[0001] The invention relates to powder metallurgy, in particular to methods of manufacturing
sintered materials based on copper for electrical contacts used in low voltage and
high voltage electrical devices switching circuits, preferably AC circuits with current
up to 630 A. In details, the invention relates to method for manufacturing a copper-based
composite material for electrical contacts.
[0002] In terms of technical essence, the closest analog is a method of manufacturing a
copper-based composite material for electrical contacts, comprising preparation of
a powder mixture of at least two powder components - conductive and heat resistant
components, pressing powder mixture and obtaining a blank, which is sintered to obtain
a copper-based composite material for electrical contacts [
RF Patent N2 2063086, IPC 6 NH01H33/66, Publ. 1996.06.27].
[0003] The disadvantage of the described method is the long duration of the process and,
consequently, the high cost of the resulting material for electrical contacts. The
long duration of the process is due to the need to perform multiple loadings and unloadings
of a vacuum chamber to carry out separate manufacturing operations. In addition, the
quality of the produced material is insufficient, in particular, for making contacts
of vacuum circuit breakers switching AC circuits with currents even below 400 A due
to the impossibility to achieve the required degree of impregnation of the powder
mixture of conductive and heat-resistant materials with copper.
[0004] The goal of the proposed invention is to provide such method of manufacturing a copper-based
composite material for electrical contacts, which would reduce the cost of manufacturing
a copper-based composite material for electrical contacts by way of reducing the number
of loadings and unloadings of a vacuum chamber to perform three separate technological
operations with one vacuum chamber loading, i.e. heating blanks in inert gas or hydrogen
atmosphere to a temperature of alloying of interphase border of chromium-copper powder
components by a surface-active agent, impregnation of a blank made of copper and chromium
powder mixture with alloying components to produce copper layer over blank made of
copper and chromium powder mixture, cooling the obtained blank and annealing the blank.
[0005] This goals is achieved by the proposed method, which, like the known method of manufacturing
a copper-based composite material for electrical contacts, comprises preparation of
a powder mixture of at least two powder components - conductive and heat resistant
components, pressing powder mixture and obtaining a workpiece, which is sintered to
obtain a copper-based composite material for electrical contacts, and,
according to the invention, copper and chromium powders are preliminarily mixed in a high-power mill to obtain
a fine homogenized copper and chromium powder mixture, the obtained powders are pressed
to produce two compression-molded briquettes: one of copper and chromium powder mixture
and another from copper powder, a source of alloying components is arranged between
said compression-molded briquettes, the mixture is heated up to a temperature of 700-900°C
in a vacuum chamber under vacuum of 10
-3 - 10
-5Torr and is kept under these conditions 30-60 minutes to remove unwanted impurities
and/or admixtures, which is followed by alloying of interphase border of chromium-copper
powder components by surface-active agent in inert gas atmosphere or in hydrogen obtained
from metal hydride at a temperature of 1085-1150°C with simultaneous impregnation
of compression-molded briquettes of copper and chromium powders with alloying components
until a copper layer of a thickness of 2.5-5.0 mm is formed above the compression-molded
briquette from a mixture of copper and chromium powder, the obtained blank is cooled
from impregnation temperature of 1085-1150°C to a temperature of 900-920°C at a rate
equal to or exceeding 20°C/min, the cooled blank is annealed at a temperature of 500-700°C
for 30-120 minutes, and a blank of copper-based composite material for producing electrical
contacts is obtained.
[0006] Another feature of the proposed method is that after obtaining two compression-molded
briquettes - from a mixture of copper and chromium powders and from copper powder,
a source of alloying components is arranged between these briquettes, such source
having a form of a grid.
[0007] Another feature of the proposed method is that after obtaining two compression-molded
briquettes - from a mixture of copper and chromium powders and from copper powder,
a source of alloying components is arranged between these briquettes, such source
having a form of a film or foil.
[0008] Another feature of the proposed method is that after obtaining two compression-molded
briquettes - from a mixture of copper and chromium powders and from copper powder,
a source of alloying components is arranged between these briquettes, such source
having a form of a coating applied onto the surface of one of the compression-molded
briquettes.
