, mechanical properties, temperature limits, corrosion resistance, weldability, cost and applications used in industries – everything that is needed to make the correct decision before sourcing.

Incoloy 825 and Inconel 625 Kalpataru Piping has supplied EPC contractors and end users in 40 plus countries with Incoloy 825 and Inconel 625 pipe, tube and fittings. All these are accompanied by full Mill test reports and third party inspection documents.

Chemical Composition of Incoloy 825 vs Inconel 625

Incoloy 825 vs Inconel 625 is one of the most popular choices of the material selection in the marine industry in oil and gas, chemical processing, and engineering. Both are nickel-based alloys with good corrosion credentials but they are not interchangeable. Incoloy 825 (UNS N08825 / W.Nr. 2.4858) is a nickel iron chromium alloy that is produced to reduce acidic environment in the middle temperature range. High temperature limits, resistance to chlorides and high mechanical strength Inconel 625 (also known as UNS N06625, W.Nr. 2.4856) is a high temperature, nickel-chromium-molybdenum alloy.

Choose the wrong alloy and you must contend with premature corrosion, incomplete welds or overspecification and lose your project budget. This comparison encompasses chemical composition, mechanical characteristics, temperature capabilities, resistance to corrosion, welding capabilities, cost and usages in the industry which is all one needs to make the right choice prior to sourcing.

Incoloy 825 and Inconel 625 pipe, tube and fittings have been sold by Kalpataru Piping to over 40 countries to contractors and end users of EPC. All this is accompanied with full Mill test reports and third party inspection documentation.

Element Incoloy 825 (%) Inconel 625 (%) Role in 825 Role in 625
Nickel (Ni) 38–46 58 min Base resistance High-temp base
Chromium (Cr) 19.5–23.5 20–23 Oxidation / acids Oxidation / pitting
Iron (Fe) 22 min 5 max Structural filler Controlled dilution
Molybdenum (Mo) 2.5–3.5 8–10 Crevice corrosion Pitting / crevice
Copper (Cu) 1.5–3.0 Reducing acid resist. Not present
Titanium (Ti) 0.6–1.2 Carbide stabiliser Not present
Niobium (Nb) 3.15–4.15 Not present High-temp strength

Mechanical Properties Comparison of Incoloy 825 vs Inconel 625

Property Incoloy 825 Inconel 625
Tensile strength (min) 690 MPa (100 ksi) 862 MPa (125 ksi)
Yield strength (0.2%) 310 MPa (45 ksi) 517 MPa (75 ksi)
Elongation (min) 30% 30%
Density 8.14 g/cm³ 8.44 g/cm³
Hardness (typical) ~87 HRB ~96 HRB

Temperature Performance of Incoloy 825 vs Inconel 625

Inconel 625 has a continuous operating temperature of up to 982degC (1800degF), almost twice that of Incoloy 825 (538degC) which is 1000degF. The disparity is attributed to the presence of niobium and molybdenum in the Inconel 625 that inhibits the formation of grain boundary precipitation and oxidation in extreme temperatures.

Incoloy 825 is technically perfect and more economical where the reducing acids are required at lower temperatures (below 538degC). Above 538degC -or any place there is thermal cycling, flame impingement, or combustion gasses Inconel 625 is the proper specification.

Corrosion Resistance of Incoloy 825 vs Inconel 625

Rule of thumb: Inconel 625 is the specification in case the operating environment is filled with chloride, is marine, or is pitting at risk. When the reducing acid is the main corrosive agent sulfuric phosphoric hydrofluoric Incoloy 825 is technically correct and less expensive.

Environment Incoloy 825 Inconel 625
Sulfuric acid (reducing) Excellent — Cu + Ni synergy ⚠ Limited
Phosphoric acid Excellent ⚠ Moderate
Chloride pitting ⚠ Moderate Excellent — high Mo
Seawater / marine immersion ⚠ Moderate Excellent
Crevice corrosion ⚠ Moderate Excellent
Stress corrosion cracking (Cl) ⚠ Susceptible Highly resistant
Sour gas (H2S) Good — NACE compliant grades Excellent
Oxidising acids (nitric) Good Good

Both alloys have NACE MR0175 / ISO 15156-compliant grades for H2S service — confirm grade and heat treatment condition with your supplier before specifying.

Incoloy 825 vs Inconel 625 Weldability and Fabrication

Industrial service In standard service both alloys can be welded without post-weld heat treatment (PWHT). The methods vary greatly in the choice of fillers and heat control.

