US3664407A - Apparatus for making shell molds - Google Patents

Apparatus for making shell molds Download PDF

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US3664407A
US3664407A US870706A US3664407DA US3664407A US 3664407 A US3664407 A US 3664407A US 870706 A US870706 A US 870706A US 3664407D A US3664407D A US 3664407DA US 3664407 A US3664407 A US 3664407A
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box
inlet
shell
facing
facing material
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Robert H Barron
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ROBERT H BARRON
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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B22CASTING; POWDER METALLURGY
    • B22CFOUNDRY MOULDING
    • B22C1/00Compositions of refractory mould or core materials; Grain structures thereof; Chemical or physical features in the formation or manufacture of moulds
    • B22C1/16Compositions of refractory mould or core materials; Grain structures thereof; Chemical or physical features in the formation or manufacture of moulds characterised by the use of binding agents; Mixtures of binding agents
    • B22C1/165Compositions of refractory mould or core materials; Grain structures thereof; Chemical or physical features in the formation or manufacture of moulds characterised by the use of binding agents; Mixtures of binding agents in the manufacture of multilayered shell moulds
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B22CASTING; POWDER METALLURGY
    • B22CFOUNDRY MOULDING
    • B22C23/00Tools; Devices not mentioned before for moulding

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  • the subject shell mold consists of applying dry molding sand the granules of which are coated with a resin binder to a heated pattern to render the sand capable of faithfully reproducing the shape of the pattern with as thin a facing layer of the binder treated sand as is possible so that the least amount of finer grades of sand are used to make a mold as thin as possible.
  • the subject shell mold is the product or the result of-a process in which the formation of the shell mold, before its removal, has applied thereto a wet backfill mixture of refractory media and an air-set binder as a backing to the shell to render it rigid for withdrawal from the pattern and strong enough to stand up during the pouring of molten metal and its solidification. Thereafter the mold is intended to break down so that the material may be easily separated from the solidified casting.
  • the resulting shell mold is gas permeable and obtains high fidelity of pattern shape reproduction and dimensions.
  • the present invention relates primarily to the metal casting industry and is particularly directed to improvements in the process for forming shell face molds.
  • the improvement hereinafter to be set forth in greater detail has the advantages of greatly speeding up the molding process by introducing reductions in the cycles or steps usually associated with molding processes, permits people skilled in machine operation to successfully perform the molding process, effects substantial savings of material, and has sufficient flexibility to adapt the process for semi-automatic operation of shop machines and tools.
  • the shell molding process usually involves the coating of the pattern with a refractory (sand) material mixed with a thermosetting binder, and allowing material to remain on the pattern until it has hardened to a thickness in excess of one-fourth inch so as to reproduce the shape of the pattern and have strength to be removed without damage. Thereafter the excess refractory with the thennosetting binder which has not reacted is removed, thereby leaving the remaining hardened material to form the shell which is then cured so that it will have sufficient strength for subsequent handling.
  • the requirement in shell molding is to obtain rigidity of the shell so that it will withstand the mechanical and thermo stresses created by the impact and subsequent shrinkage and solidification of the molten metal.
  • thin shells of the order of something less than one-fourth inch.
  • the benefits of thin shells is that they reduce sub-stantially the use of the refractory material, allow the use of much finer grades of refractory sands to form the casting surface in the mold which would thereby have greater fidelity of shape and contour of the finished product, is gas permeable, has reduced gas evolution characteristics, and affords a significant reduction of time for the making of the shell molds.
  • the present invention is an improvement upon the prior shell molds and shell face molding processes as it overcomes the disadvantages of the processes heretofore devised by eliminating the necessity for performing secondary curing operations, and effecting economies in the use of materials.
  • a preferred process hereinafter to be set forth in greater detail includes the steps of applying the shell facing media to a heated pattern for a time sufficient to permit the thermosetting action to create a thin shell coating on the pattern, removing the excess media while allowing the heated pattern to finish curing the thermosetting coating material in the media, and thereafter applying a low cost secondary media as a backfill to the hot shell facing which will impart mechanical strength to the shell facing so as to permit immediate removal thereof from the pattern, whereby to eliminate further processing.
  • the preferred shell facing has the granules of the refractory or sand material individually coated with a thermosetting binder that has low gas evolution properties and will set-up to a hardened condition with heat application.
  • FIG. 1 is a schematic front elevational view of apparatus suitable for producing shell mold and cores by the improved shell face molding process
  • FIG. 2 is a schematic front elevational view of another form of apparatus useful herein.
  • a suitable frame structure 10 provided to support the various components now to be described.
  • suitable horizontal platform 11 which is adapted to support spaced pivot stands 12 and 13.
  • the stand 12 carries a roll over-plate 14 and the stand 13 likewise carries a companion roll over-plate 15.
  • the roll over-plates are interconnectedby means of slide rods 16, the slide rods supporting the heated corebox 17.
  • the corebox 17 is made up of a cope section 17a and a drag section 17b.
  • Each of the cope and drag sections is provided with a heat source 18 and 19, respectfully, the heat source being either gas or electric as may be desired.
  • the cope section 17a of the corebox is intended to remain adjacent the bearing stand 12, and the drag section 17b is intended to be horizontally movable along the slide rods 16 by means of the piston rod 20 of the air motor 21.
  • Air under pressure can be supplied by means of a control valve 22 to either side of the piston 23 (shown in dotted line) in the air motor cylinder to effect movement thereof.
  • a control lever 24 in full line applies pressure to the piston 23 so as to close the drag section 17b on the cope section 17a to retain it in clamped relationship.
  • the drag section 17b is withdrawn for discharge of the shell mold.
  • the parts thus far described with respect to the corebox 17 are bodily rotatable on the bearings in the stands 12 and 13 so that the corebox may be rotated approximately for the purpose of dumping the loose unheated material into a collection bin 25 supported in dependent relationship from the platform 1 l.
  • the roll over action may be performed manually by hand crank 25a or it can be perfon-ned by means of a suitable motor, the latter of which is believed unnecessary to illustrate.
  • the frame 10 is provided in its upper region with the horizontal supporting means 26 and 26a, the latter of which forms a track for the traversing movement of a pair of magazines 27 and 28.
  • These magazines may be independently movable along the supporting track means 26a or they may be interconnected by a suitable tie element 29 (shown in dotted outline only) so that the magazines move together.