[0009] Another feature of the proposed method is that after obtaining two compression-molded
briquettes - from a mixture of copper and chromium powders and from copper powder,
a source of alloying components is arranged between these briquettes, such source
having a form of a vacuum coating deposited onto the surface of one of the compression-molded
briquettes through mask.
[0010] Another feature of the proposed method is that alloying of interphase border of chromium-copper
powder components is carried out using surface-active agent of the following composition
(in wt.%):
carbon-0.10-0.12
silicon - 0.06 - 0.08
manganese - 1.80 - 2.00
chromium -17.0 -18.0
nickel - 8.90 - 9.00
titanium - 0.70 - 0.80
iron - the rest.
[0011] Preliminary processing and blending of copper and chromium powders in high-power
mill is aimed at the destruction and deformation of the original powder particles,
resulting in formation of active surfaces which are capable of "cold welding" and
formation of fine homogenized copper and chromium (Cu-Cr) powder mixture. Such mixture
does not segregate by density during unloading from the drum, transportation and loading
into the mold matrix. During the processing the mixture is activated, which intensifies
the subsequent processes of impregnation and liquid-phase sintering.
[0012] The authors have experimentally found the optimal operating conditions of heat treatment
of copper and chromium powder mixture in a vacuum chamber. These parameters are: the
temperature of 700-900°C, vacuum of 10
-3 - 10
-5 Torr and maintaining under these conditions for 30 - 60 minutes to remove unwanted
impurities and/or admixtures. It was found out that under temperatures below 700°C
and keeping in a vacuum chamber during less that 30 minutes copper and chromium powder
mixture still contains volatile oxides, which have a negative impact on the quality
of the obtained product. Heating of the mixture above 900°C triggers evaporation of
chromium (at the temperature of 907°C) and copper (at the temperature of 946°C). Vacuum
below 10
-3 Torr is not effective, because there were cases of powders oxidation observed. Vacuum
over 10
-5 Torr is not economically justified, because further vacuum increase does not significantly
improve the quality of the resulting material. In case of keeping the powders under
these conditions for less than 30 minutes, the cases of incomplete removal of unwanted
impurities, in particular oxide films, were observed. Increase of dwelling time over
60 minutes is not economically justified, because it does not significantly improve
the quality of the resulting material.
[0013] Placement of the source of alloying components between obtained compression-molded
briquettes of copper powder and copper-chromium powder mixture enables, under further
heating of the blanks in an inert gas atmosphere at a temperature of 1085-1150°C and
dwelling time of 15-20 minutes, to perform the alloying of interphase border of chromium-copper
powder components with surface-active substance with simultaneous impregnation of
copper and chromium powder mixture briquette with alloying components to form 2.5
- 5.0 mm thick copper layer over the briquette of copper and chromium powder mixture.
This process occurs due to improvement of chromium wetting with copper, which results
in more intense impregnation, reducing the number and size of closed pores in the
contact material, improvement of thermal-physical properties and reducing the process
time. The optimum temperature in a vacuum chamber 1085-1150°C is determined experimentally
by the authors. The lower limit of temperature in the vacuum chamber 1085°C corresponds
to copper melting point, so it can not be lowered. Increasing the temperature above
1150°C leads to copper evaporation, which reduces the effectiveness of briquette impregnation.
The copper layer thickness of 2.5 - 5.0 mm over the briquette of copper and chromium
powder mixture is determined by the future operating conditions of the contact pair
manufactured from the produced material, i.e. rated current, switching frequency,
the nature of the load. The thickness of the copper layer is determined by the concentration
of surface-active components, which are intended to improve the wettability of chromium
powder by liquid copper and decrease the surface tension of molten copper, i.e. reducing
the height of liquid copper meniscus over the surface of the briquette of chromium
and copper powder mixture, as well as the copper quantity itself.
