The present invention relates to a low-pressure casting device having an intermediate stalk connecting the sprue of a die and a stalk body.
JP H05-104233 A discloses a low-pressure casting device. The low-pressure casting device is provided with a heater for heating a flange of a stalk body in order to suppress a decrease in temperature of a furnace lid penetration portion of the stalk body. Further, JP 3049825 B2 discloses a low-pressure casting device in which a heater is built in an intermediate stalk wall surface of an intermediate stalk in order to prevent solidification of molten metal near the intermediate stalk.
In the techniques disclosed in JP H05-104233 A and JP 3049825 B2, it is difficult to uniformly heat the intermediate stalk. Therefore, the adhesion of the molten metal to the intermediate stalk may not be sufficiently suppressed. When the molten metal adheres to the intermediate stalk, it is necessary to perform an operation of scraping off the adhered molten metal, and it takes time for maintenance of the intermediate stalk.
The present invention has been made to solve the above problems, and an object of the present invention is to provide a low-pressure casting device capable of facilitating maintenance of an intermediate stalk.
According to an aspect of the present invention, provided is a low-pressure casting device comprising: a crucible in which molten metal is stored; a stalk body inserted into the crucible and configured to supply the molten metal into a cavity of a die; and an intermediate stalk configured to connect a sprue of the die and the stalk body, wherein the intermediate stalk includes: an inner; an intermediate stalk body configured to hold the inner on an inside thereof; and a cover configured to cover an outer side of the intermediate stalk body via a heat insulating portion, a heater housing groove is formed on a side surface of the intermediate stalk body, and a heater is attached to the heater housing groove.
According to the present invention, maintenance of the intermediate stalk can be facilitated.
The crucible 14 is installed inside the furnace 12, and the crucible 14 is heated by the furnace 12. Molten metal is stored inside the crucible 14. The molten metal is, for example, a liquid aluminum alloy. The stalk 16 is a member for supplying the molten metal into a cavity 20 of the die 18, and includes a stalk body 22 and an intermediate stalk 24. The lower end portion of the stalk body 22 is inserted into the crucible 14. The upper end portion of the stalk body 22 is connected to the intermediate stalk 24. The intermediate stalk 24 connects the stalk body 22 and sprues 28 of the die 18. The die 18 includes a lower die 30 and an upper die 32. Molten metal is supplied into the cavity 20 partitioned by the lower die 30 and the upper die 32.
The surface of the molten metal in the crucible 14 is applied with pressure by a pressurizing unit (not shown). As a result, the molten metal passes through the stalk body 22 and the intermediate stalk 24 and is supplied into the cavity 20 of the die 18. When the molten metal supplied into the cavity 20 is cooled and solidified, the pressure applied to the surface of the molten metal in the crucible 14 is released, and the liquid molten metal remaining in the intermediate stalk 24 and the stalk body 22 returns to the crucible 14.
The intermediate stalk body 34 is made of spheroidal graphite cast iron (FCD). The intermediate stalk body 34 may be formed of another material as long as the material has strength against thermal shock. The inner side surface and the outer side surface of the intermediate stalk body 34 are both formed in a substantially conical shape. An upper flange 46 extending outward in the radial direction is formed on the upper portion of the intermediate stalk body 34, and a lower flange 48 extending outward in the radial direction is formed on the lower portion of the intermediate stalk body 34.
The inner 36 is installed on the inner side surface of the intermediate stalk body 34.
As shown in
In the low-pressure casting device 10, as described above, pressure is applied to the surface of the molten metal in the crucible 14. The molten metal passes through the stalk body 22 and the intermediate stalk 24 and is supplied into the cavity 20 of the die 18. When the molten metal supplied into the cavity 20 is cooled and solidified, the pressure applied to the surface of the molten metal in the crucible 14 is released, and the liquid molten metal remaining in the intermediate stalk 24 and the stalk body 22 returns to the crucible 14.
The temperature of the intermediate stalk 24 tends to be lower than that of the stalk body 22 inserted into the crucible 14. Therefore, the molten metal may be cooled and solidified in the intermediate stalk 24, and deposits may remain in the intermediate stalk 24. As the volume of the deposits in the intermediate stalk 24 increases, the area of a runner extending from the stalk body 22 toward the cavity 20 of the die 18 decreases. This may prevent a sufficient amount of molten metal from being fed into the cavity 20. As a result, it is necessary to perform an operation such as scraping off the deposits in the intermediate stalk 24, and it takes time for maintenance. Thus, there is a problem that the time for stopping the casting becomes long and the efficiency of product production deteriorates.
