Moldable compositions and method of making the same

Information

  • Patent Grant
  • 5916949
  • Patent Number
    5,916,949
  • Date Filed
    Monday, August 18, 1997
    27 years ago
  • Date Issued
    Tuesday, June 29, 1999
    25 years ago
Abstract
Compositions and methods of making the same, the compositions including a binder, solvent for the binder, humectant, wax, an emulsifier for the wax, filler, a cross-linking agent for the binder, and various additives. The binder preferably is polyvinyl alcohol. The filler preferably includes glass microspheres, talc and flour. The wax preferably includes paraffin and microcrystalline waxes.
Description

BACKGROUND AND SUMMARY OF THE INVENTION
Our invention relates generally to moldable compositions and methods of making the same. More specifically, it relates to moldable compositions made from a mixture of polyvinyl alcohol, water, gellant, and filler. The preferred filler uniquely includes a combination of glass microspheres, talc and flour, as described in more detail below. An additional preferred component that is surprisingly compatible with the components of filler is wax, preferably a combination of paraffin wax and microcrystalline wax.
By way of background, U.S. Pat. Nos. 4,629,751, 5,157,063, 5,506,280, and 5,506,290, the disclosures of which are incorporated herein by reference, disclose multiple compositions formed from components that meet the general definitions of polyvinyl alcohol, water, gellant, and filler. It is believed that our compositions offer superior playing, handling and storage properties over any of the compositions disclosed in these patents on account of our unique combination of components and by way of the unique methods defined herein. Our methods also offer significant manufacturing advantages.
Our compositions are particularly well suited to use by children as a tactile toy similar to modeling clay. The compositions are very easy to form and shape, and thus are workable and useable even by very small children. They are stretchable, malleable, joinable, and simply fun to play with. Furthermore, they are non-toxic and washable.
Our compositions also do not dry out, even if left exposed to air for several days, and are easily rehydrated to replace any water lost from prolonged exposure. This is particularly important for compositions that are intended for repeated use by children. If a modeling composition dries out and is not easily rehydrated, it quickly loses the interest of both children and parents, particularly since many children may forget to put it away for several days or more.
Our present invention offers several advantages for the manufacturer. The compositions are easy and safe to formulate and relatively inexpensive to manufacture. All of the component materials are readily available and useable with standard handling and manufacturing equipment.
It is an object of the present invention to provide a moldable composition that is both fun and safe for small children to play with.
It is a further object of the present invention to provide a moldable composition that is easy and relatively inexpensive to manufacture.
Additional objects and advantages of the present invention will be understood more readily after a consideration of the drawing and the Detailed Description of the Preferred Embodiment.





BRIEF DESCRIPTION OF THE DRAWING
The Figure is a flowchart representing the preferred method of making a moldable composition according to present invention.





DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
The various components of the moldable compositions of the present invention will be described in conjunction with a description of the method of making the compositions. Accordingly, the reader should refer to the Figure, as needed. Each of the blocks in the Figure represents a step in the method, referred to using the reference indicator in the Figure associated with the step, such as "step 10." To keep the Figure as simple as possible, some sub-steps such as heating and stirring a mixture have been combined into a single step in the Figure and in the following description.
The compositions include generally binder, solvent for the binder, humectant, wax, an emulsifier for the wax, filler, a cross-linking agent for the binder, and various additives. Several of the initial steps of the method are grouped in batches or phases to optimize the quality of the end product, improve the efficiency of the manufacturing process, and reduce the cost of manufacturing the compositions. The method may be performed relatively continuously from start to finish, or it may be paused once a storable premix has been prepared, as discussed below.
The primary binder preferably is polyvinyl alcohol, such as AIRVOL 205, available from Air Products and Chemicals, Inc. Other polyvinyl-based binders may be used, although the results have been found to be less than satisfactory. The preferred solvent is deionized water.
At step 10, the polyvinyl alcohol is mixed with the water to produce a polyvinyl alcohol solution. Preferably, the concentration of polyvinyl alcohol to water is maintained at a relatively high level, approximately 25-percent polyvinyl alcohol. In order to obtain this concentration of polyvinyl alcohol in the polyvinyl alcohol solution, the solution should be heated to approximately 88-degrees C., at step 12. The heated solution should be mixed for at least one hour, also part of step 12.
