EP1577402A1 - Method of refining metal surface and metal product by the method - Google Patents
Method of refining metal surface and metal product by the method Download PDFInfo
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- EP1577402A1 EP1577402A1 EP03768204A EP03768204A EP1577402A1 EP 1577402 A1 EP1577402 A1 EP 1577402A1 EP 03768204 A EP03768204 A EP 03768204A EP 03768204 A EP03768204 A EP 03768204A EP 1577402 A1 EP1577402 A1 EP 1577402A1
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- Prior art keywords
- metal product
- shots
- projectiles
- metal
- area
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- C—CHEMISTRY; METALLURGY
- C21—METALLURGY OF IRON
- C21D—MODIFYING THE PHYSICAL STRUCTURE OF FERROUS METALS; GENERAL DEVICES FOR HEAT TREATMENT OF FERROUS OR NON-FERROUS METALS OR ALLOYS; MAKING METAL MALLEABLE, e.g. BY DECARBURISATION OR TEMPERING
- C21D7/00—Modifying the physical properties of iron or steel by deformation
- C21D7/02—Modifying the physical properties of iron or steel by deformation by cold working
- C21D7/04—Modifying the physical properties of iron or steel by deformation by cold working of the surface
- C21D7/06—Modifying the physical properties of iron or steel by deformation by cold working of the surface by shot-peening or the like
Definitions
- This invention relates to a method for fining a surface of a metal product to form crystal grains having sizes less than 1 ⁇ m at its surface and for producing a metal product thereby.
- Literature 1 discloses that a micro-structure having fine grain sizes in a surface layer with a high dislocation density that is formed by shot peening is useful to improve the fatigue characteristics of a metal product.
- Literature 1 A. Niku-Lari, First International Conference on Shot Peening, United Kingdom, Pergamon Press, 1981, p. 192.
- Literature 1 does not disclose forming crystal grains having sizes of less than 1 ⁇ m. Namely, it does not disclose mechanisms and conditions to form crystal grains having sizes of less than 1 ⁇ m.
- This invention is directed to solve this problem. Namely, the purpose of this invention is to provide a method for fining a surface of a metal product to form crystal grains having sizes of less than 1 ⁇ m at its surface.
- the purpose of this invention is to provide a metal product that is treated by the method.
- the method according to this invention is comprised of a process for forming crystal grains having sizes of less than 1 ⁇ m at the surface of the metal product by projecting or peening shots or projectiles while the power per unit of area of the surface is controlled at a predetermined value.
- this invention is comprised of a method for forming crystal grains having sizes of less than 1 ⁇ m at the surface of the metal product by projecting or peening shots or projectiles while the power per unit of area of the surface, which power is caused by projecting or peening shots or projectiles, is controlled at a predetermined value.
- the metal product is treated by this method.
- the fatigue strength, the hardness, and the corrosion resistance of the metal product can be improved by forming crystal grains having sizes of less than 1 ⁇ m at the surface of the metal product.
- This invention relates to a method comprising a process for forming crystal grains having sizes of less than 1 ⁇ m at the surface of the metal product by projecting or peening shots or projectiles while the power per unit of area of the surface, which power is caused by projecting or peening shots or projectiles, is controlled at a predetermined value.
- a steel or non-ferrous metal can be used as the material for the metal product of this invention.
- the surface of the metal product is defined as a portion near the surface that can be affected by projecting the shots or projectiles.
- the depth of the portion that is affected by projecting the shots or projectiles depends on the velocity and mass of the shots or projectiles and the period for projecting them when the surface of the metal product is projected upon by them.
- the hardness of the shots or projectiles be equal to or higher than that of the metal product. It is also acceptable that the hardness of the shots or projectiles be lower than that of the metal product, if its surface can be hardened.
- the reason the power per unit of area of the surface, which power is caused by projecting or peening shots or projectiles, is controlled at a predetermined value, is as follows:
- the power per unit of area of the surface which power is caused by projecting the shots or projectiles, affects the fining of the micro-structure of the surface of the metal product.
- nanocrystals without repeatedly projecting the shots or projectiles, such as by the shot-peening.
- a unit of area of the surface is defined as the sum of the contact surfaces that are projected upon by the shots or projectiles. Namely, “a unit of area” is calculated by multiplying the contact surface from a projectile or a shot by the number of the shots or projectiles, based on the assumption that the marks (surfaces contacted by the shots or projectiles) on the surface by projecting the shots or projectiles do not overlap. Thus, when the marks on the surface do overlap, "a unit of area” is calculated by subtracting the overlapped areas calculated based on the number of shots or projectiles that have their contact surfaces overlap from the sum of the contact surfaces. Thus, basically "the unit of area” does not correspond to the surface that is treated by the shot-peening.
