Smoke retardant vinyl chloride and vinylidene chloride polymer compositions

Information

  • Patent Grant
  • 3970638
  • Patent Number
    3,970,638
  • Date Filed
    Wednesday, December 10, 1975
    48 years ago
  • Date Issued
    Tuesday, July 20, 1976
    47 years ago
Abstract
Smoke retardant vinyl chloride and vinylidene chloride polymer compositions are obtained by including therein a synergistic mixture of (A) at least one nickel compound selected from the group consisting of NiCrO.sub.4, NiO and Ni.sub.3 (PO.sub.4).sub.2 and (B) at least one antimony compound selected from the group consisting of antimony metal, SbCl.sub.3, Sb.sub.2 S.sub.3, Sb.sub.2 (SO.sub.4).sub.3, sodium meta-antimonate and antimony triacetate. Substantial smoke retardation is also obtained by including the above nickel compounds or antimony compounds individually in the vinyl chloride or vinylidene chloride polymer compositions.
Description

BACKGROUND OF THE INVENTION
Vinyl chloride and vinylidene chloride polymers are known to be self-extinguishing and relatively more flame retardant than other polymers such as polyethylene, polypropylene and the like. However, a substantial amount of smoke may be produced upon exposure of vinyl chloride and vinylidene chloride polymers to a flame. The fact that an additive is a flame retardant does not necessarily mean that it will have good smoke retardant properties, as is well known to those skilled in the art. New smoke retardant vinyl chloride and vinylidene chloride polymer compositions are desired.
SUMMARY OF THE INVENTION
Smoke retardant vinyl chloride and vinylidene chloride polymer compositions are obtained by including therein a synergistic mixture of (A) at least one nickel compound selected from the group consisting of NiCrO.sub.4, NiO and Ni.sub.3 (PO.sub.4).sub.2 and (B) at least one antimony compound selected from the group consisting of antimony metal, SbCl.sub.3, Sb.sub.2 S.sub.3, Sb.sub.2 (SO.sub.4).sub.3, sodium meta-antimonate and antimony triacetate.
DETAILED DESCRIPTION
The present invention encompasses vinyl chloride and vinylidene chloride polymer compositions containing therein synergistic mixtures of (A) at least one nickel compound selected from the group consisting of NiCrO.sub.4, NiO and Ni.sub.3 (PO.sub.4).sub.2 and (B) at least one antimony compound selected from the group consisting of antimony metal, SbCl.sub.3, Sb.sub.2 S.sub.3, Sb.sub.2 (SO.sub.4).sub.3, sodium meta-antimonate and antimony triacetate. More preferred smoke retardant synergistic mixtures include (A) NiO and (B) at least one antimony compound selected from the group consisting of antimony metal, Sb.sub.2 S.sub.3, Sb.sub.2 (SO.sub.4).sub.3 and sodium meta-antimonate.
The additive nickel and antimony compounds used in this invention may be polycrystalline or amorphous fine powders, preferably with an average particle size from about 0.01 to about 800 microns, more preferably from about 0.1 to about 200 microns, and even more preferably from about 0.5 to about 150 microns. Polymer compositions containing the additives may have colors similar to, although somewhat lighter than, the additives themselves. The additive compounds may be used in total amounts from about 0.01 to about 20 parts by weight, more preferably from about 1 to about 10 parts by weight, per 100 parts by weight of polymer. Use of more than about 20 parts by weight of additive per 100 parts by weight of polymer probably may affect adversely other important physical properties, such as tensile strength and the like. The amount of each additive may constitute from about 1% to about 99% by weight, more preferably from about 10% to about 90% by weight, of the additive compound mixture. Supporting media such SiO.sub.2 and other substantially inert inorganic supporting materials known in the art may be used for the smoke retardant additives and in many cases are preferred, since additive surface area is greatly increased for smoke reduction purposes.
Not all nickel compound/antimony compound mixtures are synergistic, and it is difficult or impossible to predict synergism. Mixtures found to be nonsynergistic using the Goodrich Smoke-Char Test described hereinafter include NiO and triphenylantimony, NiO and antimony potassium tartrate, NiO and triphenyl antimony oxide, Ni.sub.2 O.sub.3 and Sb.sub.2 (SO.sub.4).sub.3, Ni.sub.2 O.sub.3 and Sb.sub.2 O.sub.5, Ni.sub.2 O.sub.3 and Sb.sub.2 O.sub.3, and NiS and antimony metal. Other nonsynergistic combinations include NiCrO.sub.4 and Sb.sub.2 O.sub.3, NiCrO.sub.4 and Sb.sub.2 O.sub.5, NiI.sub.2 and triphenyl antimony oxide, Ni.sub.3 (PO.sub.4).sub.2 and Sb.sub.2 O.sub.5, NiWO.sub.4 and Sb.sub.2 O.sub.3, NiWO.sub.4 and sodium meta-antimonate, and nickel oxalate and antimony potassium tartrate. Thus it was surprising and unexpected to find smoke reduction using the specific nickel compound/antimony compound mixtures of this invention.