  • Incoloy 825: Use ERNiCrMo-3 (or ERNiCrFe-5) to weld dissimilar joints. Less thermal sensitive than Inconel 625. Normal GTAW processes using argon shielding exist.
  • Inconel 625: Must contain filler wire of ERNiCrMo-3 (AWS A5.14 / ASME SFA-5.14 certified). The thermal conductivity is low resulting in speedy heat build-up in the HAZ. Thin sections and pipe are required as pulsed-current TIG. The maximum temperature of the interpass should be limited to 300 F (150 C). purge out all pipe root passes with argon.

View Inconel 625 Pipes & Tubes | View Incoloy 825 Pipes & Tubes 

 Cost Comparison of Incoloy 825 vs Inconel 625 Price

Incoloy 825 is also continuously the inexpensive alloy. The higher iron content (22% min vs 5% max in 625) replaces the costly nickel and eliminates the costly addition of niobium, which saves the costs of raw materials 30-50 percent compared to the product form and market environment.

Incoloy 625 has not been recommended in projects whose operating conditions are within the corrosion and temperature tolerance of Incoloy 825 – particularly in acid gas scrubbing, or processing phosphoric acid, and where the operating temperature is below 538degC – a move that is not an over-engineering measure but rather raises the cost of the project.

Industry Applications of Incoloy 825 vs Inconel 625

Industry Incoloy 825 — Typical Applications Inconel 625 — Typical Applications
Oil & Gas Acid gas scrubbers, sour gas pipelines, wellhead components Subsea risers, flexible pipes, umbilicals, FPSO components
Chemical Processing Sulfuric & phosphoric acid handling, heat exchangers High-temp reactors, catalyst regenerators
Marine Seawater cooling systems (moderate duty) Offshore structures, submarine systems, propulsion
Power Generation Flue gas desulfurization, heat recovery Gas turbine components, transition liners
Pollution Control Scrubbers, stacks, ductwork High-temp exhaust systems

Related product links: 

Inconel 625 Flanges | Incoloy 825 Plates & Sheets | Inconel 625 Round Bars | Incoloy 825 Fasteners

When to Choose Inconel 625

  •       Service temperature exceeds 538°C (1000°F)
  •       Exposure to chloride-rich environments — seawater, brine, marine splash zones
  •       Pitting or crevice corrosion is the primary failure mode
  •       High mechanical stress combined with corrosive environment
  •       Subsea or deepwater application requiring fatigue resistance
  •       Spec calls explicitly for UNS N06625 or W.Nr. 2.4856

When to Choose Incoloy 825

  •       Operating temperature is below 538°C (1000°F)
  •       Primary corrosive medium is sulfuric acid, phosphoric acid, or other reducing acids
  •       Budget is a constraint — Incoloy 825 delivers sufficient performance at lower cost
  •       Aqueous corrosion service without extreme chloride loading
  •       Sour gas service where NACE MR0175 compliance is required at moderate temperature
  •       Spec allows UNS N08825 or W.Nr. 2.4858 as an acceptable material

Browse Inconel 625 Products:

Browse Incoloy 825 Products:

Read our full Inconel vs Incoloy family comparison 

FAQs – Incoloy 825 vs Inconel 625

Is Inconel 625 better than Incoloy 825?

Not categorically. Inconel 625 is superior to Incoloy 825 in chloride and high temperature services. Incoloy 825 is an improved reducing acid service (sulfuric, phosphoric) and better cost bettor, unlike Inconel 625. Both alloys are not always the best, the correct one depends on the environment.

Which is cheaper, Incoloy 825 or Inconel 625?

Incoloy 825 is normally 30-50% cheaper than Inconel 625 in the same forms of products. This increment in price is forced by the fact that Inconel 625 contains a higher level of nickel (58% min vs 38-46) and that it has an expensive additive of niobium.

Can Incoloy 825 replace Inconel 625?

In some applications, yes. Service below 538degC at reducing acid, not subjected to extreme chloride loading, Incoloy 825 is technically acceptable and less costly. It cannot with high-temperature, seawater or high-stress applications.

Which alloy is better for sour gas service?

The alloys are both sour gas (H2S) service compliant grade (NACE MR0175). Incoloy 825 is very popular with sour gas wellheads and moderate temperature pipelines. Where temperature or mechanical requirements are beyond those of Incoloy 825, Inconel 625 is the material of choice.

Which is better for seawater applications?

The obvious solution to seawater immersion, offshore structures and marine splash zones would be Inconel 625. It has a very high molybdenum content (8-10%) and the high molybdenum content gives it better pitting and crevice corrosion resistance than Incoloy 825 does when exposed to sustained chloride environments.

