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Title:
ALUMINUM ALLOY RESIN COMPOSITE AND METHOD OF PREPARING THE SAME
Document Type and Number:
WIPO Patent Application WO/2013/123898
Kind Code:
A1
Abstract:
A method of preparing an aluminum alloy resin composite comprises: providing an aluminum alloy substrate having an oxide layer on a surface thereof, and the oxide layer has a nanopore; forming a corrosion pore on an outer surface of the oxide layer by using a corrosion agent, and the corrosion agent is at least one selected from a group consisting of ammonia, ammonium salt, hydrazine, hydrazine derivative, and water-soluble amine compound; and injection molding a resin composition to the surface of the aluminum alloy substrate. An aluminum alloy resin composite is also provided.

Inventors:
SUN JIAN (CN)
WU YANQIN (CN)
GUO QIANG (CN)
CHEN LIANG (CN)
Application Number:
PCT/CN2013/071797
Publication Date:
August 29, 2013
Filing Date:
February 22, 2013
Export Citation:
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Assignee:
SHENZHEN BYD AUTO R & D CO LTD (CN)
BYD CO LTD (CN)
International Classes:
B32B15/08; B29C45/00; C23F1/00
Domestic Patent References:
WO2011071102A12011-06-16
Foreign References:
US20060127684A12006-06-15
CN101607446A2009-12-23
CN101937935A2011-01-05
US20090280296A12009-11-12
JP2005342895A2005-12-15
Other References:
See also references of EP 2817147A4
Attorney, Agent or Firm:
TSINGYIHUA INTELLECTUAL PROPERTY LLC (Trade Building Zhaolanyuan,Tsinghua University, Qinghuayuan, Haidian District, Beijing 4, CN)
Download PDF:
Claims:
WHAT IS CLAIMED IS:

1. A method of preparing an aluminum alloy resin composite, comprising:

providing an aluminum alloy substrate having an oxide layer on a surface thereof, wherein the oxide layer has a nanopore;

forming a corrosion pore on an outer surface of the oxide layer by using a corrosion agent, wherein the corrosion agent is at least one selected from a group consisting of ammonia, ammonium salt, hydrazine, hydrazine derivative, and water-soluble amine compound; and

injection molding a resin composition to the surface of the aluminum alloy substrate formed with the nanopore and the corrosion pore.

2. The method according to claim 1, wherein the corrosion pore is formed by immersing the aluminum alloy substrate formed with the nanopore into a corrosion solution comprising the corrosion agent, and the corrosion solution has a pH of about 10 to about 13.

3. The method according to claim 2, wherein the corrosion solution is an aqueous solution comprising at least one selected from a group consisting of ammonia, ammonium salt, ethylene diamine, diethyl amine, ethanolamine, trimethyl amine, methyl amine, and dimethyl amine.

4. The method according to claim 3, wherein the corrosion solution is an aqueous solution comprising ammonia and ammonia salt.

5. The method according to claim 4, wherein the corrosion solution is an aqueous solution comprising NH3-NH4C1, NH3-(NH4)2S04, NH3-NH4HC03, and NH3-NH4N03.

6. The method according to claim 4, wherein based on the total weight of the corrosion solution, the concentration of the ammonia and ammonia salt is about 0.1% to about 30% by weight percent.

7. The method according to claim 6, wherein the corrosion solution comprises about 50 weight parts to about 99 weight parts of the ammonia, and about 1 weight part to about 50 weight parts of the ammonia salt.

8. The method according to claim 7, wherein the corrosion solution comprises about 50 weight parts to about 90 weight parts of the ammonia, and about 10 weight parts to about 50 weight parts of the ammonia salt.

9. The method according to claim 7, wherein the corrosion solution comprises about 50 weight parts to about 80 weight parts of the ammonia, and about 20 weight parts to about 50 weight parts of the ammonia salt.

10. The method according to claim 2, wherein the corrosion pore is formed by immersing the aluminum alloy substrate formed with the nanopore in the corrosion solution for at least one time, and the immersing time for each time is about 1 min to about 60 min.

11. The method according to claim 10, wherein the corrosion pore is formed by immersing the aluminum alloy formed with the nanopore in the corrosion solution for 2 times to 10 times.

12. The method according to claim 1, wherein the nanopore has an average diameter of about 10 nm to about 100 nm, the corrosion pore has an average diameter of about 200 nm to about 2000 nm, and the oxide layer has a thickness of about 1 micron to about 5 microns.

13. The method according to claim 1, wherein the oxide layer is formed by means of an anodic oxidation.

14. The method according to claim 13, wherein the anodic oxidation is carried out under the condition of: the aluminum alloy substrate is electrolyzed in a sulphuric acid having a concentration of about 10 wt to about 30 wt at a temperature of about 10 degrees Celsius to about 30 degrees Celsius under a voltage of about 10 V to about 100 V for about 1 min to about 40 min to form the oxide layer having a thickness of about 1 micron to about 10 microns on a surface of the aluminum alloy.

15. The method according to claim 13, further comprising a pretreatment step prior to the step of anodic oxidation.

16. The method according to claim 15, wherein the pretreatment comprises at least one step selected from a group consisting of burnishing, removing oil, first water- washing , alkali etching, second water-washing, neutralizing, and third water- washing.

17. The method according to claim 1, wherein the resin composition comprises a thermoplastic resin.

18. The method according to claim 17, wherein the thermoplastic resin comprises a main resin and a polyolefin resin.

19. The method according to claim 18, wherein the main resin comprises a polyphenylene oxide and a polyphenylene sulfide, and the polyolefin resin has a melting point of about 65 degrees Celsius to about 105 degrees Celsius.