Vinyl chloride and vinylidene chloride polymers used in this invention include homopolymers, copolymers and blends of homopolymers and/or copolymers. The vinyl chloride and vinylidene chloride polymers may contain from 0up to about 50% by weight of at least one other olefinically unsaturated monomer, more preferably at least one other vinylidene monomer (i.e., a monomer containing at least one terminal CH.sub.2 =C< group per molecule) copolymerized therewith, more preferably up to about 20% by weight of such monomer. Suitable monomers include 1-olefins containing from 2 to 12 carbon atoms, more preferably from 2 to 8 carbon atoms, such as ethylene, propylene, 1-butene, isobutylene, 1-hexene, 4-methyl-1-pentene and the like; dienes containing from 4 to 10 carbon atoms including conjugated dienes as butadiene, isoprene, piperylene and the like; ethylidene norbornene and dicyclopentadiene; vinyl esters and allyl esters such as vinyl acetate, vinyl chloroacetate, vinyl propionate, vinyl laurate, allyl acetate and the like; vinyl aromatics such as styrene, .alpha.-methyl styrene, chlorostyrene, vinyl toluene, vinyl naphthalene and the like; vinyl and allyl ethers and ketones such as vinyl methyl ether, allyl methyl ether, vinyl isobutyl ether, vinyl n-butyl ether, vinyl chloroethyl ether, methyl vinyl ketone and the like; vinyl nitriles such as acrylonitrile, methacrylonitrile and the like; cyanoalkyl acrylates such as .alpha.-cyanomethyl acrylate, the .alpha.-, .beta.- and .gamma.- cyanopropyl acrylates and the like; olefinically unsaturated carboxylic acids and esters thereof, including .alpha.,.beta.-olefinically unsaturated acids and esters thereof such as methyl acrylate, ethyl acrylate, chloropropyl acrylate, butyl acrylate, hexyl acrylate, 2-ethylhexyl acrylate, dodecyl acrylate, octadecyl acrylate, cyclohexyl acrylate, phenyl acrylate, glycidyl acrylate, methoxyethyl acrylate, ethoxyethyl acrylate, hexylthioethyl acrylate, methylmethacrylate, ethyl methacrylate, butyl methacrylate, glycidyl methacrylate and the like, and including esters of maleic and fumaric acid and the like; amides of the .alpha.,.beta.-olefinically unsaturated carboxylic acids such as acrylamide and the like; divinyls, diacrylates and other polyfunctional monomers such as divinyl benzene, divinyl ether, diethylene glycol diacrylate, ethylene glycol dimethacrylate, methylene-bis-acrylamide, allyl pentaerythritol, and the like; bis(.beta.-haloalkyl) alkenyl phosphonates such as bis (.beta.-chloroethyl) vinyl phosphonate and the like; and the like.
More preferred monomers include 1-olefins containing from 2 to 12 carbon atoms, more preferably from 2 to 8 carbon atoms, such as ethylene, propylene, 1-butene, isobutylene, 1-hexene, 4-methyl-1-pentene and the like; vinyl esters and allyl esters such as vinyl acetate, vinyl chloroacetate, vinyl propionate, vinyl laurate, allyl acetate and the like; olefinically unsaturated carboxylic acids and esters thereof, including .alpha.,.beta.-olefinically unsaturated acids and esters thereof such as methyl acrylate, ethyl acrylate, chloropropyl acrylate, butyl acrylate, hexyl acrylate, 2-ethylhexyl acrylate, dodecyl acrylate, octadecyl acrylate, cyclohexyl acrylate, phenyl acrylate, glycidyl acrylate, methoxyethyl acrylate, ethoxyethyl acrylate, hexylthioacrylate, methyl methacrylate, ethyl methacrylate, butyl methacrylate, glycidyl methacrylate and the like, and including esters of maleic and fumaric acid and the like; and amides of .alpha.,.beta.-olefinically unsaturated carboxylic acids such as acrylamide and the like.
