[0001] The invention relates to a method for the diffusion treatment of corrosion-resistant
steel. A passive chromium oxide layer naturally forms on the surface of objects made
from corrosion-resistant chromium steel. While the passive layer protects against
corrosion, it also inhibits the diffusion of elements like carbon or nitrogen into
the steel during gas diffusion treatments (e.g., nitriding, carburizing, or nitrocarburizing)
and this inhibition prevents the desired improvement of the mechanical properties
of the workpiece surface. Consequently, the surface of the corrosion-resistant steel
workpiece must be activated before the diffusion treatment can proceed effectively.
[0002] Many methods exist for activating the surface of corrosion-resistant steel prior
to diffusion treatment. One common approach involves chemical processes where a chemical
compound is introduced into the processing space and this compound directly or indirectly
removes the passive oxide layer from the workpiece surface.
[0003] Patent TWI548778B discloses a method for activating the surface of corrosion-resistant
steels by placing the steel in a heating furnace, where the temperature is maintained
between 450 and 650°C, and heating it for 5 to 10 minutes in an atmosphere containing
water vapour and hydrochloric acid vapour to remove the passivation layer. Subsequent
to this treatment, the stainless steel is subjected to a low-temperature carburizing
or nitriding process.
[0004] Patent
EP4249625A1 discloses a method for the diffusion treatment of a high-alloy steel workpiece, which
involves loading the workpiece into a treatment furnace, introducing an activation
gas composed of gaseous ammonia and a liquid organic solvent (such as formamide, xylene,
or toluene), and then heating it to a temperature of 400°C to 500°C; a nitriding or
carbonitriding gas is then introduced, and the workpiece is heated to another temperature
at which the nitriding or carbonitriding process is carried out. While the activation
gas is being introduced into the furnace, the liquid organic solvent is added periodically.
It is introduced in portions of 10 ml to 80 ml at a uniform rate for 1 second to 2
minutes, with intervals of at least 10 minutes between each portion.
[0005] Patent
KR20120124941A discloses a method of diffusion nitriding wherein, in a first step after loading
a steel workpiece into a heat treatment furnace, the chamber's atmosphere is purged
at room temperature with gaseous ammonia (NH
3) to remove oxygen and establish an ammonia atmosphere; in a subsequent step, the
furnace chamber's temperature is raised to 200-500°C, and then while this temperature
is maintained, carbon tetrachloride (CCl
4) or tetrachloroethylene (C
2Cl
4) is injected into the chamber to remove the passive layer on the workpiece, after
which diffusion nitriding is carried out on the workpiece surface in an ammonia gas
(NH
3) atmosphere. The substances used in this method, carbon tetrachloride and tetrachloroethylene,
are classified as hazardous to both the environment and human health.
[0006] Patent description
WO2005068679A1 discloses a method for activating the surface of a high-alloy steel workpiece before
a diffusion treatment like gas nitriding or gas carburizing, which comprises introducing
into a furnace a carbon donor gas containing at least one compound selected from acetylene,
ethylene, propane, butane, and carbon monoxide, and ammonia as a nitrogen-containing
gas, and heating the component to at least 300°C. In the presence of a metal catalyst
in the furnace, hydrogen cyanide (HCN) is formed, which acts on the passive surface
of the workpiece. At a hydrogen cyanide concentration of 100 mg/m
3, the surface of the workpiece is activated. Following this activation, a diffusion
treatment is performed at a temperature of 550°C, which causes the precipitation of
nitrides or carbides.
[0007] The method disclosed in patent document
WO2006136166 involves the use of unsaturated hydrocarbons or halogenated hydrocarbons during the
nitriding and carburizing of corrosion-resistant steels.
[0008] Patent
EP0588458B1 discloses a method for nitriding austenitic steel that comprises heating the steel
in a gas atmosphere containing fluorine or fluorides to activate its surface, followed
by subjecting the activated steel to a nitriding atmosphere at a temperature below
450°C to form a nitrided layer. In this two-step process, the passive layer of the
stainless steel surface is converted into a fluorine-containing surface layer that
is permeable to nitrogen atoms in the subsequent nitriding step. However, using halogen-
or halide-containing gases for activation is a challenging method to apply. Such an
atmosphere is known to be aggressive towards the interior of process equipment and
can lead to severe pitting of the furnace, fittings, and other components.