20. The method according to claim 19, wherein the weight ratio of the polyphenylene oxide to the polypheny lene sulfide is about 3:1 to about 1:3.

21. The method according to claim 18, wherein the main resin comprises a polyphenylene oxide and a polyamide, and the polyolefin resin has a melting point of about 65 degrees Celsius to about 105 degrees Celsius.

22. The method according to claim 21, wherein the weight ratio of the polyphenylene oxide to the polyamide in the main resin is about 3:1 to about 1:3.

23. The method according to claim 18, wherein the main resin comprises polycarbonate, and the polyolefin has a melting point of about 65 degrees Celsius to about 105 degrees Celsius.

24. The method according to claim 18, wherein based on 100 weight parts of the thermoplastic resin, the thermoplastic resin comprises about 70 weight parts to about 95 weight parts of the main resin, and about 5 weight parts to about 30 weight parts of the polyolefin resin.

25. The method according claim 18, wherein the polyolefin resin is a grafted polyethylene.

26. The method according to claim 17 or 24, wherein based on 100 weight parts of the thermoplastic resin, the thermoplastic resin comprises about 1 weight part to 5 weight parts of a flow modifier, and the flow modifier is a cyclic polyester.

27. The method according to claim 17, wherein the resin composition further comprises a filler comprising a fiber filler and a powder filler, wherein the fiber filler is at least one selected from a group consisting of fiberglass, carbon fiber and polyamide fiber, and the powder filler is at least one selected from a group consisting of silica, talc, aluminum hydroxide, magnesium hydroxide, calcium carbonate, magnesium carbonate, glass, kaolin, heavy barium sulfate, and clay.

28. An aluminum alloy resin composite obtainable by a method according to any of the preceding claims.

Description:
ALUMINUM ALLOY RESIN COMPOSITE AND METHOD OF PREPARING THE

SAME

CROSS-REFERENCE TO RELATED APPLICATION

This application claims priority to and benefits of Chinese Patent Application Serial No. 201210043636.5, filed with the State Intellectual Property Office of P. R. China on February 24, 2012, the entire content of which is hereby incorporated by reference.

FIELD

The present invention relates to metal plastic composites and method of preparing the same, and more particularly, to an aluminum alloy resin composite, and a method of preparing the same.

BACKGROUND

In the fields of manufacturing articles such as automobiles, household appliances and industrial machines, a metal and a resin need to be firmly bonded together. Currently, in a conventional method, an adhesive is used at normal temperature or under heating to integrally bond a metal and a synthetic resin. One research direction is to integrally bond an engineering resin with high strength to a magnesium alloy, an aluminum alloy, or ferroalloys such as stainless steel directly without an adhesive.

Nano molding technology (NMT) is a technique of integrally bonding a metal and a resin, which allows the resin to be directly injection molded on a surface of a metal sheet by nano molding the surface of the metal sheet so as to obtain a metal-resin integrally molded product. For effective bonding of a metal and a resin, NMT may replace commonly used insert molding or zinc-aluminum or magnesium-aluminum die casting so as to provide a metal-resin integrally molded product with low cost and high performance. Compared with the bonding technology, NMT may reduce the whole weight of the product, and may ensure excellent strength of the mechanical structure, high processing rate, high output, and many appearance decoration methods, and consequently may apply to vehicles, IT apparatuses and 3C products.

However, the method for integrally molding a metal and a resin should be further improved. SUMMARY

Embodiments of the present disclosure seek to solve at least one of the problems existing in the prior art to at least some extent, particularly technical problems of weak combination force between the aluminum alloy and resin in an aluminum alloy-resin composite. And the present disclosure aims to provide a method of preparing an aluminum alloy resin composite with strong combination force between the aluminum alloy and resin, which is easy and simple for massive production.

According to a first aspect of the present disclosure, there is provided a method of preparing an aluminum alloy resin composite. In some embodiments of present disclosure, the method comprises: providing an aluminum alloy substrate having an oxide layer on a surface thereof, and the oxide layer has a nanopore; forming a corrosion pore on an outer surface of the oxide layer by using a corrosion agent, and the corrosion agent is at least one selected from a group consisting of ammonia (NH 3 ), ammonium salt, hydrazine (N 2 H 4 ), hydrazine derivative, and water-soluble amine compound; and injection molding a resin composition to the surface of the aluminum alloy substrate formed with the nanopore and the corrosion pore.

According to another aspect of the present disclosure, there is provided an aluminum alloy resin composite obtainable by any of the method described above.

