METAL POWDER PRODUCING APPARATUS AND GAS JET DEVICE THEREFOR
20220080503 · 2022-03-17
Assignee
Inventors
Cpc classification
B33Y70/00
PERFORMING OPERATIONS; TRANSPORTING
B05B7/0483
PERFORMING OPERATIONS; TRANSPORTING
B22F2009/088
PERFORMING OPERATIONS; TRANSPORTING
B05B7/083
PERFORMING OPERATIONS; TRANSPORTING
B22F2999/00
PERFORMING OPERATIONS; TRANSPORTING
B05B1/14
PERFORMING OPERATIONS; TRANSPORTING
B22F2999/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A metal powder producing apparatus includes a spray tank, and a plurality of spray nozzles that spray a molten metal into the spray tank. Each of the plurality of spray nozzles includes a molten metal nozzle allowing the molten metal to flow down into the spray tank, and a gas jet nozzle having a plurality of jet holes that are disposed in a periphery of the molten metal nozzle and jet a gas to the molten metal flowing down from the molten metal nozzle. Each of center axes of the plurality of jet holes is deviated to either one of left side and right side relative to a center axis of the molten metal nozzle. Each of the center axes of the plurality of jet holes and the center axis of the molten metal nozzle are located at skew positions.
Claims
1. A metal powder producing apparatus comprising: a spray tank; and a plurality of spray nozzles that sprays a molten metal into the spray tank, wherein the plurality of spray nozzles each have a molten metal nozzle allowing the molten metal to flow down into the spray tank, and a gas jet nozzle having a plurality of jet holes that are disposed in a periphery of the molten metal nozzle and jet a gas to the molten metal flowing down from the molten metal nozzle, each of center axes of the plurality of jet holes is deviated to either one of left side and right side relative to a center axis of the molten metal nozzle, and each of the center axes of the plurality of jet holes and the center axis of the molten metal nozzle are located at skew positions.
2. The metal powder producing apparatus according to claim 1, wherein a direction in which each of the center axes of the plurality of jet holes is deviated relative to the center axis of the molten metal nozzle is a same for all the plurality of spray nozzles.
3. The metal powder producing apparatus according to claim 1, wherein the direction in which each of the center axes of the plurality of jet holes is deviated relative to the center axis of the molten metal nozzle is different for each of two adjacent spray nozzles of the plurality of spray nozzles.
4. The metal powder producing apparatus according to claim 1, wherein the plurality of spray nozzles are three or more spray nozzles, and distances between center axes of two adjacent spray nozzles of the plurality of spray nozzles are equal.
5. A gas jet device for a metal powder producing apparatus, comprising: a molten metal nozzle insertion hole into which a molten metal nozzle allowing a molten metal to flow down therethrough is inserted; a gas flow channel that forms a gas flow in a periphery of the molten metal nozzle insertion hole; and a gas jet nozzle that jets a gas in the gas flow channel toward an outer side of the gas jet device relative to an opening end of the molten metal nozzle insertion hole, wherein the gas jet nozzle includes a plurality of jet holes formed in a bottom surface of the gas jet device and in the periphery of the opening end of the molten metal nozzle insertion hole, each of center axes of the plurality of jet holes is deviated to either one of left side and right side relative to a center axis of the molten metal nozzle insertion hole, each of the center axes of the plurality of jet holes and the center axis of the molten metal nozzle insertion hole are located at skew positions, and a plurality of the molten metal nozzle insertion holes and a plurality of the gas jet nozzles are provided.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010]
[0011]
[0012]
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0020] Embodiments of the present invention will be described below using the drawings.
First Embodiment
[0021]
[0022] The inside of the dissolution tank 1 is preferably maintained in an inert gas atmosphere. The spray tank 4 of
[0023]
(Molten Metal Nozzles 11A and 11B)
[0024] As depicted in
[0025] Opening ends 21A and 21B located at lower ends of the molten metal nozzle (first molten metal nozzle) 11A and the molten metal nozzle (second molten metal nozzle) 11B are disposed respectively to project from the bottom surface of the gas jet device 200 and to front on the cavity in the spray tank 4. The molten metal in the crucible 100 flows down as molten metal flows 8 in the internal holes of the molten metal nozzles 11A and 11B, to be discharged (to flow down) into the spray tank 4 through the opening ends 21A and 21B. As a minimum inside diameter of the first molten metal nozzle 11A and the second molten metal nozzle 11B contributing to the size of the diameter of the molten metal introduced into the spray tank 4, a value of, for example, equal to or less than 5 mm may be selected.