What industries use Inconel 625 vs Incoloy 825?
Inconel 625 leads in energy, marine, aerospace, and harsh chemical. Incoloy 825 is preferred in chemical processing, pollution control, oil & gas (static parts), and nuclear waste.
Inconel vs Incoloy – Comprehensive Guide for Engineers, Procurement, and Industrial Applications

Inconel vs Incoloy – Comprehensive Guide for Engineers, Procurement, and Industrial Applications

One of the most frequent specification choices that engineers and procurement teams make when specifying nickel alloy bearings is between Inconel vs Incoloy. Both alloy families use nickel as a base element and that is as far as the similarities go. Inconel and Incoloy are different in terms of nickel content, maximum temperature, corrosion behaviour, weldability and cost.

This guide explains the Inconel vs Incoloy difference at a grade level, covering Inconel 625 vs Incoloy 825, Inconel 718 vs Incoloy 800, chemical composition, Inconel vs Incoloy temperature resistance, corrosion resistance, weldability, and cost that will give you a clear decision framework before you specify or source.

Kalpataru Piping has supplied both nickel-chromium and nickel-iron-chromium alloys to fabricators and EPC contractors across 40+ countries. Browse our complete Inconel Products range and Incoloy Products range to see available grades and forms.

 What is Inconel?

Inconel is a family of austenitic nickel-chromium superalloys containing 50–72% nickel. The high nickel content gives Inconel its exceptional resistance to oxidation, carburisation, and thermal fatigue at temperatures that would degrade stainless steel. The most widely specified grades are:

  • Inconel 600 — general-purpose high-temperature resistance; furnaces, heat exchangers
  • Inconel 625 (UNS N06625) — nickel-chromium-molybdenum-niobium; outstanding pitting, crevice, and stress corrosion resistance in seawater and sour gas. See our certified Inconel 625 Pipes & Tubes range.
  • Inconel 718 (UNS N07718) — age-hardenable; preferred where high strength and creep resistance above 700°C are required. See our Inconel 718 Pipes & Tubes range.
  • Inconel X-750 — spring and fastener applications in extreme heat

Inconel alloys are specified under ASTM B443 (plate/sheet), B444 (pipe/tube), and B446 (bar/wire), and are the default material under most aerospace, nuclear, and offshore standards where service exceeds 800°C.

What is Incoloy?

Incoloy is a family of nickel-iron-chromium alloys containing 30–45% nickel. The iron backbone reduces raw material cost while retaining corrosion resistance in aqueous, acidic, and moderately high-temperature environments. The most specified grades are:

  • Incoloy 800 / 800H / 800HT (UNS N08800/N08810/N08811) — heat-resistant grades for petrochemical furnaces and steam superheaters up to 980°C (creep-limited). See our certified Incoloy 800 Pipes & Tubes range.
  • Incoloy 825 (UNS N08825) — nickel-iron-chromium with molybdenum and copper additions; excellent in sulphuric acid, phosphoric acid, and seawater. A cost-effective alternative to Inconel 625 where temperatures permit. See our Incoloy 825 Pipes & Tubes range.
  • Incoloy 925 — age-hardenable version of 825; used in oil and gas completions equipment (tubing hangers, packers)

Incoloy alloys are covered under ASTM B423 (825 pipe/tube), B408 (800 bar), and B514/B515 (825 welded tube). They comply with ASME B31.3 and are widely used in chemical process and offshore applications rated below 600°C.

Chemical Composition — Inconel vs Incoloy

The most visible Inconel vs Incoloy difference is in the nickel, iron, and molybdenum percentages. Higher nickel and molybdenum directly drive corrosion performance and cost.

Grade Ni (%) Cr (%) Mo (%) Fe (%)
Inconel 625 58 min 20–23 8–10 5 max
Inconel 718 50–55 17–21 2.8–3.3 Balance
Incoloy 825 38–46 19.5–23.5 2.5–3.5 Balance
Incoloy 800H 30–35 19–23 Balance

 Inconel 625’s molybdenum content (8–10%) is more than double that of Incoloy 825 (2.5–3.5%), this is why Inconel 625 resists pitting and crevice corrosion in chloride environments that would attack Incoloy 825. Where that extra Mo content is not needed, specifying Incoloy is the cost-efficient decision.

Inconel vs Incoloy Temperature Resistance

Inconel vs Incoloy temperature resistance is the most decisive selection criterion for most engineers:

Grade Max Continuous Temp Oxidation Limit Typical Application
Inconel 625 980°C (1800°F) 1093°C (2000°F) Offshore, chemical reactors
Inconel 718 700°C (1292°F) creep 980°C (1800°F) Aerospace, gas turbines
Incoloy 800HT 898°C (1650°F) creep 1093°C (2000°F) Pyrolysis furnace tubes
Incoloy 825 450°C (842°F) aqueous 593°C (1100°F) Acid piping, heat exchangers

 

Note Incoloy 800HT can withstand up to 1093°C in oxidising atmospheres — but its strength at those temperatures is creep-limited. For mechanical loads above 700°C, Inconel 625 or 718 is the safer specification.