The humectant preferably includes a combination of propylene glycol and glycerin 99.5% USP. Approximately 30-percent of the propylene glycol, representing approximately one-fourth of the humectant, is mixed with guar gum to produce a humectant/gum mixture at step 14. The guar gum acts as a binder and as a stabilizer. The preferred form of guar gum is available under the designation JAGUAR 8012, available from Rhone-Poulenc. It is believed that other water-soluble gums such as sealing gums, vegetable exudate gums, vegetable seed grain gums (of which guar gum is a member), and vegetable extract gums may be used. A more complete discussion of such gums is found in U.S. Pat. No. 4,548,734, incorporated herein by reference.
The heated polyvinyl alcohol solution from step 12 is mixed with the humectant/gum mixture from step 14 and stirred until homogeneous, at step 16. The humectant/gum mixture, which was not heated, will tend to lower the temperature of the resulting mix, typically to approximately 80-degrees C.
The approximately 70-percent of the propylene glycol that was not used in step 14 is mixed with the glycerin, collectively representing approximately three-fourths of the humectant, and mixed with the wax and emulsifier, at step 18. The wax preferably includes approximately equal portions of a paraffin wax such as PAROWAX 71738-61501, available from Amoco Corporation, and a microcrystalline wax such as MULTIWAX X-145A, available from Petroleum Specialties Group, so that the waxes are present in approximately equal proportions by weight in the composition.
An emulsifier that has been found to work particularly well with this mixture of waxes is polyoxyethylated(20)oleyl alcohol, such as RHODASURF ON-870, available from Rhone-Poulenc. Preferably, the wax comprises at least 10-percent by weight of the final moldable composition, and the emulsifier comprises at least 2-percent by weight of the composition. At step 20, the mixture from step 18 is heated to approximately 80-degrees C., mixing until homogeneous to produce a humectant/wax mixture. It is believed important that the wax be emulsified fully as part of step 20.
The humectant/wax mixture from step 20 then is stirred into the mixture from step 16, and mixed until homogeneous at step 22. At this point in the process, the homogeneous mixture of step 22 may be allowed to cool to 70-degrees C., and a preservative may be stirred in and mixed for one-half hour to create a storable pre-mix at step 24. The preferred preservative is PHENONIP, available from Nipa Laboratories, Inc.
Also as part of step 24, water may be added to replace any water that has been lost in the manufacturing process up to this point. If the production process is to be paused at step 24, the storable pre-mix may be cooled further to approximately 45-degrees C., and placed in an appropriate container for storage.
The preferred fillers of the present composition include microspheres, talc, and flour. The microspheres may be made of various materials, as desired, although borosilicate microspheres have been found to be particularly well-suited to the present composition. As an example of the microspheres, K-35 glass microbubbles, available from 3M, may be used. The microspheres, which tend to decrease significantly the density of the resulting composition, make the composition much more easily formed and extruded, even by small children.
The borosilicate microspheres provide hydrogen bonding with the waxes. The waxes are relatively non-polar materials and therefore are not particularly compatible with the strongly polar mix of the remaining materials. The hydrogen bonding is believed to improve dramatically the retention of the wax in the present composition. Retention of the wax is important, not only when making the composition, but also when using, storing, and shipping the product so that it maintains a consistent texture and feel. The talc also is believed to provide similar hydrogen bonding and, therefore, is particularly important to many embodiments of the present compositions.
The flour preferably is unbleached wheat flour, although other similar fillers such as other grain flours or wood flours may be used. The flour is particularly helpful in giving body to the compositions of the present invention. It is believed that the ability of the flour to absorb water, being approximately three times that of talc, is part of what allows the flour to give body to the compositions.