- Fig. 1 shows an apparatus of the first embodiment of this invention.
- This apparatus 10 for projecting the projectiles can project a metal ball 11 having a diameter of 4 mm on the surface of the metal product 12 through the nozzle 13 with compressed gas at a high speed.
- Table 1 shows the working conditions for projecting the projectiles and the results of the treatment.
- This treatment increases the strength of the portion of the surface since the process is instantaneously completed. Namely, nanocrystals can be formed because the small area of the surface of the metal product 12, which is projected upon by the ball 11, is quickly processed.
- the growth of the grain size in the area having nanocrystals is very slow.
- the area having nanocrystals is clearly distinguished from the other areas hardened by ordinary working or made from base materials, based on the change of the state of the micro-structure of the surface or its hardness by heating them.
- Fig. 2 shows an apparatus of the second embodiment of this invention.
- This apparatus 20 for dropping a weight can freely drop a weight 21 made of metal on the surface of the metal product 22 and cause a collision between the surface of the metal product 22 and the weight 21, to treat its surface.
- Table 1 shows the working conditions for dropping the weight and the results of the treatment.
- the metal product 22 to be treated to form nanocrystals on the surface 22A is located in the bottom of the cylinder (not shown in the Figs.).
- the metal product 22 is already machined so that it has a final configuration and cannot move in the cylinder since the configuration of the outside of the metal product closely corresponds to that of the inside of the cylinder (not shown).
- the metal weight 21 is placed at the upper part in the cylinder.
- a protrusion 21A is disposed at the surface of the metal weight 21, and the protrusion has a predetermined height (3 mm) from the surface of the weight 21.
- the protrusion 21A is disposed at the location on the weight that is opposite the point where nanocrystals should be formed on the surface 22A of the metal product 22.
- the force which is defined as a temporal response to the kinetic momentum, acts on the portion of the metal product 22 with which the protrusion 21A collides. Since the collision is completed in a short time, the strength of the portion of the metal product with which the protrusion collides increases significantly.
- the power per unit of area that is, the power per depressed area produced by the protrusion or the contact area of it, should be at least 11 KJ/sec * mm 2 .
- the accumlated kinetic momentum of the metal weight is not important, but the power per depressed area is important.
- the power per depressed area is less than 11 KJ/sec * mm 2
- no nanocrystal is formed at the surface 22A of the metal product 22. Namely, when the protrusion 21A collides with the surface 22A of the metal product 22 with a power per depressed area of more than 11 KJ/sec * mm 2 , a nanocrystal is formed at the portion with which the protrusion 21A collides.
- the protrusion be a hemispherical protrusion that projects at a height (h) of 1-10 mm from the surface of the metal weight 21.
- the protrusion may have a shape of an ellipse. If a plurality of the portions on the surface of the metal product to be treated to form nanocrystals are required, the plurality of the protrusions 21A opposite the portions may be disposed at the surface of the metal weight.
- the kinetic momentum explained above is defined as a function of the mass (M) of the metal weight 21 and the speed (V) of it at the moment that the protrusion collides.
- the mass (M) of the metal weight 21 is set between 0.1-10 Kg, and the speed of the weight at the moment that the protrusion collides is set at more than 1 m/sec, the power per depressed area of more than 11 KJ/sec * mm 2 is achieved, and the nanocrystals can be formed at the surface of the metal product.
- the metal weight 21 having the plurality of the protrusions 21A When the metal weight 21 having the plurality of the protrusions 21A is used, it is necessary to set the weight colliding with the surface 22A of the metal product 22 to the value that equals the product of the number of protrusions times the mass of the weight having a protrusion (between 0.1-10 Kg). Then, the process is completed by dropping the weight at a speed of more than 1 m/sec. Since the value of the kinetic momentum divided by the total depressed area caused by all the protrusions 21A and the deformation period satisfies the power per depressed area of more than 11 KJ/sec * mm 2 , the nanocrystals can be formed at the portions of the surface of the metal product.
- Fig. 3 shows an apparatus of the third embodiment of this invention.
- This shot-peening apparatus 30 can project shots 31 having a diameter of 50 ⁇ m, which shots 31 are made from steel, on the surface of the metal product 32 with compressed air through a nozzle 33.
