Technical Field
This invention relates generally to the injection molding of foamed plastic articles and, more particularly, to the apparatus and process involved in pouring the foam into the mold and plugging the pour opening thereof after pouring.
Background Art
Heretofore, in the injection molding of foamed plastic articles, such as an automotive glove box door, a sprue has been formed in the pour opening once the foamable mixture has expanded into conformity with the mold surface, as may be seen in U.S. Pat. No. 4,133,858 to Hayakawa et al..
In other instances, the pour opening has been plugged, but in an inefficient manner, such that time consuming manual cleaning of the pour opening is required due to the manner in which the pour opening is plugged after the foamable mixture has been injected into the mold. For example, in the molding system shown and described in U.S. Pat. No. 3,642,392, to Vanderhagen, a hinged cover is provided with an external conical surface machined to match the internal surface of the pour opening. However, by virtue of being rotated in an arcuate path into the pour opening, the conical surface cannot scrape any foam formation from the inner surface of the pour opening, or prevent leakage of chemicals into the space between the surfaces of the pour opening and the conical surface during the foam reaction process.
Disclosure of the Invention
Accordingly, a general object of the invention is to provide an improved system of injection foam molding wherein buildup of foam material on the surface of the pour opening is automatically prevented.
Another object of the invention is to provide an improved injection foam molding system including a vertically aligned, tight fitting plug and pour opening relationship, whereby the occasion of foam material forming or existing on the pour opening surface is prevented.
A further object of the invention is to provide an injection foam molding system including a hardened and polished tool steel pour bushing and a vertically aligned plug therefore formed f a polyethylene material which is a predetermined amount larger in diameter than the inside diameter of the pour bushing.
Still another object of the invention is to automate the alternate positioning of the pour head nozzle and the pour opening plug in vertical alignment with the axis of the pour opening.
These and other objects and advantages of the invention will become more apparent when reference is made to the following drawings and accompanying description.
Brief Description of the Drawings
FIG. 1 is a front elevational view in partial cross section of a mold assembly embodying the invention;
FIG. 2 is a side elevational view taken along the plane of line 2--2 of FIG. 1, and looking in the direction of the arrows;
FIG. 3 is a cross-sectional view taken along the plane of the line 3--3 of FIG. 2, and looking in the direction of the arrows;
FIG. 4 is a top view of a portion of the FIG. 1 structure and a cooperating pour head assembly; and
FIG. 5 is a side elevational view of a portion of the FIG. 4 structure taken along the plane of the line 5--5 and looking in the direction of the arrows.
Best Mode of Carrying Out the Invention
Referring now to the drawings in greater detail, FIG. 1 illustrates a mold assembly 10 having a lower base 12 and an upper housing 14 covered by a mounting plate 16 having an opening 18 formed therein. An adapter 20 extends through the opening 18 and is secured by mounting screws 22 to the upper housing 14. A mounting collar 24 is secured by the mounting screws 26 to the adapter 20. A mounting plate 28 is secured by mounting screws 30 (FIG. 2) to the mounting collar 24. The housing 14 and the lower base 12, enclose a reaction chamber 32. Typically, a vent opening (not shown) is formed through a side portion of the housing 14, to vent trapped air from the reaction chamber 32 during the reaction process.
In accordance with usual practise, a shell or facing 34 is mounted in the bottom surface portion of the reaction chamber 32, while a mounting insert 36 is mounted in the upper portion of the chamber 32, connected at its peripheral edge to the peripheral edge of the shell 34. An inlet opening 38 is formed through a central portion of the mounting insert 36 for communication with the space 40 contained within the shell 34 and the insert 36. Openings 42, 44, 46 and 48 are formed in the upper housing 14, the adapter 20, the mounting collar 24 and the mounting plate 28, respectively, axially aligned with the inlet opening 38. A pour bushing 50 is mounted in the openings 42, 44, 46 and 48, having a collar 52 confined between an annular notch 54 formed in the mounting collar 24 and the top surface of the adapter 20. The pour bushing 50 is formed of a hardened and polished tool steel, and provides a pour opening 56.