The microspheres, talc, and flour, along with a pigment or colorant, if desired, are mixed into a selected quantity of the storable pre-mix, at step 26. Pigments that have been found to work well as part of our compositions are part of the DAY-GLO T-SERIES, available from Day-Glo Color, Cleveland, Ohio. The mixture of step 26 then is mixed until homogeneous, after which a cross-linking agent for the polyvinyl alcohol, such as borax, is stirred in, and the mixture once again is mixed until homogeneous to produce a finished product, at step 28. The borax, which may be known more specifically as sodium borate, sodium tetraborate, or disodium tetraborate decahydrate, should not be added earlier than step 28, because it otherwise complicates the manufacturing process, making it particularly difficult to obtain a homogeneous mixture.
The Figure also includes a final, optional step 30 in which a plasticizing oil, such as white mineral oil, may be stirred in to the mix until homogeneous. Preferably, the mineral oil is a very low-density mineral oil such as PENETECK, available from Penreco. The mineral oil facilitates release of the modeling composition from metal items such as mixing bowls and molds. However, it also has an adverse reaction with natural rubbers, found in some plastics, making it very difficult to obtain a release from a rubber-containing mold or product.
A few components not discussed above may be added to alternative embodiments of the invented compositions. For example, sodium carbonate may be added to raise the pH, if needed. However, sodium carbonate, with a pH of 10, may cause the pH of the resulting composition to be too high for safe use by children. Another possible additive is silica, which operates both as a filler and as a thickener. The use of silica is preferred if the microspheres are made from plastic or some other non-silicate material.
We have set forth below in Table 1 what are believed to be suitable ranges of the various components discussed above for numerous embodiments of our invention. These ranges are listed as percentages by weight of the resulting composition. For some materials, such as the microspheres, the density of available microspheres varies dramatically depending on the type of material from which the microspheres are made. Accordingly, the stated ranges are broader for the class of material than they are for the specific type of material.
TABLE 1______________________________________Component Percentage by weight______________________________________polyvinyl alcohol 1 to 10borax 0.5 to 5gum 0.2 to 2silica 0 to 10wax 8 to 16emulsifier for the wax 1.5 to 3humectant 10 to 75microspheres 3 to 20talc 10 to 30grain or wood flour 5 to 12______________________________________
The costs of the microspheres can increase dramatically the cost of the resulting composition. Similarly, the flour, which adds body to the composition and is relatively inexpensive, also can make the composition too difficult to extrude. There may be some applications, for instance, pressing the composition into a mold, as opposed to extruding it through an orifice, in which the extra body added by excess flour is a benefit, rather than a drawback.
Set forth below in Table 2 are the approximate percentages by weight of the various components found in one embodiment of the present invention. This embodiment has been found to be a moldable composition that is particularly well-suited for use by young children. It is pleasing to touch, easy to use, and applicable to a wide variety of projects. It also is relatively easy to manufacture using the method described above, and relatively economical to produce.
TABLE 2______________________________________Component Percentage by weight______________________________________polyvinyl alcohol 3.9deionized water 11.5borax 2.8guar gum 0.6paraffin wax 5.9microcrystalline wax 5.9emulsifier for the wax 2.2propylene glycol 20.6glycerin 3.5preservative 1.2pigment 1.5fragrance 0.1borosilicate microspheres 13.1talc 19.5grain or wood flour 8.0______________________________________
The composition shown in Table 2 includes fragrance, which is not identified in the method shown in the figure. If desired, fragrance can be added where convenient, preferably as part of step 26. A fragrance that works particularly well is mask oil, such as Bell J-8572, available from Bell Flavor and Fragrance Company, Northbrook, Ill.
The composition shown in Table 2 was produced using the method described above. Specifically, the following parts by weight were added, at the steps indicated in Table 3, below.
TABLE 3______________________________________Component Step in the Figure Parts by Weight______________________________________polyvinyl alcohol Step 10 3.50deionized water Step 10 10.50propylene glycol Step 14 5.61guar gum Step 14 0.50propylene glycol Step 18 13.09glycerin Step 18 3.15paraffin wax Step 18 5.39microcrystalline wax Step 18 5.39emulsifier for the wax Step 18 2.00preservative Step 24 1.05deionized water (make-up) Step 24 6.00borosilicate microspheres Step 26 11.90talc Step 26 17.71grain or wood flour Step 26 7.24pigment Step 26 1.37fragrance Step 26 0.08borax Step 28 2.50Total Parts in Final Composition: 90.98 Including compensation for lost water added in Step 24______________________________________
More specific ranges of components than those listed in Table 1 have been found to produce satisfactory results, although not so preferred as those listed in Table 2. For example, the following ranges of components are within the scope of the present invention.
