[0001] The present invention relates to a metal powder atomization device, particularly
to a centrifugal atomization device in which molten metal is dispersed in the form
of particles due to centrifugal force upon contact with a spinning disc.
Background of the Invention
[0002] Atomization is a process of breaking up a bulk liquid into small droplets. Any material
existing in liquid state can be atomized into micrometer-sized particles. This technique
is used to produce elemental metal powder or alloys.
[0003] Metal powder has a number of industrial applications, among which conventional powder
metallurgy for the manufacture of parts by compaction and powder sintering, the formation
of coatings by means of spray techniques, or the manufacture of components by means
of additive manufacturing techniques stand out.
[0004] There are different atomization processes distinguished from one another by the techniques
used for breaking up the fluid being used. These can be classified as:
- Atomization with fluids: metal in liquid state is transformed into small droplets
due to the interaction of different high-pressure jets of water, gas, or oil, whether
with a jet of water, air, hydrocarbons, or oil.
- Centrifugal atomization: molten metal is dispersed in the form of particles due to
centrifugal force, such as spinning disc or rotating electrode atomization techniques.
- Other techniques, such as soluble gas, ultrasonic, or vibrating electrode atomization.
[0005] Centrifugal atomization using a spinning disc (Spinning Disc Atomization - SDA) is
based on dropping a column of liquid against a disc, which can be flat or cup-shaped,
among other shapes. When the liquid contacts the disc spinning at a high speed, the
liquid spreads out over the surface of the disc due to the centrifugal force to which
it is subjected. Then, when the metal reaches the edge of the disc, the surface tension
is insufficient to maintain the bulk liquid mass and accordingly turns into a spray
of small droplets which solidify and form a powder.
[0006] According to the speed, the radius of the disc, or the flow rate of the molten metal
falling onto said disc, the liquid will be broken up into ligaments or sheets, or
directly into droplets. Regardless of how the liquid is broken up, if the process
is suitable, most of the particles end up being spherical.
[0007] By way of example, the spinning disc atomization (SDA) device comprises three basic
groups:
- A crucible for melting the metal to be atomized, which must be adapted for pouring
the metal onto the disc.
- A spinning disc, which is the element in charge of atomization of the liquid, and
it must be capable of withstanding high speeds and temperatures.
- A chamber where atomization is performed which must be large enough to allow solidification
of the particles before they hit against the walls of the chamber. It also preferably
allows atomizing under conditions of inert atmosphere, and thus preventing possible
oxidation of the particles as they solidify.
[0008] To assure the structural integrity of the atomizing disc, particularly where materials
with a high melting point are to be atomized, a cooling system is needed for the atomizing
disc, so that it can work at temperatures such that it maintains the suitable mechanical
strength and toughness properties.
[0009] As an example, for AISI H13 steel, used in hot-working applications for cases where
good mechanical properties at a high temperature must be assured, maximum temperatures
recommended for working with these steels is about 450°C, since past this temperature
their mechanical properties begin to deteriorate. This recommended working temperature
is significantly lower than the melting temperatures of the metals, and for this reason
the atomizing disc must be cooled.
[0010] For proper cooling of the spinning disc, said cooling today is normally provided
through the lower portion of the atomizing disc. To that end, these designs mean that
the rotating shaft is hollow, which leads to a complex design of the drive system
of this disc, which is prone to misalignments and vibrations, with the subsequent
problems this entails.
[0011] Therefore, an objective of the present invention is to provide an atomization device
in which the rotating shaft of the motor is perfectly aligned with the spinning disc,
thereby avoiding the use of mechanical transmission elements, such as gears, belts,
or other elements such as elastic couplings for connecting shafts, which complicate
the design and increase the number of rotating elements. The simplicity of the design
minimizes vibrations in the atomizing disc.
Description of the Invention
[0012] The atomization device of the invention solves the mentioned drawbacks and presents
other advantages that will be described below.
[0013] The atomization device according to the present invention comprises a motor rotatably
driving a spinning disc by means of a rotating shaft, and cooling means for cooling
said spinning disc, wherein said cooling means comprise a cooling circuit extending
around at least one portion of the rotating shaft and below at least one portion of
said spinning disc.