[0009] Patent
JPH10219418A describes a method for activating the surface of corrosion-resistant steel using
acetone. First, a high-chromium alloy steel is placed in a nitriding furnace and heated
in an ammonia gas atmosphere. Once the steel reaches the target nitriding temperature,
acetone and hydrogen gas (as a carrier gas) are introduced into the furnace. The thermal
decomposition of the acetone on the steel's surface forms highly active carbon monoxide
and reducing radicals. This process degrades the passive layer on the high-chromium
steel, which facilitates subsequent nitriding with the ammonia gas.
[0010] Patent
EP0812929A1 discloses a method for the gas nitriding or carbonitriding of an alloy steel workpiece,
specifically corrosion-resistant steel with a chromium content exceeding 13%, within
an ammonia-containing atmosphere. Prior to nitriding or carbonitriding, the workpiece
undergoes pre-carburization. This involves introducing a dissociable carbon source,
typically an alcohol and preferably methanol, into a furnace heated to a temperature
of 500°C to 600°C. The pre-carburizing atmosphere is maintained with a methanol-to-nitrogen-containing
gas ratio of approximately 1:1, where the nitrogen-containing gas is preferably ammonia.
[0011] The aim of the invention was to develop a method for activating the surface of corrosion-resistant
steel subjected to gas diffusion treatment, with the method being effective and simple
to implement while not requiring additional operations, such as protecting cleaned
surfaces against re-passivation, the use of extra devices, or being harmful to the
environment. The solution according to the invention is designed to eliminate the
need to neutralize toxic gases for steel surface activation, while also being free
from the tendency to form deposits in the furnace and ensuring minimal wear of the
heating chamber's surface and its equipment.
[0012] The method of diffusion treatment of corrosion-resistant steel by nitriding or nitrocarburizing
comprises a step of loading the treated workpiece into a treatment furnace, a step
of introducing a treatment atmosphere, a step of heating the treatment atmosphere
to a temperature at which the nitriding or gas nitrocarburizing process is carried
out, and a step of introducing an activator to the surface of the treated workpiece,
wherein the treatment atmosphere for gas nitriding contains ammonia as a nitrogen
donor, while the treatment atmosphere for gas nitrocarburizing contains ammonia as
a nitrogen donor and carbon monoxide and/or carbon dioxide being a carbon donor, characterised
in that the activator such as alcohol or a mixture of alcohol with water in gaseous
or liquid form is introduced into the treatment atmosphere for the first time when
the treatment atmosphere reaches the target temperature for the process being conducted,
and then cyclically throughout the duration of the nitriding or gas nitrocarburizing
process, wherein the alcohol concentration is not less than 5% by volume, and the
amount of the activator supplied is not less than 10 ml per one diffusion treatment
process.
[0013] Preferably, the diffusion treatment is carried out at a temperature of at least 450°C
for a duration of at least 1 hour.
[0014] The activator is preferably dosed into the treatment atmosphere at a temperature
of at least 300°C.
[0015] Furthermore, the nitrogen potential (Kn) of the treatment atmosphere during the diffusion
treatment is preferably in the range of 0.1 to 15 atm
-1/2.
[0016] Preferably, the carbon potential Cp of the treatment atmosphere in the nitrocarburizing
process is not greater than 2%.
[0017] The method of diffusion treatment of corrosion-resistant steel according to the invention
is effective and does not require complicated setup. The substances used as activators
in the diffusion treatment process are environmentally safe, eliminating the need
for additional exhaust gas disposal. Furthermore, these substances prevent the formation
of deposits and do not cause excessive wear on the heating chamber's surface or equipment.