- Table 1 shows the working conditions of the shot peening and the results of the treatment. From Table 1, it is found that the power per unit of area of the third embodiment to produce nanocrystals is larger than that of the first and the second embodiments.
- the pressure of the compressed air is controlled so that the projecting speed of the shots 31 at the metal product becomes 150-200 m/sec. If it is required that the entire area of the surface of the metal product be treated by shot peening, it can be treated by moving the metal product 32 so that the shots are projected over the entire area. A layer constituted of a fine crystal having grain sizes of less than 100 nm is formed at the surface of the metal product 32 by means of this shot peening process. It is found that the hardness of the layer having the fine crystal is significantly increased.
- Fig. 4 shows a photomicrograph of the surface of the metal product that is treated by the method of the third embodiment of this invention.
- Fig. 5 also shows a photomicrograph of the crystal grain that is fined by the method of the third embodiment of this invention.
- the layer constituted of a fine crystal can be formed at the surface of the metal product 32 by using the method of the third embodiment of this invention, its hardness significantly increases.
- the strength of the metal product 32 also increases, and the fatigue strength and corrosion resistance of the metal product can be improved.
- Fig. 3 shows an apparatus of the fourth embodiment of this invention, which figure is the same figure as that shown for the third embodiment.
- This shot-peening apparatus 30 can project shots 31 having a diameter of 50-300 ⁇ m and made from stainless steel on the surface of the metal product 32 with compressed air through a nozzle 33.
- Table 1 shows the working conditions of the shot peening and the results of the treatment. From Table 1, it is found that the power per unit of area of this embodiment to produce nanocrystals is larger than that of the first and the second embodiments.
- the pressure of the compressed air is controlled so that the projecting speed of the shots 31 on the metal product becomes 80 m/sec. If it is required that the entire area of the surface of the metal product be treated by the shot peening, it can be treated by moving the metal product 32 so that the shots are projected at the entire area.
- a layer constituted of a fine crystal having grain sizes of less than 100 nm is formed at the surface of the metal product 32 by means of this shot peening process. It is found that the hardness of the layer having the fine crystal is significantly increased. Shots made not only from stainless steel, but also from high-carbon steel or ferrous metallic glass, can be used. Further, shots having a range of diameters of 30 ⁇ m to 2000 ⁇ m can be used.
- a layer constituted of a fine crystal can be formed at the surface of the metal product 32 by using the method of the fourth embodiment of this invention, its hardness significantly increases.
- the strength of the metal product 32 also increases, and the fatigue strength and corrosion resistance of the metal product can be improved.
- a work hardening is caused at the surface. It is well known that the degree of the work hardening of the metal is proportional to the square root of its dislocation density.
- the rate of the work hardening decreases gradually as the degree of working increases.
- the dislocation density of the grains increases. Then, when the dislocation density reaches a critical value, a dislocation-cell structure changes to a grain-boundary structure.
- the fining of the micro-structure of the surface of the metal product is improved by projecting the projectiles or the shots to the surface while the temperature of the metal surface is controlled to be between room temperature and -150 °C. It is difficult for the number of the dislocations of the grains to reach the critical dislocation density. This allows the grains to be recrystallized, since the recovery rate of the dislocations of the grains increases with the increased temperature of the surface due to the continuius projection of the projectiles or the shots. However, in the condition at low temperature, since the recovery rate of the grain structure which is fined by projecting the projectiles or the shots decreases, it becomes easy for the number of the dislocations of the grain to increase. Namely, it become easy for the dislocation density to reach the critical value, which value allows the grain to be fined.
- liquid nitrogen temperature: -196 °C
- liquid carbon dioxide temperature: -79 °C
- This invention relates to a method for fining a surface of a metal product to form crystal grains having sizes less than 1 ⁇ m at its surface and to produce the metal product by the method.
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- Engineering & Computer Science (AREA)
- Crystallography & Structural Chemistry (AREA)
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- Metallurgy (AREA)
- Organic Chemistry (AREA)
- Other Surface Treatments For Metallic Materials (AREA)
Abstract
This invention relates to a method for fining a surface of a metal
product to form crystal grains having sizes less than 1 µm at their surfaces
and the metal product produced thereby. The method is comprised of a
process for forming crystal grains having sizes less than 1 µm at the surface
of the metal product by projecting or peening shots or projectiles while a
power per unit of area of the surface, which power is caused by projecting or
peening shots or projectiles, is controlled at a predetermined value.
