The present invention relates to casting furnaces wherein a mold is transported to or from a vacuum chamber, or otherwise environmentally controlled chamber, for casting with a liquid material, such as liquid metal.
A vacuum casting furnace is used to cast a liquid material, such as a molten metal alloy, into a mold. While referred to as a “vacuum” furnace, the furnace may cast in other controlled environments, such as an argon atmosphere. Generally a metal charge is placed in a crucible located in the controlled environment melt chamber and melted into a liquid by using a suitable energy source, such as electric induction power. A mold is transported to and from the melt chamber via a chamber serving as a controlled environment lock since it is generally desirous to maintain the melt chamber at vacuum while molds transition to and from the melt chamber.
There are methods to raise and lower a mold through a mold lock chamber to deliver the mold to the melt chamber, and to remove a filled mold from the melt chamber, respectively, wherein components of the mold transport system are located in the mold lock chamber. However the mold lock chamber presents a severely adverse environment for components of the mold transport system. When metal is poured, molten metal splatter can fall into the mold lock chamber and damage or degrade these components. Occasionally a mold will crack while in the melt chamber, or mold lock chamber, and metal leaking out of the mold can severely damage these components. Additionally the environment of the mold lock chamber is generally hot and contains particulate, which results in decreased life and increased maintenance of the components of the mold transport system.
One object of the present invention is to provide a mold transport system with components that are located outside of the casting furnace.
Another object of the present invention is to provide a mold transport system with components that are easily accessible and maintainable, and that will have a relatively long life even if installed in the casting firnace.
In one aspect, the present invention is an apparatus for, and method of, producing a casting in a casting furnace having a controlled environment melt chamber in which a liquid metal is poured into a mold that is transported to the controlled environment melt chamber via a mold lock chamber by a mold transport system. The mold transport system comprises a rotary screw drive having a rotary screw and linear motion driven shaft element attached to the rotary screw. The rotary screw drive is located external to the casting furnace and on the side of the controlled environment melt chamber in one example of the invention. A drive means is provided to rotate the rotary screw. A lift shaft is attached to a linear motion guide element. The first end of the lift shaft is attached to the linear motion driven shaft element, and a support arm is attached at its first end near to the second end of lift shaft. A mold support structure, upon which a mold can be placed, is attached to the second end of the support arm. The linear motion driven shaft element moves along the longitudinal vertical axis of the rotary screw when the screw is rotated, which also raises or lowers the mold seated on the mold support structure. The lift shaft and first end of the support arm are disposed in a lift shaft housing that is connected to the mold lock chamber. The lift shaft housing may be attached to a wall of the mold lock chamber, or to a door located in a wall of the mold lock chamber. When so located in the door, the lift shaft can be detachably connected to the external linear motion driven shaft element so that when the door is opened the lift shaft, support arm, mold support structure, and a mold seated on the mold support structure, will protrude out of the mold lock chamber. The rotary screw drive may be a planetary rotary screw drive. In other examples of the invention, the rotary screw may be replaced by a hydraulic actuator.
In another aspect, the present invention is an apparatus for, and method of, producing a casting in a casting furnace having a controlled environment melt chamber in which a liquid metal, is poured into a mold that is transported to the controlled environment melt chamber via a mold lock chamber by a mold transport system. The mold transport system comprises a cylinder screw drive having a hollow cylindrical screw with an interior threaded surface, and an externally threaded lift screw inserted in the cylindrical screw. A drive is provided to rotate the cylindrical screw, which causes the lift screw to move along the longitudinal axis of the cylindrical screw, whereby one end of the lift screw moves further into or out of a lift screw housing attached to the mold lock chamber.
A support arm is attached at its first end to the end of the lift screw in the lift screw housing. A mold support structure, upon which a mold can be placed, is attached to the second end of the support arm. The lift screw moves linearly along the longitudinal axis of the cylindrical screw when the cylindrical screw is rotated, which also raises or lowers the mold seated on the mold support structure. The lift screw housing may be attached to a wall of the mold lock chamber or a door located in a wall of the mold lock chamber. When so located in the door, when the door is opened the support arm, mold support structure, and a mold seated on the mold support structure, will protrude out of the mold lock chamber.
In another aspect, the present invention is an apparatus for, and method of, producing a casting in a casting furnace having a controlled environment melt chamber in which a liquid metal, is poured into a mold that is transported to the controlled environment melt chamber via a mold lock chamber by a mold transport system. The mold transport system comprises a rack and worm screw drive wherein the teeth of the worm screw engage the teeth of the rack so that the worm screw travels linearly along the length of the rack when the worm screw is rotated. The worm screw is suitably attached to the first end of a support arm. A mold support structure, upon which a mold can be placed, is attached to the second end of the support arm so that the support arm, mold support structure, and mold seated on the mold support structure travel linearly along the length of the rack along with the worm screw. The rack and worm screw drive may be contained in a drive housing attached to a wall of the mold lock chamber, or to a door located in a wall of the mold lock chamber. When so located in the door, when the door is opened, the support arm, mold support structure, and a mold seated on the mold support structure, will protrude out of the mold lock chamber.
