The present invention relates to a mold runner for a runner or sprue type injection molding apparatus. The mold runner allows passage of a melted, flowable substrate from an injection source into a mold cavity while preventing an in-mold coating, which is injected into the mold cavity in a subsequent step, from flowing into the injection source thereby contaminating the same. Accordingly, the mold runner is a barrier to in-mold coating flow.
It is often desirable to provide a molded substrate with a coating while the substrate still resides in a mold cavity after an injection molding operation has been performed. Various methods of in-mold coating have been utilized in order to improve the quality of a surface of molded products wherein the coated product is suitable for use “as is” in an end use application, or which would require less or no surface preparation treatment than heretofore utilized.
The application of in-mold coatings (IMC) to thermoplastic or thermoset materials to provide generally smooth surfaces, improve durability and other surface properties, and to reduce or eliminate substrate porosity is known. A number of in-mold coating methods have been employed for applying coatings, in compression molding methods or injection molding methods employing molding materials of thermosetting resins, such as SMC (sheet molding compound) and BMC (bulk molding compound) (e.g., U.S. Pat. Nos. 4,076,788; 4,081,578; 4,331,735; 4,366,109; 4,668,460 and 6,180,043).
During an injection molding process wherein a substrate is coated with an in-mold coating, a substrate in a melted condition is injected into a mold cavity through a mold runner in a platen between a mold cavity and an injection device. After the injection of the substrate, the injected substrate is allowed to cool and set. At this point in the process the substrate is still connected to a sprue or sprue bushing which is formed between the substrate in the mold cavity and the nozzle of the injection device, i.e. in the mold runner of the platen.
When the molded substrate has cooled sufficiently to accept an in-mold coating, the same is injected from an in-mold coating injection device onto the surface of the substrate. The in-mold coating spreads out from the point of injection and covers a predetermined surface of the substrate. As the in-mold coating is injected into the mold cavity high pressure, usually about 200, 500, or 1000 to about 5000 psi, the in-mold coating spreads out upon the surface of the molded substrate.
Typically, the in-mold coating is injected onto the same surface of the substrate on which the sprue or sprue bushing is present. Accordingly, the in-mold coating not only spreads out across the intended surface of the substrate, but also along the exterior portion of the sprue. Through the sprue, the in-mold coating can gain entrance to the injection molding device through the nozzle or other orifice thereof. The flow of in-mold coating into the injection molding device contaminates the same by its breaching action. The cross contamination between the uncured in-molding coating and melted substrate resin can produce substandard parts. It would therefore be desirable to provide an apparatus that prevents the in-mold coating from gaining entrance to and contaminating a substrate injection molding device.
The present invention is directed toward an improved mold runner particularly for use in injecting a melted polymeric substrate material into a mold. The mold runner receives substrate material above its melting point from an injection molding machine and provides a passageway for transferring the material into a mold cavity. The mold runner includes novel structure designed to prevent an in-mold coating from entering the nozzle or other orifice of the injection molding machine from the mold cavity. The mold runner thus provides an effective barrier to in-mold coating flow.
In a preferred embodiment, the mold runner has a body member which is either formed in or insertably connected to a mold half. The body member has first and second ends and a fluid passageway therebetween. The first end receives melted substrate material from the injection molding machine and the second end is an outlet for discharging the substrate material into the mold cavity. An in-mold coating containment shroud is situated in the mold runner passageway to prevent an in-mold coating from entering the injection molding machine through an orifice thereof.
The mold runner passageway has a shape which is generally conical or cylindrical, except in the region of the containment shroud. The containment shroud is generally a projection or cavity which extends radially outward about the mold runner passageway. The angle of the containment shroud with respect to the mold runner passageway can vary.
The invention will be better understood and other features and advantages will become apparent by reading the detailed description of the invention, taken together with the drawings, wherein:
FIG. 4(a) is a close up view of the containment shroud illustrated in FIG. 4.
The embodiments of the mold runner and associated apparatus according to the present invention will be specifically described, with reference to the drawings wherein numerals indicate like or corresponding parts throughout the several figures. In
Molding apparatus 10 includes a first mold half 20 which preferably remains in a stationary or fixed position relative to a second moveable mold half 30.
The moveable mold half 30 reciprocates generally along a horizontal axis relative to the first or fixed mold half 20 by action of a clamping mechanism 70 with a clamp actuator 72 such as through a hydraulic, mechanical, or electrical actuator as known in the art. The clamping pressure exerted by the clamping mechanism 70 should have an operating pressure in excess of the pressures generated or exerted by the thermoplastic or thermoset substrate composition injector apparatus 50 and the in-mold coating injector 60. The pressure exerted by the clamping mechanism ranges generally from about 2,000 to about 15,000, desirably from about 4,000 to about 12,000, and preferably from about 6,000 to about 10,000 pounds per square inch (psi) of mold surface.