Description
This invention relates to a method for fining a surface of a metal
product to form crystal grains having sizes less than 1 µm at its surface and
for producing a metal product thereby.
It is well known that when a surface of a metal product has been
projected upon by shot peening, the micro-structure of the surface can be
fined. (See Literature 1.) Literature 1 discloses that a micro-structure
having fine grain sizes in a surface layer with a high dislocation density that
is formed by shot peening is useful to improve the fatigue characteristics of a
metal product.
Literature 1: A. Niku-Lari, First International Conference on Shot
Peening, United Kingdom, Pergamon Press, 1981, p. 192.
However, Literature 1 does not disclose forming crystal grains having
sizes of less than 1µm. Namely, it does not disclose mechanisms and
conditions to form crystal grains having sizes of less than 1µm.
This invention is directed to solve this problem. Namely, the
purpose of this invention is to provide a method for fining a surface of a
metal product to form crystal grains having sizes of less than 1µm at its
surface.
Further, the purpose of this invention is to provide a metal product
that is treated by the method.
To achieve the purpose, the method according to this invention is
comprised of a process for forming crystal grains having sizes of less than 1
µm at the surface of the metal product by projecting or peening shots or
projectiles while the power per unit of area of the surface is controlled at a
predetermined value.
According to this invention, it is possible to improve fatigue strength,
hardness, and a corrosion resistance of a metal product by forming crystal
grains having sizes of less than 1µm at the surface of the metal product.
As explained above, this invention is comprised of a method for
forming crystal grains having sizes of less than 1µm at the surface of the
metal product by projecting or peening shots or projectiles while the power
per unit of area of the surface, which power is caused by projecting or
peening shots or projectiles, is controlled at a predetermined value. The
metal product is treated by this method. Thus, according to this invention,
the fatigue strength, the hardness, and the corrosion resistance of the metal
product can be improved by forming crystal grains having sizes of less than 1
µm at the surface of the metal product.
Below, the preferred embodiments of this invention are explained.
This invention relates to a method comprising a process for forming crystal
grains having sizes of less than 1µm at the surface of the metal product by
projecting or peening shots or projectiles while the power per unit of area of
the surface, which power is caused by projecting or peening shots or
projectiles, is controlled at a predetermined value.
A steel or non-ferrous metal can be used as the material for the metal
product of this invention. The surface of the metal product is defined as a
portion near the surface that can be affected by projecting the shots or
projectiles. The depth of the portion that is affected by projecting the shots
or projectiles depends on the velocity and mass of the shots or projectiles and
the period for projecting them when the surface of the metal product is
projected upon by them.
It is preferable that the hardness of the shots or projectiles be equal
to or higher than that of the metal product. It is also acceptable that the
hardness of the shots or projectiles be lower than that of the metal product, if
its surface can be hardened.
The reason the power per unit of area of the surface, which power is
caused by projecting or peening shots or projectiles, is controlled at a
predetermined value, is as follows:
In this invention, it is found that the power per unit of area of the
surface, which power is caused by projecting the shots or projectiles, affects
the fining of the micro-structure of the surface of the metal product.
Namely, it is possible to produce nanocrystals without repeatedly
projecting the shots or projectiles, such as by the shot-peening.
"A unit of area" of the surface is defined as the sum of the contact
surfaces that are projected upon by the shots or projectiles. Namely, "a unit
of area" is calculated by multiplying the contact surface from a projectile or a
shot by the number of the shots or projectiles, based on the assumption that
the marks (surfaces contacted by the shots or projectiles) on the surface by
projecting the shots or projectiles do not overlap. Thus, when the marks on
the surface do overlap, "a unit of area" is calculated by subtracting the
overlapped areas calculated based on the number of shots or projectiles that
have their contact surfaces overlap from the sum of the contact surfaces.
Thus, basically "the unit of area" does not correspond to the surface that is
treated by the shot-peening.
However, it is possible to use a surface area of the metal product
treated by the shot-peening as "the unit of area," under a certain
assumption.
Below, the first embodiment is explained.
Fig. 1 shows an apparatus of the first embodiment of this invention.
This apparatus 10 for projecting the projectiles can project a metal ball 11
having a diameter of 4 mm on the surface of the metal product 12 through
the nozzle 13 with compressed gas at a high speed. Table 1 shows the
working conditions for projecting the projectiles and the results of the
treatment. This treatment increases the strength of the portion of the
surface since the process is instantaneously completed. Namely,
nanocrystals can be formed because the small area of the surface of the
metal product 12, which is projected upon by the ball 11, is quickly
processed.
