Claims
- 1. A process for producing a nylon block copolymer, comprising the steps of;
- anionically polymerizing monomers to form a polymer, said polymer being a homopolymer or a copolymer, said homopolymer made from monomers selected from the class consisting of conjugated diene, vinyl substituted aromatic, vinyl substituted pyridine, vinyl substituted quinoline, and compounds selected from the class consisting of
- 1. CH.sub.2 .dbd.CACN wherein A is CN, CF.sub.3, CH.sub.3 or H;
- 2. ch.sub.2 .dbd.caco.sub.2 r wherein A is CO.sub.2 R, SO.sub.2 R, CH.sub.3 or H;
- 3. ch.sub.2 .dbd.cano.sub.2 wherein A is Cl, CH.sub.3 or H;
- 4. ch.sub.2 .dbd.cacon(r).sub.2 wherein A is CH.sub.3 or H;
- wherein
- R is a hydrogen, an alkyl containing from 1 to 15 carbon atoms, a cycloalkyl containing from 4 to 15 carbon atoms, an aromatic compound containing from 6 to 15 carbon atoms, or a substituted aromatic compound wherein said substituted group is an alkyl containing from 1 to 15 carbon atoms or a cycloalkyl containing from 4 to 15 carbon atoms,
- said copolymer made from monomers of conjugated dienes and vinyl substituted aromatics,
- the molecular weight of said amine terminated polymer ranging from about 3,000 to about 100,000 and the molecular weight of said nylon block copolymer ranging from about 5,000 to about 50,000,
- reacting said anionically prepared polymer with a compound selected from the class consisting of polyisocyanates or polyisothiocyanates to form an end capped polymer, said polyisocyanates or said polyisothiocyanates having the formula
- R--N.dbd.C.dbd.X).sub.n
- wherein
- R is an aliphatic containing from 2 to about 20 carbon atoms, a cycloaliphatic containing from 4 to 20 carbon atoms, an aromatic containing from 6 to 20 carbon atoms, and combinations thereof, n is an integer of 2 or 3 and X is selected from the class consisting of oxygen and sulfur,
- reacting an amide compound with said end capped polymer to form an amide type terminated polymer,
- hydrolyzing said imide terminated polymer to produce an amine terminated polymer,
- reacting said amine terminated polymer with a compound selected from the class consisting of a (a) nylon polymer made from nylon forming monomers so that a nylon block copolymer is formed wherein said nylon polymer is connected to said amine terminated polymer, (b) a nylon prepolymer made from nylon forming monomers, and (c) nylon forming monomers, and
- polymerizing in the presence of said amine terminated polymer said compound selected from the class consisting of said (b) nylon prepolymer made from nylon forming monomers, and (c) said nylon forming monomers to form a nylon polymer so that a nylon block copolymer is formed wherein said nylon polymer is connected to said amine terminated polymer,
- said nylon forming monomers selected from the class consisting of (a) anionically polymerizable lactams having from 3 to 15 carbon atoms, (b) diacid chlorides reacted with diamines, and (c) diacids reacted with diamines so that salts thereof are formed,
- said nylon polymer constituent of said block copolymer ranging from about 5 percent to about 90 percent by weight, and
- the molecular weight of said nylon polymer ranging from about 5,000 to about 50,000.
- 2. A process according to claim 1, wherein said amide compound is selected from the class consisting of amides of ammonia, amides of primary amines, lactams, sulfonic acid amides, sultams, and a compound having the formula ##STR14## wherein R.sub.1 and R.sub.2 is hydrogen, an aliphatic, a cycloaliphatic, an aromatic, and combinations thereof having from 1 to 20 carbon atoms, X is oxygen or sulfur,
- utilizing an equivalent amount of said amide compound to said end capped polyisocyanate polymers ranging from about 1 to about 20,
- utilizing an equivalent amount of said water to said amide compounds ranging from about 1.0 to about 10,
- said diacid chloride is an aromatic dicarbonyl chloride containing from 8 to 16 carbon atoms and wherein said diamine is an aromatic diamine having from 6 to 15 carbon atoms.
- 3. A process according to claim 2, wherein said amide compound is a compound selected from the class consisting of an amide represented by said formula and said lactams having from 3 to 16 carbon atoms,
- and
- wherein in said polyisocyanate formula, said integer is 2 and X is oxygen.
- 4. A process according to claim 3, wherein said conjugated dienes have from 4 to 12 carbon atoms and said vinyl substituted aromatic compounds have from 7 to 12 carbon atoms,
- wherein said copolymer is made from monomers of conjugated dienes having from 4 to 12 carbon atoms and vinyl substituted aromatics having from 7 to 12 carbon atoms,
- wherein said lactams forming said nylon polymer constituent have from 5 to 12 carbon atoms, and
- polymerizing said lactam monomers at a temperature ranging from about 0.degree. C. to about 260.degree. C.
- 5. A process according to claim 3, wherein said anionically prepared homopolymer is made from monomers selected from the class consisting of conjugated dienes having from 4 to 12 carbon atoms, vinyl substituted aromatics having from 7 to 12 carbon atoms, vinyl substituted pyridine, and vinyl substituted quinoline.