It was found by the inventors surprisingly that a unique two-layer spatial pore structure may be formed on the surface of aluminum alloy, by means of the method according to embodiments of the present disclosure, an aluminum oxide layer may be formed on the surface of the aluminum alloy, and the aluminum oxide layer has nanopore(s). By means of the technical solutions according to embodiments of present disclosure, a nanopore having an average diameter of about 10 nm to about 100 nm may be formed, which is a unique structure, and has well combination with the resin. Meanwhile, by means of further corrosion, corrosion pore(s) may be formed on the outer surface, to be contacted with the resin, of the aluminum oxide layer. The corrosion pore may have a larger average diameter than nanopores. By means of the technical solutions according to embodiments of present disclosure, a corrosion pore having an average diameter of about 200 nm to about 2000 nm may be formed on the outer surface of the aluminum oxide layer, which is a unique structure and contributes to enhance the combination between the resin and the aluminum alloy. In the following molding step, the resin may penetrate into the pores (for example, the nanopores) in the inner layer through the relative larger pores (for example, the corrosion pores) on the outer surface of aluminum alloy, which will make molding easier. Meanwhile, the resin may be bonded with the aluminum alloy by a chemical reaction between the corrosion agent and effective compositions in the resin, in order to form a better and stronger combination between the resin and the aluminum alloy. In some embodiments of present disclosure, there is little influence on the size of the metal substrate (for example, the aluminum alloy) and the appearance of aluminum alloy, and relatively less heat is produced during the processing steps. Meanwhile, the resin may be easily injection molded into the corrosion pores having larger average diameter on the surface, and there is no particular requirement on the resin. Then the present technical solution may be used widely, is environment-friendly, and may be adopted for massive production.

Additional aspects and advantages of embodiments of present disclosure will be given in part in the following descriptions, become apparent in part from the following descriptions, or be learned from the practice of the embodiments of the present disclosure.

BRIEF DESCRIPTION OF THE DRAWINGS

These and other aspects and advantages of the disclosure will become apparent and more readily appreciated from the following descriptions made with reference the accompanying drawings, in which:

Fig. 1 is a two-layer spatial pore structure in the oxide layer according to an embodiment of present disclosure;

Fig. 2 is a scanning electron microscopy diagram of the surface of the aluminum alloy sheet subjected to a surface treatment 1 according to Example 1 of the present disclosure; and

Figs. 3a and 3b are scanning electron microscopy diagrams of the surface of the aluminum alloy sheet subjected to a surface treatment 2 according to Example 1 of the present disclosure.

DETAILED DESCRIPTION

Reference will be made in detail to embodiments of the present disclosure. The embodiments described herein are explanatory, illustrative, and used to generally understand the present disclosure. The embodiments shall not be construed to limit the present disclosure.

According to a first aspect of the present disclosure, there is provided a method of preparing an aluminum alloy resin composite. In some embodiments of present disclosure, the method may comprise: providing an aluminum alloy substrate having an oxide layer on a surface thereof, and the oxide layer has a nanopore; forming a corrosion pore on an outer surface of the oxide layer by using a corrosion agent, and the corrosion agent is at least one selected from a group consisting of ammonia (NH 3 ), ammonium salt, hydrazine (N 2 H 4 ), hydrazine derivative, and water-soluble amine compound; and injection molding a resin composition to the surface of the aluminum alloy substrate formed with the nanopore and the corrosion pore. It was found by the inventors surprisingly that a unique two-layer spatial pore structure may be formed on the surface of aluminum alloy, by means of the method according to embodiments of the present disclosure, an aluminum oxide layer may be formed on the surface of the aluminum alloy, and the aluminum oxide layer has nanopore(s), and meanwhile, by means of further corrosion, corrosion pore(s) may be formed on the outer surface, to be contacted with the resin, of the aluminum oxide layer. The corrosion pore may have a larger average diameter than nanopores, which is a unique structure contributing to enhance the combination between the resin and the aluminum alloy. In the following molding step, the resin may penetrate into the pores (for example, the nanopores) in the inner layer through the relative larger pores (for example, the corrosion pores) on the outer surface of aluminum alloy, which will make molding easier. Meanwhile, the resin may be bonded with the aluminum alloy by a chemical reaction between the corrosion agent and effective compositions in the resin, in order to form a better and stronger combination between the resin and the aluminum alloy. Then the present technical solution may be used widely and environment-friendly, and may be adopted for massive production.

In an embodiment of the present disclosure, the method of preparing the aluminum alloy resin composite may comprise the step of: SI) anodizing a surface of an aluminum alloy substrate to form an oxide layer having a nanopore on the surface. In some embodiments of present disclosure, the oxide layer may be formed by means of an anodic oxidation. The method of anodic oxidation is well known to those skilled in the art, according to an embodiment of present disclosure, the anodic oxidation may be carried out under the condition of: the aluminum alloy substrate is electro lyzed in a sulphuric acid having a concentration of about 10 wt to about 30 wt at a temperature of about 10 degrees Celsius to about 30 degrees Celsius under a voltage of about 10 V to about 100 V for about 1 min to about 40 min to form the oxide layer having a thickness of about 1 micron to about 10 microns on a surface of the aluminum alloy. In some embodiments of present disclosure, any apparatus well known for anodic oxidation may be applied in present disclosure, for example, an anodization tank. According to embodiments of the present disclosure, the oxide layer formed by means of anodic oxidation may have a thickness of about 1 micron to about 10 microns, alternatively about 1 micron to about 5 microns.

In some embodiments of present disclosure, the nanopore in the oxide layer may have an average diameter of about 10 nm to about 100 nm, alternatively about 20 nm to about 80 nm, and further alternatively about 20 nm to about 60 nm. In some embodiments of present disclosure, the nanopore may have a depth of about 0.5 microns to about 9.5 microns, alternatively about 0.5 microns to about 5 microns. With the nanopore(s) according to embodiments of the present disclosure, the combination force between the oxide layer and the resin is stronger.

In an embodiment of the present disclosure, the method of preparing the aluminum alloy resin composite may comprise the step of: S2) contacting the resulting aluminum alloy substrate obtained from step SI) with a corrosion agent, to form a corrosion pore in an outer surface of the oxide layer, in which the corrosion agent is at least one selected from a group consisting of ammonia, ammonium salt, hydrazine, hydrazine derivative, and water-soluble amine compound.

