Vacuum Melting and Casting Apparatus
20170001239 ยท 2017-01-05
Assignee
Inventors
- Seiji Tashiro (Kanagawa, JP)
- Youichi Oohinata (Kanagawa, JP)
- Naoki Hibino (Kanagawa, JP)
- Takashi Oowada (Kanagawa, JP)
Cpc classification
B22D11/0611
PERFORMING OPERATIONS; TRANSPORTING
F27D2007/066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B22D11/0628
PERFORMING OPERATIONS; TRANSPORTING
B22D11/12
PERFORMING OPERATIONS; TRANSPORTING
B22D11/068
PERFORMING OPERATIONS; TRANSPORTING
B22D11/0697
PERFORMING OPERATIONS; TRANSPORTING
International classification
B22D11/06
PERFORMING OPERATIONS; TRANSPORTING
F27D7/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B22D11/12
PERFORMING OPERATIONS; TRANSPORTING
B22D11/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A hermetically sealed container is equipped inside thereof with: a melting furnace; a cooling roll for subjecting the molten metal tapped from the melting furnace to primary cooling to form a casting; and a rotatable cooling drum which receives the casting formed by the cooling roll and which subjects the casting to secondary cooling. The cooling drum has: a tubular member elongated in one longitudinal direction and having a receiving opening which is formed to open on one side of the tubular member to receive therein the casting, and a discharge opening which is formed to open on an opposite side of the tubular member to discharge the casting that has been subjected to the secondary cooling; and a transfer means for transferring the casting received from the receiving opening toward the discharge opening in response to the rotation of the tubular member.
Claims
1. A vacuum melting and casting apparatus having, inside a hermetically sealed container to which an evacuating pipe is connected: a melting furnace; a cooling roll for forming a casting by subjecting molten metal tapped from the melting furnace to primary cooling; and a rotatable cooling drum for receiving the casting formed by the cooling roll and for subjecting the casting to secondary cooling; wherein the cooling drum comprises: a tubular member elongated in one longitudinal direction and having a receiving opening which is formed to open on one side of the tubular member in order to receive therein the casting, and a discharge opening which is formed to open on an opposite side of the tubular member in order to discharge the casting that has been subjected to the secondary cooling; and a transfer means for transferring the casting received from the receiving opening toward the discharge opening in response to the rotation of the tubular member.
2. The vacuum melting and casting apparatus according to claim 1, wherein the transfer means is characterized in having: a first projecting strip disposed spirally on an inner peripheral surface of the tubular member; and at least one second projecting strip disposed linearly on the inner peripheral surface of the tubular member.
3. The vacuum melting and casting apparatus according to claim 1, characterized in that a grinding means is further provided for grinding, before transferring to the receiving opening, the casting which has been subjected to primary cooling by the cooling roll.
4. The vacuum melting and casting apparatus according to claim 1, wherein the tubular member is further provided with a cooling gas introducing means for introducing a cooling gas to accelerate the secondary cooling of the casting inside the tubular member.
5. The vacuum melting and casting apparatus according to claim 2, wherein a grinding means is further provided for grinding, before transferring to the receiving opening, the casting which has been subjected to primary cooling by the cooling roll.
6. The vacuum melting and casting apparatus according to claim 2, wherein the tubular member is further provided with a cooling gas introducing means for introducing a cooling gas to accelerate the secondary cooling of the casting inside the tubular member.
7. The vacuum melting and casting apparatus according to claim 3, wherein the tubular member is further provided with a cooling gas introducing means for introducing a cooling gas to accelerate the secondary cooling of the casting inside the tubular member.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013]
[0014]
[0015]
MODES FOR CARRYING OUT THE INVENTION
[0016] With reference to the drawings, explanation will now be made of an embodiment of a vacuum melting and casting apparatus according to this invention. In the following description, the terms showing the directions such as up, down, left and right are based on
[0017] With reference to
[0018] The melting furnace 2 is pivotally supported, at an upper end portion thereof, by a supporting column 21 which is vertically disposed inside the main container portion 1a. It is so arranged that the melting furnace can be tilted by cylinder 22 from an upward posture as shown by thick lines in
[0019] The tundish 3 is in a box shape made of ceramic and is arranged to quantitatively strip-cast the molten metal onto the cooling roll 4 out of a laterally elongated slit that is provided in a nozzle 31 at the bottom surface of the tundish. The cooling roll 4 is arranged to rotate at a peripheral speed of 0.1 to 5.0 m/sec. The peripheral surface of the cooling roll is water-cooled from the inner portion thereof. The molten metal that has been strip-cast onto the cooling roll 4 is subjected to primary cooling on the peripheral surface of the cooling roll 4 and is solidified, and is thereafter peeled off from the cooling roll 4 as a thin band-like cast product.
[0020] In addition, the main container portion 1a has connected thereto a gas introduction pipe 14 which is communicated with a gas supply source such as an inert gas and the like. In melting the metallic material that has been charged into the melting furnace 2, the hermetically sealed container 1 is first evacuated by exhausting through the vacuum exhaust pipe 11. The gasifiable compositions such as moisture and the like that are contained in the metallic material are thus de-aerated. Thereafter, at a time when the metallic material has been melted to a certain degree, an inert gas is introduced through the gas introduction pipe 14 into the hermetically sealed container 1, thereby raising the internal pressure of the hermetically sealed container 1. Transpiration of the metallic material inside the melting furnace 2 is thus prevented. The casting: is then allowed to drop into the sub-container portion 1b through a discharge port 13 that is provided in the main container portion 1a and the sub-container portion 1b, respectively, at a position below the cooling roll 4; is dumped into the cooling drum 5 through a trough 7 that is disposed inside the sub-container 1b so as to be inclined downward toward the right side; and is subjected to secondary cooling inside the cooling drum 5. In this case, in a dropping path of the casting from the cooling roll 4 into the discharge port 13 inside the main container portion 1a, there is provided a grinding means 8 made up of a pair of rollers 81, 82. It is thus so arranged that, before being received into the cooling drum 5, the casting is ground into substantially the same size.