[0014] The subsequent cooling of the blank from impregnation temperature to the temperature
of 900-920°C is performed at a rate equal to or greater than 20 degrees per minute
in order to fix the fine structure of chromium-copper and copper and to reduce the
likelihood of shrinkage cavities. The authors have experimentally determined that
the blank cooling rate below 20 degrees per minute results in increasing grains in
the structure of the future blank, which does not allow to obtain high-quality material.
[0015] The resulting blank is annealed under these optimal parameters: temperature of 500-700°C,
30 - 120 minutes. Because only with these parameters the blank maintains fine structure
and tensions in the lattice are decreased. These optimal parameters were found experimentally
by the authors. The heating to a temperature below 500°C and during less than 30 minutes
adversely affects the quality of the finished product, since there were cases of incomplete
relaxation of stresses in the blank. Heating at the temperature over 700°C during
more than 120 minutes is not justified economically, because it practically has no
effect on the quality of the finished product.
[0016] Source of alloying components can be made in the form of foil, grid or vacuum coating.
Its design is determined by the technological possibilities of the material manufacturer.
The authors believe, the most promising structure is a vacuum coating deposited on
the flat surface of one of the blanks through a mask, because it provides the desired
composition and necessary amount of alloying components. The simplest structure is
a foil. In this case it is sufficient to obtain the melt of necessary composition
or select a ready metallic material or alloy in the form of an ingot of the necessary
composition and with required amount of alloying components, heat it and roll it between
the rollers to obtain a foil of the desired thickness.
[0017] Surface-active agents are used in an amount of 1-3 wt.% of the total weight of the
contact material to improve wettability and activation of the sintering and impregnation
process.
[0018] The composition and quantity of the alloying components for alloying the interphase
border of chromium-copper powder components are selected experimentally based on conditions
to improve the wetting of interphase border by copper melt and to reduce the surface
tension of molten copper in the mixture of chromium-copper powders. Such substances
for chrome-copper - copper melts may be substances based on silicon, manganese, nickel,
and are selected experimentally based on the technological possibilities of the material
manufacturer and the intended working conditions of the contact material.
[0019] As an example, the authors have used for alloying of interphase border of chromium-copper
powder components a source of alloying components of the following composition (in
wt.%):
carbon-0.10-0.12
silicon - 0.06 - 0.08
manganese - 1.80 - 2.00
chromium - 17.0 - 18.0
nickel - 8.90 - 9.00
titanium - 0.70 - 0.80
iron - the rest.
[0020] Fig. 1 illustrates a blank of electric contact Cu-Cr material with a copper sublayer,
obtained by the proposed method.
[0021] Example. The copper-based composite material for electrical contacts was produced.
The following materials were used: electrolytic copper powder according to GOST 4960-75,
PMS-1 grade with a copper content of 99.72%, and chromium powder of PH-1M grade, a
certificate # 22-03 of 02.10.2008.
[0022] The operations of mixing and grinding of copper and chromium powders was carried
out in a high power mill. A planetary mill, attritor, ball mill etc. may be used as
a device for mixing and grinding powders. Blend modes (operating tools rotation speed,
mixing time, balls mass to material mass ratio, etc.) were selected experimentally.
The balls impact on the components of the treated powder material exceeds the ultimate
compressive strength and shear of plastic copper and solid chromium. The amount of
copper (Cu) powder introduced into chromium (Cr) during the mixture preparation was
10-40 wt.%, depending on the Cr content in the composition of the contact material,
with increasing of Cr content in the Cu-Cr composition from 45 to 70 wt.%, the amount
of copper in Cu-Cr mixture was decreased from 40 to 10 wt.%, respectively. The processing
and blending of copper and chromium powders in high-power mill resulted in destruction
and deformation of the original powder particles, which leaded to formation of active
surfaces which were capable of "cold welding" of microgranules that caused formation
of fine homogenized copper and chromium (Cu-Cr) powder mixture. Such mixture did not
segregate by density during unloading from the drum, transportation and loading into
the mold matrix. During the processing the mixture was activated, which intensified
the subsequent processes of impregnation and liquid-phase sintering.