In some embodiments of present disclosure, there is no particular limit to the contacting between the resulting aluminum alloy substrate and the corrosion agent. In an embodiment, the aluminum alloy substrate may be contacted with a gaseous corrosion agent in order to be corroded. The corrosion agent may be gaseous at normal temperature. Alternatively, solid or liquid corrosion agent at normal temperature may be transformed to be the gaseous corrosion agent so as to perform the contacting in the present embodiment. In an alternative embodiment, the aluminum alloy substrate may be contacted with liquid corrosion agent. For example, in an embodiment, the corrosion pore is formed by immersing the aluminum alloy substrate formed with the nanopore in a corrosion solution comprising the corrosion agent, and the corrosion solution has a pH of about 10 to about 13. In some embodiments, the corrosion solution may be an aqueous solution comprising at least one selected from a group consisting of ammonia, ammonium salt, hydrazine, hydrazine derivative, and water-soluble amine compound, without special limit.

In some embodiments of present disclosure, the hydrazine may be at least one selected from a group consisting of: hydrazine hydrate, hydrazine acetate, and hydrazine carbonate. In some embodiments of present disclosure, the hydrazine derivative may be methyl- substituted derivatives, for example, the hydrazine derivative may be methyl hydrazine and/or 1,1-dimethyl hydrazine. In some embodiments of present disclosure, the water-soluble amine compound may be at least one selected from a group consisting of: ethylene diamine, methylamine, dimethylamine, ethylamine, diethylamine, and ethanolamine.

In some embodiments of present disclosure, the concentration of the corrosion solution is not specially limited, the corrosion solution can be a commercially available corrosion solution having required concentration, and alternatively, the corrosion solution can be prepared or diluted to obtain the required concentration.

In some embodiments of present disclosure, the corrosion pore formed by the corrosion solution may have a nanoscale average diameter. In some embodiments of present disclosure, the corrosion pore may have an average diameter of about 200 nm to about 2000 nm, alternatively about 200 nm to about 1000 nm, further alternatively about 400 nm to about 1000 nm. In some embodiments of present disclosure, the corrosion pore may have a depth of about 0.5 micron to about 9.5 microns, alternatively about 0.5 micron to about 5 microns. With the corrosion pore according to embodiments of the present disclosure, in the following injection molding steps the resin composition may be injected into the surface pore (for example, the nanopores) more easily, so that a stronger combination between the resin and the aluminum alloy substrate may be formed.

In some embodiments of present disclosure, the corrosion solution may be an aqueous solution comprising ammonia and ammonia salt. In an embodiment, the corrosion solution may be an aqueous solution of ammonia and ammonia salt. In a further preferred embodiment, the corrosion solution may be an aqueous solution comprising NH 3 -NH 4 CI, NH 3 -(NH 4 )2S04, NH 3 -NH 4 HCO 3 , and NH 3 -NH 4 NO 3 . With the aqueous solution comprising ammonia and ammonia salt according to embodiments of the present disclosure, the corrosion pore distributed in the outer surface of the oxide layer is even, and has even diameters and excellent pore structure which forms a better combination between the resin and the aluminum alloy substrate. Thus, the obtained aluminum alloy resin composite may possess better stretch resistances. In some embodiments of present disclosure, the corrosion solution is stable, and may help to maintain a stable alkaline environment in a long time period.

In some embodiments of present disclosure, based on the total weight of the corrosion solution, the total of the ammonia and ammonia salt has a weight concentration percent of about 0.1% to about 30%. In some embodiments of present disclosure, the corrosion solution comprises about 50 weight parts to about 99 weight parts of the ammonia, alternatively about 50 weight parts to about 90 weight parts of the ammonia, further alternatively about 50 weight parts to about 80 weight parts of the ammonia; and about 1 weight part to about 50 weight parts of the ammonia salt, alternatively about 10 weight parts to about 50 weight parts of the ammonia salt, further alternatively about 20 weight parts to about 50 weight parts of the ammonia salt. In an embodiment, the corrosion solution comprises about 50 weight parts to about 99 weight parts of the ammonia, and about 1 weight part to about 50 weight parts of the ammonia salt. In an embodiment, the corrosion solution comprises about 50 weight parts to about 90 weight parts of the ammonia, and about 10 weight parts to about 50 weight parts of the ammonia salt. In an embodiment, the corrosion solution comprises about 50 weight parts to about 80 weight parts of the ammonia, and about 20 weight parts to about 50 weight parts of the ammonia salt.

In some embodiments of present disclosure, the corrosion pore is formed by immersing the aluminum alloy substrate formed with the nanopore in the corrosion solution for at least one time, and the immersing time for each time is about 1 min to about 60 min. Optionally, the aluminum alloy substrate may be washed with deionized water after each immersing step. In an embodiment, the aluminum alloy substrate may be washed in a washing tank for about 1 min to about 5 min, alternatively be placed in a washing tank for about 1 min to about 5 min. In an embodiment, the corrosion pore may be formed by immersing the aluminum alloy formed with the nanopore in the corrosion solution for 2 times to 10 times.

In an embodiment of the present disclosure, the method of preparing the aluminum alloy resin composite may comprise the step of: S3) placing the aluminum alloy substrate obtained from step S2) in a mold, then injecting a resin composition into the mold to combine with the obtaining aluminum alloy substrate, and molding so as to form the aluminum alloy resin composite. In some embodiments of present disclosure, the method further comprises a pretreatment step prior to the step of anodic oxidation. In some embodiments, the pretreatment may comprise at least one step selected from a group consisting of burnishing, removing oil, first water-washing , alkali etching, second water-washing, neutralizing, and third water- washing.