As shown in
The first composition injector is not meant to be limited to the embodiment shown in
In
As shown in at least
The mold runner includes containment shroud 27 which prevents an in-mold coating from flowing or terminates in-mold coating flow through passageway 26 and into the molding apparatus 50 or out of the space between mold half 20 about first end 24 and injection apparatus 50 about nozzle 58.
The containment shroud is generally a recess, hollow, or void, which extends around the entire perimeter or circumference of at least one portion of the mold runner passageway between the first end and second end. In other words, the containment shroud is generally a cavity, formed in the mold runner about a peripheral segment of the passageway generally on a plane substantially perpendicular to the passageway axis. Each containment shroud has a base portion and a terminal or end portion as at least shown in FIG. 4(a) as 28 and 29 respectively. The base portion 28 has a predetermined width along an axial length of the passageway. The containment shroud also has a height and extends for a distance generally radially outward from the passageway perimeter.
As noted above, the containment shroud has a design or structure effective to prevent or terminate an in-mold coating from passing therearound or therethrough from the passageway egress to the passageway substrate material entrance. After the substrate composition has been injected into the mold cavity, the mold runner and containment shroud are also filled with the substrate composition. The substrate composition filled containment shroud utilizes the relative incompressibility of the substrate in this thin area as a barrier to prevent in-mold coating flow. In a preferred embodiment, the base portion has a width or thickness greater than or equal to the terminal portion, such as shown in
In the embodiment of
It is important to note that the containment shroud is not meant to be limited to the embodiments specifically illustrated in the drawings of the present invention and one of ordinary skill in the art would understand the modifications and variations possible.
In order to understand how the mold runner of the present invention functions, the following description of an in-mold coating process is described, with reference made to the drawings. The in-mold coating of substrates is well known in the art, and it is to be understood that variations of the process not described herein are to be included within the parameters of the present invention. A thermoplastic or thermosetting substrate material is introduced into an injection molding apparatus 50 wherein the material is heated above its melting point. The substrate material is moved through the apparatus utilizing rotating screw 56 and is deposited at the end of the barrel. During a molding cycle, the mold halves 20 and 30 are brought together in a closed position as shown in FIG. 1 and the melted substrate material is injected from nozzle 58 of the injection molding apparatus through mold runner 22 into the mold cavity 40. Generally, an appropriate amount of substrate material is injected into the mold cavity so that a final product desirably fills the mold cavity. As shown in
As stated in U.S. patent Ser. No. 10/045,481, and herein incorporated by reference, it has been found that each substrate composition has a compressibility and thus a compressibility factor or percentage, wherein at a given temperature a specific substrate is compressible to a certain degree. Therefore, even though a molded article or substrate has a single compressibility ratio, a first area of a substrate which is thicker relative to a second area of a substrate will be able to compress a greater thickness or distance than the second substrate. For example, substrate (a) has a compressibility ratio of 20% at a certain temperature. Therefore, a portion of substrate (a) which has a thickness of 2.0 centimeters can compress 0.4 centimeters, whereas a portion of the substrate which has a thickness of 1.0 centimeters can only compress 0.2 centimeters at the given temperature. The mold runners of the present invention have been designed to utilize substrate compressibility inherently to prevent an in-mold coating from reaching a molding apparatus and contaminating the same.
The uncured in-mold coating spreads out across the surface of the substrate to be coated and also enters second end 25 of the mold runner 22. The coating will travel up the sprue from the second end to the first end 24 of the mold runner due to the compressibility of the sprue material. Once the in-mold coating encounters the containment shroud 27, the coating is stopped from any further travel by the design of the containment shroud. Coating flow around the containment shroud is prevented by the relative incompressibility of the substrate composition in the containment shroud. Thus, the in-mold coating is prevented from entering the injection apparatus 50 and contaminating the substrate material therein.
After the in-mold coating has been injected into the mold cavity, the same will cure and adhere to the substrate material. Afterwards, the fixed mold halves can be parted and the coated substrate material removed along with sprue 53, which contains a rim or projection formed by the mold runner containment shroud. The sprue is easily removable from the mold runner as the projection formed in the containment shroud is generally flexible. Further coated substrates can be produced since the in-mold coating has not contaminated the injection apparatus due to the presence of the runner having a containment shroud of the present invention.