TABLE 4______________________________________Component Percentage by weight______________________________________polyvinyl alcohol 2 to 6borax 1 to 4gum 0.3 to 1wax 10 to 14emulsifier for the wax 1.5 to 3humectant 12 to 30microspheres 10 to 16talc 15 to 23grain flour 6 to 10______________________________________
Yet more specifically, the following ranges of the components listed in Table 2 are believed to produce satisfactory results to produce various embodiments of modeling compositions, also within the scope of the present invention.
TABLE 5______________________________________Component Percentage by weight______________________________________polyvinyl alcohol 3 to 5borax 2 to 3guar gum 0.3 to 1paraffin wax 5 to 7microcrystalline wax 5 to 7emulsifier for the wax 1.5 to 2.5propylene glycol 15 to 25glycerin 2 to 5preservative 0 to 2pigment 0 to 2fragrance 0 to 1borosilicate microspheres 0 to 15talc 17 to 22grain or wood flour 6 to 10______________________________________
While the present invention has been shown and described by reference to the preferred embodiment, it will be apparent to those skilled in the art that other changes in form and detail may be made therein without departing from the spirit and scope of the invention defined in the appended claims.
Claims
  • 1. A moldable composition comprising a polyvinyl-based binder, water, microspheres, a cross-linking agent for the polyvinyl-based binder, a humectant, a wax, and talc, wherein the talc comprises from 10-percent to 30-percent by weight of the composition.
  • 2. The moldable composition according to claim 1, further comprising guar gum.
  • 3. The moldable composition according to claim 1, further comprising grain flour.
  • 4. A moldable composition comprising, approximately in the percentages by weight listed:
  • ______________________________________polyvinyl alcohol 3.6borax 2.6guar gum 0.5paraffin wax 5.6microcrystalline wax 5.6emulsifier for the wax 2.1propylene glycol 19glycerin 3.3borosilicate microspheres 12talc 18grain or wood flour 7.5______________________________________
  • 5. The moldable composition according to claim 1, wherein the wax comprises microcrystalline wax and paraffin wax.
  • 6. The moldable composition according to claim 5, wherein the microcrystalline wax and the paraffin wax are present in approximately equal proportions by weight.
  • 7. The moldable composition according to claim 1, wherein the wax comprises from 8-percent to 16-percent by weight of the composition.
  • 8. The moldable composition according to claim 7, wherein the microcrystalline wax and the paraffin wax are present in approximately equal proportions by weight.
  • 9. The moldable composition according to claim 8, further comprising an emulsifier for the wax.
  • 10. The moldable composition according to claim 1, further comprising an emulsifier for the wax.
  • 11. A moldable composition comprising polyvinyl alcohol, water, borate, sodium carbonate, microspheres, a wax, and a humectant.
  • 12. The moldable composition according to claim 11, further comprising guar gum.
  • 13. The moldable composition according to claim 11, further comprising talc.
  • 14. The moldable composition according to claim 11, further comprising talc, wherein the talc comprises from 10-percent to 30-percent by weight of the composition.
  • 15. The moldable composition according to claim 11, further comprising grain flour.
  • 16. A moldable composition comprising a polyvinyl-based binder, water, microspheres, a cross-linking agent for the polyvinyl-based binder, a humectant, and wax, wherein the wax comprises at least 10-percent by weight of the composition.
  • 17. The moldable composition according to claim 16, wherein the wax comprises microcrystalline wax and paraffin wax.
  • 18. A moldable composition comprising a polyvinyl-based binder, water, microspheres, a cross-linking agent for the polyvinyl-based binder, a humectant, talc, and wax.
  • 19. The moldable composition according to claim 18, further comprising an emulsifier for the wax.
  • 20. The moldable composition according to claim 18, further comprising flour.
  • 21. The moldable composition according to claim 18, wherein the polyvinyl-based binder is polyvinyl alcohol.