(Gas Jet Device 200)
[0026] As depicted in
(Molten Metal Nozzle Insertion Holes 12A and 12B)
[0027] As illustrated in
(Gas Jet Nozzles 71 (71A and 71B))
[0028] The gas jet nozzles 71 include a plurality of jet holes (through-holes) 91 disposed so as to draw rings (see
(Spray Nozzles 20A and 20B)
[0029] The first gas jet nozzle 71A and the first molten metal nozzle 11A constitute a first spray nozzle 20A that liquid sprays the molten metal into the spray tank 4, and the second gas jet nozzle 71B and the second molten metal nozzle 11B similarly constitute a second spray nozzle 20B. In other words, the gas atomizing apparatus of the present embodiment includes the two spray nozzles, namely, the first spray nozzle 20A and the second spray nozzle 20B.
[0030] As depicted in
(Jet Hole 91)
[0031]
[0032] The part denoted by a reference symbol 27 in
[0033] The gas jet directions of the plurality of jet holes 91 constituting the gas jet nozzle 71A are indicated by alternate long and short dash lines 251, and each jet hole 91 is formed by boring in a bottom surface of the gas jet device 200 a through-hole having a center axis coinciding with the corresponding alternate long and short dash line 251. In other words, the alternate long and short dash line 251 is the gas jet direction of the jet hole 91, and is the center axis of the jet hole 91 and an extension line thereof. The plurality of jet holes 91 are disposed at regular intervals on the ring 61 which is a concentric circle with the center axis Cm1 of the first molten metal nozzle insertion hole 12A in the bottom surface of the gas jet device 200.
[0034] The gas jet nozzle 71A in
[0035] Description as to the deviating direction of the center axes 251a to 251h of the jet holes 91a to 91h relative to the center axis Cm1 will be supplemented. The deviating direction is determined by setting a straight line connecting the center of the opening end of a certain jet hole 91 to the center axis Cm1, on a top plan view of the gas jet device 200, as a reference line, and detecting which one of the left side and the right side of the reference line the center axis 251 of the jet hole 91 is located on. It is to be noted, however, that the left side and the right side of the “deviation” is reversed in
[0036] The center axes 251a to 251h of the jet holes 91a to 91h are configured so as to be most nearest to the center axis Cm1 of the first molten metal nozzle 11A (first molten metal nozzle insertion hole 12A) on a predetermined virtual plane S1 (see
[0037] Circles 92a to 92h are located on the plane S1. These circles 92a to 92h are intersections of extensions of the outer shapes (shapes of inner wall surfaces) of the plurality of jet holes 91a to 91h extended respectively along the center axes 251a to 251h and the plane S1. As aforementioned, the center axes 251a to 251h of the jet holes 91a to 91h are the nearest to the center axis Cm1 of the first molten metal nozzle 11A on the plane S1, and the distance therebetween in the case of
[0038] Though detailed description utilizing the drawings is omitted, the second gas jet nozzle 71B has the same structure as that of the first gas jet nozzle 71A. In other words, each of the center axes (gas jet directions) of the eight jet holes 91 constituting the second gas jet nozzle 11B is deviated in the same direction (namely, to the “left”) relative to the center axis Cm2 of the second molten metal nozzle 11B (second molten metal insertion hole 12B) as the jet holes 91a to 91h of the first gas jet nozzle 71A, and each of the center axes 251 of the eight jet holes 91 and the center axis Cm2 of the second molten metal nozzle 11B are located at skew directions and do not intersect.
[0039] A plurality of arrows with the centers of the jet holes 91 constituting the first gas jet nozzles 71A and the second gas jet nozzles 71B as start points are drawn in
[0040] Note that the rings 61 in the present embodiment are true circles with the intersections of the center axes of the molten metal nozzle insertion holes 12A and 12B and the bottom surface (a surface fronting on the inside of the spray tank 4) of the gas spray device 200 as centers. While the number of the jet holes 91 constituting the gas jet nozzle 71A and the number of the jet holes 91 constituting the gas jet nozzle 71B are both eight in
(Operation and Effects)
[0041] In the metal powder producing apparatus configured as above, when a high-pressure gas is supplied from the jet gas supply pipe 3 to the gas jet deice 200, the high-pressure gas is jetted toward the inside of the spray tank 4 from all of the jet holes 91 constituting the two gas jet nozzles 71A and 71B of the gas jet device 200. In this instance, at each of the gas jet nozzles 71A and 71B, the gas is jetted along the gas jet directions 251 (see
[0042] On the other hand, when the molten metal is thrown into the dissolution tank 1, two molten metal flows 8 flow down into the inside of the spray tank 4 through the two molten metal nozzles 11A and 11B provided at the bottom surface of the dissolution tank 1. Then, the molten metal flows 8 collide against the fluid films formed by the high-pressure gas discharged from the two gas jet nozzles 71A and 71B, to be pulverized into a multiplicity of fine particles 15. Since the fluid films are twisted in the direction of arrow 81A as aforementioned, reverse flow of the gas which can be generated upon collision on the molten metal flows 8 can be restrained, and blow-up of the molten metal can also be restrained. As a result, the production efficiency and yield of the metal powder can be restrained from being lowered.