Any thermoplastic substrate can be utilized in conjunction with the mold runner of the present invention. Suitable thermoplastic substrates include, but are not limited to polyethylene terephthalate (PET), nylon, acrylonitrile butadiene styrene (ABS), polystyrene, polycarbonate, acrylic, acetal, polyolefins such as polyethylene and polyethylene, polypropylene, and polyvinyl chloride (PVC). The foregoing list is not meant to be exhaustive but only illustrative of the various materials useful in the practice of the invention.
The mold runner of the present invention can be utilized with any in-mold coating, many of which are available commercially. Such coatings include GenGlaze® and Stylecoat®, acrylic based appearance in-mold coatings available from Omnova Solutions Inc. of Fairlawn, Ohio, as well as others. These and other coatings are well known to the art. In-mold coating injection devices are available commercially from EMC2 of Sterling Hills, Mich., and Morrell of Auburn Hills, Mich.
Suitable in-mold coatings are found in U.S. Pat. No. 5,777,053, herein incorporated by reference. The main advantage of acrylic coatings is the high degree of resistance to thermal and photoxidation and to hydrolysis, giving coatings that have superior color retention, resistance to embrittlement and exterior durability. Low-molecular weight acrylic resins having an average functionality of two to three and containing few molecules that are nonfunctional or only monofunctional, are useful in the present invention. Epoxy resins are also useful as in-mold coatings in the present invention. A principal use of epoxy resins is as a component in two-package primer coatings. One part contains the epoxy resin and the other part contains a polyfunctional amine. Amine-terminated polyamides, sometimes called amido-amines, are widely used. A preferred acrylic resin is an epoxy-based oligomer having at least two acrylate groups and at least one copolymerizable ethylenically unsaturated monomer, and at least one copolymerizable monoethylenically unsaturated compounds having a —CO—, group and a —NH2—, NH, and or —OH— group.
The present invention also contemplates the use of other resin coatings, such as alkyds, polyesters, urethane systems, amino resins, phenolic resins, and silicone resins. See e.g., Kirk Othmer, Encyclopedia of Chemical Technology, Vol. 6 (4th ed. 1993) at pp. 676-690.
In-mold coatings comprising five components, namely
Any of the coatings contemplated for use in the present invention can be colored by utilizing a pigment, a colorant, etc., in a desired or effective amount to yield a desired color, tint, hue, or opacity. Pigments, pigment dispersions, colorants, etc. are well known to the art and include, for example, graphite, titanium dioxide, carbon black, phthalocyanine blue, phthalocyanine red, chromium and ferric oxides, aluminum or other metal flake, and the like.
When an in-mold coating having a specific color is desired, one or more pigments, colorants, etc., can be utilized in suitable amounts. As known to the art, often times various pigments or colorants are added with a carrier, for example, a polyester, so that they can be easily blended. Any suitable mixing vessel can be utilized, and the various components and additives mixed until the compounds are blended.
All of the above-described in-mold coating compositions that may be utilized in the present invention may contain other additives and fillers, etc., in amounts known to the art. For example, various cure inhibitors such as benzoquinone, hydroquinone, methoxyhydroquinone, p-t-butylcatechol, and the like, can also be utilized. Other additives may include an accelerator, such as cobalt octoate. Other classes of accelerators include zinc, or other metal carboxylates. Various light stabilizers can also be utilized such as, for example, the various hindered amines (HALS), substituted benzophenones, and substituted benztriazoles, and the like. Lubricants and mold release agents are generally utilized with specific examples including various metal stearates, such as zinc stearate or calcium stearate or phosphonic acid esters. Reinforcing fillers, such as talc, can be utilized. Other additives include hardeners, thixotropes, such as silica, and adhesion agents, such as polyvinyl acetate.
It is important to note that the mold runner of the present invention can be utilized on generally any injection molding apparatus wherein a substrate composition is injected into a mold cavity and a mold runner can be placed therebetween. A mold runner of the present invention offers beneficial savings in labor and expenditures as the in-mold coating is prevented from contaminating a substrate injection source.
In accordance with the patent statutes, the best mode and preferred embodiment have been set forth, the scope of the invention is not limited thereto, but rather by the scope of the attached claims.
This application is a continuation application of U.S. patent application Ser. No. 10/115,069 which was filed on Apr. 3, 2002, now U.S. Pat. No. 6,676,877 and is expressly incorporated herein by reference.