  • 22. The moldable composition according to claim 18, wherein the humectant includes propylene glycol.
  • 23. The moldable composition according to claim 22, wherein the humectant further includes glycerin.
  • 24. A moldable composition comprising, in the ranges of percentages by weight listed:
  • ______________________________________polyvinyl alcohol 1 to 10borax 0.5 to 5gum 0.2 to 2silica 0 to 10wax 8 to 16emulsifier for the wax 1.5 to 3humectant 10 to 75microspheres 3 to 20talc 10 to 30grain or wood flour 5 to 12______________________________________
  • 25. A moldable composition comprising, in the ranges of percentages by weight listed:
  • ______________________________________polyvinyl alcohol 1 to 10borax 0.5 to 5gum 0.2 to 2wax 8 to 16emulsifier for the wax 1.5 to 3humectant 10 to 75borosilicate microspheres 7 to 20talc 10 to 30grain or wood flour 5 to 12______________________________________
US Referenced Citations (145)
Number Name Date Kind
2541851 Wright Feb 1951
3061572 Packer Oct 1962
3135648 Hawkins Jun 1964
3143518 Smith Aug 1964
3167440 McVicker et al. Jan 1965
3213051 Pink Oct 1965
3308491 Spence Mar 1967
3353981 Jacob Nov 1967
3384498 Ahrabi May 1968
3402411 Hanson Sep 1968
3449844 Spence Jun 1969
3456589 Thomison et al. Jul 1969
3558340 Spector Jan 1971
3565815 Christy Feb 1971
3607332 Wingfield Sep 1971
3632786 Nickerson Jan 1972
3634280 Dean et al. Jan 1972
3635849 Hanson Jan 1972
3640741 Etes Feb 1972
3660849 Jonnes et al. May 1972
3661790 Dean et al. May 1972
3663973 Spence May 1972
3689948 Graves et al. Sep 1972
3714086 Schaefer et al. Jan 1973
3784391 Kruse et al. Jan 1974
3804654 Liu Apr 1974
3809661 Shapero et al. May 1974
3810265 McGrew May 1974
3853797 Pelzig Dec 1974
3858379 Graves et al. Jan 1975
3873485 Fichera Mar 1975
3886112 Watson et al. May 1975
3917781 Gabriel et al. Nov 1975
3921801 Sway Nov 1975
3926696 Klunsch et al. Dec 1975
3931064 Ray et al. Jan 1976
3946108 Tomlinson et al. Mar 1976
3956040 Tezuka May 1976
3959197 Salyer et al. May 1976
3961967 Brooks Jun 1976
3993608 Wells Nov 1976
3996078 Klunsch et al. Dec 1976
4005033 Georgeau et al. Jan 1977
4019209 Spence Apr 1977
4038762 Swan Aug 1977
4060421 Yoshikawa et al. Nov 1977
4066745 Tomlinson et al. Jan 1978
4076547 Lester et al. Feb 1978
4076846 Nakatsuka et al. Feb 1978
4083127 Hanson Apr 1978
4094694 Long Jun 1978
4095008 Sundstrom et al. Jun 1978
4108928 Swan Aug 1978
4144658 Swan Mar 1979
4172054 Ogawa et al. Oct 1979
4176079 Guerry et al. Nov 1979
4211682 Suminoe et al. Jul 1980
4223067 Levens Sep 1980
4229546 Swan Oct 1980
4231914 Born Nov 1980
4242239 Kessler et al. Dec 1980
4243754 Swan Jan 1981
4252193 Powers et al. Feb 1981
4255202 Swan Mar 1981
4273827 Sweeney et al. Jun 1981
4299231 Karmann et al. Nov 1981
4299790 Greenberg Nov 1981
4303603 Torobin Dec 1981
4315779 Heyd et al. Feb 1982
4330634 Rodaway May 1982
4336071 Schnorrer Jun 1982
4336145 Briscoe Jun 1982
4350723 Sugimura et al. Sep 1982