  • Each magazine is provided with an outlet head 30, and each outlet head 30 has its blow plate 31.
  • FIG. 1 there is shown an overhead source of air under pressure depicted by the conduit 32
  • the conduit connects with the housing of a blow valve 33 under the control of a lever 34, and air under pressure is delivered through the valve body 33 to the outlet plate 35 which is adapted to match with and seal on the inlet plate 36 for the magazine 27, or with an inlet plate 37 for magazine 28, depending on which magazine is aligned with plate 35.
  • the magazines 27 and 28 are adapted to be movable horizontally, it is necessary that there by suitable means for slight raising and lowering of the valve body 33 so that downward pressure may be exerted on each magazine to take up the clearance needed for horizontal motion and to press its blow plate 31 over the inlet opening (not shown) in the cope and drag sections of the corebox 17,
  • the apparatus of FIG. 1 is provided with separate sources of core materials represented by a supply hopper 38 for dry material and a supply hopper 39 for wet or moist material. These hoppers are situated on opposite sides of the valve body 33 such that when the magazine 27 is moved to the dotted line position shown at the right of its full line position, the magazine 28 may be moved from its full line position rightwardly to assume a position now occupied by magazine 27 between the valve body 33 and the corebox 17.
  • a supply hopper 38 for dry material and a supply hopper 39 for wet or moist material.
  • magazines 27 and 28 are alternately moved between the material supply hoppers and the corebox for delivering, at the proper time in the sequence of operations, the necessary coremaking material later to be described.
  • a suitable frame structure 40 is provided with horizontal tracks 41 and 42 for receiving slides 43 and 44 respectively.
  • the slides 43 and 44 together support a corebox 45 having a cope section 45a and a drag section 45b.
  • Each of the sections is provided with a source of heat associated with the hotbox section through suitable enclosures 46.
  • the corebox 45 is movable from its full line position to its dotted line position so that dry and moist core materials may be supplied thereto.
  • the corebox has been turned or rotated upon the turning plates 47 supported in the frame 40 on suitable bearings so that its inlet is at the lower side in clamped registration with the blow-plate 48 of a supply magazine 49 for dry material.
  • the magazine is connected by suitable chamber 50 to a source of air under pressure at conduit 51, and a suitable control 52 is provided to regulate the blowing of the dry material from the magazine upwardly into the corebox 45.
  • a suitable control 52 is provided to regulate the blowing of the dry material from the magazine upwardly into the corebox 45.
  • the frame 40 is in the form of a carriage movable on suitable wheels 55 along the floor.
  • the carriage movement is under the control of an air motor 56 which is connected by piston rod 57 to the carriage.
  • the motor 56 is mounted on a support 58 and is conveniently controlled by lever 59 movable between the positions shown.
  • the steps to be followed include applying a shell facing media to the heated pattern, allowing sufficient time for the action of the thermosetting binder to unite or harden the media into a wafer thin shell, removing the excess or unheated media in which no thermosetting action has occurred, allowing the media of the shell facing to cure, and finally applying secondary media which will insure rigidity of the wafer thin shell facing and allow immediate removal of the shell mold from the pattern without need for further processing prior to utilizingthe shell mold for pouring of the casting metal.
  • a first factor is that the shell facing, even though wafer thin, must have the necessary strength to prevent its breakage upon removal from the pattern. Furthermore, it is believed that having formed a thin shell facing which is gas permeable, and provided a moist backfill, the moisture in the backfill is released through the shell facing upon opening the corebox and provides a sort of surface lubrication which aids in releasing the same from the pattern.
  • a second factor is that the wafer thin shell must be strong enough to withstand the mechanical and thermo stresses imposed upon it by the impact of the molten metal and by the subsequent shrinkage and solidification of the mo]- ten metal. The present practice of shell molding has ignored these and other critical factors related to the above principal factors.
  • the present improvement has significant advantages over what has been called the Croning process.
  • the present method for the first time permits reducing the thickness of the shell molds to one-eighth inch or less, which advantage is obrained partly by the application of a relatively low temperature for the pattern and rapid cycling of the facing media to the pattern and subsequent removal of the unhardened or excess material from the corebox cavity.
  • the temperatures are of the order of 300 450 F. and the cycle time involved is in the range of 5 10 seconds.
  • Other significant advantages for the present invention are found in lessening the amounts of the more expensive facing media.
  • the reduction in the amount of facing media results in greater permeability of the shell mold or core, and therefore a thinner shell facing with a lower amount of gas evolution when exposed to the elevated temperatures of the molten casting metal.
  • the improved process is able to use less quantities of the more costly finer grain molding sands and a higher percentage of binder material without increasing the gas evolution problem so that the surface finish and tolerances of the finished casting are significantly improved. Furthermore, the wafer thin shell facing media of the present improvement does not have the peel back" tendencies which normally occur with thicker shells when the excess or unheated material is removed or dumped from the cavities.
  • the steps in the process hereinafter to be more particularly claimed include applying the shell facing media to the heated pattern, allowing sufficient time as measured in the matter of seconds for the action of the binder material to achieve the creation of a wafer thin shell, removing the excess or unheated media, keeping the shell facing in contact with the heated pattern to effect its cure, and in the latter period of the curing cycle applying secondary media consisting of low cost materials which will be hardened by heat from the pattern passed through the shell facing and back up and insure rigidity of the shell facing, thereby allowing immediate removal of the mold from the pattern while at the same time requiring no further processing other than air-drying as the finished mold is moved to the place where the casting metal is to be poured.
  • the present invention has the additional benefit that by leaving the backfill material in position to mechanically strengthen the shell facing material, the backfill material will continue to withdraw heat from the shell facing and thereby produce a normalizing effect on the usual shrinkage stresses which may have built up during the curing cycle of the shell facing material itself. This normalizing of stresses improves the ability to remove the mold or core from the pattern within seconds.
  • FIGS. 1 or 2 The apparatus shown in either FIGS. 1 or 2 is adapted to the foregoing process since the application of the dry mixture of shell facing media is supplied from the hopper 38 in FIG. 1 or the magazine 49 in FIG. 2, and the wet backfill media is supplied from the hopper 39 of FIG. 1 or the magazine 54 of FIG. 2.
