The present invention relates to an apparatus for preparing alloy sheet. This apparatus can produce alloy sheets at various cooling rates using the same batch of melted alloy liquid, and can make the alloy sheets into proper metallurgical phase texture. The alloy sheets produced in this method, for example the rare earth-transition metal alloy sheets, can be used to produce permanent magnet material which is good in orientation, easy for post-sinter processing, and suitable for large-scale mass production.
The term “proper metallurgical phase texture” refers to that the size and orientation of main phase grains both meet the technical requirement, and the boundary phases distribute evenly around the main phase grains.
The applicant's Chinese patent ZL200310123402.2 discloses an apparatus and a process for producing alloy sheets by vacuum induction melting a kind of alloy composed of rare earth and other easily oxidized metals and multi-stage fast cooling, and then unloading the alloy sheets in batches.
As shown in
Through an observation window of casting chamber, we can observe the diameter of liquid column and the height of liquid in the liquid flow stabilization set 4a, so as to adjust dumping speed in time to provide liquid to a cooling roller 5a nearly in a constant flow.
Liquid flow stabilization set is composed of two parts 4a and 4b. The part 4a is a barrel container with the bottom open, playing a role of guiding flow and controlling flow. The part 4b is positioned under the part 4a so that the liquid can flow freely, slow down and become even.
A roller 5a can move to and fro in the direction of axis. As the container 3 inclines, the liquid flow passes the part 4a, freely spreads at the bottom of the part 4b, and then equably and stably flows to the cooling roller 5a.
The alloy strips solidified on the surface of roller 5a separates from the surface by the centrifugal effect of the roller 5a (or the effect from scraper 6b arranged at the front edge of the roller 51). There is provided with a water cooling baffle 6a at the front of the falling alloy strips. The falling alloy strips is shattered into alloy sheets. There can be several baffles, when it is necessary, so that the strips can be shattered several times during the falling process.
The alloy sheets are collected by the transferring system 7 arranged below, and then transferred to the funnel-shaped collecting vessel 8. They are fully cooled during the process of transferring.
The alloy sheets dropped from the transferring system 7 get further shattered through the umbrella-shaped set positioned at the center of funnel-shaped collecting vessel 8. They are further cooled in the process of slipping to the bottom of funnel-shaped collecting vessel 8.
When the strips in the collecting vessel amount to certain quantity, a below pressure sensor gives a signal of unloading. The strips which have cooled down to a proper temperature are discharged to the container of outlet set 9, and then are transferred to the next procedure in batch, realizing the continual mass production.
It is obvious that the Chinese patent No. ZL200310123402.2 applied by the applicant has taken some measures to prevent the jam of liquid flow stabilization set 4a, and add into the funnel-shaped collecting vessel 8 and outlet set 9, by which the patent has greatly increased the productivity and decreased the fault rate of equipment.
The applicant has further discovered that a metallurgical phase texture (including grain size and its distribution, and phase distribution) of rapid solidified alloy strips is closely related with alloy cooling rate. This cooling rate sensitively depends on the rotating speed of the roller as well as its working surface material. To prevent a long time corrosion by high-temperature alloy liquid, the ordinary cooling roller is made of material with good thermal conductivity and is made to be with a small diameter. Therefore, it is necessary to strictly control the rotating speed.
The object of the invention is to provide an apparatus for preparing alloy sheets, which makes the rotating speed of quenching wheel adjustable at the relative large range and makes the cooling rate of the wheel easy to control, so as to obtain rapid solidified alloy sheets with ideal cooling rate and proper metallurgic phase texture.
Another object of this invention is to provide an apparatus for preparing alloy sheets, which obtains the proper metallurgical phase texture in the rapid solidified alloy sheets. The rare earth-transition metal alloy sheets produced by the process of the apparatus can be used for making permanent magnet materials which are good in orientation and easy for post-sinter processing.
Therefore, this invention provides an apparatus for preparing alloy sheet which comprises: a container for containing melted alloy liquid positioned in an inductive heating coil; a liquid flow stabilization outfit comprising a barrel container with an open bottom and a base board arranged below the open bottom, and the container's upper part being positioned below the mouth of the container for melted alloy liquid; a quenching wheel positioned to carry the melted liquid flown from the liquid stabilization outfit's base board, which swings the melted liquid as strips and the strips became an alloy sheet after collision; and a transferring outfit positioned below the quenching wheel for the further cooling and transferring of the alloy sheets, characterized in that the quenching wheel is with means for differentiating cooling rate for various alloy sheets.
Preferably, said means for differentiating cooling rate for various alloy sheets is a temperature controller which makes the quenching wheel's surface working temperature periodically change between room temperature and 700° C.
Preferably, said means for differentiating cooling rate for various alloy sheets is a temperature sub-zone outfit which divides the quenching wheel's surface into several regions with different working temperatures along the direction of rotation axis.
Preferably, said means for differentiating cooling rate for various alloy sheets is a variable speed controlling device which can continually adjust the rotating speed of the quenching wheel.
Preferably, said means for differentiating cooling rate for various alloy sheets is a surface layer of the quenching wheel, which has several regions in the direction of rotation axis, and the neighboring regions of which are made of different materials.
Preferably, said means for differentiating cooling rate for various alloy sheets is a quenching wheel which is shaped as a conical frustum, a ladder-shaped shaft, a waist drum, or a quenching wheel whose generatrix is of curve line or zigzag line.
