POLYETHYLENE RESIN COMPOSITION FOR INJECTION-MOLDING
20190077892 ยท 2019-03-14
Assignee
Inventors
Cpc classification
C08L23/0815
CHEMISTRY; METALLURGY
B29K2023/0625
PERFORMING OPERATIONS; TRANSPORTING
C08F210/16
CHEMISTRY; METALLURGY
B29C45/0001
PERFORMING OPERATIONS; TRANSPORTING
C08F2500/04
CHEMISTRY; METALLURGY
C08L23/0815
CHEMISTRY; METALLURGY
C08L2205/025
CHEMISTRY; METALLURGY
International classification
C08F210/16
CHEMISTRY; METALLURGY
Abstract
Disclosed herein is a resin composition for injection-molding in which an ethylene-based resin is melt-mixed to be excellent in ductile property and impact property, excellent in environmental stress crack resistance, and low in an overall migration, and thus may be widely used as a food and drug container or a stopper. The present invention provides a resin composition for injection-molding formed by melt-mixing 80-90 wt % of a linear low density polyethylene having a melt flow index of 15-30 dg/min (190 C., 2.16 kg) and 10-20 wt % of an ethylene-alpha-olefin copolymer resin having a melt flow index of 10-20 wt %.
Claims
1. A resin composition for injection-molding formed by melt-mixing 80-90 wt % of a linear low density polyethylene resin having a melt flow index of 15-30 dg/min (190 C., 2.16 kg) with 10-20 wt % of an ethylene-alpha-olefin copolymer resin having a melt flow index of 25-40 dg/min (190 C., 2.16 kg).
2. The resin composition for injection-molding of claim 1, wherein the linear low density polyethylene resin is an ethylene homopolymer or a copolymer of ethylene with 1-butene or isopentane, and has a density of 0.915-0.930 g/cm3 and a polydispersity index (PDI) of 3 to 6.
3. The resin composition for injection-molding of claim 1, wherein the ethyl-alpha-olefin copolymer resin is composed of alpha-olefin having 3 to 8 carbon atoms, and has a density of 0.860-0.880 g/cm3.
4. The resin composition for injection-molding of claim 3, wherein the alpha-olefin is 1-butane, 1-hexene, or 1-octene, and the ethylene is included in an amount of 70-90 mol %
5. The resin composition for injection-molding of claim 1, wherein the resin composition has a melt flow index of 20-30 dg/min (190 C., 2.16 kg) and a density of 0.914-0.920 g/cm3.
6. The resin composition for injection-molding of claim 1, wherein the resin composition has a flexural modulus of 2,000-3,000 MPa and a shore D hardness of 30 to 40.
7. The resin composition for injection-molding of claim 1, wherein the resin composition has an overall migration of less than 10 mg/dm2.
8. A closed container stopper manufactured by injection-molding the resin composition of claim 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018]
MODE FOR CARRYING OUT THE INVENTION
[0019] Hereinafter, the preferred embodiments of the present invention are described in detail. In describing the present invention, a detailed explanation will not be provided herein when it is determined that a concrete explanation on the related known technology can make the gist of the present invention unclear. Throughout the specification, when an element is referred to as including, it means that it may include other elements as well, without excluding other elements, unless specifically stated otherwise.
[0020] The present invention discloses a resin composition for injection-molding in which the ethylene-alpha-olefin copolymer as a modifier is added to the linear low density polyethylene resin in a predetermined amount through a melt-mixing method to improve the properties of the linear low density polyethylene resin, and 80-90 wt % of a linear low density polyethylene resin having a melt flow index of 13-30 dg/min (190 C., 2.16 kg) and 10-20 wt % of an ethylene-alpha-olefin copolymer resin having a melt flow index of 25-40 dg/min (190 C., 2.16 kg) are melt-mixed.
[0021] In the present invention, the linear low density polyethylene resin may be an ethylene homopolymer or may be obtained by copolymerizing ethylene with 1-butene or isopentane. In this case, the linear low density polyethylene resin may be produced by using a Ziegler-Natta catalyst, and a production method of the linear low density polyethylene resin may use, for example, a vaporization method, a solution method, a slurry method, etc., and is not particularly limited as long as being known in the art, but the vaporization method is preferable to be used.
[0022] The linear low density polymer resin may have a melt flow index (ASTM D1238, 190 C., 2.16 kg load) of 15-30 dg/min, preferably 20-25 dg/min. when the melt flow index is less than dg/min, the moldability is deteriorated, and when the moldability is more than 30 dg/min, the amount of low molecular weight materials eluted at a high temperature may be increased.
[0023] In addition, the density of the linear low density polyethylene resin is preferably 0.915-0.930 g/cm.sup.3, more preferably 0.920-0.925 g/cm.sup.3. When the density is less than 0.915 g/cm.sup.3, deformation may be occurred at a high temperature when manufactured with a container stopper and the elution amount of low molecular weight materials may be increased, and when the density is more than 0.930 g/cm.sup.3, the opening and closing property of the container stopper may be deteriorated at a low temperature.