Inconel vs Incoloy Corrosion Resistance

Inconel vs Incoloy corrosion resistance diverges most sharply in the nature of the corrosive medium:

Environment Inconel Performance Incoloy Performance
Oxidising acids (HNO3) Excellent — high Cr content Good — adequate for moderate concentrations
Reducing acids (H2SO4, H3PO4) Good Excellent — Incoloy 825 preferred
Seawater / chloride pitting Excellent — Inconel 625 dominant spec Good — Incoloy 825 acceptable at lower temps
Sour gas (H2S, CO2) Excellent — NACE MR0175 compliant grades Limited — risk of stress corrosion cracking
High-temp oxidation / carburisation Excellent — primary advantage of Inconel Good (800H/HT); limited for 825 at temp
Caustic / alkali (NaOH) Good Good

 In seawater service, both families perform — Incoloy 825 at lower cost for static or low-velocity applications; Inconel 625 where crevice corrosion risk is critical (e.g. tube-to-tubesheet joints, threaded connections).

Inconel vs Incoloy Weldability

Inconel vs Incoloy weldability is not an even comparison:

  • Incoloy 825 and 800 weld readily using standard GTAW (TIG) or GMAW procedures. Preheat is not generally required for sections under 25 mm. Filler wire is ERNiFeCr-1 (825) or ERNiCr-3 (800). The wider weld pool and lower heat sensitivity make Incoloy significantly faster and cheaper to fabricate than Inconel.
  • Inconel 625 and 718 require precise heat control. Inconel 625 in particular has low thermal conductivity (9.8 W/m·K), causing heat to accumulate rapidly in the weld zone. Slow pool movement, strict interpass temperature limits (300°F / 150°C maximum), and certified ERNiCrMo-3 filler wire are all mandatory. See the full Inconel 625 welding procedure in the sections below.

If fabrication cost and speed are constraints and the operating conditions permit, Incoloy 825 offers 30–40% lower fabrication time than Inconel 625 on equivalent section thicknesses.

Inconel vs Incoloy Cost Comparison

The difference is Inconel vs Incoloy cost which is based on the raw alloy chemistry. The main cost drivers and Inconel has far more of both:

  • Incoloy 825 is 40-70% of the cost of Inconel 625 on a kilo-to-kilogram basis, varying by product form, and current prices of nickel.
  • The additional premium on Inconel 718 compared to 625 is due to the additional niobium and heat treatment requirement to harden the alloy.

Incoloy 800H/HT is the least expensive metal to use in high-temperature service when strength is not critical and the environment is non-chloride.

Incoloy 825 is best value in budget sensitive application, chemical plant heat exchanger, acid piping, offshore seawater service below 450degC. Inconel premium should only be spent when it is actually required by operating conditions.

When to Choose Inconel

  • Operating temperature exceeds 800°C (1472°F) continuously
  • Service environment is strongly oxidising — hot combustion gases, jet exhaust, furnace atmospheres
  • Specification requires sour gas resistance under NACE MR0175 / ISO 15156
  • Crevice corrosion or pitting in chloride/seawater is a primary failure mode
  • Aerospace, nuclear, or offshore codes mandate Inconel-grade material certifications (ASTM B443, B444, B446)
  • Pressure-retaining components at elevated temperature require high creep strength (specify Inconel 718)

When to Choose Incoloy

  • Operating temperature is below 800°C and material budget is constrained
  • Corrosive medium is reducing — sulphuric acid, phosphoric acid, or aqueous contaminated seawater
  • Application is heat exchangers, acid piping, or chemical process equipment below 600°C
  • Standard ASME B31.3 or API fabrication codes apply — Incoloy 825 or 800 will satisfy without over-engineering
  • Incoloy 825 is under consideration as a cost-effective alternative to Inconel 625 — confirm temperature and environment suitability first
  • Fabrication speed and weld ease are constraints — Incoloy processes 30–40% faster than Inconel 625

Inconel 625 Filler Wire: What to Specify and Why

Inconel 625 is a nickel chromium molybdenum alloy that resists high temperature and aggressive chemicals and seawater. It does not have high thermal conductivity (9.8 W/m*K) and hence heat builds up in the region of welds. It must be consciously heated in its slow weld pool, abilities that cannot be directly transferred to stainless steel work. The hot area (HAZ) can easily crack hot unless the process is done carefully.