Preferably, said ladder-shaped shaft quenching wheel's breadth is 2-10 cm, its ladder's fall is 0.5-5 cm. and the number of ladders is 5-25.
Preferably, said means for differentiating cooling rate for various alloy sheets is shaped as a rotating round disc or a round barrel with a perpendicular rotating axis, or a funnel shaped means with its generatrix of curve or zigzag line.
Preferably, the apparatus also includes the strip-collecting vessel under the transmitter.
Preferably, the apparatus also includes the outlet set under the collecting vessel.
The apparatus of preparing alloy sheets according to this invention makes the alloy sheets fully cooled before being unloaded to attain a suitable temperature. It is especially suitable for the production of easily oxidized rare earth alloy sheet.
In accordance with this invention, in the meanwhile of melting and casting, the previous produced alloy sheets are transferred to the next working procedure in batches, making the significant improvement of production efficiency possible.
According to this invention, the quenching wheel moves back and forth in the direction of axis, which results in the cyclic use of the its surface. This simplifies the liquid flow stabilization set and makes the working surface of the quenching wheel fully cooled, making it easier to produce the alloy sheets with a uniform thickness.
The apparatus of preparing alloy sheet according to this invention makes the alloy liquid of the same batch produce alloy sheet at different cooling rate, and makes the size and distribution of the sheet's grain suitable. The rare-earth transition-metal alloy sheets produced by this method can be made into the permanent magnet materials which are good in orientation, easy for processing, and suitable for large-scale mass production.
With reference to these figures, an explanation will be given to several embodiments of the apparatus for preparing alloy sheets according to this invention.
The fundamental idea of this invention is, while keeping the efficiency of alloy sheet production, to make use of the quenching wheel (see the rotating barrel 5a in
It is easily understood for those skilled in the art that when the alloy sheets thrown out of the surface (see the roller 6a of the
The applicant's research demonstrates that with constant wheel surface temperature, and the thickness of alloy sheets being controlled between 0.1 to 0.4 mm the metallurgical phase structure of the alloy sheet can be controlled in the case of various rotation speeds. Under the other condition of constant quenching wheel's rotation speed, alloy sheets with different phase texture can also be produced by controlling the surface temperature of the quenching wheel.
Therefore, in the first embodiment of the present invention, the surface working temperature of the quenching wheel can be controlled to change periodically between room temperature and 700° C., which makes the cooling rate change accordingly. Thus, the produced alloy sheets' metallurgical phase textures are different and the produced alloy sheets' mechanical performances are different. The machinability of the magnet made of the alloy sheets can be improved.
Similarly, in accordance with the variant embodiment of the first embodiment of this invention, the rotation speed of the quenching wheel can be made to continually change, namely the rotation speed can be made to gradually increase and then decrease without interruption, making the cooling rates of alloy sheets different in a single production period. Thus, the alloy sheets with proper metallurgic phase texture can be obtained, and the mechanical performances of the sheets are different, thereby the machinability of the magnet made of the alloy sheets is improved.
Similarly, in accordance with another variant embodiment of the first embodiment of this invention, the surface of the quenching wheel is divided into several regions of various working temperature (see regions A, B, C, and D in
According to the second embodiment of this invention, in order to make the cooling rate of the alloy sheets different, the quenching wheel's working surface can be made of materials with different thermal conductivity along the rotation axis. The quenching wheel's surface can be divided into several regions (see regions A, B, C, and D in
According to the third embodiment of this invention, for a requirement of preparing alloy sheet with proper grain size distribution, the working surface of the quenching wheel can be in the shape of a conical frustrum. Thus, in the condition of constant rotation speed of the quenching wheel, the alloy sheets in different axial position of the conical frustrum have different thrown out linear velocity, which can also make the alloy sheets' cooling rate different, thus preparing alloy sheets with proper metallurgic phase texture.
According to the fourth embodiment of the invention, in order to make the cooling rate of the alloy sheets different, the working surface of the quenching wheel can be in the shape of ladder along its axis (See
According to the fifth embodiment of this invention, in order to make the cooling rate of the alloy sheets different, a rotating plate 51 can be used to replace with the quenching wheel (see
According to a variant embodiment of the fifth example of this invention, the surface of the rolling disk 51 can be flat, or it can have grooves along the axial or radial direction.
According to the sixth embodiment of this invention, in order to make the cooling rate different, the quenching wheel can be replaced by a rotating barrel 51. For example, the sidewall's gradient is from 5-45°. Thus, in the condition of constant rotation speed of the barrel 51 (see the arrow 11 in
According to a variant embodiment of the sixth embodiment of this invention, the rotating barrel 51 can also have the sidewall whose generatrix is in zigzag line.
Through the above explanation, those skilled in the art can easily think of other embodiments by understanding the idea of the invention. For example, as shown in
This invention is applicable not only for the production of rare-earth transition-metal alloy, rare earth permanent magnet material, and hydrogen storage material, but also applicable for other alloy materials, such as iron based and nickel based materials.
In one word, those skilled in the art can make amendments, changes, replacements, perfections, and improvements, etc. according to the disclosure of this invention. However, this will not go beyond the spirit of this invention and the scope of protection of the claims.
Number | Date | Country | Kind |
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2007 1 0118723 | Jul 2007 | CN | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/CN2008/071111 | 5/28/2008 | WO | 00 | 1/19/2010 |
Publishing Document | Publishing Date | Country | Kind |
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WO2009/006805 | 1/15/2009 | WO | A |
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20100186923 A1 | Jul 2010 | US |