[0024] In addition, the linear low density polyethylene resin preferably has a polydispersity index (PDI) of 3-6, more preferably 3.5-5.5. When the polydispersity index is less than 3, the ductile property and environmental stress crack resistance thereof may be insufficiently exhibited, and when the polydispersity index is more than 6, the resistance to the external impact may be deteriorated.
[0025] The linear low density polyethylene resin is included in an amount of 80-90 wt %. When the amount of the linear low density polyethylene resin is less than 80 wt %, injection-molding properties may be deteriorated, and when the amount is more than 90 wt %, the rigidity of the product is excessive, and thus the opening and closing property may be deteriorated when manufactured with a container stopper.
[0026] In the present invention, the ethylene-alpha-olefin copolymer resin is a copolymer produced by using a monomer of ethylene and alpha-olefin as a comonomer, which in consideration of the ductile property and environmental stress crack resistance of the product when injection-molded with the final resin composition, the alpha-olefin may be selected from alpha-olefin having 3 to 8 carbon atoms, and more preferably 1-butene, 1-hexene or 1-octene, even more preferably 1-hexene or 1-octene. In this case, when ethylene is included in an amount of 70-90 mol % in a copolymer resin composed of ethylene with 1-butene, 1-hexene or 1-octene, the ductile property and environmental stress crack resistance of injection products are most excellent.
[0027] Such an ethylene-alpha-olefin copolymer resin may have a melt flow index (ASTM D1238, 190 C., 2.16 kg load) of 25-40 dg/min, preferably 30-35 dg/min. When the melt flow index is less than 25 dg/min, the moldability is deteriorated, and when the melt flow index is more than 40 dg/min, the amount of low molecular weight materials eluted at a high temperature may be increased.
[0028] In addition, the density of the ethylene-alpha-olefin copolymer resin is preferably 0.860-0.880 g/cm.sup.3, more preferably 0.865-0.875 g/cm.sup.3. When the density is less than 0.860 g/cm.sup.3, it is not preferable in view of the production cost, and when the density is more than 0.880 g/cm.sup.3, the ductile property of injection-molding products may be deteriorated.
[0029] The ethylene-alpha-olefin copolymer resin is included in an amount of 10-20 wt %. When the amount of the ethylene-alpha-olefin copolymer resin is less than 10 wt %, the ductile property and environmental stress crack resistance thereof may be exhibited insufficiently, and when the amount is more than 20 wt %, the result of the overall migration may be more than the standard and the usage field may be limited.
[0030] The resin composition produced by melt-mixing the linear low density polyethylene resin with the ethylene-alpha-olefin copolymer resin described above may have a melt flow index of 20-30 dg/min (190 C., 2.16 kg), preferably 22-27 dg/min. In addition, the density thereof may be 0.914-0.920 g/cm.sup.3. The resin composition according to the present invention is advantageous for injection-molding within the range of the melt flow index and the density.
[0031] The resin composition for injection-molding according to the present invention has a flexural modulus of 2,000-3,000 MPa and a shore D hardness of 30-40. Also, the result of a low-temperature (30 C.) DuPont impact test shows more than 200 kg-cm, and thus the ductile property and impact property thereof are very excellent. Additionally, the results of the overall migration according to the standard of the European Commission Regulation (EU) No 10/2011 are less than 10 mg/dm.sup.2 each, which may be used particularly suited for a food and drug container or a stopper.
[0032] Meanwhile, the resin composition according to the present invention may be produced through a known melt-mixing process, and is not particularly limited to the melt-mixing process conditions as long as being in the conditions in which the dispersibility of the linear low density polyethylene resin and the ethylene-alpha-olefin copolymer resin may be smoothly realized.
[0033] As described above, materials produced from conventional high flow linear low density polyethylene or high flow low density polyethylene have a low ductile property and may not satisfy the impact and sealing properties required by molded products, and when the molded products is subjected to a stress of any value or more, whitening occurs, and particularly, the physically mixed products had a problem that the environmental stress crack resistance (ESCR) thereof was very low. However, the resin composition for injection-molding according to the present invention has very high dispersibility through the melt-mixing process, and not only the ductile property thereof may be uniformly provided through a modifier, but also the environmental stress crack resistance thereof is very high, and thus may be used for a long time even in a severe environment. In particular, the results of the overall migration of the European Commission Regulation (EU) No 10/2011, which measures the amount to be migrated per unit area by being eluted for 10 days in an 3% aqueous solution of acetic acid at 40 C., for 10 days in an 95% aqueous solution of ethanol at 40 C., and for 2 days in isooctane at 20 C., all exhibit less than 10 mg/dm.sup.2, so that the resin composition for injection-molding produced according to the present invention may be used by being particularly suited for a food and drug container or a stopper.
[0034] Hereinafter, the present invention will be described in more detail with reference to Examples and Comparative Examples.
