Plastic-metal composite material and manufacturing method thereof
09987780 ยท 2018-06-05
Assignee
Inventors
Cpc classification
B22F2003/241
PERFORMING OPERATIONS; TRANSPORTING
B29C45/14778
PERFORMING OPERATIONS; TRANSPORTING
B29K2705/00
PERFORMING OPERATIONS; TRANSPORTING
B29C45/14
PERFORMING OPERATIONS; TRANSPORTING
B29C2045/14868
PERFORMING OPERATIONS; TRANSPORTING
B29C2045/14327
PERFORMING OPERATIONS; TRANSPORTING
Y10T428/24347
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B29C45/00
PERFORMING OPERATIONS; TRANSPORTING
B29C45/00
PERFORMING OPERATIONS; TRANSPORTING
B22F2998/10
PERFORMING OPERATIONS; TRANSPORTING
B29C59/002
PERFORMING OPERATIONS; TRANSPORTING
B22F2998/10
PERFORMING OPERATIONS; TRANSPORTING
International classification
B22F3/22
PERFORMING OPERATIONS; TRANSPORTING
B29C45/14
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Disclosed are a plastic-metal composite material and a manufacturing method thereof. The method including: S1. injection molding: subjecting a mixture of a metal powder and a binder to injection molding to form a metal structural member of a preset shape; S2. degreasing and sintering: subjecting the metal structural member to degreasing and sintering to remove the binder, to form 0.5-2 m micron-sized micropores on a surface of the metal structural member; S3. nanocrystallization: on the basis of the micron-sized micropores, forming 20-40 nm nano-sized micropores by etching with a chemical etching reagent; and S4. injection molding: placing the metal structural member filled with a chemical reagent in an injection mold for injection molding to be integrated with a plastic. The composite material is a product manufactured according to the method. The application solves the problem that the metal structural member is difficult to be molded.
Claims
1. A manufacturing method of a plastic-metal composite material, wherein the composite material comprises a plastic and a metal, the method comprising: S1. metal powder injection molding: subjecting a mixture of a metal powder and a binder to injection molding on an injection molding machine to form a metal structural member of a preset shape; S2. metal structural member degreasing and sintering: subjecting the metal structural member to degreasing and sintering to remove the binder, so as to form 0.5-2 m micron-sized micropores on a surface of the metal structural member; S3. nanocrystallization of the micron-sized micropores: on the basis of the micron-sized micropores, forming 20-40 nm nano-sized micropores by etching with a chemical etching reagent; and S4. injection molding with a mold: placing the metal structural member filled with a chemical reagent in an injection mold for injection molding and the plastic entering the nano-sized micropores.
2. The manufacturing method according to claim 1, between Step S3 and Step S4, further comprising: S300. reagent filling: filling the chemical reagent in the micropores on the surface of the metal structural member, to form a stable connection through a chemical reaction between the chemical reagent and the plastic.
3. The manufacturing method according to claim 1, between Step S2 and Step S3, further comprising: S200. cleaning: cleaning the metal structural member after degreasing and sintering to remove dirt and grease on the surface of the metal structural member.
4. The manufacturing method according to claim 1, wherein the chemical reagent in Step S4 is one of an aqueous solution an organic solution, whose solute contains a functional group capable of forming a chemical bond through one of an esterification reaction, condensation polymerization, a substitution reaction and an addition reaction with the plastic.
5. The manufacturing method according to claim 4, wherein components of the plastic comprise at least one of polyphenylene sulfide (PPS), polybutylene terapthaltate (PBT), and polyamide (PA), the solute is at least one of a small-molecule compound containing an amino functional group and an ester small-molecule compound, and the molecular weight of the small-molecule compound is less than 1,000, the molecular weight of the ester small-molecule compound is less than 1,000.
6. The manufacturing method according to claim 1, wherein the metal is one of an aluminum alloy, a magnesium alloy, stainless steel, a zinc alloy and a titanium alloy.
7. The manufacturing method according to claim 2, between Step S2 and Step S3, further comprising: S200. cleaning: cleaning the metal structural member after degreasing and sintering to remove dirt and grease on the surface of the metal structural member.
8. The manufacturing method according to claim 4, wherein components of the plastic comprise polycarbonate (PC), and the solute is a chemical crosslinking agent.