Inconel 625 is used in the correct filler wire, EERNiCrMo-3 in virtually every application. It is identical to the base metal chemistry, and does not cause iron dilution (reducing molybdenum solubility and forming unwanted phases), nor reduces impact toughness. It satisfies mechanical requirements without any post-weld heat treatment (PWHT) and offers pitting and crevice corrosion resistance, and stress corrosion cracking resistance in sour gas and seawater service.

For a full range of certified Inconel 625 pipe and tube to pair with your fabrication specification, see our Inconel 625 Pipes & Tubes supply page.

Filler Wire Use Case Key Risk if Skipped
ERNiCrMo-3 (primary) Like-for-like Inconel 625 joints Phase instability, low ductility
ERNiCrFe-5 / Alloy 82 Dissimilar welds to carbon steel Elevated residual stress; no HAZ softening

 Filler Wire Diameter Selection

ERNiCrMo-3 is available in standard diameters. Select based on base metal thickness:

Base Metal Thickness Recommended Wire Diameter
< 3 mm 0.8–1.0 mm
3–6 mm 1.0–1.6 mm
6–12 mm 1.6–2.4 mm
> 12 mm 2.4–3.2 mm

 

For root passes on pipe, 1.6 mm is the standard starting point regardless of wall thickness.

 Do not substitute stainless steel or carbon steel filler rods. Iron dilution destroys the alloy’s corrosion resistance and mechanical integrity — the weld will not pass testing. Always verify lot certifications against AWS A5.14 / ASME SFA-5.14 and obtain complete Mill Test Reports (MTRs).

Pre-Heat for Inconel 625 Welding: When It’s Needed

Inconel 625 does not demand aggressive preheat — but base metal thickness governs the decision:

Thickness Preheat Purpose
< 6 mm None Distortion risk outweighs benefit
6–25 mm 150–200°F (65–93°C) Remove moisture; reduce thermal shock
> 25 mm ~300°F (150°C) Reduce HAZ cracking risk
Dissimilar joints Per WPS (150–300°F) Manage differential expansion

 Never substitute your Welding Procedure Specification (WPS) with project-specific requirements of preheat. Cap interpass temperature 300 o F (150 o C) unless your WPS tells you otherwise. Beyond this limit, the grain will grow and sensitise in the HAZ, both are non-verbal failure modes which will only be realised when the component is in service. 

A direct comparison of Inconel vs Incoloy weldability (including the behaviour of Incoloy 825 when subjected to similar preheat conditions) can be found on the Inconel vs Incoloy weldability comparison above.

TIG Welding Inconel 625: Step-by-Step Procedure

GTAW (TIG) is the preferred process for Inconel 625. This alloy requires precise heat control that only TIG consistently delivers. Follow these steps in order.

 Step 1 — Clean the Surface

Degrease with acetone. Remover mill scales and oxides. Apply with a special stainless steel wire brush – not carbon. Porosity or cracking will occur when there is any contamination of the weld pool.

Step 2 — Fit-Up and Tack

Aim for zero root gap. The cracks on the craters of Inconel 625 are usually formed by big beads on small throats. Space tack welds the root pass evenly to spread the heat evenly.

Step 3 — Machine Set-Up

DCEN polarity, 60120 A, argon shielding 15 20 cfh. HF arc start helps to stop tungsten contamination. Increase arc energy and fluidity of weld pool to heavier sections by adding up to 25 percent helium to argon shield.

Step 4 — Electrode Preparation

It should be 2% Thoriated or Ceritated tungsten. To a sharp taper sharpen with specific grinder. A sharp, rounded or dirty end results in arc drifting and tungsten in-growths. Hone prior to each session.

Step 5 — Welding Technique

Keep the arc length at about 3 mm. Hold the torch at 10-15 o. Apply pulsed current – by alternating peak and background amps, the bead is narrowed and the possibility of hot-cracking reduced. Insert filler wire on the front of the weld pool and pull out without collapsing the arc. Predominantly more grain growth or discolouration means there is too much heat input into it, decrease amperage or travel faster.

Step 6 — Multi-Pass Cooling

On places that are greater than 6 mm, permit cooling the weld to less than 300 o C amid passes. Take interpass temperature value using contact thermometer. Look at every run of product any defect in this process can be repaired in a few minutes; the same defect on a radiograph will occupy days.

The Inconel 625 weld pool moves significantly more slowly than stainless steel. Complete scrap practice before certified pipe welding , heat control instincts built on stainless steel will work against you here.

 Which Welding Process is Best for Inconel 625?