In comparison with the area hardened by ordinary working or made
from base materials, the growth of the grain size in the area having
nanocrystals is very slow. Thus, the area having nanocrystals is clearly
distinguished from the other areas hardened by ordinary working or made
from base materials, based on the change of the state of the micro-structure
of the surface or its hardness by heating them. Since the grain size in the
area hardened by working become very coarse, and the hardness of the area
is reduced by heating it (the hardness of the surface is reduced from 450 Hv
to 310 Hv in Vickers hardness), it is recognized that the growth of the grain
sizes in the area having nanocrystals is very slow, and the decrease of the
hardness of the area is little (the hardness of the area is reduced from 700
Hv to 650 Hv) by heating it.
It can be seen that an area having nanocrystals is formed, by
investigating the behavior of a recrystallization.
Now, the second embodiment is explained.
Fig. 2 shows an apparatus of the second embodiment of this
invention. This apparatus 20 for dropping a weight can freely drop a weight
21 made of metal on the surface of the metal product 22 and cause a collision
between the surface of the metal product 22 and the weight 21, to treat its
surface. Table 1 shows the working conditions for dropping the weight and
the results of the treatment. In this apparatus 20, the metal product 22 to
be treated to form nanocrystals on the surface 22A is located in the bottom of
the cylinder (not shown in the Figs.).
In this embodiment, the metal product 22 is already machined so
that it has a final configuration and cannot move in the cylinder since the
configuration of the outside of the metal product closely corresponds to that
of the inside of the cylinder (not shown). The metal weight 21 is placed at
the upper part in the cylinder. As explained below, a protrusion 21A is
disposed at the surface of the metal weight 21, and the protrusion has a
predetermined height (3 mm) from the surface of the weight 21. The
protrusion 21A is disposed at the location on the weight that is opposite the
point where nanocrystals should be formed on the surface 22A of the metal
product 22.
The metal weight, which is placed at the upper part in the cylinder,
drops freely. Consequently, the protrusion 21A of the metal weight collides
with the predetermined portion of the surface 22A of the metal product 22.
If the mass of the metal weight is defined as M (Kg), and the velocity of the
metal weight 21 when it collides with the surface of the metal product 22 is
defined as V (m/sec), then V is given as follows:
V= 2gH
(g: acceleration of gravity; H: distance that the weight falls)
Namely, the protrusion 21A of the metal weight 21 collides with the
surface 22A of the metal product 22 at the following kinetic momentum:
M* 2gH (Kg * m/sec)
Consequently, the force, which is defined as a temporal response to
the kinetic momentum, acts on the portion of the metal product 22 with
which the protrusion 21A collides. Since the collision is completed in a
short time, the strength of the portion of the metal product with which the
protrusion collides increases significantly.
Namely, since the small area of the metal product is intensively
worked in a very short time by the collision of the protrusion 21A of the
metal weight 21, it is easy to form nanocrystals.
According to the result of the examination of this embodiment, the
power per unit of area, that is, the power per depressed area produced by the
protrusion or the contact area of it, should be at least 11 KJ/sec * mm2.
Namely, the accumlated kinetic momentum of the metal weight is not
important, but the power per depressed area is important.
If the power per depressed area is less than 11 KJ/sec * mm2, no
nanocrystal is formed at the surface 22A of the metal product 22. Namely,
when the protrusion 21A collides with the surface 22A of the metal product
22 with a power per depressed area of more than 11 KJ/sec * mm2, a
nanocrystal is formed at the portion with which the protrusion 21A collides.
It is preferable that the protrusion be a hemispherical protrusion
that projects at a height (h) of 1-10 mm from the surface of the metal
weight 21. The protrusion may have a shape of an ellipse. If a plurality of
the portions on the surface of the metal product to be treated to form
nanocrystals are required, the plurality of the protrusions 21A opposite the
portions may be disposed at the surface of the metal weight.
The kinetic momentum explained above is defined as a function of
the mass (M) of the metal weight 21 and the speed (V) of it at the moment
that the protrusion collides. When the metal weight 21 having the
protrusion 21A, which has a hemispherical configuration and a height of 1-10
mm, is used in the experiments of this invention, the mass (M) of the
metal weight 21 is set between 0.1-10 Kg, and the speed of the weight at
the moment that the protrusion collides is set at more than 1 m/sec, the
power per depressed area of more than 11 KJ/sec * mm2 is achieved, and the
nanocrystals can be formed at the surface of the metal product.