The pretreament generally comprises mechanical burnishing or mechanical lapping to remove visible foreign matters from the surface, and degreasing and washing the aluminum alloy to remove processing oil adhered to the metal surface. Alternatively, the pretreatment may comprise burnishing the surface of an aluminum alloy subsytrate, for example, further comprise burnishing the surface of an aluminum alloy substrate using a sand paper of about 100 mesh to about 400 mesh or using a polishing machine, to create small pores of microns. In some embodiments of present disclosure, the burnished aluminum alloy substrate may be sequentially subjected to removing oil, first water-washing such as washing with water, alkali etching, second water-washing, neutralizing, and third water- washing.

In some embodiments of present disclosure, the aluminum alloy may be cleaned by means of ultrasonic wave using any well-known solvent for about 0.5 hour to about 2 hours to remove oily dirty from the surface of aluminum alloy, and then the aluminum alloy substrate may be placed in an acid/alkali aqueous solution, and the surface of the aluminum alloy substrate may be washed again under ultrasonic wave. The types of the solvents and acid/alkali aqueous solution are not limited, the solvent used may be ethanol or acetone, and the acid/alkali aqueous solution may be at least one selected from a group consisting of hydrochloric acid, sulphuric acid, sodium hydroxide, potassium hydroxide and the like.

In an embodiment, the aluminum alloy is subjected to oil removing treatment using water-free ethanol to remove oil from the surface, and then the aluminum alloy is washed using water and wiped. Then, the wiped aluminum alloy is immersed in a sodium hydroxide solution having a concentration of about 30 g/L to about 70g/L and at a temperature of about 40 degrees Celsius to about 80 degrees Celsius to alkali etch the aluminum alloy for about 1 min to about 5 min, and washed using deionized water. Then, the aluminum alloy is neutralized using a HNO 3 having a concentration of about 10 wt to about 30 wt to remove remaining alkali solution, and washed using deionized water. Thus, a pore having an average diameter of several microns may be formed in the surface of aluminum alloy. In some embodiments of present disclosure, the average diameter of the the pore may be about 1 micron to about 10 microns.

In some embodiments of present disclosure, there are no special limits to the aluminum alloy used in present disclosure, the examples may be Industry-Standard 1000-7000 series, or various aluminum alloys of molded-class. The aluminum alloy according to embodiments of the present disclosure may be commonly used aluminum alloy with various shapes and structures, which is not limited in present disclosure. The various shapes and structures of the aluminum alloy may be achieved by mechanical processing.

In some embodiments of present disclosure, there is no special limitation to the resin used in present invention, which may be any resin capable of combining with the aluminum alloy. In an embodiment, the resin composition comprises a thermoplastic resin. In an embodiment, the thermoplastic resin may comprise a main resin and a polyolefin resin. In an alternative embodiment, the thermoplastic resin may be a mixture of a main resin and a polyolefin resin.

In some embodiments of present disclosure, the main resin may comprise non-crystalline resin, which has a surface gloss and a toughness both superior to those of the highly crystalline resin in the prior art, used as an injection molding material, and a polyolefin resin with a melting point of about 65 degree Celsius to about 105 degree Celsius may also be used. Therefore, injection molding may not be required to perform at a specific mold temperature during the molding step, so the molding process may be simplified, and it may be ensured that the obtained metal-resin composite (for example, the aluminum alloy resin composite) may have high mechanical strength and good surface treatment characteristics, thus solving the problem of the surface decoration of a plastic article and meeting the diverse requirements of customers.

With the method of applying the polyolefin resin having melting point of about 65 degree Celsius to about 105 degree Celsius in the non-crystalline main resin, the resin may flow into the nanoscale pores in the surface of the metal (for example, the aluminum alloy or the aluminum alloy substrate) more easily, thus providing the final composite with strong adhesion between the metal and the plastic (for example, the resin or the resin composition) as well as high mechanical strength.

In some embodiments of present disclosure, based on 100 weight parts of the thermoplastic resin, the thermoplastic resin comprises about 70 weight parts to about 95 weight parts of the main resin, and about 5 weight parts to about 30 weight parts of the polyolefin resin. In some embodiments of present disclosure, the thermoplastic resin may further comprise a flow modifier. With the flow modifier, the flowing capability and the injection molding performance of the thermoplastic resin may be improved, and further the adhesion between the metal and the resin may be improved. In an embodiment, based on 100 weight parts of the thermoplastic resin, the thermoplastic resin comprises about 1 weight part to about 5 weight parts of a flow modifier, and the flow modifier is a cyclic polyester.

In some embodiments of present disclosure, the main resin may comprise a polyphenylene oxide (PPO) and a polyphenylene sulfide (PPS). In some embodiments, the main resin is a mixture of PPO and PPS. In an embodiment, the weight ratio of the PPO to the PPS is about 3:1 to about 1:3, alternatively about 2:1 to about 1:1.

In some embodiments of present disclosure, the main resin may comprise a polyphenylene oxide (PPO) and a polyamide (PA). In some embodiments, the main resin is a mixture of PPO and PA. In an embodiment, the weight ratio of the PPO to the PA is about 3:1 to about 1:3, alternatively about 2:1 to about 1:1.