[0018] The method of diffusion treatment of corrosion-resistant steel is explained in more
detail through exemplary descriptions of the processes according to the invention,
illustrated in the figures, which include photographs of the surface of samples subjected
to nitriding treatment according to the invention, made with an optical microscope,
in which Fig. 1 shows a photograph of the sample surface after the nitriding process
at a temperature of 500°C and an ammonia flow rate of 5 I/min., Fig. 2 shows a photograph
of the sample surface after the nitriding process at a temperature of 500°C and an
ammonia flow rate of 15 I/min., Fig. 3 shows a photograph of the sample surface after
the nitriding process at a temperature of 500°C and an ammonia flow rate of 45 I/min.,
Fig. 4 shows a photograph of the sample surface after the nitriding process at a temperature
of 535°C and an ammonia flow rate of 5 I/min., Fig. 5 shows a photograph of the sample
surface after the nitriding process at a temperature of 535°C and an ammonia flow
rate of 15 I/min., Fig. 6 shows a photograph of the sample surface after the nitriding
process at a temperature of 535°C and an ammonia flow rate of 45 I/min., Fig. 7 shows
a photograph of the sample surface after the nitriding process at a temperature of
570°C and an ammonia flow rate of 5 l/ min ., Fig. 8 shows a photograph of the sample
surface after the nitriding process at a temperature of 570°C and an ammonia flow
rate of 15 I/min., Fig. 9 shows a photograph of the sample surface after the nitriding
process at a temperature of 570°C and an ammonia flow rate of 45 I/min., and Fig.
10 shows a photograph of the sample surface after the nitrocarburizing process at
a temperature of 570°C and an ammonia flow rate of 15 I/min.
Embodiment 1
[0019] Two samples of X30Cr13 material, cut from a 30 mm diameter rod, were prepared with
dimensions of 30 mm in diameter and 10 mm in height. The samples were loaded into
a retort furnace with a chamber volume of approximately 450 litres and a working space
of 400x400x600 mm. Each sample was placed in a basket on a mesh to ensure the free
flow of the atmosphere. Following the loading of the samples, heating of the furnace
to 360°C was initiated while the furnace retort was concurrently purged with a nitrogen
flow rate of 5 m
3/h. At 360°C, the inert gas atmosphere was exchanged for a nitriding atmosphere through
the introduction of ammonia at a constant flow rate of 50 I/min over a period of 1
hour. The nitriding atmosphere was then heated to the target nitriding temperature
of 570°C. The nitriding process was carried out for a duration of 5 hours with a constant
ammonia flow rate of 10 I/min and a nitrogen potential (Kn) in the range of 0.25 to
0.30 atm
1/2. During the nitriding process, an activator-a mixture of 20% ethyl alcohol and 80%
water-was introduced into the atmosphere. The activator was supplied in 20 ml portions
every 20 minutes, each over a period of 30 seconds. The first introduction occurred
when the nitriding atmosphere's temperature reached 570°C. Five hours after the initial
activator introduction, the furnace was purged with nitrogen and the samples were
cooled. The samples were removed from the furnace once the temperature had fallen
below 50°C.
[0020] The average thickness values of the diffusion layer formed on the samples and the
corresponding deviations are presented in Chart 1.

Embodiment 2
[0021] This embodiment describes nine nitriding processes performed on samples made of 440B
material. The samples, with dimensions of Ø30 x 10 mm, were cut from a 30 mm diameter
rod. In each process, two samples were nitrided. The nitriding was carried out in
the same furnace and with the same initial conditions as described in Embodiment 1.
The initial steps of loading the samples and preparing the furnace for nitriding were
identical to those described in Embodiment 1. The nitriding processes were conducted
using a combination of three distinct temperatures (500°C, 535°C, and 570°C) and three
corresponding ammonia flow rates (5, 15, and 45 I/min).
[0022] The following table lists the nitriding process parameters for each of the nine samples.