  • Adaptation of the method of mold manufacture is a relative simple matter of creating metal cope and drag patterns such as are mounted in the cope and drag sections and 17b of FIG. 1.
  • the patterns as it is understood in this art, are separated on three sides by a metal border for the creation of a corebox pattern and the resulting mold must then be booked together or stacked cope against drag to receive the molten metal.
  • venting of the patterns and coreboxes since the usual extent of venting is not considered sufficient because without additional venting the backfill material will not penetrate and reach the remote cavities with the proper density to provide the necessary rigidity for the shell facing.
  • venting occurs through the shell face media and must do so without creating any distortion.
  • bridge posts need to be added between two faces of the pattern in order to guarantee sufficient rigidity for removal from the pattern.
  • the present method has been successfully utilized to produce aluminum, brass and hard bronze casting.
  • the conditions under which the method has been practiced include the use of shell sand mixture in the dry mix conditions of AFS No. 95 to 100 grain fineness silica sand coated with at least 2 percent by weight high melt point resin.
  • the dry mix is applied under air pressure by blowing into the corebox, and the excess dry mixture is dumped by gravity as in FIG. 2 or by inversion of the corebox as in FIG. 1.
  • the pattern in the corebox Prior to the application of the dry mix the pattern in the corebox is raised to a temperature of approximately 325" P. which is in the lower reach of the desired range of from 300 to 450 F.
  • the dry mix is permitted to remain in contact with the pattern for approximately 5 seconds before the gravity dumping step occurs.
  • the time determines the thickness of the shell facing, and five seconds produces shell facing thickness of approximately onesixteenth inch.
  • the curing cycle for the shell facing media with the binder is approximately seconds, which period of time is consumed in performing the gravity dumping step so that when the dumping step has been completed, as would be required in inverting the corebox of the apparatus of FIG. 1, the corebox is ready to receive the backfill mixture consisting of AFS No. 36 grain fineness silica sand coated with by weight either 1 percent acrylic resin or 1 percent furan resin or 1 percent waterglass.
  • the moist backfill mixture is also injected by air pressure in a blowing operation. The total time necessary for the average pattern, following the steps of the process as outlined above, will be found to consume approximately to seconds.
  • the low percentage of binders in the dry and moist mixtures and the cycle time for producing completed molds approach the minimum limitations for producing practical molds.
  • the percentage of binder in the shell mixture and the thickness of the shell itself must be adjusted to the experience of the artisan in relation to the individual parts to be cast. It has been determined that a resin content of 12 percent by weight when used with 180 AFS grain fineness sand will produce optimum cast surface finish. It has also been determined that for maximum permeability in the backfill media AFS No. 30 grain fineness sand using 1 1% percent by weight of binder will suffice.
  • wafer thin shell or thin shell facing it shall be taken to mean a lamina of hardened fine grain media and binder of a thickness not in excess of onefourth inch, and preferably of a thickness in the range of onesixteenth to three-sixteenths inch.
  • An apparatus for making a mold or core having a thin shell facing and a backing material disposed against the backside of the thin shell facing and rigidifying the same comprising a frame; a source of granular shell facing material on the frame; the facing material being of fine grain and containing a heat setting binder; a source of granular backing material on the frame and spaced from the source of shell facing material, the backing material being of courser grain than the facing material and also containing a binder; a box having an inlet leading into the interior thereof and containing a pattern of predetermined shape; heating means carried by the box for heating the surface of the pattern exposed to the box interior; feed means carried by the frame for successively transferring the shell facing material and the backing material from the respective sources of those materials to the inlet of the box and for forcing that material into the box through the inlet thereof to enable the facing material to first be applied directly against the pattern so as to form a thin shell thereon and to thereafter enable the backing material to be applied directly against the thin shell while the shell is supported by the pattern
  • the inlet of the box is spaced from the sources of shell facing material and backing material; wherein the feed means comprises a first magazine shiftable from a position beneath the source of shell facing material to a position opposite the inlet to the box for transferring a quantity of shell facing material between the source of that material and the box, a second magazine shiftable from a position beneath the source of backing material to a position opposite the inlet of the box for transferring a quantity of backing material between the source of that material and the box, and a source of compressed gas for blowing the shell facing material and the backing material from the magazines into the box.
  • An apparatus for making a mold or core having a thin shell facing and a backing material disposed against the backside of the thin shell facing and rigidifying the same comprising: a first hopper for holding a granular shell facing material which is of fine grain and contains a heatsetting binder; a second hopper positioned to the side of the first hopper for holding a granular backing material which is of coarser grain than the facing material and also contains a binder; a box positioned below the hoppers and having an inlet which leads into the interior thereof and is normally positioned such that it opens upwardly, the box being adapted to hold a pattern of predetermined shape; heating means carried by the box for heating the surface of the pattern exposed to the box interior; a first magazine shiftable from a position beneath the first hopper to a position above the box inlet for transporting the facing material from the first hopper to the box, whereby the facing material will set against the pattern and form a thin shell thereon; a second magazine shiftable from a position beneath the second hopper to
  • An apparatus for making a mold or core having a thin shell facing and a backing material disposed against the backside of the shell facing and rigidifying the same comprising: a box having an inlet leading into the in- 1 terior thereof and being adapted to hold a pattern of predetermined shape; heating means carried by the box for heating the pattern, support means carrying the box and being capable of moving it between a position with its inlet presented generally downwardly and a position with its inlet presented generally upwardly; a first hopper located below the box and aligning with the box inlet when that inlet is presented downwardly, the first hopper holding a fine grain shell facing material containing a heat-setting binder; a source of compressed gas connected with the first hopper for blowing the facing material into the box, whereby some of the facing material will set against the heated pattern and form a thin shell over it, while the remaining facing material will fall back into the first hopper; a second hopper positioned above the box and aligning with the box inlet when that inlet is presented upwardly, the second

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Abstract

The subject shell mold consists of applying dry molding sand the granules of which are coated with a resin binder to a heated pattern to render the sand capable of faithfully reproducing the shape of the pattern with as thin a facing layer of the binder treated sand as is possible so that the least amount of finer grades of sand are used to make a mold as thin as possible. The subject shell mold is the product or the result of a process in which the formation of the shell mold, before its removal, has applied thereto a wet backfill mixture of refractory media and an air-set binder as a backing to the shell to render it rigid for withdrawal from the pattern and strong enough to stand up during the pouring of molten metal and its solidification. Thereafter the mold is intended to break down so that the material may be easily separated from the solidified casting. The resulting shell mold is gas permeable and obtains high fidelity of pattern shape reproduction and dimensions.