Process Suitability Notes
GTAW (TIG) First choice Best heat control; preferred for pipe and thin sections
GMAW (MIG) Acceptable for thick plate Higher deposition rate; less precision; avoid short-circuit transfer mode
SMAW (Stick) Field repair only Limited alloy-matched consumable availability; highly skill-dependent
SAW Not recommended Excessive heat input; iron dilution risk from flux

 Sourcing Inconel 718 pipe or tube for a related high-temperature application? See our Inconel 718 Pipes & Tubes range, same material certification standards apply.

Common Mistakes When You Weld Inconel 625

Carbon steel cleaning tools. Galvanic contamination is also caused by even trace particles. Apply nickel alloy stainless steel brushes and discs.

  • Wrong filler wire. The only quickest way to a failed corrosion test and a rejected component is to replace a lower grade or stainless filler with certified ERNiCrMo-3.
  • Excessive heat input. The accumulation of heat is rapid in Inconel 625. In the absence of pulsed current or tight interpass control, the grain growth and HAZ sensitisation proceeds follows, neither would appear until the part is in service.
  • No argon back purge pipe welds. Purge pipe bore with root passes using argon. A corroded internal surface becomes unresistant to corrosion, and cannot pass a radiograph inspection.
  • Skipping NDT. Radiography has also shown that there was absence of fusion and voids in welds that were visually clean. In the case of pressure retaining components, NDT is not optional, but mandatory.
  • Poor fit-up. The beads made by open root gaps are wide with a thick texture, and most likely to have craters. Check twice, tack accurately, and check root gap before devoting to root pass.

Post-Weld Inspection for Inconel 625

Employ a multi-layer NDT method: initial visual inspection is followed by a liquid penetrant to identify surface-breaking defects, and subsequent radiographic or ultrasonic testing to identify any indications subsurface on pressure-sensitive joints. Hardness tests are also necessary on sour-service and dissimilar-metal welds. Record every finding – adherence to either ASME IX or AWS D1.6 should be recorded prior to the service of the component.

Post-Weld Heat Treatment (PWHT)

Standard service like-for-like Inconel 625 welds do not need PWHT. Nevertheless, your WPS might need solution annealing (1093-1149 degC / 2000-2100 degF) on:

*Dissimilar metal joints where the carbon steel side requires to be relieved.

*Components going into cryogenic service.

*Projects in which end-user requirements require it.

In cases where no PWHT is needed, you should state this clearly in your weld record.

Conclusion: Weld Inconel 625 Right the First Time

Shortcuts cannot be made when welding Inconel 625. It requires a long period to weld, a lot of heat accumulation, and contamination, so each step in this guide has its cost: the right filler wire is specified, the preheat is applied, the TIG technique is employed using pulsed current, and the final step of the process is the completion of the NDT.

Wrong filler wire, loss of interpass temperature control and lack of argon back purge on pipe welds are the most prevalent causes of failure observed in practice. The removal of these three helps to remove most of the risk of rework at the weld.

For procurement decisions that extend beyond Inconel 625 welding, understanding the broader Inconel vs Incoloy difference is equally important. If your application runs below 800°C or involves reducing acid environments, Incoloy 825 Pipes & Tubes or Incoloy 800 Pipes & Tubes may offer equivalent corrosion protection at a lower material cost. For oxidising, extreme-temperature, or sour-gas service above that threshold, Inconel remains the required specification.

Read our full Inconel Grade Guide for a complete breakdown of 600, 625, and 718 grade selection, or view all Nickel Alloy Products available from Kalpataru Piping.

Certified source documentation matters. The minimum acceptable standard is AWS A5.14 / ASME SFA-5.14 with complete MTRs. Kalpataru Piping Solutions distributes ERNiCrMo-3 filler wire and Inconel 625 piping and tubing to oil and gas, chemical processing, marine, and power generation industries with full project inspection documentation packages.

Frequently Asked Questions About Inconel vs Incoloy

What is the main difference between Inconel and Incoloy?

Inconel is a nickel-chromium alloy (50-72% nickel) designed to operate at very high temperatures of over 800degC and in very oxidising conditions. A nickel-iron-chromium alloy (30-45% nickel) modified to moderate temperature corrosion service, especially in reducing acid and aqueous environments, is incoloy. The reduced nickel content means that Incoloy is much more economical in areas with a high temperature limit.

Is Inconel stronger than Incoloy?

Yes, higher temperatures, Incoloy Inconel 625 and 718 both have high tensile and creep strength at temperatures above 700 degC than any Incoloy grade. The difference in strength between the two decreases significantly at ambient and moderate service temperature, and at reduced material cost Incoloy 825 and 925 can satisfy most structural considerations.