[0023] To obtain the briquettes of required shape and size, the Cu-Cr powder mixture was
subjected to pressing in molds. Cu concentration in Cu-Cr mixture and the residual
porosity of the compressed briquette are the main parameters determining the amount
of Cr in the manufactured composite material after the obtaining a blank impregnated
with copper melt. The minimum Cr amount in Cu-Cr composite material manufactured according
to the principle of forming rigid Cr structure impregnated with Cu is about 45 wt.%
according to specific weights of Cr - 7.15 g/cm
3 and Cu - 8.93 g/cm
3.
[0024] The maximum amount of Cr in the composite material is determined by the possibility
to form a raw briquette with a minimum amount of Cu in Cu-Cr mixture and minimum porosity
of compression-molded briquette without cracking and is about 70 wt.%. Cu-Cr blanks
were pressed using the pressure from 2 to 8 tons per square cm. Increasing of the
compression pressure over 8 tons per square cm results in delamination of the compression-molded
blanks. With increasing Cr concentration in the composite material the compression
pressure was increased. In order to impregnate the blanks, the briquettes of copper
powder (chips) were pressed together with alloying components source. For uniform
distribution of surface-active elements at the Cr-Cu interphase border and facilitation
of compression, the source of allying components is made in the form of foil, grids
of different shape, discrete vacuum coating. Such coating may be applied by known
methods, for example, using a process described in the article:








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-1997. - No11/12. - P.93-96. (The wear resistance of silicon nitride based ceramic
cutting tools with continuous and discrete nitride titanium coatings. Gnesin, G.G.,
Lyashenko, B.A., Fomenko, S.N. et al. - Powder Metallurgy). A grid or foil of alloying
components is placed into the lower mold die and covered with necessary amount of
copper powder or chips, and then press the composite blank using the pressure of 1.5-3.0
tons per square cm.
[0025] For uniform distribution of surface-active elements at the Cr-Cu interphase border
and facilitation of compression, the source of allying components is made in the form
of foil, grids of different shape, vacuum coating.
Heat vacuum treatment:
[0026] Connected porous briquette of Cu-Cr powders mixture, Cu powder briquette and a source
of alloying components located between the briquettes were subjected to heat vacuum
treatment together. Briquettes were placed into container made of a material which
does not react with molten Cu and Cr. The copper briquette was placed onto upper surface
of the briquette in such a way that grid with surface-active substance was in contact
with the surface of Cu-Cr blank. Container was placed into vacuum over chamber. Heat
vacuum treatment was performed in a vacuum chamber in vacuum of 10
-5Torr, at 800°C for 60 min to remove adsorbed gases, volatile components from the blanks,
to destroy and remove oxide films. After heating and keeping for 60 minutes inert
gas or hydrogen produced from the metal hydride was supplied into vacuum chamber through
the inlet valve to produce a pressure of 200 Torr and the temperature was raised to
1150°C at a rate of 10-15 degrees per minute.
Impregnation.
[0027] Copper melting and alloying of chromium-copper (Cr-Cu) interphase border with surface-active
components, liquid-phase sintering of briquettes and their impregnation with copper
occurs in the temperature range of 1085-1150°C in inert gas or hydrogen atmosphere.
The blank was kept during 10-20 minutes in this temperature interval. Optimum dwelling
time was selected experimentally depending on the blank mass, heat capacity and pressure
of the gas atmosphere.
[0028] The amount of copper necessary for impregnation of the blank (structure) was calculated
on the basis of its residual porosity and the amount of copper required for the formation
of a 2.5 - 5 mm thick layer intended to divert heat flow from the working surface
of the contact assembly and welding or soldering of the contact to arc-suppression
vacuum chamber terminals.
[0029] In the example, the source of alloying components is in the form of a grid having
the following composition (in wt.%): C-0.12; Si-0.08; Mn-2.0; Cr-18.0; Ni-9.0; Ti-0.8;
Fe - up to total of 100.0. The mass of the source of the alloying components is in
the range from 1.0 to 3.0 wt.% of the total mass of the contact material. A source
of alloying components is used in order to improve the wettability and facilitate
the processes of sintering and impregnation.
Cooling.