Description

United States Patent Barron [4 1 May 23, 1972 [54] APPARATUS FOR MAKING SHELL MOLDS [72] Inventor: Robert H. Barron, 8414 Buckthorn,
Berkeley, Mo. 63134 [22] Filed: Oct. 20, 1969 [21] Appl. No.: 870,706
Related US. Application Data [62] Division of Ser. No. 618,772, Feb. 27, 1967, Pat. No.
[52] U.S.Cl ..164/165 [51] Int. Cl. ..B22c 13/08 [58] FieldofSearch ..164/23, 24, 43, 165, 166, 201, 164/361 [56] References Cited UNITED STATES PATENTS 2,748,435 6/1956 l-lackett ..164/23 2,852,818 9/1958 Shallenberger et al. ...164/165 3,184,809 5/1965 Stewart ..164/165 3,447,589 6/1969 Planten ..164/361 X FOREIGN PATENTS OR APPLICATIONS 718,895 11/1931 France ..164/201 Primary ExaminerR. Spencer Annear Attorney-Gravely, Lieder & Woodrufi ABSTRACT The subject shell mold consists of applying dry molding sand the granules of which are coated with a resin binder to a heated pattern to render the sand capable of faithfully reproducing the shape of the pattern with as thin a facing layer of the binder treated sand as is possible so that the least amount of finer grades of sand are used to make a mold as thin as possible. The subject shell mold is the product or the result of-a process in which the formation of the shell mold, before its removal, has applied thereto a wet backfill mixture of refractory media and an air-set binder as a backing to the shell to render it rigid for withdrawal from the pattern and strong enough to stand up during the pouring of molten metal and its solidification. Thereafter the mold is intended to break down so that the material may be easily separated from the solidified casting. The resulting shell mold is gas permeable and obtains high fidelity of pattern shape reproduction and dimensions.
9 Claims, 2 Drawing Figures PATENTEDMAY 23 me 38 FIG. 1
48 DRY MIXI INVENTOR ROBERT H. BARRON ATTORNEY APPARATUS FOR MAKING SHELL MOLDS This application is a division of co-pending application Ser. No. 618,772, filed Feb. 27, 1967, now US. Pat. No. 3,511,302.
The present invention relates primarily to the metal casting industry and is particularly directed to improvements in the process for forming shell face molds.
The improvement hereinafter to be set forth in greater detail has the advantages of greatly speeding up the molding process by introducing reductions in the cycles or steps usually associated with molding processes, permits people skilled in machine operation to successfully perform the molding process, effects substantial savings of material, and has sufficient flexibility to adapt the process for semi-automatic operation of shop machines and tools.
In the metal casting industry the shell molding process, as it is known heretofore, usually involves the coating of the pattern with a refractory (sand) material mixed with a thermosetting binder, and allowing material to remain on the pattern until it has hardened to a thickness in excess of one-fourth inch so as to reproduce the shape of the pattern and have strength to be removed without damage. Thereafter the excess refractory with the thennosetting binder which has not reacted is removed, thereby leaving the remaining hardened material to form the shell which is then cured so that it will have sufficient strength for subsequent handling. The requirement in shell molding is to obtain rigidity of the shell so that it will withstand the mechanical and thermo stresses created by the impact and subsequent shrinkage and solidification of the molten metal.
It is desirable, however, to have molds formed of thin shells, of the order of something less than one-fourth inch. The benefits of thin shells is that they reduce sub-stantially the use of the refractory material, allow the use of much finer grades of refractory sands to form the casting surface in the mold which would thereby have greater fidelity of shape and contour of the finished product, is gas permeable, has reduced gas evolution characteristics, and affords a significant reduction of time for the making of the shell molds.
The present invention is an improvement upon the prior shell molds and shell face molding processes as it overcomes the disadvantages of the processes heretofore devised by eliminating the necessity for performing secondary curing operations, and effecting economies in the use of materials.
It is an object of the invention to simplify the shell face molding process so that a significantly faster cycle of shell mold manufacture can be obtained with reduction in the amount of raw materials necessary. lt is a further object of the present invention to provide a shell mold and a process for forming the same with a backing material that will impart mechanical strength without significant increase in cost.
A preferred process hereinafter to be set forth in greater detail includes the steps of applying the shell facing media to a heated pattern for a time sufficient to permit the thermosetting action to create a thin shell coating on the pattern, removing the excess media while allowing the heated pattern to finish curing the thermosetting coating material in the media, and thereafter applying a low cost secondary media as a backfill to the hot shell facing which will impart mechanical strength to the shell facing so as to permit immediate removal thereof from the pattern, whereby to eliminate further processing. The preferred shell facing has the granules of the refractory or sand material individually coated with a thermosetting binder that has low gas evolution properties and will set-up to a hardened condition with heat application. To the foregoing there is applied a backing material to lend mechanical strength to the thin shell face, the same being combined during the process of creating the shell facing so that the shell mold may be removed from the pattern as quickly as possible, whereby the pattern can be reused immediately to result in higher productivity per pattern.
Certain preferred forms of apparatus for practicing this invention are disclosed in the accompanying drawing, and reference will be had to the views of the drawing before proceeding with a more complete discussion of the methods involved.
In the Drawings:
FIG. 1 is a schematic front elevational view of apparatus suitable for producing shell mold and cores by the improved shell face molding process; and
FIG. 2 is a schematic front elevational view of another form of apparatus useful herein.