4364515 Prussin Dec 1982
4369284 Chen Jan 1983
4370166 Powers et al. Jan 1983
4386964 Herbert Jun 1983
4442252 Sumi et al. Apr 1984
4451584 Schaefer May 1984
4459375 Saeki et al. Jul 1984
4459377 Saeki et al. Jul 1984
4460716 Saeki et al. Jul 1984
4469837 Cattaneo Sep 1984
4530402 Smith et al. Jul 1985
4537926 Kivel Aug 1985
4552713 Cavicchioli Nov 1985
4603158 Markham et al. Jul 1986
4612242 Vesley et al. Sep 1986
4618213 Chen Oct 1986
4618491 Kanematu et al. Oct 1986
4623551 Giddey et al. Nov 1986
4624976 Amano et al. Nov 1986
4629751 Montgomery Dec 1986
4664857 Nambu May 1987
4666771 Vesley et al. May 1987
4668564 Orchard May 1987
4677022 Dejaiffe Jun 1987
4701329 Nelson et al. Oct 1987
4713069 Wang et al. Dec 1987
4731389 Christopher et al. Mar 1988
4734097 Tanabe et al. Mar 1988
4735660 Cane Apr 1988
4751246 Philion Jun 1988
4752496 Fellows et al. Jun 1988
4780491 Vesley et al. Oct 1988
4784812 Saitoh et al. Nov 1988
4801563 White Jan 1989
4891266 Keith Jan 1990
4950537 Vesley et al. Aug 1990
4952190 Tarnoff et al. Aug 1990
4956404 Pelzig Sep 1990
4972013 Koltisko et al. Nov 1990
4980005 Scollard Dec 1990
5006586 Touji et al. Apr 1991
5080717 Young Jan 1992
5100712 Drew et al. Mar 1992
5157063 Wetherell Oct 1992
5162138 Caflisch et al. Nov 1992
5171766 Mariano et al. Dec 1992
5203914 Futami et al. Apr 1993
5232494 Miller Aug 1993
5258068 Shapero et al. Nov 1993
5261952 Craig Nov 1993
5310421 Shapero et al. May 1994
5344681 Hanschen et al. Sep 1994
5354597 Capik et al. Oct 1994
5354790 Keusch et al. Oct 1994
5364892 Miller et al. Nov 1994
5374384 Berks et al. Dec 1994
5383954 Craig Jan 1995
5384345 Naton Jan 1995
5395873 Mizoule Mar 1995
5407983 Naton Apr 1995
5412003 Akiyama et al. May 1995
5429856 Krueger et al. Jul 1995
5446072 Mitsukake Aug 1995
5473009 Kimura et al. Dec 1995
5487778 Kaiser Jan 1996
5491180 Kiuchi et al. Feb 1996
5498645 Mariano et al. Mar 1996
5500287 Henderson Mar 1996
5501871 Henderson Mar 1996
5506280 Miller et al. Apr 1996
5506290 Shapero Apr 1996
5599933 Kaiser Feb 1997
Foreign Referenced Citations (16)
Number Date Country
1185031 Feb 1985 CAX
0 075 934 A1 Apr 1983 EPX
0 504 016 A1 Sep 1992 EPX
3042850 Nov 1979 DEX
3115746 Apr 1981 DEX
3238232 Apr 1984 DEX
3641761 A1 Jun 1988 DEX
49-115162 Jan 1974 JPX
51-41748 Jan 1976 JPX
51-125446 Jan 1976 JPX
53-63622 Jan 1978 JPX
04395C03 May 1978 JPX
59-36278 Jan 1980 JPX
617409 Dec 1975 RUX
1060-636-A Jul 1981 RUX
2214186 Aug 1989 GBX
Non-Patent Literature Citations (15)
Entry
EP Search Report, Application No. EP 92 11 2293 (1992).
"A Composition for Glass Protective Coating" (no other identification).
MSDS for Scotchlite Glass Bubbles (1996).
MSDS for Airvol (1992).
MSDS for Propylene Glycol (1996).
MSDS for Fumed Silica (1985).
MSDS for Guar Gum (1991).
MSDS for Phenonip (1985).
MSDS for Glycerin (1997).
MSDS for Rhodasurf (1991).
MSDS for Multiwax (1994).
MSDS for Parowax (1997).
MSDS for Talc (1997).
MSDS for Penetek (1995).
MSDS for Borax (1993).