[0021] As shown in
[0022] On the right end surface of the tubular member 51 there is formed a joint portion 57. The joint portion 57 is connected to a rotary shaft 58 which penetrates through the side surface of the sub-container portion 1b. The rotary shaft 58 is supported, via bearings 59a, by a cylindrical supporting member 59 which is provided on the side surface of the sub-container 1b. Inside the rotary shaft 58 there are formed a forward circulation passage 58a for a cooling medium, and a return circulation passage 58b which is formed around the forward circulation passage 58a. It is thus so arranged that the cooling medium can be circulated in a cooling jacket 56 through a connecting pipe 57a which is disposed inside a joint portion 57. Further, the rotary shaft 58 is coupled to a pulley Mp1 provided on an end portion of the rotary shaft 58. By means of a belt Mv wound around the pulley Mp1 and a pulley Mpg that is provided on a rotary shaft Ma of a motor M which is disposed on an outside of the sub-container 1b, the rotary drum 5 is arranged to be rotatable by the motor M in one direction of rotation. By the way, the length and the diameter of the tubular member 51, and the pitch of the first projecting strip 54 may be appropriately set out of consideration of the rotational speed of the cooling roll 4, the temperature to which the casting shall be cooled, and the like.
[0023] The recovery box 6 is disposed inside the sub-container 1b right below the discharge openings 53 of the cooling drum 5 so as to receive and recover the casting that drops from the discharge opening 53. The recovery box 6 is provided with casters 61, and the right-side wall of the sub-container 1b is provided, on its lower side, with an open-close door 15. The recovery box 6 is thus arranged to be movable into and out of the sub-container 1b.
[0024] According to the above-mentioned embodiment, the casting as received into the tubular member 51 is sequentially transferred from the receiving opening 52 side toward the discharge openings 53 side in response to the number of rotation of the tubular member 51. In the course of this transfer process, the casting is subjected to the secondary cooling by heat exchanging with the inner peripheral surface of the tubular member 51 before being discharged out of the discharge openings 53. Therefore, unlike the above-mentioned conventional example in which the casting is stored once, the casting can be cooled substantially uniformly. In addition, by changing the number of rotation of the tubular member 51, the cooling speed can also be changed. Still furthermore, without being bound by the productivity, the tubular member 51 is required only to have the length and inner diameter depending on the temperature to which the casting shall be cooled. Supported by the feature that the vacuum melting and casting apparatus is provided with the cooling gas introducing means, the tubular member 51 can be made smaller in length and diameter. Further downsizing of the vacuum melting and casting apparatus becomes possible.
[0025] Furthermore, since the tubular member 51 is provided, on its inner surface, with the first projecting strip 54 and the second projecting strips 55, the casting received into the tubular member 51 is prevented from locally staying inside the tubular member 51. Therefore, a predetermined amount of the casting can be sequentially and efficiently transferred from the receiving openings 52 side toward the discharge openings 53 side. Still furthermore, by providing the vacuum melting and casting apparatus with the grinding means 8, the casting can be ground to a substantially uniform size before being received by the tubular member 51, the casting can be subjected to secondary cooling in a further uniform manner.
[0026] Descriptions have so far been made of an embodiment of this invention, but this invention shall not be limited to the above. In the above embodiment, descriptions have been made of an example in which the inner peripheral surface of the tubular member 51 is provided with the transfer means comprising the first projecting strip 54 disposed spirally and the two second projecting strips 55 disposed linearly. However, any mode will do as long as a predetermined amount of casting can be sequentially transferred efficiently from the receiving opening 52 side toward the discharge openings 53 side. Further, ring-shaped eccentric members are respectively disposed on the inner surface of the tubular member 51 at a predetermined spacing so as to form the first projecting strip 54 as a whole. They shall, however, not be limited to the above, but may be formed integrally. Further, a description has been made of an example in which the tubular member 51 is horizontally supported in a cantilevered manner by the wall surface of the sub-container portion 1b. It may, alternatively, be so arranged that supporting rollers which support the peripheral surface of the tubular member 51 are disposed on the sub-container 1b. Still furthermore, the tubular member 51 may be disposed in a manner to be inclined downward toward the right-hand side so that the casting can be efficiently and sequentially transferred from the receiving opening 52 side toward the discharge openings 53 side. In this case, the tubular member 51 itself constitutes the transfer means.
EXPLANATION OF REFERENCE NUMERALS
[0027] CM vacuum melting and casting apparatus [0028] 1 hermetically sealed container [0029] 2 melting furnace [0030] 4 cooling roll [0031] 5 cooling drum [0032] 51 tubular member (cooling drum) [0033] 52 receiving opening [0034] 53 discharge opening [0035] 54 first projecting strip (transfer means) [0036] 55 second projecting strip (transfer means) [0037] 8 grinding means [0038] 9 gas pipe (cooling gas introducing means)