Referring now to the apparatus shown schematically in F IG. 1, it is observed that there is a suitable frame structure 10 provided to support the various components now to be described. Within the frame 10 there is provided suitable horizontal platform 11 which is adapted to support spaced pivot stands 12 and 13. The stand 12 carries a roll over-plate 14 and the stand 13 likewise carries a companion roll over-plate 15. The roll over-plates are interconnectedby means of slide rods 16, the slide rods supporting the heated corebox 17. The corebox 17 is made up of a cope section 17a and a drag section 17b. Each of the cope and drag sections is provided with a heat source 18 and 19, respectfully, the heat source being either gas or electric as may be desired. in the apparatus shown the cope section 17a of the corebox is intended to remain adjacent the bearing stand 12, and the drag section 17b is intended to be horizontally movable along the slide rods 16 by means of the piston rod 20 of the air motor 21. Air under pressure can be supplied by means of a control valve 22 to either side of the piston 23 (shown in dotted line) in the air motor cylinder to effect movement thereof. In the position shown a control lever 24 (in full line) applies pressure to the piston 23 so as to close the drag section 17b on the cope section 17a to retain it in clamped relationship. When the control lever 24 is moved to the dotted line position the drag section 17b is withdrawn for discharge of the shell mold. t
The parts thus far described with respect to the corebox 17 are bodily rotatable on the bearings in the stands 12 and 13 so that the corebox may be rotated approximately for the purpose of dumping the loose unheated material into a collection bin 25 supported in dependent relationship from the platform 1 l. The roll over action may be performed manually by hand crank 25a or it can be perfon-ned by means of a suitable motor, the latter of which is believed unnecessary to illustrate.
The frame 10 is provided in its upper region with the horizontal supporting means 26 and 26a, the latter of which forms a track for the traversing movement of a pair of magazines 27 and 28. These magazines may be independently movable along the supporting track means 26a or they may be interconnected by a suitable tie element 29 (shown in dotted outline only) so that the magazines move together. Each magazine is provided with an outlet head 30, and each outlet head 30 has its blow plate 31. In FIG. 1 there is shown an overhead source of air under pressure depicted by the conduit 32 The conduit connects with the housing of a blow valve 33 under the control of a lever 34, and air under pressure is delivered through the valve body 33 to the outlet plate 35 which is adapted to match with and seal on the inlet plate 36 for the magazine 27, or with an inlet plate 37 for magazine 28, depending on which magazine is aligned with plate 35. Since the magazines 27 and 28 are adapted to be movable horizontally, it is necessary that there by suitable means for slight raising and lowering of the valve body 33 so that downward pressure may be exerted on each magazine to take up the clearance needed for horizontal motion and to press its blow plate 31 over the inlet opening (not shown) in the cope and drag sections of the corebox 17,
The apparatus of FIG. 1 is provided with separate sources of core materials represented by a supply hopper 38 for dry material and a supply hopper 39 for wet or moist material. These hoppers are situated on opposite sides of the valve body 33 such that when the magazine 27 is moved to the dotted line position shown at the right of its full line position, the magazine 28 may be moved from its full line position rightwardly to assume a position now occupied by magazine 27 between the valve body 33 and the corebox 17. Thus, the
magazines 27 and 28 are alternately moved between the material supply hoppers and the corebox for delivering, at the proper time in the sequence of operations, the necessary coremaking material later to be described.
Turning now to FIG. 2, it will be observed that a suitable frame structure 40 is provided with horizontal tracks 41 and 42 for receiving slides 43 and 44 respectively. The slides 43 and 44 together support a corebox 45 having a cope section 45a and a drag section 45b. Each of the sections is provided with a source of heat associated with the hotbox section through suitable enclosures 46. In this apparatus the corebox 45 is movable from its full line position to its dotted line position so that dry and moist core materials may be supplied thereto. In the full line position of the corebox 45 it is understood that the corebox has been turned or rotated upon the turning plates 47 supported in the frame 40 on suitable bearings so that its inlet is at the lower side in clamped registration with the blow-plate 48 of a supply magazine 49 for dry material. The magazine is connected by suitable chamber 50 to a source of air under pressure at conduit 51, and a suitable control 52 is provided to regulate the blowing of the dry material from the magazine upwardly into the corebox 45. At the conclusion of the blowing operation when the shell facing has formed the air is shut off and the excess material will flow by gravity back into the magazine, thereby avoiding the necessity for rolling the corebox over to dump excess material as would be necessary in the apparatus of FIG. 1.
Still referring to the apparatus of FIG. 2, it can be seen that when the corebox 45 is moved rightwardly to the dotted line position it must be rolled over 180 so that the inlet which was at the lower side may be brought to the upper side and into alignment with the blow plate 53 of magazine 54 which supplies moist material to the corebox. A supply of air under pressure is brought by conduit 55 into the side of the magazine 54, or at any suitable connection where at the proper time it can be released for blowing the moist material into the corebox 45. Here again, the magazine 54 must be moved downwardly so that the blow plate 53 will be tightly clamped over the inlet to the corebox. Such moving means is well understood in the art and has not been shown herein.
As seen in FIG. 2, the frame 40 is in the form of a carriage movable on suitable wheels 55 along the floor. The carriage movement is under the control of an air motor 56 which is connected by piston rod 57 to the carriage. The motor 56 is mounted on a support 58 and is conveniently controlled by lever 59 movable between the positions shown.
In the present shell face molding process, whether utilizing the apparatus above described or its equivalent, it is pointed out that the steps to be followed include applying a shell facing media to the heated pattern, allowing sufficient time for the action of the thermosetting binder to unite or harden the media into a wafer thin shell, removing the excess or unheated media in which no thermosetting action has occurred, allowing the media of the shell facing to cure, and finally applying secondary media which will insure rigidity of the wafer thin shell facing and allow immediate removal of the shell mold from the pattern without need for further processing prior to utilizingthe shell mold for pouring of the casting metal.
In considering the present method of producing molds and cores it stands out that there are certain critical factors in putting such a process into use. A first factor is that the shell facing, even though wafer thin, must have the necessary strength to prevent its breakage upon removal from the pattern. Furthermore, it is believed that having formed a thin shell facing which is gas permeable, and provided a moist backfill, the moisture in the backfill is released through the shell facing upon opening the corebox and provides a sort of surface lubrication which aids in releasing the same from the pattern. A second factor is that the wafer thin shell must be strong enough to withstand the mechanical and thermo stresses imposed upon it by the impact of the molten metal and by the subsequent shrinkage and solidification of the mo]- ten metal. The present practice of shell molding has ignored these and other critical factors related to the above principal factors.