9. The manufacturing method according to claim 4, wherein the plastic is a plastic containing an amide structure, the solute is an alkene monomer compound, and the molecular weight of the alkene monomer compound is less than 1,000.
Description
DETAILED DESCRIPTION OF EMBODIMENTS
(1) In the following, the present application is further described with reference to preferred implementation manners.
(2) A manufacturing method of a plastic-metal composite material includes the following steps:
(3) 1) Product structure design: product size and structure are designed according to requirements, in which a metal structure and a plastic structure are included.
(4) 2) Metal powder injection molding: A mixture of a metal powder and a binder is subjected to injection molding on an injection molding machine to form a metal structural member of a preset shape. As for this step, reference can be made to an existing metal powder injection molding technology.
(5) 3) Metal structural member degreasing and sintering: Degreasing and sintering is performed on the metal structural member to remove the binder, so as to form 0.5-2 m micron-sized micropores on a surface of the metal structural member. During degreasing and sintering, after the binder is removed, larger micron-sized micropores are formed at the original positions of the binder. The micron-sized micropores can provide an etching contact channel for the etching solution to contact the metal for chemical etching to form nano-sized micropores, thereby significantly improving formation efficiency of the nano-sized micropores.
(6) 4) Cleaning: The metal structural member after degreasing and sintering is cleaned to remove dirt and grease on the surface of the metal structural member.
(7) 5) Nanocrystallization of the micron-sized micropores: On the basis of the micron-sized micropores, 20-40 nm nano-sized micropores are formed by etching with a chemical etching reagent. As for the chemical etching reagent in this step, reference can be made to the etching solution in the existing NMT technology, a weak acid of pH>4 or a weak alkali of pH<10 is preferably adopted, so as to accurately obtain a nano-sized micropore structure.
(8) 6) Reagent filling: A chemical reagent is filled in the micropores on the surface of the metal structural member, to form a stable connection through a chemical reaction between the chemical reagent and the plastic. The chemical reagent is preferably one of an aqueous solution and an organic solution, whose solute preferably contains a functional group capable of forming a chemical bond through one of an esterification reaction, condensation polymerization, a substitution reaction and an addition reaction with the plastic, so that in the subsequent injection molding process, the plastic enters the nano-sized micropores, and the chemical reagent filled in the nano-sized micropores reacts with the plastic to form a stable chemical bond, thereby forming a stable connection with the plastic. Alternative examples of the chemical reagent for several common plastics are as follows: if components of the plastic includes at least one of PPS, PBT, and PA, the solute is at least one of a small-molecule compound containing an amino functional group and an ester small-molecule compound, and the molecular weight of the small-molecule compound is less than 1,000, the molecular weight of the ester small-molecule compound is less than 1,000, for example, aminoacetamide methyl ester and glyoxal formamide methyl ester; or if components of the plastic include PC, the solute is a chemical crosslinking agent, for example, diisocyanate, ethylene glycol, 1,4-butanediol, 2-propylene oxide, dimethylol butanoic acid, triethylamine, triethylene diamine, and dimethyl ethanolamine; or if the plastic is a plastic containing an amide structure, the solute is an alkene monomer compound, and the molecular weight of the alkene monomer compound is less than 1,000.
(9) 7) Injection molding with a mold: The metal structural member filled with the chemical reagent is placed in an injection mold for injection molding to be integrated with the plastic.
(10) 8) Metal surface treatment: Subsequent treatment such as surface gloss treatment and color treatment is performed on the composite material surface.
(11) Through the above manufacturing method, a novel plastic-metal composite material is obtained in this embodiment, which includes a metal and a plastic, and further includes a connection medium; the nano-sized micropores are distributed on a surface where the metal and the plastic are connected; the connection medium is distributed in the nano-sized micropores, and at least a part of the connection medium forms a stable connection structure with the plastic through a chemical reaction with the plastic. The connection medium described above is a substance formed through a chemical reaction between the filled chemical reagent and the plastic.
(12) In the above, the present application is further described in detail with reference to the specific preferred implementation manners, and it should not be construed that the specific implementation of the present application is limited to these descriptions. Several equivalent replacements and obvious variations with the same performance or use may be made by persons skilled in the art without departing from the spirit of the present application, and should all be considered as falling within the protection scope of the present application.