Can Incoloy replace Inconel?

In certain service conditions only. Other options that are viable include incoloy: operating temperatures remain less than about 800 deg C and the corrosive media is reducing (sulphuric acid, phosphoric acid or seawater). Inconel is the necessary specification where temperatures rise above 800 o C, or where aerospace/nuclear codes are in operation.

Which is cheaper, Inconel or Incoloy?

With its lower levels of nickel and molybdenum, incoloy is always cheaper than Inconel. Inconel 625 is usually priced at a 40-70% higher than Incoloy 825 on a kilogram basis depending on product form and market conditions. Incoloy is the cost-effective alternative to use in budget sensitive projects where operating conditions allow.

What is the difference between Inconel 625 and Incoloy 825?

UNS N06625 Inconel Univamp 625 (IN 625) is a nickel-chromium-molybdenum alloy exhibiting excellent pitting, crevice corrosion and stress corrosion cracking resistance, continuous service up to 980 -C. Incoloy 825 (UNS N08825) is a nickel-iron-chromium alloy with good sulphuric and phosphoric acid resistance, and has a corrosive service rating of about 450 deg C in aqueous environments. High-temperature or sour gas: Offshore, high-temperature, or sour gas: specify Inconel 625. Below 450degC in acid heat exchanger or seawater: Incoloy 825 is the cost-effective offering.

Need Certified Material for Your Next Project?

Kalpataru Piping supplies AWS A5.14-compliant Inconel and Incoloy materials — pipe, tube, fittings, flanges, round bar, and filler wire — to fabricators and EPC contractors across 40+ countries, with full Mill Test Reports and project documentation packages.

Contact our technical team to discuss filler wire selection, wire diameter, grade qualification, and heat input parameters for your project — export@kalpatarupiping.com | +91 22-66337137

Hastelloy vs Monel: What Is the Difference?

Hastelloy vs Monel: What Is the Difference?

Nickel-based alloys play a crucial role in industries that demand materials resistant to corrosion, oxidation, and extreme temperatures. Amongst these, Hastelloy and Monel stand out for their exceptional performance, yet they serve different purposes due to their unique compositions and properties. This blog answers the common question on what is the difference between Monel and Hastelloy? Kalpataru Piping Solutions, a trusted manufacturer and supplier of premium nickel-based alloys, explains the composition, key grades, mechanical and chemical properties, applications, and price comparison to help engineers and procurement professionals make informed alloy selections.

What is Hastelloy?

Hastelloy Material is a trademarked family of corrosion-resistant metal alloys primarily composed of nickel, along with significant chromium, molybdenum, and iron content. Known for exceptional durability in harsh chemical and high-temperature environments, hastelloy alloy is favored in critical process applications involving aggressive media.

Hastelloy Chemical Composition

Typical Hastelloy chemical composition includes:

Component

Nickel (Ni)

Chromium (Cr)

Molybdenum (Mo)

Iron (Fe)

Others (Co, Ti, Mn)

Typical % Range

Majority

15–20%

10–16%

Up to 7%

Trace amounts

Role

Base element, corrosion resistance, thermal stability

Oxidation resistance enhancer

Resists pitting, crevice corrosion

Increases strength and stability

Minor alloying to enhance strength, corrosion resistance

Hastelloy Properties

Key Hastelloy mechanical properties include:

  • Superior tensile strength (up to around 800 MPa)
  • High melting point (~1320–1370 °C)
  • Excellent corrosion resistance across a broad range of chemicals
  • Outstanding thermal shock resistance and compatibility with welding processes

These properties make Hastelloy alloys usable in advanced aerospace, nuclear, and chemical processing sectors.

What is Monel?

Monel Material is a trademarked nickel-copper alloy known for its excellent corrosion resistance in saltwater and acidic environments. It is primarily used where toughness and corrosion resistance to marine and acidic conditions are important.

Monel Chemical Composition

Element

Nickel (Ni)

Copper (Cu)

Iron (Fe)

Manganese (Mn)

Others (C, Si, S, etc.)

Typical %

60–70%

20–30%

≤2.5%

≤2.0%

Trace amounts

Role

Primary base, structural stability, corrosion resistance

Enhances corrosion resistance in seawater and brine

Adds strength and toughness

Contributes to overall mechanical properties

Trace elements improve specific alloy characteristics



Monel Mechanical Properties

  • Good tensile strength range (varies widely, around 550–1100 MPa based on grade)
  • Moderate melting point (~1300–1350 °C)
  • Excellent resistance to seawater corrosion and biofouling
  • High work-hardening rate, giving good strength but making machining more challenging

Monel 400 vs Hastelloy C276: Grade Comparison

Two of the most popular grades representing these alloy families are Monel 400 and Hastelloy C276.