Number | Name | Date | Kind |
---|---|---|---|
2337550 | Crosby | Dec 1943 | A |
4076788 | Ditto | Feb 1978 | A |
4081578 | Van Essen et al. | Mar 1978 | A |
4115506 | Shima | Sep 1978 | A |
4189517 | Shanoski et al. | Feb 1980 | A |
4222929 | Shanoski et al. | Sep 1980 | A |
4316869 | Van Gasse | Feb 1982 | A |
4331735 | Shanoski | May 1982 | A |
4350739 | Mohiuddin | Sep 1982 | A |
4366109 | Svoboda | Dec 1982 | A |
4389358 | Hendry | Jun 1983 | A |
4414173 | Cobbledick et al. | Nov 1983 | A |
4515710 | Cobbledick | May 1985 | A |
4668460 | Ongena | May 1987 | A |
4711602 | Baker | Dec 1987 | A |
4783298 | Oda | Nov 1988 | A |
4798697 | Nohara et al. | Jan 1989 | A |
4840553 | Arai | Jun 1989 | A |
4921669 | Vetter et al. | May 1990 | A |
4931234 | Schad et al. | Jun 1990 | A |
4950154 | Moberg | Aug 1990 | A |
4963312 | Müller | Oct 1990 | A |
5053177 | Vetter et al. | Oct 1991 | A |
5084353 | Cobbledick et al. | Jan 1992 | A |
5132052 | Cobbledick et al. | Jul 1992 | A |
5359002 | Cobbledick et al. | Oct 1994 | A |
5391399 | Cobbledick et al. | Feb 1995 | A |
5496509 | Yamamoto et al. | Mar 1996 | A |
5562979 | Easterlow et al. | Oct 1996 | A |
5614581 | Cobbledick et al. | Mar 1997 | A |
5632949 | Fisher et al. | May 1997 | A |
5639403 | Ida et al. | Jun 1997 | A |
5658672 | Lenke et al. | Aug 1997 | A |
5736090 | Yamamoto et al. | Apr 1998 | A |
5777053 | McBain et al. | Jul 1998 | A |
5849168 | Lutz | Dec 1998 | A |
5882559 | Eckardt et al. | Mar 1999 | A |
5902534 | Fujishiro et al. | May 1999 | A |
5906788 | Boeckler | May 1999 | A |
5925386 | Moberg | Jul 1999 | A |
6174158 | Seres, Jr. et al. | Jan 2001 | B1 |
6180043 | Yonemochi et al. | Jan 2001 | B1 |
6261075 | Lee et al. | Jul 2001 | B1 |
6287488 | Dougherty et al. | Sep 2001 | B1 |
6328920 | Uchiyama et al. | Dec 2001 | B1 |
6409955 | Schmitt et al. | Jun 2002 | B1 |
6649101 | Kermet | Nov 2003 | B1 |
20020039656 | McBain et al. | Apr 2002 | A1 |
Number | Date | Country |
---|---|---|
1 949 756 | Apr 1971 | DE |
25 07 727 | Sep 1976 | DE |
38 04 619 | Aug 1989 | DE |
39 38 891 | May 1990 | DE |
0 472 312 | Feb 1992 | EP |
0 661 146 | Jul 1995 | EP |
0 894 603 | Jul 1998 | EP |
0 919 350 | Nov 1998 | EP |
0 953 419 | Apr 1999 | EP |
0 625 418 | Mar 2000 | EP |
1 207 031 | May 2002 | EP |
0 934 808 | Sep 2002 | EP |
0 733 668 | Jun 2003 | EP |
2781715 | Jul 1998 | FR |
60-31931 | Feb 1985 | JP |
63-021110 | Jan 1988 | JP |
01-110921 | Apr 1989 | JP |
06-328504 | Nov 1994 | JP |
07-32416 | Feb 1995 | JP |
08-127038 | May 1996 | JP |
09-52262 | Feb 1997 | JP |
09-039024 | Feb 1997 | JP |
09 052262 | Feb 1997 | JP |
09052262 | Feb 1997 | JP |
09 052262 | Feb 1997 | JP |
2001-96573 | Apr 2001 | JP |
2002-240087 | Aug 2002 | JP |
WO 95 13177 | May 1995 | WO |
WO 01 07230 | Feb 2001 | WO |
PCTCA0100534 | Apr 2001 | WO |
WO 01 81065 | Nov 2001 | WO |
WO 0204187 | Jan 2002 | WO |
WO 03 035354 | May 2003 | WO |
Number | Date | Country | |
---|---|---|---|
20040140586 A1 | Jul 2004 | US |
Number | Date | Country | |
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Parent | 10116069 | Apr 2002 | US |
Child | 10755421 | US |