The vinyl chloride and vinylidene chloride polymers may be prepared by any method known to the art such as by emulsion, suspension, bulk or solution polymerization. The additive compounds may be mixed with the polymer emulsion, suspension, solution or bulk mass before monomer recovery and/or drying. More preferably the compounds may be mixed with dry granular or powdered polymers. The polymer and compound may be mixed thoroughly in granular or powder form in apparatus such as a Henschel mixer and the like. Alternatively, this step may be eliminated and the mixing done while the polymer mass is fluxed, fused and masticated to homogeneity under fairly intensive shear in or on a mixer apparatus having its metal surface in contact with the material. The fusion temperature and time will vary according to the polymer composition and level of additive compound but will generally be in the range of about 300.degree. to 400.degree.F and 2 to 10 minutes.
Smoke retardancy may be measured using a NBS Smoke Chamber according to procedures described by Gross et al, "Method for Measuring Smoke from Burning Materials", Symposium on Fire Test Methods - Restraint & Smoke 1966, ASTM STP 422, pp. 166-204. Maximum smoke density (D.sub.m) is a dimensionless number and has the advantage of representing a smoke density independent of chamber volume, specimen size or photometer path length, provided a consistent dimensional system is used. Maximum rate of smoke generation (R.sub.m) is defined in units of min..sup.- .sup.1. Percent smoke reduction is calculated using this equation: ##EQU1## The term "D.sub.m /g" means maximum smoke density per gram of sample. D.sub.m and other aspects of the physical optics of light transmission through smoke are discussed fully in the above ASTM publication.
Smoke retardance may be measured quickly using the Goodrich Smoke-Char Test. Test samples may be prepared by dry blending polymer resin and smoke retardant additives. The blend is ground in a liquid N.sub.2 -cooled grinder to assure uniform dispersion of the smoke retardant additives in the resin. Small (about 0.3g) samples of the polymer blend are pressed into pellets about 1/4 inch in diameter for testing. Alternatively, test samples may be prepared by blending resin, smoke retardant additives and lubricant(s) or processing aid(s) in a blender such as an Osterizer blender. The blend is milled, pressed into sheets, and cut into small (about 0.3 gram) samples for testing. The test samples are placed on a screen and burned for 60 seconds with a propane gas flame rising vertically from beneath the sample. Sample geometry at a constant weight has been found not to be significant for the small samples used in this test. A Bernz-O-Matic pencil flame burner head is used with gas pressure maintained at 40 psig. The sample is immersed totally and continuously in the flame. Smoke from the burning sample rises in a vertical chimney and passes through the light beam of a Model 407 Precision Wideband Photometer (Grace Electronics, Inc., Cleveland, Ohio) coupled with a photometer integrator. Smoke generation is measured as integrated area per gram of sample.
The vinyl chloride and vinylidene chloride polymer compositions of this invention may contain the usual compounding ingredients known to the art such as fillers, stabilizers, opacifiers, lubricants, processing aids, impact modifying resins, plasticizers, antioxidants and the like.





The following examples illustrate the present invention more fully. EXAMPLE 1-7
The following recipe was used:
MATERIAL PARTS______________________________________Polyvinyl chloride* 100.0Additive (A)** VariableAdditive (B)*** Variable______________________________________ *Homopolymer having an inherent viscosity of about 0.92-0.99; ASTM Classification GP-4-15443. **Nickel compound selected from the group consisting of NiCrO.sub.4, NiO and Ni.sub.3 (PO.sub.4).sub.2. The control sample contained no additive. ***Antimony compound selected from the group consisting of antimony metal SbCl.sub.3, Sb.sub.2 S.sub.3, Sb(SO.sub.4).sub.3 sodium meta-antimonate and antimony triacetate. The control sample contained no additive.
Each experimental sample was prepared by blending resins and additives in a liquid N.sub.2 -cooled grinder to assure uniform dispersion of the smoke retardant additives in the resin. Small (about 0.3 gram) samples of the polymer blend were pressed into pellets about 1/4 inch in diameter and tested using the Goodrich Smoke-Char Test described heretofore. Test results are given in Table 1.
