Claims
- 1. A flame retardant additive composition having enhanced thermal stability which comprises a blend formed from (A) at least one organic bromine flame retardant selected from (i) a flame retardant compound having a plurality of bromine atoms directly bonded to a cycloaliphatic ring, (ii) the bis(2,3-dibromopropyl ether) of tetrabromobisphenol-A, and (iii) the bis(2,3-dibromopropyl ether) of tetrabromobisphenol-S, (B) an alkyltin mercaptoalkanoate, and (C) azeolite adjuvant, in proportions of 0.01 to 0.08 part by weight of(B) per part by weight of (A), and 0.01 to 0.35 part by weight of (C) per part by weight of (A).
- 2. An additive composition of claim 1 wherein said proportions are 0.01 to 0.05 part by weight of (B) per part by weight of (A), and 0.01 to 0.2 part by weight of (C) per part by weight of (A).
- 3. An additive composition of claim 1 wherein (A) is a flame retardant compound having a plurality of bromine atoms directly bonded to a cycloaliphatic ring.
- 4. An additive composition of claim 3 wherein said flame retardant compound is hexabromocyclododecane.
- 5. An additive composition of claim 1 wherein (A) is the bis(2,3-dibromopropyl ether) of tetrabromobisphenol-A.
- 6. An additive composition of claim 1 wherein (A) is the bis(2,3-dibromopropyl ether) of tetrabromobisphenol-S.
- 7. An additive composition of claim 1 wherein the composition does not contain antimony oxide or silica.
- 8. An additive composition of claim 1 wherein (B) is an alkyltin mercaptoalkanoate that is a solid at room temperature.
- 9. An additive composition of claim 8 wherein said alkyltin mercaptoalkanoate is a butyltin mercaptopropionate.
- 10. An additive composition of claim 8 wherein said alkyltin mercaptoalkanoate is an octyltin mercaptopropionate.
- 11. An additive composition of claim 1 wherein (iii) is zeolite-A.
- 12. An additive composition of claim 11 wherein the zeolite-A has been calcined to reduce its water content.
- 13. An additive composition of claim 1 wherein (iii) is zeolite ZSM-5.
- 14. An additive composition of claim 1 comprising a blend of (A) hexabromocyclododecane, (B) an alkyltin mercaptopropionate that is a solid at room temperature, and (C) a finely-divided zeolite in proportions of 0.01 to 0.05 part by weight of (B), and 0.01 to 0.20 part by weight of (C), per part by weight of (A).
- 15. An additive composition of claim 1 wherein (B) is a finely-divided solid butyltin mercaptopropionate and wherein the proportions of (A):(B): (C) are essentially 93:2:5.
- 16. An additive composition of claim 15 wherein (C) is finely-divided zeolite-A.
- 17. A composition comprising a vinylaromatic polymer or a polyolefin polymer with which has been blended a flame retardant quantity of (A) at least one organic bromine flame retardant selected from (i) a flame retardant compound having a plurality of bromine atoms directly bonded to a cycloaliphatic ring, (ii) the bis(2,3-dibromopropyl ether) of tetrabromobisphenol-A, and (iii) the bis(2,3-dibromopropyl ether) of tetrabromobisphenol-S, (B) an alkyltin mercaptoalkanoate, and (C) a zeolite adjuvant, in proportions of 0.01 to 0.08 part by weight of (B) per part by weight of (A), and 0.01 to 0.35 part by weight of (C) per part by weight of (A), components (A), (B), and (C) having been blended with the polymer as a preformed blend thereof and/or individually and/or in any sub-combination(s) or blend(s) of any two or more of said components.
- 18. A composition of claim 17 wherein the polymer is a high-impact polystyrene polymer or a crystal polystyrene polymer, or a blend thereof, wherein (A) is a compound having a plurality of bromine atoms directly bonded to a cycloaliphatic ring, and wherein the composition is characterized by the capability of forming molded specimens of 1.6 and 3.2 millimeter thickness that pass the IEC 695-2-1/2 Glow Wire test at least at one temperature in the range of 750° C. to 960° C.
- 19. A composition of claim 18 wherein (A) is hexabromocyclododecane.
- 20. A composition of claim 17 characterized by the capability of forming molded specimens of 1.6 and 3.2 millimeter thickness that pass the UL94 V2 test.
- 21. A composition of claim 17 wherein said proportions are 0.01 to 0.05 part by weight of (B) per part by weight of (A), and 0.01 to 0.2 part by weight of (C) per part by weight of (A).
- 22. A composition of claim 21 wherein the polymer is a high-impact polystyrene polymer or a crystal polystyrene polymer, or a blend thereof, wherein (A) is a compound having a plurality of bromine atoms directly bonded to a cycloaliphatic ring, and wherein the composition is characterized by the capability of forming molded specimens of 1.6 and 3.2 millimeter thickness that pass the IEC 695-2-1/2 Glow Wire test at least at one temperature in the range of 750° C. to 960° C.
- 23. A composition of claim 22 wherein (A) is hexabromocyclododecane.
- 24. A composition of claim 21 characterized by the capability of forming molded specimens of 1.6 and 3.2 millimeter thickness that pass the UL94 V2 test.
- 25. A molded or extruded article formed from a composition of claim 19.
- 26. A method of producing a flame-retarded article which comprises molding or extruding at a temperature of up to 250° C. a melt blend of a composition of claim 17.
- 27. A composition of claim 17 wherein the polymer is a polyolefin polymer, and wherein (A) is the bis(2,3-dibromopropyl ether) of tetrabromobisphenol-A or the bis(2,3dibromopropyl ether) of tetrabromobisphenol-S.
- 28. A composition of claim 27 wherein the polymer is a polypropylene polymer.
- 29. A molded or extruded article formed from a composition of claim 27.
- 30. A composition of claim 17 wherein the polymer is a polyolefin polymer, wherein (A) is hexabromocyclododecane, and wherein said composition additionally comprises at least one flame retardant synergist.
- 31. A composition of claim 30 wherein the polymer is a polypropylene polymer, and wherein said synergist is antimony trioxide.
- 32. A molded or extruded article formed from a composition of claim 30.
REFERENCE TO RELATED APPLICATIONS
[0001] This application is based on and claims priority of International Application No. PCT/US00/28445 filed Oct. 12, 2000, published in English on Apr. 26, 2001 as WO 01/29124 A1, which in turn is based on and claims priority of European Patent Application 99250363.1, filed Oct. 15, 1999.