The present improvement has significant advantages over what has been called the Croning process. The present method for the first time permits reducing the thickness of the shell molds to one-eighth inch or less, which advantage is obrained partly by the application of a relatively low temperature for the pattern and rapid cycling of the facing media to the pattern and subsequent removal of the unhardened or excess material from the corebox cavity. The temperatures are of the order of 300 450 F. and the cycle time involved is in the range of 5 10 seconds. Other significant advantages for the present invention are found in lessening the amounts of the more expensive facing media. The reduction in the amount of facing media results in greater permeability of the shell mold or core, and therefore a thinner shell facing with a lower amount of gas evolution when exposed to the elevated temperatures of the molten casting metal. With a wafer thin layer of the facing media the improved process is able to use less quantities of the more costly finer grain molding sands and a higher percentage of binder material without increasing the gas evolution problem so that the surface finish and tolerances of the finished casting are significantly improved. Furthermore, the wafer thin shell facing media of the present improvement does not have the peel back" tendencies which normally occur with thicker shells when the excess or unheated material is removed or dumped from the cavities.
The steps in the process hereinafter to be more particularly claimed include applying the shell facing media to the heated pattern, allowing sufficient time as measured in the matter of seconds for the action of the binder material to achieve the creation of a wafer thin shell, removing the excess or unheated media, keeping the shell facing in contact with the heated pattern to effect its cure, and in the latter period of the curing cycle applying secondary media consisting of low cost materials which will be hardened by heat from the pattern passed through the shell facing and back up and insure rigidity of the shell facing, thereby allowing immediate removal of the mold from the pattern while at the same time requiring no further processing other than air-drying as the finished mold is moved to the place where the casting metal is to be poured. There is thus provided a low cost, high permability refractory media coated with a binder that has low gas evolution and will air or chemically set up without heat application, and applying the combined mixture to the back side of the cured shell while the shell is still adhered to the pattern. It is a significant feature that the backfill material is effected by the heat of the shell face media so that it is very rapidly hardened, and this will permit removal of the mold or core from the pattern almost as fast as the machine operator can move. Since the backfill material remains in position it will continue to harden or set because of the continued dispersion of the heat from the shell facing.
The present invention has the additional benefit that by leaving the backfill material in position to mechanically strengthen the shell facing material, the backfill material will continue to withdraw heat from the shell facing and thereby produce a normalizing effect on the usual shrinkage stresses which may have built up during the curing cycle of the shell facing material itself. This normalizing of stresses improves the ability to remove the mold or core from the pattern within seconds.
The apparatus shown in either FIGS. 1 or 2 is adapted to the foregoing process since the application of the dry mixture of shell facing media is supplied from the hopper 38 in FIG. 1 or the magazine 49 in FIG. 2, and the wet backfill media is supplied from the hopper 39 of FIG. 1 or the magazine 54 of FIG. 2. Adaptation of the method of mold manufacture is a relative simple matter of creating metal cope and drag patterns such as are mounted in the cope and drag sections and 17b of FIG. 1. The patterns, as it is understood in this art, are separated on three sides by a metal border for the creation of a corebox pattern and the resulting mold must then be booked together or stacked cope against drag to receive the molten metal. Particular care must be exercised in providing venting of the patterns and coreboxes, since the usual extent of venting is not considered sufficient because without additional venting the backfill material will not penetrate and reach the remote cavities with the proper density to provide the necessary rigidity for the shell facing. In shell face molding the venting occurs through the shell face media and must do so without creating any distortion. In such instances bridge posts need to be added between two faces of the pattern in order to guarantee sufficient rigidity for removal from the pattern.
The present method has been successfully utilized to produce aluminum, brass and hard bronze casting. The conditions under which the method has been practiced include the use of shell sand mixture in the dry mix conditions of AFS No. 95 to 100 grain fineness silica sand coated with at least 2 percent by weight high melt point resin. The dry mix is applied under air pressure by blowing into the corebox, and the excess dry mixture is dumped by gravity as in FIG. 2 or by inversion of the corebox as in FIG. 1. Prior to the application of the dry mix the pattern in the corebox is raised to a temperature of approximately 325" P. which is in the lower reach of the desired range of from 300 to 450 F. The dry mix is permitted to remain in contact with the pattern for approximately 5 seconds before the gravity dumping step occurs. The time, of course, determines the thickness of the shell facing, and five seconds produces shell facing thickness of approximately onesixteenth inch. The curing cycle for the shell facing media with the binder is approximately seconds, which period of time is consumed in performing the gravity dumping step so that when the dumping step has been completed, as would be required in inverting the corebox of the apparatus of FIG. 1, the corebox is ready to receive the backfill mixture consisting of AFS No. 36 grain fineness silica sand coated with by weight either 1 percent acrylic resin or 1 percent furan resin or 1 percent waterglass. The moist backfill mixture is also injected by air pressure in a blowing operation. The total time necessary for the average pattern, following the steps of the process as outlined above, will be found to consume approximately to seconds. The low percentage of binders in the dry and moist mixtures and the cycle time for producing completed molds approach the minimum limitations for producing practical molds. The percentage of binder in the shell mixture and the thickness of the shell itself must be adjusted to the experience of the artisan in relation to the individual parts to be cast. It has been determined that a resin content of 12 percent by weight when used with 180 AFS grain fineness sand will produce optimum cast surface finish. It has also been determined that for maximum permeability in the backfill media AFS No. 30 grain fineness sand using 1 1% percent by weight of binder will suffice. Throughout this disclosure whenever reference is made to wafer thin shell or thin shell facing it shall be taken to mean a lamina of hardened fine grain media and binder of a thickness not in excess of onefourth inch, and preferably of a thickness in the range of onesixteenth to three-sixteenths inch.
it is evident now when the resin coated molding media is blown into the heated corebox the media next to the pattern quickly hardens and adheres to the mold. The corebox is then dumped of its unheated sand and a wafer thin layer of bonded media is left against the pattern. Next the resin coated backfill media is blown into the cavity so that rigidity of the wafer thin shell facing is assured. The corebox is then opened and the mold ejected so that the cycle may be repeated. It is necessary to have low temperatures of the order of from 300 to 450 F.,
i for successful production of thin shell facings. This increases feasibility of using aluminum patterns rather than iron or brass to obtain considerable cost savings and it further reduces shrinkage factors in determining casting tolerance. Faster mold cycles are possible with the present method due to lower temperatures. This method permits full advantage of the shell mold technique (close tolerance and smooth surface) while utilizing only about one-third the usual amount of shell molding material.