In some embodiments of present disclosure, the main resin may comprise a polycarbonate (PC). In some embodiments, the main resin is PC. The main resin may be linear PC and/or branched PC, without special limits in the present disclosure.

In some embodiments of present disclosure, the polyolefin resin may have a melting point of about 65 degrees Celsius to about 105 degrees Celsius. In some embodiments, the polyolefin resin is a grafted polyethylene. Alternatively, the polyolefin resin is a grafted polyethylene having a melting point of about 100 degrees Celsius to about 105 degrees Celsius.

In some embodiments of present disclosure, the resin composition may further comprise other additives according to the requirements, without special limits in the present disclosure. In some embodiments, the resin composition may further comprise a filler. The filler is well known to those skilled in the art, for example, a fiber filler or a powder filler. In some embodiments, the fiber filler may be at least one selected from a group consisting of fiberglass, carbon fiber and polyamide fiber such as aromatic polyamide fiber. In some embodiments, the powder filler may be at least one selected from a group consisting of silica, talc, aluminum hydroxide, magnesium hydroxide, calcium carbonate, magnesium carbonate, glass, kaolin, heavy barium sulfate, and clay. In some embodiments of present disclosure, based on 100 weight parts of the main resin, the resin composition may comprise about 50 weight parts to about 150 weight parts of the fiber filler, and about 50 weight parts to about 150 weight parts of the powder filler. Thus, the resin composition may have a coefficient of linear expansion similar to that of the aluminum alloy substrate both in horizontal and vertical directions.

In some embodiments of present disclosure, the resin composition used in present disclosure may be prepared by mixing the main resin and the polyolefin resin. The resin composition may be prepared by any mechanical mixing method well known in that art, for example, the resin composition is prepared by mixing evenly a main resin and a polyolefin resin, and then granulating with a twin-screw extruding machine.

In some embodiments of present disclosure, the flow modifier and the filler may be added to the main resin and mixed evenly, thus the obtained resin composition may have a linear expansion coefficient similar to the aluminum alloy substrate both in horizontal and vertical directions.

In some embodiments of present disclosure, the conditions to carry out the injection molding are not limited. In some embodiments, the condition of the injection molding may be: a mold temperature of about 50 degrees Celsius to about 200 degrees Celsius, a nozzle temperature of about 100 degrees Celsius to about 350 degrees Celsius, an injection pressure of about 50 MPa to about 140MPa, a pressure maintaining time of about 1 s to about 10 s, an injection time of about 1 s to about 30 s, and a delay time of about Is to about 30 s. In some embodiments, the weight of the injected resin composition may be about 1 g to about 2000 g, and a resin layer of the prepared aluminum alloy resin composite may have a thickness of about 0.5 mm to about 10 mm.

With the method according to embodiments of the present disclosure, the production process is simplified compared with existing adhesive technology and the corrosion time is shortened. In comparison with the prior method in which a double stage of injection molding-hot pressing-injection molding is applied to fill the resin in the nanopores of the metal substrate, the hot pressing stage may be avoided. Meanwhile, the aluminum alloy resin composite prepared according to embodiments of the present disclosure has a better adhesion between the resin and the aluminum alloy and better tensile shear strength.

According to another aspect of the present disclosure, there is provided an aluminum alloy resin composite obtainable by any of the method described above. The aluminum alloy resin composite may comprise: an aluminum alloy substrate and a resin layer comprising a resin composition, and at least a part of the resin composition is filled in the nanopore and the corrosion pore. The resin composition is provided to combine with the aluminum alloy, which is well known to those skilled in the art.

In order to make the technical problem, the technical solution and the advantageous effects of the present disclosure more clear, the present disclosure will be further described below in detail with reference to examples thereof. It would be appreciated that particular examples described herein are merely used to understand the present disclosure. The examples shall not be construed to limit the present disclosure. The raw materials used in the examples and the comparative examples are all commercially available, without special limits.

Example 1

In this example, an aluminum alloy resin composite was prepared with the following steps:

1) Pretreatment

A commercially available 5052 aluminum alloy plate with a thickness of 1 mm was cut into 15mm x 80mm rectangular sheets, which were then polished in a polishing machine, and cleaned with water-free ethanol, and then immersed in a 40g/L NaOH aqueous solution. After 2 min, the rectangular sheets were washed with deionized water to form a pretreated aluminum alloy sheets.

2) Surface treatment 1

Each aluminum alloy sheet (used as an anode) was placed in an anodizing bath containing a 20 wt H 2 SO 4 solution, and electro lyzed under a voltage of 20 V at 20 degrees Celsius for 10 min, and then the aluminum alloy sheet was blow-dried.

3) Surface treatment 2

500 ml aqueous solution (pH=10.2) containing 75 g NH 3 and 27 g NH 4 CI was prepared in a beaker. The aluminum alloy sheet obtained from step 2) was immersed in the aqueous solution at 20 degrees Celsius for 5 min, then taken out and placed in a beaker containing water to be immersed for lmin. After 5 cycles, after water immersing for the last time, the resulting aluminum alloy sheet was blow-dried.

The cross section of the aluminum alloy sheet subjected to surface treatment 1 was observed by an electron microscope, and it was shown that the aluminum oxide layer formed by the anodizing has a thickness of 5 microns. The surface of the aluminum alloy sheet subjected to surface treatment 1 was observed by an electron microscope (as shown in Fig. 2), and it was shown that the aluminum oxide layer was formed with nanopores, and the nanopore had an average diameter of about 40 nm to about 60 nm, and a depth of about 4.5 microns.