These and other aspects of the invention are set forth in this specification and the appended claims.
For the purpose of illustrating the invention, there is shown in the drawings a form that is presently preferred; it being understood, however, that this invention is not limited to the precise arrangements and instrumentalities shown.
a) is a cross sectional side elevational view of one example of the casting furnace of the present invention.
b) is a front elevational view with partial cross section of the example of the casting furnace in
c) is a cross sectional view of the example of the induction casting furnace in
d) is a detail of one means of connection between the linear lift drive element and lift shaft used in the casting furnace shown in
a) is a side elevational view with partial cross section of another example of the casting furnace of the present invention.
b) is a front elevational view with partial cross section of the example of the casting furnace in
c) is a cross sectional view of the example of the induction casting furnace in
a) is a cross sectional side elevational view of another example of the casting furnace of the present invention.
b) is a cross sectional view of the example of the induction casting furnace in
a) is a cross sectional side elevational view of another example of the casting furnace of the present invention.
b) is an elevational view of the rack and worm screw drive used with the example of the casting furnace in
c) is a cross sectional view of the example of the casting furnace in
Referring now to the drawings, wherein like numerals indicate like elements, there is shown in
Suitable heating means may optionally be provided to keep the mold at a desired temperature during the pouring process and/or the withdrawal of the mold from the melt chamber. For example electric induction power may be used by surrounding mold 90 with susceptor material 18 while it is in the melt chamber. Induction coil 92 surrounds the susceptor material and an ac current flowing through the coil inductively heats the susceptor material. The induction coil is shown in cross section
In other examples of the invention the mold heating means may not be required. In this case the mold will be lifted to enable a pour of liquid metal into the mold. In this case the mold may not necessarily be raised completely out of the mold lock chamber into the melt chamber, but sufficiently raised to allow pouring in the mold. Further in other examples of the invention the mold heating means may be provided near the top of the mold lock chamber so that only the sprue of the mold protrudes into the melt chamber.
In one non-limiting example of the invention, metal charge is placed in crucible 14. A vacuum is drawn in melt chamber 12. Sealable opening 22 provides a means for entry and exit of a mold into the melt chamber. Hatch or valve 23, shown in the position when sealable opening 22 is opened, pivots and raises to seal around the perimeter of opening 22 when a mold is not in the melt chamber. A suitable power drive can be provided to operate valve 23, such as hydraulic drive 20 (illustrated in
Mold lock chamber 16 can also be maintained at vacuum when opening 22 is opened. Door 25 (best seen in
Referring to
In
Optional openings for access to various components of the furnace may be disposed around the sides of the furnace. Referring to
d) illustrates the details of one non-limiting example of providing the connecting means between roller 44 and lift shaft 46 wherein the connection automatically uncouples when door 25 pivots to the opened position. Angle element 72 is attached to gusset backing plate 74. The angle element and backing plate are attached directly or indirectly to plate 76 sitting on top of roller 44 and around rotary screw 40 so that when the roller is raised or lowered, as described above, the angle element and backing plate will also be raised or lower. An opening or slot in the horizontal region of angle element 72 provides an opening for insertion of rod or ball 78, which is attached directly or indirectly to the top of lift shaft 46. With this arrangement, when door 25 is in the closed position, ball 78 is retained in the slot in the angle element causing the lift shaft to raise and lower with movement of roller 44. When door 25 is swung open, ball 78 exits the slot in the angle element to disconnect the lift shaft from the roller disposed in the drive housing mounted external to the mold lock chamber. Consequently the lift shaft, support arm 41, mold support structure 24 and mold 90 seated on the support structure (if any) swing out and away from the furnace when door 25 is opened. This facilitates maintenance and replacement of these items that are directly or indirectly mounted to door 25, and also facilitates placing a mold on the support structure, or taking a mold off of the support structure.
A chill plate may be provided as an interface between the bottom of the mold and mold support structure 24 upon which the mold sits. The chill plate is typically used to keep the bottom of the mold at a relatively low temperature to assist in solidification of a liquid metal poured into the mold. Optionally, for example, tubing 94 and 96 for supply and return of a cooling or heating medium, such as water, from the exterior of the furnace to internal passages in the chill plate may be routed through a vacuum seal at the top of the lift shaft and through the interior of the lift shaft when the lift shaft has a hollow interior. Other components, such as thermocouples, that require tubing or wiring from the exterior of the furnace to components on the mold support structure may also be made through the interior of the lift shaft.