As better seen in FIG. 2, a bearing housing 58 is operatively mounted on the mounting plate 28. A cylinder bracket 60 is secured at one end thereof to the bearing housing 58, and supported by a support member 62 so as to extend substantially parallel to the mounting plate 28. A cylinder 64 is mounted atop the distal end of the cylinder bracket 60 such that its cylinder rod 66 extends downwardly through an opening 68 formed adjacent the distal end. A plug 70 is secured by a lock nut 71 to the end of the cylinder rod 66. The plug 70 is formed of a suitable plastic material, such as polyethylene, with an outside diameter a predetermined amount larger than the inside diameter of the pour opening 56, for a purpose to be described. A bumper 72 is mounted on the cylinder bracket 60, partially surrounding the cylinder 64.
As shown in FIG. 2, two bearings 73 are mounted between the bearing housing 58 and a center post 74 secured by a screw 75 to the mounting plate 28. An adjusting nut 76 and lock nut 77 are attached to the upper end of the center post 74 for adjusting the axial clearance of the bearings 73. A torsion spring 78, secured at its ends 80 and 82 (FIG. 3) to the mounting plate 28 and a bracket 84 secured to the bearing housing 58. An adjustable stop screw 86 is mounted through the bracket 84 for being urged by the torsion spring 78 into contact with a stop member 88 mounted on the mounting plate 28. A shock absorber 90 is mounted on the mounting plate 28 for contact with a bracket 92 secured to the bearing housing 58.
Referring now to FIG. 4, a pour head 94 is secured to a reciprocally mounted bracket 96. A pour head bumper 98 is secured to the bracket 96, for a purpose to be described. A nozzle 100 (FIG. 5) is formed on the lower end of the pour head 94. As indicated by the arrows A and B, the pour head 94 and nozzle 100 assembly is adapted to move both laterally and vertically by suitable drive means (not shown).
In operation, the free standing positions of the respective cylinder 64 and pour head 94 assemblies are as shown in FIG. 4. At the start of each cycle, the pour head 94 assembly is caused to move laterally toward the cylinder 64 assembly, such that the pour head bumper 98 contacts the cylinder bracket bumper 72, and continues to move to the phantom line position, thereby causing the cylinder 64 assembly to pivot about the center post 74 (FIG. 2) to the phantom line position shown, against the force of the torsion spring 78. The movement serves to position the nozzle 100 directly above the pour opening 56. The pour head 94 assembly and nozzle 100 are then lowered into contact with the inner peripheral edge of the pour bushing 50.
A predetermined volume of foam is then delivered from the pour head assembly 94 via the nozzle 100, the pour opening 56 and the inlet opening 38 to the space 40 of the reaction chamber 32. The pour head assembly 94 and nozzle 100 are then retracted upwardly and laterally, permitting the torsion spring 78 to urge the cylinder 64 assembly back to its normal position directly above the pour opening 56. The adjustable stop screw 86 on the bearing housing 58 maintains accurate alignment between the plug 70 and the pour opening 56 while the shock absorber 90 softens the impact of the stop screw 86 against the stop member 88.
The cylinder 64 is then actuated to extend its cylinder rod 66 downwardly to thereby compress and insert the diametrally oversized plug 70 into the pour opening 56. Being oversize, the plug 70 forms such a tight fit in the pour opening 56 as it is being linearly inserted, that the pour opening is kept clean by virtue of the plug scraping the residual foam from the inner surface of the pour bushing 50. The scraping process is enhanced by the hardened and polished tool steel of the bushing 50 serving to reduce the incidence of foam sticking to the surface thereof. The resultant tight fit is also effective as a seal in preventing chemicals from leaking into the annular sealed surface during the foam reaction period, inasmuch as the plug 70 sits atop the inlet opening 38 of the mounting insert 36, as shown in phantom in FIG. 1.
The polyethylene material of which the oversize plug 70 is formed has high resistance to abrasion and is self-lubricating yet flexible enough to withstand compression loads as it is repeatedly inserted into and removed from the pour opening 56.
Industrial Applicability
It should be apparent that the invention provides an efficient mold filling and plugging arrangement for forming foam articles, wherein the formation of a pouring sprue is completely eliminated, and the need to clean the pour opening thereof is virtually eliminated.
It should also be apparent that the invention provides an improved means for alternately aligning the pour nozzle and pour plug with the axis of the pour opening.
While but one embodiment has been shown and described, other modifications thereof are possible within the scope of the following claims.