While the invention has been described in connection with molds and apparatus for producing molds, it is understood that cores may also be made in the same way, and that molds and cores are intended to be included in the claims without material limitations. It is also intended that the claims shall not be limited except as may be necessary in view of the prior art.
What is claimed is:
1. An apparatus for making a mold or core having a thin shell facing and a backing material disposed against the backside of the thin shell facing and rigidifying the same, said apparatus comprising a frame; a source of granular shell facing material on the frame; the facing material being of fine grain and containing a heat setting binder; a source of granular backing material on the frame and spaced from the source of shell facing material, the backing material being of courser grain than the facing material and also containing a binder; a box having an inlet leading into the interior thereof and containing a pattern of predetermined shape; heating means carried by the box for heating the surface of the pattern exposed to the box interior; feed means carried by the frame for successively transferring the shell facing material and the backing material from the respective sources of those materials to the inlet of the box and for forcing that material into the box through the inlet thereof to enable the facing material to first be applied directly against the pattern so as to form a thin shell thereon and to thereafter enable the backing material to be applied directly against the thin shell while the shell is supported by the pattern; and a support on the frame and carrying the box, the support being capable of supporting the box in a position with its inlet opening downwardly between the introduction of the shell facing material and the backing material into the box so that the unbonded facing material will fall from the box before the backing material is introduced into the box.
2. An apparatus according to claim 1 wherein the inlet of the box is spaced from the sources of shell facing material and backing material; wherein the feed means comprises a first magazine shiftable from a position beneath the source of shell facing material to a position opposite the inlet to the box for transferring a quantity of shell facing material between the source of that material and the box, a second magazine shiftable from a position beneath the source of backing material to a position opposite the inlet of the box for transferring a quantity of backing material between the source of that material and the box, and a source of compressed gas for blowing the shell facing material and the backing material from the magazines into the box.
3. An apparatus according to claim 2 wherein the source of compressed gas is carried by the frame in a fixed position thereon and aligns with the magazines when the magazines are positioned opposite to the inlet of the box.
4. An apparatus according to claim 3 wherein the support for the box rotates the box from a feed position, wherein its inlet is presented generally upwardly, to a discharge position, wherein its inlet is presented downwardly.
5. An apparatus according to claim 1 wherein the support for the box rotates the box from a discharge position, wherein its inlet is presented downwardly so that the unbonded facing material will fall from the box through the inlet thereof, to another position, wherein its inlet is positioned such that the shell facing material and backing material are retained in the box.
6. An apparatus according to claim 5 wherein the source of shell facing material is located below the box and the source of backing material is located above the box; and wherein the feed means is a source of compressed gas positioned to blow the shell facing material upwardly into the box and another source of compressed gas positioned beneath the source of backing material for blowing the backing material into the box after the box has been inverted by the support.
7. An apparatus for making a mold or core having a thin shell facing and a backing material disposed against the backside of the thin shell facing and rigidifying the same, said apparatus comprising: a first hopper for holding a granular shell facing material which is of fine grain and contains a heatsetting binder; a second hopper positioned to the side of the first hopper for holding a granular backing material which is of coarser grain than the facing material and also contains a binder; a box positioned below the hoppers and having an inlet which leads into the interior thereof and is normally positioned such that it opens upwardly, the box being adapted to hold a pattern of predetermined shape; heating means carried by the box for heating the surface of the pattern exposed to the box interior; a first magazine shiftable from a position beneath the first hopper to a position above the box inlet for transporting the facing material from the first hopper to the box, whereby the facing material will set against the pattern and form a thin shell thereon; a second magazine shiftable from a position beneath the second hopper to a position above the box inlet for transporting the backing material from the second hopper to the box after the facing material has been introduced into the box, whereby the backing material will be applied to the backside of the thin shell; a source of compressed gas positioned to align with the hoppers when the hoppets are located over the inlet to the box for successively blowing the facing material and backing material through the first and second magazines, respectively, and into the box; and means for purging the box of unbonded facing material shortly after the facing material has been blown into the box.
8. An apparatus according to claim 7 wherein the means for purging the box of unbonded facing material turns the box over to a position wherein its inlet is presented downwardly so that the unbonded facing material falls from the box.
9. An apparatus for making a mold or core having a thin shell facing and a backing material disposed against the backside of the shell facing and rigidifying the same, said apparatus comprising: a box having an inlet leading into the in- 1 terior thereof and being adapted to hold a pattern of predetermined shape; heating means carried by the box for heating the pattern, support means carrying the box and being capable of moving it between a position with its inlet presented generally downwardly and a position with its inlet presented generally upwardly; a first hopper located below the box and aligning with the box inlet when that inlet is presented downwardly, the first hopper holding a fine grain shell facing material containing a heat-setting binder; a source of compressed gas connected with the first hopper for blowing the facing material into the box, whereby some of the facing material will set against the heated pattern and form a thin shell over it, while the remaining facing material will fall back into the first hopper; a second hopper positioned above the box and aligning with the box inlet when that inlet is presented upwardly, the second hopper holding a granular backing material of coarser grain than the facing material and also containing a binder; and a source of compressed gas associated with the second hopper for blowing the backing material into the box after the thin shell has been formed on the pattern.

Claims (9)

1. An apparatus for making a mold or core having a thin shell facIng and a backing material disposed against the backside of the thin shell facing and rigidifying the same, said apparatus comprising a frame; a source of granular shell facing material on the frame; the facing material being of fine grain and containing a heat setting binder; a source of granular backing material on the frame and spaced from the source of shell facing material, the backing material being of courser grain than the facing material and also containing a binder; a box having an inlet leading into the interior thereof and containing a pattern of predetermined shape; heating means carried by the box for heating the surface of the pattern exposed to the box interior; feed means carried by the frame for successively transferring the shell facing material and the backing material from the respective sources of those materials to the inlet of the box and for forcing that material into the box through the inlet thereof to enable the facing material to first be applied directly against the pattern so as to form a thin shell thereon and to thereafter enable the backing material to be applied directly against the thin shell while the shell is supported by the pattern; and a support on the frame and carrying the box, the support being capable of supporting the box in a position with its inlet opening downwardly between the introduction of the shell facing material and the backing material into the box so that the unbonded facing material will fall from the box before the backing material is introduced into the box.
