The invention relates to a high melt strength styrene resin composition and a preparation method therefor, and relates to polymer material area.
ABS resin is an excellent resin with excellent impact resistance, heat resistance, dimensional stability and excellent dyeing properties. It has been widely used in electrical and electronic, home appliances, automotive and other fields, and is suitable for various applications, manufacturing processes. The most common processing method is an injection molding, in addition to extrusion and blow molding processes. For example, automotive tail fins and spoilers are usually prepared by a blow molding process, while refrigerator linings are generally prepared by a blister process. In the process of blow molding, if the melt strength of the material is insufficient, the phenomenon of collapse and collapse of the body is likely to occur; a series of problems, such as partial too thin or even cracking, occur during the blistering. Therefore, in addition to good mechanical properties, ABS resins used in such articles are required to have high melt strength and heat resistance.
Heat resistance can be improved by heat-resistant agents, but the improvement of melt strength is difficult. Modification manufacturers often add low-flow products, such as rubber powder, high-molecular-weight SAN powder, heat-resistant powder, and the like, to increase the melt strength of the material. However, these solutions cannot completely solve the above problems, and at the same time, they introduce other problems, such as poor plasticization, excessive shrinkage, and also easily cause problems of uneven wall thickness and surface defects.
The shortcomings of these technical solutions have greatly limited the wide application of ABS resin in the fields of extrusion, blow molding and plastic products.
Similar problems exist in HIPS, ASA, SAN and corresponding PC/ABS alloys, PC/ASA alloys. Therefore, the method of increasing the melt strength has become the focus of research. A preparation method for obtaining a higher melt strength of a styrene resin and an alloy thereof which is simple in process, excellent in physical and mechanical properties, and low in cost has not been reported yet.
The object of the invention of the present invention is to provide a high melt strength styrenic resin composition and a preparation method therefor.
The invention is achieved by the following technical solutions:
In one embodiment, the invention provides a high melt strength styrene resin composition, which includes the following components in parts by mass:
Preferably, the tackifier is a random copolymer obtained by copolymerizing an aromatic vinyl monomer and an acrylonitrile monomer.
Preferably, an average molecular weight of the tackifier is from 200,000 to 400,000.
Preferably, the tackifier includes 50-85% of the aromatic vinyl monomer by mass and 10-40% of the acrylonitrile monomer by mass in.
Preferably, the tackifier includes a long-chain branched structure and the average molecular weight of the long-chain branch is from 10,000 to 90,000.
Preferably, the aromatic vinyl monomer is at least one selected from the group consisting of styrene, α-methylstyrene, α-chlorostyrene and p-methylstyrene; the acrylic monomer is one or two selected from the group consisting of acrylonitrile and α-methacrylonitrile.
Preferably, the styrene resin is at least one selected from the group consisting of ABS resin, SAN resin, ASA resin and HIPS resin; the styrene alloy is one or two selected from the group consisting of PC/ABS alloy and PC/ASA alloy.
Preferably, the antioxidant is a phenolic antioxidant.
In another embodiment, the invention provides a method for preparing the high melt strength styrene resin composition, and the method includes the following steps:
mixing a styrene resin or styrene alloy, a tackifier and a lubricant at 25 to 90° C., and
using a twin screw extruder abrasive machining to extrude pellets at 200 to 260° C. to obtain the high melt strength styrene resin composition.
Preferably, a ratio of length and diameter of the twin screw extruder abrasive machine is more than 34.
Compared with the prior art, the present invention has the following beneficial effects:
1. The random copolymer tackifier in the present invention is thermodynamically compatible with the styrene resin and the alloy thereof, does not cause phase separation, and has excellent mechanical properties;
2. The random copolymer tackifier in the present invention has a moderate molecular weight, is more easily plasticized than a rubber powder, a high molecular weight SAN powder, a heat resistant powder or the like, and thus has better processability, uniform thickness, and low shrinkage, and does not likely produce surface defects;
3. The random copolymer a tackifier of the present invention has a long-chain branch structure. When a polymer material has a long-chain branched molecular structure, the material will exhibit strain hardening, thereby causing a large strain locally in the material. No rupture occurs, and there is sufficient strength to deform the surrounding part and is uniformly thin as a whole;
4. Wide range of uses: suitable and effective for ABS, SAN, ASA, HIPS, PC/ABS alloy and PC/ASA alloy;
5. The process is simple, the cost is low, the production difficulty and the investment cost are reduced, and the products prepared by the method can be widely used in the fields of home appliances, automobiles, aviation and the like. It has a very broad application prospects and industrial value.
Other features, objects and advantages of the present invention will become more apparent by reading the detailed description of the non-limiting embodiments with reference to the following drawings:
The invention is described in detail below in combination with the specific embodiment. The following embodiments will help those skilled in the art to further understand the invention, but will not limit the invention in any form. It should be noted that for ordinary technicians in the art, a number of deformation and improvements can be made without departing from the concept of the invention. These are all under the protection scope of the present invention.
The formulated products above were extruded by the twin screw extruder abrasive machining and dried in the oven at 80° C. for 2 h. The tensile rheology of the particles was measured by a capillary rheometer, and the test results are shown by
The test conditions were as follows:
IZOD notch impact: measured according to ASTM D256, the strip thickness being 3.2 mm;
Flexural modulus: measured according to ASTM D790 standard, test speed being 3 mm/min;
Tensile properties: measured according to ASTM D628 standard, tensile rate being 5 mm/min;
Melt Index: measured according to ASTM D1238, with test conditions of 220° C.*10 Kg;
Tensile strength at high temperature: measured according to DIN EN ISO 527-3.
As shown by
As shown in
As shown in
The specific embodiments of the present invention have been described above. It is to be understood that the invention is not limited to the specific embodiments described above, and various modifications and changes may be made by those skilled in the art without departing from the scope of the invention.
Number | Date | Country | Kind |
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201810019938.6 | Jan 2018 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2018/107135 | 9/21/2018 | WO | 00 |