[0030] In order to obtain the blanks with fine structure, impregnated Cu-Cr blanks were
cooled from the impregnation temperature to the crystallization temperature at a rate
of 20-28 degrees/min.
[0031] To relieve internal stresses, the structure was annealed in inert medium at 650-670°C
for 120 minutes.
[0032] Thus, the proposed invention has enabled to achieve the goal: to provide such method
of manufacturing a copper-based composite material for electrical contacts, with the
cost of manufacturing of such electrical contacts lower that the cost of manufacturing
contacts made of material obtained according to prototype process due to creation
of conditions allowing to reduce the number of loadings and unloadings of a vacuum
chamber to perform three separate technological operations with one vacuum chamber
loading, i.e. heating blanks in inert gas or hydrogen atmosphere to a temperature
of alloying of interphase border of chromium-copper powder components by a surface-active
agent, impregnation of a blank made of copper and chromium powder mixture with alloying
components to produce copper layer over blank made of copper and chromium powder mixture,
cooling the obtained blank and annealing the blank.
[0033] The resulting composite material for contacts was tested in contactors operating
in power circuits of the rolling stock of Ukrainian railways. The service life of
contacts made of the proposed composite contact material was 50-60% longer than the
service life of conventional contacts.
1. A method of manufacturing a copper-based composite material for electrical contacts
comprising preparation of a powder mixture of at least two powder components - conductive
and heat resistant components, pressing powder mixture and obtaining a blank, which
is sintered to obtain a copper-based composite material for electrical contacts, characterized in that copper and chromium powders are preliminarily mixed in a high-power mill to obtain
a fine homogenized copper and chromium powder mixture, the obtained powders are pressed
to produce two compression-molded briquettes: one of copper and chromium powder mixture
and another from copper powder, a source of alloying components is arranged between
said compression-molded briquettes, the mixture is heated up to a temperature of 700-900°C
in a vacuum chamber under vacuum of 10-3 - 10-5 Torr and is kept under these conditions for 30-60 minutes to remove unwanted impurities
and/or admixtures, which is followed by alloying of interphase border of chromium-copper
powder components by surface-active agent in inert gas atmosphere or in hydrogen obtained
from metal hydride at a temperature of 1085-1150°C with simultaneous impregnation
of compression-molded briquettes of copper and chromium powders with alloying components
until a copper layer of a thickness of 2.5-5.0 mm is formed above the compression-molded
briquette from a mixture of copper and chromium powder, the obtained blank is cooled
from impregnation temperature of 1085-1150°C to a temperature of 900-920°C at a rate
equal to or exceeding 20°C/min, the cooled blank is annealed at a temperature of 500-700°C
for 30-120 minutes, and a blank of copper-based composite material for producing electrical
contacts is obtained.
2. A method according to claim 1, characterized in that after obtaining two compression-molded briquettes - from a mixture of copper and
chromium powders and from copper powder, a source of alloying components is arranged
between these briquettes, such source having a form of a grid.
3. A method according to claim 1, characterized in that after obtaining two compression-molded briquettes - from a mixture of copper and
chromium powders and from copper powder, a source of alloying components is arranged
between these briquettes, such source having a form of a foil.
4. A method according to claim 1, characterized in that after obtaining two compression-molded briquettes - from a mixture of copper and
chromium powders and from copper powder, a source of alloying components is arranged
between these briquettes, such source having a form of a coating applied onto the
surface of one of the compression-molded briquettes.
5. A method according to claim 1, characterized in that after obtaining two compression-molded briquettes - from a mixture of copper and
chromium powders and from copper powder, a source of alloying components is arranged
between these briquettes, such source having a form of a vacuum coating deposited
onto the surface of one of the compression-molded briquettes through mask.
6. A method according to claim 1,
characterized in that alloying of interphase border of chromium-copper powder components is carried out
using surface-active agent of the following composition (in wt.%):
carbon-0.10-0.12
silicon - 0.06 - 0.08
manganese - 1.80 - 2.00
chromium -17.0 -18.0
nickel - 8.90 - 9.00
titanium - 0.70 - 0.80
iron - the rest.