2. An apparatus according to claim 1 wherein the inlet of the box is spaced from the sources of shell facing material and backing material; wherein the feed means comprises a first magazine shiftable from a position beneath the source of shell facing material to a position opposite the inlet to the box for transferring a quantity of shell facing material between the source of that material and the box, a second magazine shiftable from a position beneath the source of backing material to a position opposite the inlet of the box for transferring a quantity of backing material between the source of that material and the box, and a source of compressed gas for blowing the shell facing material and the backing material from the magazines into the box.
3. An apparatus according to claim 2 wherein the source of compressed gas is carried by the frame in a fixed position thereon and aligns with the magazines when the magazines are positioned opposite to the inlet of the box.
4. An apparatus according to claim 3 wherein the support for the box rotates the box from a feed position, wherein its inlet is presented generally upwardly, to a discharge position, wherein its inlet is presented downwardly.
5. An apparatus according to claim 1 wherein the support for the box rotates the box from a discharge position, wherein its inlet is presented downwardly so that the unbonded facing material will fall from the box through the inlet thereof, to another position, wherein its inlet is positioned such that the shell facing material and backing material are retained in the box.
6. An apparatus according to claim 5 wherein the source of shell facing material is located below the box and the source of backing material is located above the box; and wherein the feed means is a source of compressed gas positioned to blow the shell facing material upwardly into the box and another source of compressed gas positioned beneath the source of backing material for blowing the backing material into the box after the box has been inverted by the support.
7. An apparatus for making a mold or core having a thin shell facing and a backing material disposed against the backside of the thin shell facing and rigidifying the same, said apparatus comprising: a first hopper for holding a granular shell facing material which is of fine grain and contains a heat-setting binder; a second hopper positioned to the side of the first hopper for holding a granular backing material which is of coArser grain than the facing material and also contains a binder; a box positioned below the hoppers and having an inlet which leads into the interior thereof and is normally positioned such that it opens upwardly, the box being adapted to hold a pattern of predetermined shape; heating means carried by the box for heating the surface of the pattern exposed to the box interior; a first magazine shiftable from a position beneath the first hopper to a position above the box inlet for transporting the facing material from the first hopper to the box, whereby the facing material will set against the pattern and form a thin shell thereon; a second magazine shiftable from a position beneath the second hopper to a position above the box inlet for transporting the backing material from the second hopper to the box after the facing material has been introduced into the box, whereby the backing material will be applied to the backside of the thin shell; a source of compressed gas positioned to align with the hoppers when the hoppers are located over the inlet to the box for successively blowing the facing material and backing material through the first and second magazines, respectively, and into the box; and means for purging the box of unbonded facing material shortly after the facing material has been blown into the box.
8. An apparatus according to claim 7 wherein the means for purging the box of unbonded facing material turns the box over to a position wherein its inlet is presented downwardly so that the unbonded facing material falls from the box.
9. An apparatus for making a mold or core having a thin shell facing and a backing material disposed against the backside of the shell facing and rigidifying the same, said apparatus comprising: a box having an inlet leading into the interior thereof and being adapted to hold a pattern of predetermined shape; heating means carried by the box for heating the pattern, support means carrying the box and being capable of moving it between a position with its inlet presented generally downwardly and a position with its inlet presented generally upwardly; a first hopper located below the box and aligning with the box inlet when that inlet is presented downwardly, the first hopper holding a fine grain shell facing material containing a heat-setting binder; a source of compressed gas connected with the first hopper for blowing the facing material into the box, whereby some of the facing material will set against the heated pattern and form a thin shell over it, while the remaining facing material will fall back into the first hopper; a second hopper positioned above the box and aligning with the box inlet when that inlet is presented upwardly, the second hopper holding a granular backing material of coarser grain than the facing material and also containing a binder; and a source of compressed gas associated with the second hopper for blowing the backing material into the box after the thin shell has been formed on the pattern.
US870706A 1967-02-27 1969-10-20 Apparatus for making shell molds Expired - Lifetime US3664407A (en)

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE2746128A1 (en) * 1976-10-13 1978-04-20 Nat Eng Co METHOD FOR MAKING CASTING MOLDS AND MACHINE FOR CARRYING OUT THE METHOD

Citations (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
SU153095A1 (en) *
FR718895A (en) * 1930-08-21 1932-01-29 Badische Maschf Gmbh Compressed air blowing machine for making sand cores or other similar parts
FR779926A (en) * 1933-04-25 1935-04-16 Badische Maschf Gmbh Sand tank for foundry mold core blowing machines
US2748435A (en) * 1951-11-14 1956-06-05 Gen Motors Corp Process for reinforcing shell molds
US2852818A (en) * 1954-11-26 1958-09-23 Shalco Engineering Corp Core blowing machine for making shell molds
FR1294421A (en) * 1961-06-20 1962-05-26 Method and device for automatically injecting a fine-grained molding material containing a thermosetting binder into heated molds
US3184809A (en) * 1962-08-29 1965-05-25 George W Stewart Shell core forming apparatus
US3447589A (en) * 1966-09-01 1969-06-03 James M Planten Shell molding method

Patent Citations (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
SU153095A1 (en) *
FR718895A (en) * 1930-08-21 1932-01-29 Badische Maschf Gmbh Compressed air blowing machine for making sand cores or other similar parts
FR779926A (en) * 1933-04-25 1935-04-16 Badische Maschf Gmbh Sand tank for foundry mold core blowing machines
US2748435A (en) * 1951-11-14 1956-06-05 Gen Motors Corp Process for reinforcing shell molds
US2852818A (en) * 1954-11-26 1958-09-23 Shalco Engineering Corp Core blowing machine for making shell molds
FR1294421A (en) * 1961-06-20 1962-05-26 Method and device for automatically injecting a fine-grained molding material containing a thermosetting binder into heated molds
US3184809A (en) * 1962-08-29 1965-05-25 George W Stewart Shell core forming apparatus
US3447589A (en) * 1966-09-01 1969-06-03 James M Planten Shell molding method

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE2746128A1 (en) * 1976-10-13 1978-04-20 Nat Eng Co METHOD FOR MAKING CASTING MOLDS AND MACHINE FOR CARRYING OUT THE METHOD

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