[0014] Because the cooling circuit is not located in the actual rotating shaft, it is possible
for the drive system of the disc to be simpler, enabling perfect alignment of the
rotating shaft of the motor with the spinning disc. This minimizes rotating moving
parts, which prevents vibrations from being produced.
[0015] According to a preferred embodiment, said cooling circuit is located in a stationary
base in turn acting as a collector for the cooling circuit, comprising at least one
inlet and one outlet for liquid coolant. These inlets and outlets for liquid coolant
into the lower area of the disc are located around, on the sides, and parallel to
the shaft of the atomizing disc. They are characterized by being able to be distributed
in various positions and with various shapes and section around the area of the shaft
of the disc.
[0016] Furthermore, the atomization device according to the present invention also advantageously
comprises at least one gasket with its corresponding closure system should one be
required, arranged between the spinning disc and the stationary base. Said gasket
maintains tightness and confines the liquid coolant. This gasket can be made of graphite,
for example. There is also arranged a sealing gasket between the shaft and the base.
[0017] Advantageously, said at least one gasket is arranged in a stationary manner, i.e.,
it does not spin with the spinning disc, as are the closure elements keeping the gasket
in contact with the disc, such that only the shaft and disc part is rotating.
[0018] According to a preferred embodiment, said spinning disc and said rotating shaft consist
of a single part, which also minimizes unwanted misalignments and vibrations in the
assembly.
[0019] Preferably, the spinning disc is made of metal, with or without a refractory, anti-corrosion
and/or anti-wear coating on its outer surface, although it can also be made of a ceramic
material that adapts to the required mechanical conditions.
[0020] According to a preferred embodiment, the spinning disc has a diameter comprised between
20 and 200 mm and a thickness comprised between 1 and 15 mm.
Brief Description of the Drawings
[0021] To better understand the foregoing, a set of drawings are attached in which a practical
embodiment is schematically depicted merely by way of illustrative nonlimiting example.
Figure 1 is elevational cross-section view of the atomization device according to
the present invention; and
Figure 2 is a plan view of the upper portion of the atomization device according to
the present invention, with the spinning disc removed.
Description of a Preferred Embodiment
[0022] As shown in the drawings, the atomization device according to the present invention
comprises a motor 1 rotatably driving a spinning disc 2 through a rotating shaft 3.
Said spinning disc 2 and said rotating shaft 3 may or may not consist of a single
part.
[0023] As indicated above, atomization takes place by dropping a column or droplets of liquid
against the spinning disc 2, which may be flat, cup-shaped, or have other shapes or
geometries.
[0024] When the liquid contacts the disc 2 spinning at a high speed, said liquid spreads
out over the surface of the disc 2 due to the centrifugal force to which it is subjected,
and when the metal reaches the edge of the disc 2, the surface tension is insufficient
to maintain the bulk liquid mass and accordingly turns into a spray of small droplets
which solidify and form a powder.
[0025] Also as described above, this spinning disc 2 requires cooling which is provided,
according to the present invention, by means of a cooling circuit, generally indicated
by means of reference number 4, which is not arranged inside the rotating shaft 3,
but rather extends around at least one portion of the rotating shaft 3 and below at
least one portion of said spinning disc 2.
[0026] Furthermore, this cooling circuit 4 comprises at least one inlet 5 for liquid coolant,
for example, water or oil, and at least one outlet 6 for said liquid coolant.
[0027] Said base 7 is stationary, i.e., it does not spin with the rotating shaft 3 and with
the spinning disc 2. To that end, the atomization device according to the present
invention comprises at least one, and preferably two, friction bearings 15 arranged
between the rotating shaft 3 and the stationary base 7.
[0028] As can be seen in Figure 1, the cooling circuit 4 comprises at least one vertical
inlet segment 10 and at least one vertical outlet segment 11 for the liquid coolant
which are parallel to and spaced apart from the rotating shaft of the disc, which
allows cooling specifically the upper portion of the rotating shaft 3 and the lower
portion of the spinning disc 2.