[0043] Particularly in the present embodiment, the twisting directions of the fluid films formed by the two gas jet nozzles 71A and 71B are the same, a flow in the direction indicated by arrow 82 (see
[0044] As has been aforementioned, in the present embodiment, the swirl flows 82 are generated in the spray tank 4 due to twisting of the fluid films formed by the two gas jet nozzles 71A and 71B in the same direction, whereby the fine metal particles 15 are restrained from colliding against and sticking to the spray tank 4, so that the fine metal powder can be efficiently produced without changing the body type of the spray tank 4.
(Supplement)
[0045] Note that while a case where the jet direction 251 of each of the jet holes 91 is deviated in the leftward direction has been shown as an example in the above embodiment, similar effects are obtained even where the jet direction 251 is deviated in the rightward direction.
[0046] While a case where the number of the spray nozzles 20 is two has been described in the above embodiment, similar effects to the above-mentioned can be produced even where three or more spray nozzles are present, insofar as the jet directions 251 of the jet holes 91 included in all the three or more spray nozzles are deviated in the same direction.
[0047] While a case where the center axis 251 of each of the jet holes 91 is nearest to the center axis of the molten metal nozzle on the virtual plane S1 and the distance therebetween is substantially the radius of the molten metal flows 27 has been shown in the above embodiment, the distance is preferably close to the radius of the jet holes 91. A bottom view of the first gas jet nozzle 71A in the case where the distance is set to the radius of the jet holes 91 (it is to be noted that the intersection of a cylindrical surface obtained by extending the outer shape (shape of an inner wall surface) of the jet hole 91 along the center axis 251 and the plane S1 is approximated as a true circle) is depicted in
Second Embodiment
[0048] The present embodiment is characterized in that the direction in which the center axis 251 of the jet hole 91 is deviated relative to the center axis Cm1 and Cm2 of the corresponding molten metal nozzle 11 is different (is opposite) between the first gas jet nozzle 71A (first spray nozzle 20A) and the second gas jet nozzle 71C (second spray nozzle 20C). The other parts are the same as in the first embodiment, and, therefore, descriptions thereof are omitted.
[0049]
[0050] Each of center axes (gas jet directions) of eight jet holes 91 constituting the second gas jet nozzle 71C is deviated to the direction opposite to the jet holes 91a to 91h of the first gas jet nozzles 71A (namely, to the “right”), relative to the center axis Cm2 of the second molten metal nozzle 11B (second molten metal nozzle insertion hole 12B), and each of the center axes 251 of the eight jet holes 91 and the center axis Cm2 of the second molten metal nozzle 11B are located at skew positions and do not intersect.
[0051] As is obvious from
[0052] In the present embodiment configured as aforementioned, the twisting directions of the fluid films formed by the two gas jet nozzles 71A and 71C are different from each other, and, therefore, a flow in the direction indicated by arrow 83 (see
Third Embodiment
[0053] While the number of the spray nozzles 20 have been two in the above two embodiments, the number of the spray nozzles 20 may be three or more. In this case, it is preferable that the center axis distances (the distances between center axes of two molten metal nozzle insertion holes 12) of the two adjacent spray nozzles 20 of the three or more spray nozzles 20 are equal.
[0054] Where the plurality of spray nozzles 20 are disposed in this way, the flow formed inside the spray tank 4 (either one of a flow corresponding to the flow 82 in the first embodiment and a flow corresponding to the flow 83 in the second embodiment) becomes uniform. As a result, a situation in which the production efficiency and yield concerning one spray nozzle 20 is lowered as compared to those concerning other spray nozzle 20 can be avoided, so that production efficiency of the metal powder can be enhanced.
[0055] Note that a case where the jet directions (center axes) 251 of the jet holes 91 concerning all the jet nozzles are the same and the flow 82 is generated is depicted in
[0056] The present invention is not limited to each of the above embodiments, but includes various modifications within such ranges as not to depart from the gist of the invention. For example, the present invention is not limited to those including all the configurations described in each of the above embodiments, but includes those in which a part of the configurations is deleted. In addition, a part of configurations of a certain embodiment may be added to or may substitute for the configurations of other embodiment.
DESCRIPTION OF REFERENCE SYMBOLS
[0057] 1: Dissolution tank [0058] 2: Hopper [0059] 3: Jet gas supply pipe [0060] 4: Spray tank [0061] 5: Collection section [0062] 6: Inert gas [0063] 8: Molten metal flow [0064] 11: Molten metal nozzle [0065] 12: Molten metal nozzle insertion hole [0066] 15: Fine metal particles [0067] 20: Spray nozzle [0068] 21: Opening end [0069] 27: Molten metal flowing-down region [0070] 41: Tapered section [0071] 50: Gas flow channel [0072] 61: Ring [0073] 71: Gas jet nozzle [0074] 81: Flow [0075] 82: Swirl flow [0076] 83: Flow (Air curtain) [0077] 91: Jet hole [0078] 200: Gas jet device [0079] 251: Jet direction (Center axis of jet hole)