When the metal weight 21 having the plurality of the protrusions
21A is used, it is necessary to set the weight colliding with the surface 22A of
the metal product 22 to the value that equals the product of the number of
protrusions times the mass of the weight having a protrusion (between 0.1-10
Kg). Then, the process is completed by dropping the weight at a speed of
more than 1 m/sec. Since the value of the kinetic momentum divided by the
total depressed area caused by all the protrusions 21A and the deformation
period satisfies the power per depressed area of more than 11 KJ/sec * mm2,
the nanocrystals can be formed at the portions of the surface of the metal
product.
Next, the third embodiment is explained.
Fig. 3 shows an apparatus of the third embodiment of this invention.
This shot-peening apparatus 30 can project shots 31 having a diameter of 50
µm, which shots 31 are made from steel, on the surface of the metal product
32 with compressed air through a nozzle 33. Table 1 shows the working
conditions of the shot peening and the results of the treatment. From Table
1, it is found that the power per unit of area of the third embodiment to
produce nanocrystals is larger than that of the first and the second
embodiments.
In this embodiment, the pressure of the compressed air is controlled
so that the projecting speed of the shots 31 at the metal product becomes
150-200 m/sec. If it is required that the entire area of the surface of the
metal product be treated by shot peening, it can be treated by moving the
metal product 32 so that the shots are projected over the entire area. A
layer constituted of a fine crystal having grain sizes of less than 100 nm is
formed at the surface of the metal product 32 by means of this shot peening
process. It is found that the hardness of the layer having the fine crystal is
significantly increased. Fig. 4 shows a photomicrograph of the surface of
the metal product that is treated by the method of the third embodiment of
this invention. Fig. 5 also shows a photomicrograph of the crystal grain
that is fined by the method of the third embodiment of this invention.
As explained above, since the layer constituted of a fine crystal can be
formed at the surface of the metal product 32 by using the method of the
third embodiment of this invention, its hardness significantly increases.
Thus, the strength of the metal product 32 also increases, and the fatigue
strength and corrosion resistance of the metal product can be improved.
Now, the fourth embodiment is explained.
Fig. 3 shows an apparatus of the fourth embodiment of this invention,
which figure is the same figure as that shown for the third embodiment.
This shot-peening apparatus 30 can project shots 31 having a diameter of
50-300µm and made from stainless steel on the surface of the metal
product 32 with compressed air through a nozzle 33. Table 1 shows the
working conditions of the shot peening and the results of the treatment.
From Table 1, it is found that the power per unit of area of this embodiment
to produce nanocrystals is larger than that of the first and the second
embodiments.
In this embodiment, the pressure of the compressed air is controlled
so that the projecting speed of the shots 31 on the metal product becomes 80
m/sec. If it is required that the entire area of the surface of the metal
product be treated by the shot peening, it can be treated by moving the metal
product 32 so that the shots are projected at the entire area. As well as in
the third embodiment, a layer constituted of a fine crystal having grain sizes
of less than 100 nm is formed at the surface of the metal product 32 by
means of this shot peening process. It is found that the hardness of the
layer having the fine crystal is significantly increased. Shots made not only
from stainless steel, but also from high-carbon steel or ferrous metallic glass,
can be used. Further, shots having a range of diameters of 30µm to 2000
µm can be used.
As explained above, since a layer constituted of a fine crystal can be
formed at the surface of the metal product 32 by using the method of the
fourth embodiment of this invention, its hardness significantly increases.
Thus, as well as in the third embodiment, the strength of the metal product
32 also increases, and the fatigue strength and corrosion resistance of the
metal product can be improved.
Generally, when a surface of a metal product is treated by shot
peening, a work hardening is caused at the surface. It is well known that
the degree of the work hardening of the metal is proportional to the square
root of its dislocation density. When the process for working the metal
product is continued, since the speed of the disappearance of its dislocations
caused by a merger between the dislocations of grains increases, the rate of
the work hardening decreases gradually as the degree of working increases.
However, when the metal product is worked hard at a high strain rate, since
no disappearance of the dislocations of grains is caused, the dislocation
density of the grains increases. Then, when the dislocation density reaches
a critical value, a dislocation-cell structure changes to a grain-boundary
structure.