[0029] To assure tightness, the atomization device according to the depicted embodiment
comprises a sealing gasket 13, with its corresponding closure system should it be
required, arranged between the stationary base 7 and the spinning disc 2, where said
gasket 13 may preferably be made of graphite, though it could be made of any suitable
material.
[0030] Said gasket 13, with its corresponding closure system should one be required, is
stationary, arranged between the spinning disc 2 and the stationary base 7. Said gasket
maintains tightness and confines the liquid coolant.
[0031] A sealing gasket 12 is also arranged between the rotating shaft 3 and the stationary
base 7 for the purpose of confining the liquid coolant in the lower portion of the
disc 2. This gasket 12 will preferably be made of an elastomeric material, though
it may be made of any type of material that assures tightness in said area, such as
graphite for example.
[0032] The spinning disc 2 can be made of any suitable material, but it is preferably made
of metal or ceramic, with or without a refractory, anti-corrosion and/or anti-wear
coating on its outer surface
[0033] Only by way of example, the spinning disc 2 may be made of AISI H13 steel, which
is suitable for hot working. Furthermore, a suitable refractory coating could be made
of alumina or zirconia to avoid interaction between the metal of the disc and the
atomized metal.
[0034] For example, the diameter of the spinning disc 2 can range from 20 to 200 mm and
the thickness can range from 1 to 15 mm.
[0035] The table below includes several atomization embodiments obtained by means of the
atomization device according to the present invention:
Material atomized |
Speed of the spinning disc (rpm) |
Mean particle diameter (µm) |
Temperature of the molten metal (°C) |
Tin |
30,000 |
90 |
400°C |
40,000 |
75 |
Aluminum |
20,000 |
190 |
750°C |
30,000 |
140 |
Copper |
15,000 |
180 |
1100°C |
20,000 |
150 |
[0036] Although reference has been made to a specific embodiment of the invention, it is
evident to one skilled in the art that the described atomization device is susceptible
to a number of variations and modifications, and that all the mentioned details can
be replaced with other technically equivalent ones without departing from the scope
of protection defined in the appended claims.
1. Atomization device comprising a motor (1) rotatably driving a spinning disc (2) by
means of a rotating shaft (3), and cooling means for cooling said spinning disc (2),
characterized in that said cooling means comprise a cooling circuit (4) extending around at least one portion
of the rotating shaft (3) and below at least one portion of said spinning disc (2).
2. Atomization device according to claim 1, wherein the cooling circuit (4) comprises
at least one inlet (5) into the lower area of the spinning disc (2) and at least one
outlet (6) for the liquid coolant.
3. Atomization device according to claim 2, wherein the at least one inlet (5) and the
at least one outlet (6) for the liquid coolant are located around and to the sides
of the rotating shaft (3) of the spinning disc (2).
4. Atomization device according to claim 1, also comprising at least one sealing gasket
(13) arranged between a stationary base (7) and the spinning disc (2).
5. Atomization device according to claim 4, also comprising at least one sealing gasket
(12) arranged between the stationary base (7) and the rotating shaft (3).
6. Atomization device according to claim 4 or 5, wherein said at least one sealing gasket
(12, 13) is made of graphite or another sliding seal material.
7. Atomization device according to claim 4, 5, or 6, wherein said at least one sealing
gasket (12, 13) is arranged in a stationary manner.
8. Atomization device according to claim 1, wherein said spinning disc (2) and said rotating
shaft (3) consist of a single part or multiple parts.
9. Atomization device according to claim 1, wherein the spinning disc (2) is made of
metal or ceramic.
10. Atomization device according to claim 1 or 9, wherein the spinning disc (2) comprises
a refractory, anti-corrosive and/or anti-wear ceramic coating on its outer surface.
11. Atomization device according to claim 1, wherein the spinning disc (2) has a diameter
comprised between 20 and 200 mm.
12. Atomization device according to claim 1, wherein the spinning disc (2) has a thickness
comprised between 1 and 15 mm.