Therefore, in the low-pressure casting device 10 of the present embodiment, the inner 36 is held inside the intermediate stalk body 34. Thus, even if the molten metal is cooled and solidified and adheres to the inside of the intermediate stalk 24, the deposits thereof in the intermediate stalk 24 can be removed only by replacing the inner 36. Therefore, the time required for maintenance can be shortened, and the efficiency of product production can be improved.
Further, in the low-pressure casting device 10 of the present embodiment, the heater 38 is attached to the heater housing groove 50 formed in the outer side surface of the intermediate stalk body 34. Thus, the heater 38 can be disposed at a position close to the inner side surface of the intermediate stalk body 34, and the molten metal in the intermediate stalk 24 can be efficiently heated. Therefore, cooling and solidification of the molten metal in the intermediate stalk 24 can be suppressed, and the amount of deposits can be reduced.
Further, in the low-pressure casting device 10 of the present embodiment, the heater housing groove 50 is formed so as to meander in the height direction of the intermediate stalk body 34. Thus, the heater 38 is also attached so as to meander in the height direction of the intermediate stalk body 34. Therefore, the molten metal in the intermediate stalk body 34 can be uniformly heated. Further, since the heater 38 is attached to the outer side surface of the intermediate stalk body 34, the heater 38 can be easily replaced.
Moreover, in the low-pressure casting device 10 of the present embodiment, the cover 40 can be divided into three parts and is detachably locked to the intermediate stalk body 34. Thus, the heater 38 can be easily replaced.
There is provided a low-pressure casting device (10) comprising: a crucible (14) in which molten metal is stored; a stalk body (22) inserted into the crucible and configured to supply the molten metal into a cavity (20) of a die (18); and an intermediate stalk (24) configured to connect a sprue (28) of the die and the stalk body, wherein the intermediate stalk includes: an inner (36); an intermediate stalk body (34) configured to hold the inner on an inside thereof; and a cover (40) configured to cover an outer side of the intermediate stalk body via a heat insulating portion (54), a heater housing groove (50) is formed on a side surface of the intermediate stalk body, and a heater (38) is attached to the heater housing groove. Thus, the time required for maintenance can be shortened, and the efficiency of product production can be improved.
In the above-described low-pressure casting device, the heater housing groove may be formed on the side surface of the intermediate stalk body so as to meander in a height direction of the intermediate stalk body, and the heater may be disposed along the heater housing groove. Thus, cooling and solidification of the molten metal in the intermediate stalk can be suppressed, and the amount of deposits can be reduced.
In the above-described low-pressure casting device, the cover may be divided into at least two parts, and may be detachably attached to the intermediate stalk body. Thus, the heater can be easily replaced.
In the above-described low-pressure casting device, the heater housing groove may be formed on an outer side surface of the stalk body. Thus, the heater can be easily replaced.
Number | Date | Country | Kind |
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JP2019-095741 | May 2019 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2020/015476 | 4/6/2020 | WO |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2020/235235 | 11/26/2020 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
20100326617 | Nakama et al. | Dec 2010 | A1 |
20110253337 | Matsui et al. | Oct 2011 | A1 |
Number | Date | Country |
---|---|---|
104668521 | Jun 2015 | CN |
59-006055 | Jan 1984 | JP |
04-047856 | Apr 1992 | JP |
04-083466 | Jul 1992 | JP |
04-361850 | Dec 1992 | JP |
05-104233 | Apr 1993 | JP |
05-076660 | Oct 1993 | JP |
3049825 | Jun 2000 | JP |
2010-017743 | Jan 2010 | JP |
2010-167495 | Aug 2010 | JP |
Entry |
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International Search Report and Written Opinion for International Application No. PCT/JP2020/015476 dated Jun. 23, 2020, 11 pages. |
Chinese Office Action and Search Report for Chinese Patent Application No. 202080038039.6 dated Sep. 26, 2022. |
Number | Date | Country | |
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20220226887 A1 | Jul 2022 | US |