- said vinyl substituted pyridine monomers are selected from the class consisting of 2-vinylpyridine, 3-vinylpyridine, 4-vinylpyridine, 3-ethyl-5-vinylpyridine, 3-methyl-5-vinyl-pyridine, 3,5-diethyl-4-vinylpyridine, and said quinoline monomers are selected from the class consisting of 2-vinylquinoline, 3-vinylquinoline, and 4-vinylquinoline,
- wherein said anionically prepared copolymer is made from monomers of conjugated dienes having from 4 to 12 carbon atoms and vinyl substituted aromatics having from 7 to 12 carbon atoms,
- wherein said nylon polymer constituent is made from monomers selected from the class consisting of (a) lactams having from 3 to 15 carbon atoms and (b) aromatic dicarbonyl chlorides containing from 8 to 16 carbon atoms reacted with aromatic diamines having from 6 to 15 carbon atoms, and
- polymerizing said nylon forming monomers at a temperature of from about 0.degree. C. to about 260.degree. C.
- 6. A process according to claim 5, wherein said lactam monomer forming said nylon polymer constituent is selected from the class consisting of caprolactam and capryllactam,
- wherein said aromatic dicarbonyl chloride is terephthaloyl chloride and wherein said aromatic diamine is selected from the class consisting of phenylene diamines, 2,4-toluene diamine and methylene dianiline,
- wherein said R.sub.2 of said amide formula is hydrogen or an aromatic and said amide formula compound wherein X is oxygen or sulfur is selected from the class consisting of formamide, acetamide, stearamide, oleamide, acetanilide, benzamide, and benzanilide, thioformamide, thioacetamide, thiostearamide, thiooleamide, thioacetanilide, thiobenzamide, and thiobenzanilide, and wherein said lactam amide is selected from the class consisting of caprolactam and capryllactam, and
- wherein said anionically prepared homopolymer is made from monomers selected from the class consisting of 1,3-butadiene, isoprene, styrene, vinyltoluene, and 4-t-butylstyrene, and wherein said copolymer is a copolymer of styrene and butadiene.
- 7. A process according to claim 6, wherein the amount of said nylon polymer constituent ranges from 25 percent to about 80 percent based upon the total weight of said block copolymer, the molecular weight of said nylon constituent ranges from about 10,000 to about 30,000 and wherein the polymerization temperature of said lactams ranges from about 120.degree. C. to about 180.degree. C.
- 8. A process according to claim 7, wherein said diisocyanate is selected from the class consisting of paraphenylene diisocyanate, meta-phenylene diisocyanate, diphenyl methane diisocyanates, dianinsidine diisocyanates, isophorone diisocyanates, toluene diisocyanates, bitolylene diisocyanates, hexamethylene diisocyanate and penta-methylene diisocyanate.
- 9. A process according to claim 7, wherein said homopolymer is made from dienes having from 4 to 12 carbon atoms, and including the step of making a foam by adding for every 100 parts of said polymer (a) from 0 to 150 parts by weight of a coreactive monomer, (b) from 1 to 40 parts by weight of a peroxide curing agent, and (c) from 0.5 to 50 parts of a blowing agent.
- 10. A process according to claim 9, wherein the amount of said coreactive compound ranges from 1 to 20 parts and is selected from the class consisting of styrene, vinyltoluene, and diallylphthalate, wherein the amount of said peroxide curing agent ranges from about 2 to about 6 parts by weight and wherein said blowing agent is selected from the class consisting of a physical and a chemical blowing agent, the amount of said physical blowing agent ranges from about 5.0 to about 20.0 parts, the amount of said chemical blowing agent ranges from about 1.0 to about 7.5 parts and has a decomposition temperature of 150.degree. C. or less, said chemical blowing agent is selected from the class consisting of N,N'-dimethyl-N,N'-dinitrosoterephthalamide, azobisiobutyronitrile, p,p'-oxybis(benzene sulfonyl hydrazine), azodicarbonamide in conjunction with a decomposition activator, and dinitrosopentamethylenetetramide in conjunction with a decomposition activator.
- 11. A process according to claim 10, wherein said amine terminated polymer is poly-1,2-butadiene, said nylon polymer constituent is made from monomers selected from the class consisting of caprolactam and capryllactam, and
- said physical blowing agent is selected from the class consisting of inert gases, hexane, heptane, and water.
CROSS-REFERENCE
This is a division of U.S. patent application Ser. No. 574,676, filed May 5, 1975, now U.S. Pat. No. 4,070,344.
US Referenced Citations (10)
Foreign Referenced Citations (3)
Number |
Date |
Country |
6612301 |
Mar 1967 |
NLX |
1131549 |
Oct 1968 |
GBX |
1137046 |
Dec 1968 |
GBX |
Non-Patent Literature Citations (1)
Entry |
Mottus et al., Polymer Preprints, vol. 9 (1), 390 (1968). |
Divisions (1)
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Number |
Date |
Country |
Parent |
574676 |
May 1975 |
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