Hastelloy C276

Hastelloy C276 material is a versatile corrosion-resistant alloy with high molybdenum and chromium content, typically used in severe chemical environments. It shows remarkable resistance to oxidizing and reducing agents and is often employed in chemical reactors, heat exchangers, and pharmaceutical equipment.

Monel 400

Monel 400 alloy is the most widely used Monel grade, especially in marine and chemical service. Its robustness in seawater, resistance to biofouling, and moderate toughness make it ideal for piping, valves, and pump components.

Hastelloy vs Monel: Which is Better?

The Hastelloy melting point & monel melting points are varies depending on the specific grade. For example, Hastelloy C276 and Monel 400 each have different melting points, which makes them suited to different high-temperature applications. For instance:

Alloy

Melting Point (°C)

Hastelloy C276

1320–1370

Monel 400

1300–1350

Tensile Strength of Monel and Hastelloy

Alloy Tensile Strength (MPa)
Hastelloy C276 ~690–783
Monel 400 ~550–1100
While Monel 400 can achieve higher tensile strength through work hardening, Hastelloy offers more consistent strength at elevated temperatures.

Machinability of Monel vs Hastelloy

  • Hastelloy machinability is generally challenging due to hardness and toughness; specialized tools and slower feed rates are often necessary.
  • Monel machinability is better, though it work hardens and requires moderate machining care.

Corrosion Resistance: Monel vs Hastelloy Alloy

  • Hastelloy corrosion resistance is superior in oxidizing and reducing acids, offering long-term durability in aggressive chemical plants.
  • Monel 400 corrosion resistance excels in marine environments, resisting chloride stress corrosion and biofouling effectively.

Thermal Conductivity: Monel vs Hastelloy Alloy

  • Monel has slightly better thermal conductivity (~21 W/m·K) compared to Hastelloy (~11 W/m·K), which matters in heat exchanger and cooling system design.

Monel vs Hastelloy Price Comparison

Alloy

Average Price (USD/kg)

Hastelloy C276

$50–$70

Monel 400

$30–$50

Hastelloy is more expensive due to its complex alloying and enhanced performance. Monel is an economical choice for corrosion resistance in less severe conditions.

Hastelloy vs Monel: Uses

  • Hastelloy applications: Chemical reactors, nuclear fuel processing, aerospace parts, heat exchangers requiring resistance to oxidizing/reducing agents.
  • Monel applications: Marine hardware, desalination plants, acid pickling equipment, piping and valves in moderate chemical environments.

Hastelloy vs Monel: Which Should You Choose?

The choice is depends on the environment and mechanical demands:

  • Use Hastelloy for harsh chemical exposure, high temperature, and where mechanical strength cannot be compromised.
  • Use Monel for cost-effective corrosion resistance, especially in seawater or mild acid conditions.

Leading manufacturer & supplier for Monel and Hastelloy

Understanding the difference between Monel and Hastelloy is key for engineers and procurement professionals aiming to maximize asset longevity while controlling costs. Hastelloy leads in strength and chemical resilience; Monel offers superior marine corrosion resistance and machinability benefits. Selecting the optimum alloy depends on application specifics, durability needs, and budget constraints.

Kalpataru Piping Solutions is a leading manufacturer & supplier offering premium Hastelloy and Monel products, including sheets, plates, pipes, and fittings for diverse global industries.

FAQ – Hastelloy vs Monel

Is Hastelloy better than Monel?
Hastelloy is stronger and more resistant to high-temperature and chemical corrosion; Monel is better for marine environments.
How to choose between Monel and Hastelloy?
Consider the operating environment, corrosion type, temperature, and budget.
Is Monel suitable for shipbuilding?
Yes, Monel’s copper content offers excellent seawater corrosion resistance, ideal for marine construction.
Does Monel rust in seawater?
Monel is highly resistant to seawater corrosion, though maintenance is required in extremely aggressive conditions.
Can you weld Monel to Hastelloy?
Welding is possible but requires specialized filler metals and controlled procedures.
What is the difference between Monel 400 and Hastelloy C276?
Monel 400 is nickel-copper based with excellent marine resistance; Hastelloy C276 is nickel-chromium-molybdenum based with superior chemical and temperature resistance.
Why is Hastelloy more expensive than Monel?
Due to its alloy complexity, higher corrosion resistance, and superior mechanical properties in demanding environments.
Enquire Now
close slider

    Enquire Now

    Fill the below form and get in touch with us, we’ll call you back.

    Fill the Captcha:
    WhatsApp chat