The surface of the aluminum alloy sheet subjected to surface treatment 2 was observed by an electron microscope (as shown in Figs. 3a and 3b), and it was shown that the surface of the aluminum alloy sheet was formed with corrosion pores, and the corrosion pore had an average diameter of about 200 nm to about 800 nm, and a depth of about 0.5 micron. It was also shown that a two-layer spatial pore structure similar to the structure shown in Fig. 1 was formed in the aluminum oxide layer, and the nanopore was communicated with the corrosion pore.

4) Molding

The dried aluminum alloy sheet was inserted into an injection mold, and injection molded with a resin composition containing a polyphenylene sulfide (PPS) resin and a fiberglass (based on the total weight of the resin composition, the content of the fiberglass was 30 wt%). The aluminum alloy resin composite having a firmly combination of the aluminum alloy and the resin composition was obtained after the removal of the mold and cooling.

Example 2

In this example, an aluminum alloy resin composite was prepared by a method which is substantially the same as the method in Example 1, with the following exceptions.

In the step of surface treatment 2, 500ml aqueous solution (pH=ll.l) containing 144 g NH 3 and 27 g NH 4 C1 was prepared in a beaker. The aluminum alloy sheet obtained from step 2) was immersed in the aqueous solution at 20 degrees Celsius for 5 min, then taken out and placed in a beaker containing water to be immersed for lmin. After 5 cycles, after water immersing for the last time, the resulting aluminum alloy sheet was blow-dried. Measured with the same method as disclosed in Example 1, it was shown that the aluminum oxide layer formed by the anodizing has a thickness of 5 microns, the aluminum oxide layer was formed with nanopores, and the nanopore had an average diameter of about 40 nm to about 60 nm, and a depth of about 4 microns. It was measured that the surface of the aluminum alloy sheet was formed with corrosion pores, and the corrosion pore had an average diameter of about 300 nm to about 1000 nm, and a depth of about 1 micron. A two-layer spatial pore structure similar to the structure shown in Fig. 1 was observed in the aluminum oxide layer, and the nanopore was communicated with the corrosion pore.

Example 3

In this example, an aluminum alloy resin composite was prepared by a method which is substantially the same as the method in Example 1, with the following exceptions.

In the step of surface treatment 2, 500ml aqueous solution (pH=11.4) containing 150 g NH 3 and 57 g NH 4 CI was prepared in a beaker. The aluminum alloy sheet obtained from step 2) was immersed in the aqueous solution at 20 degrees Celsius for 5 min, then taken out and placed in a beaker containing water to be immersed for Imin. After 5 cycles, after water immersing for the last time, the resulting aluminum alloy sheet was blow-dried. Measured with the same method as disclosed in Example 1, it was shown that the aluminum oxide layer formed by the anodizing has a thickness of 5 microns, the aluminum oxide layer was formed with nanopores, and the nanopore had an average diameter of about 40 nm to about 60 nm, and a depth of about 4 microns. It was measured that the surface of the aluminum alloy sheet was formed with corrosion pores, and the corrosion pore had an average diameter of about 600 nm to about 1000 nm, and a depth of about 1 micron. A two-layer spatial pore structure similar to the structure shown in Fig. 1 was observed in the aluminum oxide layer, and the nanopore was communicated with the corrosion pore.

Example 4

In this example, an aluminum alloy resin composite was prepared by a method which is substantially the same as the method in Example 1, with the following exceptions.

In the step of surface treatment 2, 500ml aqueous solution (pH=12.0) containing 200 g NH 3 and 100 g NH 4 CI was prepared in a beaker. The aluminum alloy sheet obtained from step 2) was immersed in the aqueous solution at 20 degrees Celsius for 5 min, then taken out and placed in a beaker containing water to be immersed for Imin. After 5 cycles, after water immersing for the last time, the resulting aluminum alloy sheet was blow-dried. Measured with the same method as disclosed in Example 1, it was shown that the aluminum oxide layer formed by the anodizing has a thickness of 5 microns, the aluminum oxide layer was formed with nanopores, and the nanopore had an average diameter of about 40 nm to about 60 nm, and a depth of about 2 microns. It was measured that the surface of the aluminum alloy sheet was formed with corrosion pores, and the corrosion pore had an average diameter of about 800 nm to about 1200 nm, and a depth of about 3 microns. A two-layer spatial pore structure similar to the structure shown in Fig. 1 was observed in the aluminum oxide layer, and the nanopore was communicated with the corrosion pore.

Example 5

In this example, an aluminum alloy resin composite was prepared by a method which is substantially the same as the method in Example 1, with the following exceptions.

In the step of surface treatment 2, 500ml aqueous solution (pH=12.2) containing 250 g NH 3 and 80 g NH 4 CI was prepared in a beaker. The aluminum alloy sheet obtained from step 2) was immersed in the aqueous solution at 20 degrees Celsius for 5 min, then taken out and placed in a beaker containing water to be immersed for Imin. After 5 cycles, after water immersing for the last time, the resulting aluminum alloy sheet was blow-dried. Measured with the same method as disclosed in Example 1, it was shown that the aluminum oxide layer formed by the anodizing has a thickness of 5 microns, the aluminum oxide layer was formed with nanopores, and the nanopore had an average diameter of about 40 nm to about 60 nm, and a depth of about 1 micron. It was measured that the surface of the aluminum alloy sheet was formed with corrosion pores, and the corrosion pore had an average diameter of about 1000 nm to about 1500 nm, and a depth of about

4 microns. A two-layer spatial pore structure similar to the structure shown in Fig. 1 was observed in the aluminum oxide layer, and the nanopore was communicated with the corrosion pore.

