1. Field of the Invention
The present invention relates to a casting apparatus, and more specifically, to a compact casting apparatus capable of producing a high-quality casted product.
2. Description of the Related Art
A tilt-casting method is known as a method for producing a mold such as a tire mold. Conventionally, an apparatus having a hermetically sealable tilting tank has been used in the tilt-casting method. The tank houses inside a mold provided with a plaster mold therein and a hopper for accommodating a molten metal such as an aluminium material (see, for example, Japanese patent application Kokai publication No. 2006-130537). In order to prevent the formation of pores in a casted product, the tilting tank is tilted with the internal pressure being reduced. Accordingly, the mold and the hopper are gradually tilted from the horizontal positions to fill the mold with the molten metal in the hopper. After the molten metal is completely filled into the mold, the internal pressure of the tilting tank is increased to a predetermined pressure. Thus, the molten metal is solidified with its fillingness increased. Subsequently, after the tilting tank is returned to the horizontal position, the mold is taken outside the tilting tank. In this manner, a casted product solidified into a predetermined shape is obtained from the mold.
The tilting tank needs to have an enough space to accommodate the mold and the hopper as described above. Consequently, the conventional casting apparatus is large sized, and it has been difficult to make a compact casting apparatus. Therefore, a compact casting apparatus capable of producing a high-quality casted product has been demanded.
An object of the present invention is to provide a compact casting apparatus capable of producing a high-quality casted product.
To accomplish the above object, a casting apparatus of the present invention includes: a hopper which accommodates a molten metal; a mold which communicates with the hopper through a runner; and tilting means which tilts the hopper and the mold. The hopper and the mold are connected to depressurizing means through pipes. The mold is connected to pressurizing means through a pipe. The mold is provided with an open-close gate which opens and closes the runner.
The casting apparatus maybe provided with a single unit of depressurizing means. The single unit of depressurizing means is connected to the mold through the pipe. The pipe is connected to the hopper through a branch pipe having an open-close valve; accordingly, the single unit of depressurizing means is connected to the hopper and the mold through the pipe and the branching pipe. The pipe connecting the single depressurizing means to the mold is connected to the pressurizing means through a switch valve; accordingly, the mold is connected to the pressurizing means through the pipe. Moreover, the casting apparatus may have the following structure. Specifically, the mold is connected to the hopper with a seal member interposed therebetween. A seal member is provided to a joint surface between an upper mold and a lower mold of the mold. A seal member is provided to a joint surface between a body part and a lid part of the hopper.
In the present invention, the hopper and the mold are connected to the depressurizing means through the pipes, and the mold is connected to the pressurizing means through the pipe and provided with the open-close gate which opens and closes the runner. Accordingly, the internal pressures of the mold and the hopper are directly reduced by the depressurizing means, and only the mold is directly pressured by the pressurizing means. Therefore, a tilting tank as large as the one in the conventional technique is no longer necessary, and the casting apparatus according to the present invention can have a compact structure.
Furthermore, a molten metal accommodated in the hopper under a reduced pressure is filled into the mold, and the molten metal thus filled in the mold is solidified while being pressured at a predetermined pressure. Thereby, a high-quality casted product is obtained.
Hereinafter, a casting apparatus of the present invention will be described on the basis of an embodiment illustrated in the drawings.
As exemplified in
As exemplified in
Runners 6a are formed in the lower mold 5b along the joint surface between the upper mold 5a and the lower mold 5b. Through the runners 6a, the inside (cavity 6) of the mold 5 communicates with the inside of the hopper 7. Open-close gates 8 which open or close the runners 6a is provided to the mold 5. The open-close gates 8 close the runners 6a by the forward movement of rods of gate cylinders 9, and open the runners 6a by the reverse movement.
The hopper 7 temporarily accommodates a predetermined amount of a molten metal A such as an aluminium material. The seal member S is provided to the joint surface between a body part and a lid 7a of the hopper 7, keeping the air tightness high. Moreover, the seal member S is provided to the joint surface between the mold 5 and the hopper 7, keeping the air tightness high, while connecting the two.