Table 1: Nitriding Process Parameters for 440B Samples (Ø30 x 10 mm) from Embodiment
2
| Sample No. |
Process temperature [°C] |
Ammonia flow rate [l/min] |
Nitrogen potential Kn [atm 1/2] |
| 1 |
500 |
5 |
2.7 - 2.8 |
| 2 |
500 |
15 |
6.5 - 6.8 |
| 3 |
500 |
45 |
10.0 - 11.0 |
| 4 |
535 |
5 |
0.6 - 0.7 |
| 5 |
535 |
15 |
2.4 - 2.5 |
| 6 |
535 |
45 |
4.5 - 4.8 |
| 7 |
570 |
5 |
0.2 - 0.25 |
| 8 |
570 |
15 |
2.4 - 2.5 |
| 9 |
570 |
45 |
4.5 - 4.8 |
[0023] Each nitriding process was carried out for 10 hours. During the nitriding process,
a 20 ml activator-a mixture of 50% ethyl alcohol and 50% water-was introduced into
the nitriding atmosphere according to the scheme described in Embodiment 1. Following
the nitriding, the posttreatment procedure was continued as detailed in Embodiment
1.
[0024] The average thickness values of the diffusion layer formed on the samples and the
corresponding deviations are presented in Chart 2.
[0025] Optical microscope photographs of the sample surfaces, obtained after each of the
nine nitriding processes, are shown in Figs. 1-9.

Embodiment 3
[0026] This embodiment describes the nitro-carburizing process for samples of X30Cr13 material.
The samples, with dimensions of Ø30 x 10 mm, were cut from a 30 mm diameter rod. The
initial steps of loading the samples and preparing the furnace for nitriding were
identical to those described in Embodiment 1. The nitro-carburization process was
carried out in the furnace described in Embodiment 1. The process parameters included
a constant ammonia flow rate of 15 I/min and a nitrogen potential (Kn) in the range
of 0.37 to 0.42 atm
1/2. A carbon-bearing gas was also introduced to maintain a carbon potential (Cp) in
the range of 0.6 to 0.7. Nitro-carbonation processes were carried out at 570°C and
flow rate of 15 I/min or 45 I/min. Each nitro-carbonation process was carried out
for 5 hours. During the nitriding process, a 20 ml activator a mixture of 50% ethyl
alcohol and 50% water was introduced into the nitriding atmosphere according to the
scheme described in Embodiment 1. After completion of the nitrocarburizing process
, the procedure described in Example 1 was continued.
[0027] The average thickness values of the diffusion layer formed on the samples and the
corresponding deviations are presented in Chart 3.

[0028] Figure 10 shows a photograph of the sample's surface, taken with an optical microscope
after the nitro-carburization process.
1. The method of diffusion treatment of corrosion-resistant steel by nitriding or nitrocarburizing
comprises a step of loading the treated workpiece into a treatment furnace, a step
of introducing a treatment atmosphere, a step of heating the treatment atmosphere
to a temperature at which the nitriding or gas nitrocarburizing process is carried
out, and a step of introducing an activator to the surface of the treated workpiece,
wherein the treatment atmosphere for gas nitriding contains ammonia as a nitrogen
donor, while the treatment atmosphere for gas nitrocarburizing contains ammonia as
a nitrogen donor and carbon monoxide and/or carbon dioxide being a carbon donor, characterised in that the activator such as alcohol or a mixture of alcohol with water in gaseous or liquid
form is introduced into the treatment atmosphere for the first time when the treatment
atmosphere reaches the target temperature for the process being conducted, and then
cyclically throughout the duration of the nitriding or gas nitrocarburizing process,
wherein the alcohol concentration is not less than 5% by volume, and the amount of
the activator supplied is not less than 10 ml per one diffusion treatment process.
2. The method according to claim 1, characterised in that the diffusion treatment is carried out at a temperature of at least 450°C for a duration
of at least 1 hour.
3. The method according to claim 1, characterised in that the activator is dosed into the processing atmosphere at a temperature of at least
300°C.
4. The method according to claim 1, characterised in that the nitrogen potential (Kn) of the treatment atmosphere during the diffusion treatment
is in the range of 0.1 to 15 atm -1/2.
5. The method according to claim 1, characterised in that the carbon potential Cp of the treatment atmosphere in the nitrocarburizing process
is not greater than 2%.