Further, the fining of the micro-structure of the surface of the metal
product is improved by projecting the projectiles or the shots to the surface
while the temperature of the metal surface is controlled to be between room
temperature and -150 °C. It is difficult for the number of the dislocations
of the grains to reach the critical dislocation density. This allows the grains
to be recrystallized, since the recovery rate of the dislocations of the grains
increases with the increased temperature of the surface due to the
continuius projection of the projectiles or the shots. However, in the
condition at low temperature, since the recovery rate of the grain structure
which is fined by projecting the projectiles or the shots decreases, it becomes
easy for the number of the dislocations of the grain to increase. Namely, it
become easy for the dislocation density to reach the critical value, which
value allows the grain to be fined.
In this embodiment, liquid nitrogen (temperature: -196 °C) and
liquid carbon dioxide (temperature: -79 °C) can be used to cool the metal
product. It is preferable to control the temperature of the metal product to
be between room temperature and about -150 °C based on the material of
the product. It is possible to form finer grains by using this method
compared to the method for projecting the projectiles or the shots at room
temperature.
This invention relates to a method for fining a surface of a metal
product to form crystal grains having sizes less than 1µm at its surface and
to produce the metal product by the method. By this method, since the
fatigue strength, the hardness, and the corrosion resistance of the metal
product can be improved, the method possesses a possibility of industrial
applicability.
Claims (7)
- A method for fining a metal surface, comprising a process for forming crystal grains having sizes less than 1µm at the surface of a metal product by means of projecting or peening shots or projectiles to the surface while a power per unit of area of the surface is controlled at a predetermined value.
- A method for fining a metal surface according to claim 1, wherein the shots or projectiles are made from high-carbon steel, ferrous metallic glass, or stainless steel, and the diameters of the shots or projectiles are 30µm to 2000 µm.
- A method for fining a metal surface according to either of claims 1 and 2, wherein the power per unit of area is greater than 11 KJ/sec * mm2.
- A method for fining a metal surface according to any of claims 1, 2, and 3, wherein the process for projecting or peening shots or projectiles to the surface is carrired out while the temperature of the metal surface is controlled to be between room temperature and -150 °C.
- A method for fining a metal surface according to any of claims 1-4, wherein the unit area is calculated by multiplying a contact surface of a projectile or a shot by a number of the shots or projectiles.
- A method for fining a metal surface according to claim 5, wherein the unit area is calculated by subtracting the overlapped areas that is calculated based on the number of shots or projectiles that have their contact surfaces overlap from the sum of the contact surfaces.
- A metal product having surfaces hardened by the method for fining a metal surface according to any of claims 1-6.
Applications Claiming Priority (5)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| JP2002374610 | 2002-12-25 | ||
| JP2002374610 | 2002-12-25 | ||
| JP2003421143 | 2003-12-18 | ||
| JP2003421143 | 2003-12-18 | ||
| PCT/JP2003/016669 WO2004059015A1 (en) | 2002-12-25 | 2003-12-25 | Method of refining metal surface and metal product by the method |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP1577402A1 true EP1577402A1 (en) | 2005-09-21 |
| EP1577402A4 EP1577402A4 (en) | 2006-07-05 |
Family
ID=32684234
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP03768204A Ceased EP1577402A4 (en) | 2002-12-25 | 2003-12-25 | Method of refining metal surface and metal product by the method |
Country Status (6)
| Country | Link |
|---|---|
| US (1) | US20060289090A1 (en) |
| EP (1) | EP1577402A4 (en) |
| JP (1) | JPWO2004059015A1 (en) |
| CN (1) | CN100560750C (en) |
| AU (1) | AU2003292784A1 (en) |
| WO (1) | WO2004059015A1 (en) |