The mold 5 is connected to depressurizing means 13 such as a vacuum pump through a pipe 10a. The pipe 10a is connected to one end of a branch pipe 11 that has an open-close valve 12b. The other end of the branch pipe 11 is connected to the hopper 7. In other words, the hopper 7 is connected to the depressurizing means 13 through the branch pipe 11 and the pipe 10a.
Furthermore, the pipe 10a that connects the mold 5 to the depressurizing means 13 is connected to a pipe 10b through a switch valve 12a, the pipe 10b being connected to pressurizing means 14 such as a pressure pump. In other words, the mold 5 is connected to the pressurizing means 14 through the pipe 10b and the pipe 10a.
Next, the procedure of a casting method with the casting apparatus 1 will be described.
First, as exemplified in
Then, by operating the tilting cylinder 3, the mold 5 and the hopper 7 are gradually tilted as exemplified in
In this manner, the internal pressure of the hopper 7 is reduced by the depressurizing means 13 through the pipe 10a and the branch pipe 11, and the internal pressure of the mold 5 is reduced by the depressurizing means 13 through the pipe 10a. The internal pressures of the hopper 7 and the mold 5 are reduced down to approximately, for example, 30 kPa to 50 kPa abs (atmospheric pressure is 101.32 kPa abs). This enables the micro-production (specific design) of a casted product D, preventing the formation of pores therein.
Subsequently, as exemplified in
After the filling of the molten metal A into the mold 5 is completed, only the internal pressure of the mold 5 is increased up to a predetermined pressure. To this end, the pressurizing means 14 is operated and the switch valve 12a is controlled so that the communication between the depressurizing means 13 and the pipe 10a can be shut off to thereby make only the pressurizing means 14 work. The depressurizing means 13 that has been in operation is stopped. Moreover, the open-close valve 12b is controlled so that the communication between the pipe 10a and the branch pipe 11 can be shut off. Furthermore, the gate cylinders 9 are operated to cause the open-close gates 8 to close the runners 6a. In this way, the pressuring means 14 applies the pressure only to the inside of the mold 5 through the pipe 10b and the pipe 10a. Thus, the molten metal A is provided as a riser during casting. The pressure applied by the pressurizing means 14 is set approximately, for example, 0.01 MPa to 1.0 MPa, and preferably 0.3 MPa to 0.6 MPa. Here, air or an inert gas is used as the gas to increase the internal pressure.
As described above, only the internal pressure of the mold 5 is increased, and the molten metal A thus filled is solidified. In this manner, the fillingness is increased, and the quality of the casted product D thus produced is improved. In this embodiment, the molten metal A is solidified upon contact with the mold 5, while the seal member S keeps the air tightness in the mold 5 high. Accordingly, the air tightness is further improved, and the pressurizing process is conducted efficiently.
After the molten metal A is completely solidified, the increasing of the internal pressure of the mold 5 by the pressurizing means 14 is stopped. Then, the mold 5 and the hopper 7 are returned to the horizontal positions as exemplified in
In the present invention, the internal pressures of the mold 5 and the hopper 7 are directly reduced by the depressurizing means 13, and only the mold 5 is directly pressured by the pressurizing means 14. Thus, the tilting tank is no longer as large as the one in the conventional technique, and the casting apparatus according to the present invention can have a compact structure. Moreover, the quality of the casted product D can be improved, as has described above.
Number | Date | Country | Kind |
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2008-061877 | Mar 2008 | JP | national |
Number | Name | Date | Kind |
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3987844 | Vitanov et al. | Oct 1976 | A |
4146081 | Reis | Mar 1979 | A |
4412804 | Huther | Nov 1983 | A |
5151200 | Stephansky et al. | Sep 1992 | A |
5819837 | Hugo et al. | Oct 1998 | A |
5906235 | Thomas et al. | May 1999 | A |
Number | Date | Country |
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49-114522 | Nov 1974 | JP |
52-120229 | Oct 1977 | JP |
09225622 | Sep 1997 | JP |
2006130537 | May 2006 | JP |
A 2006-130537 | May 2006 | JP |
Entry |
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Machine translation of Enokido (JP 2006-130537A, cited in IDS). |
Number | Date | Country | |
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20090229782 A1 | Sep 2009 | US |