Example 6

In this example, an aluminum alloy resin composite was prepared by a method which is substantially the same as the method in Example 1, with the following exceptions.

In the step of surface treatment 2, 500ml aqueous solution (pH=12.5) containing 298 g NH 3 and 85 g NH 4 CI was prepared in a beaker. The aluminum alloy sheet obtained from step 2) was immersed in the aqueous solution at 20 degrees Celsius for 5 min, then taken out and placed in a beaker containing water to be immersed for Imin. After 5 cycles, after water immersing for the last time, the resulting aluminum alloy sheet was blow-dried. Measured with the same method as disclosed in Example 1, it was shown that the aluminum oxide layer formed by the anodizing has a thickness of 5 microns, the aluminum oxide layer was formed with nanopores, and the nanopore had an average diameter of about 40 nm to about 60 nm, and a depth of about 1 micron. It was measured that the surface of the aluminum alloy sheet was formed with corrosion pores, and the corrosion pore had an average diameter of about 1000 nm to about 1500 nm, and a depth of about 4 microns. A two-layer spatial pore structure similar to the structure shown in Fig. 1 was observed in the aluminum oxide layer, and the nanopore was communicated with the corrosion pore.

Example 7

In this example, an aluminum alloy resin composite was prepared by a method which is substantially the same as the method in Example 1, with the following exceptions.

In the step of surface treatment 2, 500ml aqueous solution (pH=12.3) of ethylene diamine having a weight percent of 10 wt was prepared in a beaker. The aluminum alloy sheet obtained from step 2) was immersed in the aqueous solution at 20 degrees Celsius for 5 min, then taken out and placed in a beaker containing water to be immersed for lmin. After 5 cycles, after water immersing for the last time, the resulting aluminum alloy sheet was blow-dried. Measured with the same method as disclosed in Example 1, it was shown that the aluminum oxide layer formed by the anodizing has a thickness of 5 microns, the aluminum oxide layer was formed with nanopores, and the nanopore had an average diameter of about 40 nm to about 60 nm, and a depth of about 1 micron. It was measured that the surface of the aluminum alloy sheet was formed with corrosion pores, and the corrosion pore had an average diameter of about 1000 nm to about 1800 nm, and a depth of about 4 microns. A two-layer spatial pore structure similar to the structure shown in Fig. 1 was observed in the aluminum oxide layer, and the nanopore was communicated with the corrosion pore.

Comparative Example 1

1) Pretreatment

A commercially available 5052 aluminum alloy plate with a thickness of 1mm was cut into 15mm x 80mm rectangular sheets, which were then polished in a polishing machine, and cleaned with water-free ethanol, and then immersed in a 2 wt NaOH aqueous solution. After 2 min, the rectangular sheets were washed with water to form pretreated aluminum alloy sheets.

2) Surface treatment

Each of the pretreated aluminum alloy sheet was immersed into a hydrazine hydrate aqueous solution having a concentration of 5wt (pH=11.2). After 2min at 50degrees Celsius, the aluminum alloy sheet is taken out and washed with deionized water. After 30 cycles, the resulting aluminum alloy sheet was taken out and dried in a drying oven at 60degrees Celsius.

3) Molding

The dried aluminum alloy sheet was inserted into an injection mold, and injection molded with a resin composition containing a polyphenylene sulfide (PPS) resin and a fiberglass (based on the total weight of the resin composition, the content of the fiberglass was 30 wt%). The aluminum alloy resin composite which having a firmly combination of the aluminum alloy and the resin composition was obtained after the removal of the mold and cooling.

Comparative Example 2

1) Pretreatment

A commercially available 5052 aluminum alloy plate with a thickness of 1mm was cut into 15mm x 80mm rectangular sheets, which were then polished in a polishing machine, and cleaned with water-free ethanol, and then immersed in a 2 wt NaOH aqueous solution. After 2 min, the rectangular sheets were washed with water to form pretreated aluminum alloy sheets.

2) Surface treatment

Each of the pretreated aluminum alloy sheet (used as an anode) was placed in an anodizing bath containing a 20wt H 2 SO 4 solution, and was electro lyzed under a voltage of 15V for lOmin, and then the aluminum alloy sheet was blow-dried.

3) Molding

The dried aluminum alloy sheet was inserted into an injection mold, and injection molded with a resin composition containing a polyphenylene sulfide (PPS) resin and a fiberglass (based on the total weight of the resin composition, the content of the fiberglass was 30 wt%). The aluminum alloy resin composite which having a firmly combination of the aluminum alloy and the resin composition was obtained after the removal of the mold and cooling.

Tests

The combination between the aluminum alloy and the resin

The aluminum alloy resin composites prepared in Examples 1-7 and Comparative Examples 1-2 are fixed in an universal material testing machine to perform tensile test. The tested results under maximum load can be regarded as the combination force value between the aluminum alloy and resin, the test results are summarized in Tablel. Table 1

Referring to Table 1, the combination between the resin and the aluminum alloy in the aluminum alloy resin composite of the present disclosure can achieve up to 1263 N, which is significantly improved compared with existing aluminum alloy resin composite.

Although explanatory embodiments have been shown and described, it would be appreciated by those skilled in the art that changes, alternatives, and modifications can be made in the embodiments without departing from spirit and principles of the disclosure. Such changes, alternatives, and modifications all fall into the scope of the claims and their equivalents.