TABLE I__________________________________________________________________________ Additive (A) Additive (B) Smoke Formation SmokeExample (phr) (phr) per Gram of Sample Reduction(%)__________________________________________________________________________Control -- -- 67.4 --1 NiCrO.sub.4 (10) -- 43.7 35 -- Sb.sub.2 S.sub.3 (10) 28.5 58 NiCrO.sub.4 (5) Sb.sub.2 S.sub.3 (5) 24.1 642 NiO (10) -- 23.4 65 -- Antimony Metal (10) 39.6 41 NiO (5) Antimony Metal (5) 15.3 773 NiO (10) -- 23.4 65 -- Sb.sub.2 S.sub.3 (10) 28.5 58 NiO (5) Sb.sub.2 S.sub.3 (5) 20.4 704 NiO (10) -- 23.4 65 -- Sb.sub.2 (SO.sub.4).sub.3 (10) 23.6 65 NiO (5) Sb.sub.2 (SO.sub.4).sub.3 (5) 12.9 815 NiO (10) -- 23.4 65 -- Sodium Meta-antimonate (10) 30.9 54 NiO (5) Sodium Meta-antimonate (5) 20.4 706 NiO (10) -- 23.4 65 -- Antimony Triacetate (10) 42.0 38 NiO (5) Antimony Triacetate (5) 20.7 697 Ni.sub.3 (PO.sub.4).sub.2 (10) -- 38.4 43 -- SbCl.sub.3 (10) 29.2 57 Ni.sub.3 (PO.sub.4).sub.2 (5) SbCl.sub.3 (5) 20.8 69__________________________________________________________________________
These results demonstrate that the defined additive mixtures substantially reduce smoke evolution during forced burning of rigid polyvinyl chloride in the Goodrich Smoke-Char Test. The results also demonstrate the smoke retardant effects of individual additives in the same test.
The improved smoke retardant vinyl chloride and vinylidene chloride polymer compositions of this invention are useful wherever smoke resistance is desirable, such as in carpets, house siding, plastic components for airplane interiors, and the like. Of course, overall suitability for a particular use may depend upon other factors as well, such as comonomer type and level, compounding ingredient type and level, polymer particle size and the like.
Claims
  • 1. A smoke retardant composition comprising a vinyl chloride or vinylidene chloride polymer together with (A) at least one nickel compound selected from the group consisting of NiCrO.sub.4, NiO and Ni.sub.3 (PO.sub.4).sub.2 and (B) at least one antimony compound selected from the group consisting of antimony metal, SbCl.sub.3, Sb.sub.2 S.sub.3, Sb.sub.2 (SO.sub.4).sub.3, sodium meta-antimonate and antimony triacetate, said compounds (A) and (B) being present in a total amount from about 0.25 to about 20 weight parts per 100 weight parts of polymer.
  • 2. A composition of claim 1 wherein said polymer contains copolymerized therewith up to about 50% by weight of at least one other olefinically unsaturated monomer.
  • 3. A composition of claim 2 wherein said polymer contains copolymerized therewith up to about 20% by weight of said other monomer.
  • 4. A composition of claim 2 wherein said other monomer is selected from the group consisting of 1-olefins containing from 2 to 12 carbon atoms, vinyl esters, .alpha.,.beta.-olefinically unsaturated carboxylic acids and esters thereof, amides of .alpha.,.beta.-olefinically unsaturated carboxylic acids, and esters of fumaric and maleic acid.
  • 5. A composition of claim 4 wherein said compound has an average particle size from about 0.1 to about 200 microns.
  • 6. A composition of claim 4 wherein said compound(A) is NiCrO.sub.4 and said compound (B) is Sb.sub.2 S.sub.3.
  • 7. A composition of claim 4 wherein said compound (A) is NiO and said compound (B) is antimony metal.
  • 8. A composition of claim 4 wherein said compound (A) is NiO and said compound (B) is Sb.sub.2 S.sub.3.
  • 9. A composition of claim 4 wherein said compound (A) is NiO and said compound (B) is Sb.sub.2 (SO.sub.4).sub.3.
  • 10. A composition of claim 4 wherein said compound (A) is NiO and said compound (B) is sodium meta-antimonate.
  • 11. A composition of claim 5 wherein said compound (A) is NiO and said compound (B) is antimony triacetate.
  • 12. A composition of claim 4 wherein said compound (A) is Ni.sub.3 (PO.sub.4).sub.2 and said compound (B) is SbCl.sub.3.
US Referenced Citations (7)
Number Name Date Kind
3870679 Mitchell et al. Mar 1975
3878167 Kroenke Apr 1975
3883482 Kroenke May 1975
3900441 King Aug 1975
3903028 Mitchell Sep 1975
3914201 Kroenke Oct 1975
3929722 Bar et al. Dec 1975