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| DE102006008170A1 (en) * | 2006-02-22 | 2007-08-23 | Halberg-Guss Gmbh | Steel shot blasting process to modify the tensile characteristics of a cast metal crankcase produced by e.g. lamellar cast or vermicular cast iron |
Families Citing this family (10)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2008069938A (en) * | 2006-09-15 | 2008-03-27 | Hino Motors Ltd | Gear and mesh assembly |
| CN102560045B (en) * | 2010-12-22 | 2014-10-01 | 中国科学院金属研究所 | Block nanostructure low carbon steel and its preparation method |
| FR2970006B1 (en) * | 2010-12-30 | 2013-07-05 | Wheelabrator Allevard | SURFACE TREATMENT OF A METAL PIECE |
| WO2014025059A1 (en) * | 2012-08-10 | 2014-02-13 | 新日鐵住金株式会社 | Titanium alloy material |
| NL1041641B1 (en) * | 2015-12-22 | 2017-07-03 | Bosch Gmbh Robert | Transverse element provided with a nanocrystalline surface layer for a drive belt for a continuously variable transmission and method for producing it. |
| CN106370383B (en) * | 2016-11-29 | 2018-11-27 | 浙江工业大学 | Multistage accelerates shot-blast unit |
| JP7015468B2 (en) * | 2018-01-12 | 2022-02-03 | 富士電機株式会社 | Steam turbine blades and their manufacturing methods |
| CN113106221A (en) * | 2021-03-23 | 2021-07-13 | 北京理工大学 | Metal surface layer low-temperature mechanical strengthening method and device |
| JP7790070B2 (en) * | 2021-10-05 | 2025-12-23 | 新東工業株式会社 | Method for manufacturing metal member having residual stress |
| CN117840923A (en) * | 2024-01-26 | 2024-04-09 | 中国科学院理化技术研究所 | Opposed cryogenic shot peening device |
Family Cites Families (11)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JPS5858226A (en) * | 1981-09-30 | 1983-04-06 | Nippon Steel Corp | Reducing device for iron loss of directional electrical steel plate |
| JPH01240615A (en) * | 1988-03-18 | 1989-09-26 | Nissan Motor Co Ltd | Shot peening method |
| US5205145A (en) * | 1989-09-25 | 1993-04-27 | Kubota Corporation | Method of producing torque sensor shafts |
| JPH0578798A (en) * | 1991-09-24 | 1993-03-30 | Mazda Motor Corp | Surface modifying method for member made of aluminum alloy |
| JPH081514A (en) * | 1994-06-16 | 1996-01-09 | Toshiba Corp | Surface treatment method for internal reactor structure |
| JP2000094330A (en) * | 1998-09-21 | 2000-04-04 | Sintokogio Ltd | Shot peening strength detector |
| CN1099467C (en) * | 1999-12-24 | 2003-01-22 | 中国科学院金属研究所 | Method for preparing nanometer layer on metal material surface |
| FR2812285B1 (en) * | 2000-07-28 | 2003-02-07 | Univ Troyes Technologie | NANOSTRUCTURE PROCESSING METHOD AND NANOSTRUCTURE PROCESSING DEVICE |
| FR2812284B1 (en) * | 2000-07-28 | 2003-03-07 | Univ Troyes Technologie | MECHANICAL METHOD FOR GENERATING NANOSTRUCTURES AND MECHANICAL DEVICE FOR GENERATING NANOSTRUCTURES |
| EP1307599B1 (en) * | 2000-07-28 | 2004-04-21 | Universite de Technologie de Troyes | Mechanical method for generating nanostructures and mechanical device for generating nanostructures |
| JP2002036115A (en) * | 2000-07-31 | 2002-02-05 | Sintokogio Ltd | Shot-pinning processing method and article to be processed |
-
2003
- 2003-12-25 AU AU2003292784A patent/AU2003292784A1/en not_active Abandoned
- 2003-12-25 CN CNB2003801077551A patent/CN100560750C/en not_active Expired - Lifetime
- 2003-12-25 EP EP03768204A patent/EP1577402A4/en not_active Ceased
- 2003-12-25 JP JP2004562930A patent/JPWO2004059015A1/en active Pending
- 2003-12-25 WO PCT/JP2003/016669 patent/WO2004059015A1/en not_active Ceased
- 2003-12-25 US US10/540,534 patent/US20060289090A1/en not_active Abandoned
Cited By (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| DE102006008170A1 (en) * | 2006-02-22 | 2007-08-23 | Halberg-Guss Gmbh | Steel shot blasting process to modify the tensile characteristics of a cast metal crankcase produced by e.g. lamellar cast or vermicular cast iron |
| DE102006008170B4 (en) * | 2006-02-22 | 2015-12-03 | Halberg-Guss Gmbh | Process for the treatment of castings |
Also Published As
| Publication number | Publication date |
|---|---|
| CN100560750C (en) | 2009-11-18 |
| EP1577402A4 (en) | 2006-07-05 |
| WO2004059015A1 (en) | 2004-07-15 |
| US20060289090A1 (en) | 2006-12-28 |
| AU2003292784A1 (en) | 2004-07-22 |
| JPWO2004059015A1 (en) | 2006-04-27 |
| CN1732274A (en) | 2006-02-08 |
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