There is shown in
By way of example and not limitation, the rotary screw drive used with the embodiments of the invention illustrated in
In the above examples of the invention, drive housing 42 is attached to a wall of the melt chamber. In other examples of the invention the drive housing may be attached directly to the top of lift housing 48 or structural elements separate from the casting furnace. Alternatively, in other examples of the invention, the lift drive housing 42 and associated components may be inverted from the position shown in
While the above examples of the invention illustrate one rotary screw drive, two or more rotary screw drives and lift shafts may be used in the invention. For example, a pair of drives and lift shafts may be located on opposing sides of the furnace to lift both ends of the support arm.
In the above examples of the invention, the rotary screw drive may be replaced by a linear hydraulic actuator. The output rod or shaft of the hydraulic actuator would be attached to the first end of the lift shaft, in place of the linear motion shaft driven element used in the rotary screw drive. In this arrangement, the linear hydraulic actuator is located external to the casting ftrnace. Motion of the output shaft causes a mold seated on the mold support structure in the mold lock chamber to be raised or lowered since, similar to the arrangements with the rotary scre drive, the output shaft is attached to the lift shaft, which in turn, is attached to the support arm, mold support structure.
There is shown in
Features of the inventions illustrated in
screw is connected directly to the support arm. Consequently there is no need for connecting means illustrated by example in
Further while the examples of the invention illustrated in
There is shown in
In one non-limiting example of the invention a rotary ball spline, type LTR, available from THK America, Inc., Schaumburg, Ill., is used for shaft 35. The type LTR rotary ball spline comprises a spline shaft and nut 37. The nut has inner and outer cylindrical components. The inner cylindrical component is attached to the spline shaft so that it rotates with rotation of the spline shaft and is free to move along the axial length of the shaft. The outer cylindrical component is attached to the inner cylindrical component by ball bearings so that the outer cylindrical component will move along the axial length of the shaft with the inner component, but without rotating about the shaft. In the present example of the invention the worm screw is attached to the inner cylindrical component and the end of support arm 41a is connected to the outer cylindrical component.
Means can provided to keep the support arm, mold support structure and any mold sitting on the support structure in alignment as these components are raised and lowered through the mold lock chamber. One example of such means is best illustrated in
Optionally conduit 51 may be provided to contain tubing 94 and 96 and other components as previously described above for other examples of the invention. One end of the conduit terminates at support arm 41a while the other end terminates outside of the furnace. The conduit penetrates the top of the drive housing through suitable seal 49a and protrudes from, or recedes into the mold lock chamber as the support arm is raised or lowered, respectively.
Drive housing 48c may be connected directly to a sidewall of the mold lock chamber or to a door provided over an opening in a sidewall.
Further while the examples of the invention illustrated in
In any examples of the invention the controlled environment melt chamber and mold lock chamber may be of modular design so that a mold lock chamber may be used with more than one controlled environment melt chamber by providing suitable interface connecting means between the controlled environment melt chamber and the mold lock chamber. For example the mold lock chamber may be provided with wheels as a means for moving the mold lock chamber between controlled environment melt chambers.
The above examples of the invention have been provided merely for the purpose of explanation and are in no way to be construed as limiting of the present invention. While the invention has been described with reference to various embodiments, the words used herein are words of description and illustration, rather than words of limitations. Although the invention has been described herein with reference to particular means, materials and embodiments, the invention is not intended to be limited to the particulars disclosed herein; rather, the invention extends to all functionally equivalent structures, methods and uses, such as are within the scope of the appended claims. Those skilled in the art, having the benefit of the teachings of this specification, may effect numerous modifications thereto, and changes may be made without departing from the scope and spirit of the invention in its aspects.
This application claims the benefit of U.S. Provisional Application No. 60/669,480 filed Apr. 8, 2005, hereby incorporated herein by reference.
Number | Name | Date | Kind |
---|---|---|---|
3895672 | King, Jr. et al. | Jul 1975 | A |
4541475 | Goddard et al. | Sep 1985 | A |
4590983 | Reuter et al. | May 1986 | A |
4750541 | Reuter et al. | Jun 1988 | A |
5069269 | Reuter et al. | Dec 1991 | A |
6827125 | Warren | Dec 2004 | B2 |
6981541 | Warren | Jan 2006 | B2 |
20040187390 | Celani | Sep 2004 | A1 |
Number | Date | Country |
---|---|---|
2135159 | Jan 1973 | DE |
3220744 | Dec 1983 | DE |
3417731 | Nov 1985 | DE |
3901824 | Jul 1990 | DE |
1356890 | Jun 1974 | GB |
Number | Date | Country | |
---|---|---|---|
20060260779 A1 | Nov 2006 | US |
Number | Date | Country | |
---|---|---|---|
60669480 | Apr 2005 | US |