Example 1
[0035] A resin composition was produced in the form of a pellet through a melt-mixing method under a condition of 180 C. to 230 C. in a composition of 80 wt % of a linear low density polyethylene resin (ethylene homopolymer, melt flow index 23 dg/min (190 C., 2.16 kg), density 0.925 g/cm.sup.3, polydispersity index 4.5) and 20 wt % of an ethylene-alpha-olefin copolymer (random copolymer of ethylene and 1-octene, ethylene amount 80 mol %, melt flow index 30 dg/min (190 C., 2.16 kg, density 0.870 g/cm.sup.3).
Example 2
[0036] A resin composition was produced in the same manner as in Example 1, except that the linear low density polyethylene resin was adjusted to an amount of 90 wt % and the ethylene-alpha-olefin copolymer was adjusted to an amount of 10 wt % in Example 1.
Example 3
[0037] A resin composition was produced in the same manner as in Example 1, except that an ethylene-alpha-olefin copolymer (random copolymer of ethylene and 1-hexene, ethylene amount 80 mol %, melt flow index 32 dg/min (190 C., 2.16 kg, density 0.870 g/cm.sup.3) was used in Example 1.
Example 4
[0038] A resin composition was produced in the same manner as in Example 1, except that the ethylene-alpha-olefin copolymer (random copolymer of ethylene and 1-butene, ethylene amount 80 mol %, melt flow index 35 dg/min (190 C., 2.16 kg, density 0.870 g/cm.sup.3) was used in Example 1.
Example 5
[0039] A resin composition was produced in the same manner as in Example 1, except that the linear low density polyethylene resin having polydispersity of 2 was used in Example 1.
Example 6
[0040] A resin composition was produced in the same manner as in Example 1, except that the linear low density polyethylene resin having a polydispersity index of 7 was used in Example 1.
Comparative Example 1
[0041] A resin composition was produced in the same manner as in Example 1, except that the linear low density polyethylene resin was adjusted to an amount of 50 wt % and the low polyethylene resin (ethylene homopolymer, melt flow index 55 dg/min (190 C., 2.16 kg, density 0.914 g/cm.sup.3) was adjusted to an amount of 50 wt % in Example 1.
Comparative Example 2
[0042] A resin composition was produced in the same manner as in Example 1, except that the linear low density polyethylene resin was adjusted to an amount of 100 wt % in Example 1.
Experimental Example
[0043] Physical properties of the resin compositions prepared according to Examples and Comparative Examples were measured by the following methods, and the results thereof were shown in Table 1 below.
[0044] [Measurement Method]
[0045] 1) Melt Flow Index
[0046] The melt flow index was measured according to ASTM D1238, and the measuring conditions thereof were 190 C. and 2.16 kg.
[0047] 2) Density
[0048] The density was measured according to ASTM D1505. A specimen was compression-molded at 150 C. for 7 minutes at a pressure of 0.25 tons and for 3 minutes at a pressure of 13.5 tons, and then was cooled for 40 minutes at 75 C., thus being prepared.
[0049] 3) Flexural Modulus
[0050] The flexural modulus was measured according to ASTM D790. A specimen was 12712.76.4 mm in size, and a speed of 28 mm/min was used.
[0051] 4) Hardness (Shore D)
[0052] The harness was measured according to ASTM D2240. A specimen was a flat plate specimen having a thickness of 6 mm.
[0053] 5) Environmental Stress Crack Resistance (ESCR)
[0054] The environmental stress crack resistance was measured according to ASTM D1693, and the time (F.sub.50 hr) at which 50% cracking due to environmental stress occurred in a Igepal 10 wt % aqueous solution was measured.
[0055] 6) DuPont Impact Test
[0056] The value of the DuPont impact test was measured according to ASTM D2794 and was evaluated for an actual closed container stopper injection-molding product having a thickness of 1.7 mm at 30 C. Further, for Example 1 and Comparative Example 1, a flat plane specimen having a thickness of 2 mm was injected, and a whitening phenomenon was visually evaluated at room temperature.
[0057] 7) Overall migration
[0058] The results of the overall migration were measured according to European Commission Regulation (EU) No 10/2011, which measures the amount to be migrated per unit area eluted for 10 days in 3% of an acetic acid aqueous solution at 40 C., for 10 days in 95% of an ethanol aqueous solution at 40 C., and for 2 days in isooctane at 20 C.
TABLE-US-00001 TABLE 1 Linear Ethylene- low Low alpha- Melt density density olefin flow Flexural Shore D DuPont Whitening Overall polyethylene polyethylene copolymer index Density modulus hardness (30 C.) ESCR phenomenon migration Classification wt % wt % wt % dg/min g/cm.sup.3 kgf/cm.sup.2 Kg .Math. cm.Math. F.sub.50hr mg/dm.sup.2 Example 1 80.sup.1) 20.sup.4) 24.5 0.914 2,470 36 >200 >2,000 Not 4 occurred Example 2 90.sup.1) 10.sup.4) 23.4 0.919 2,930 40 150 1,500 Not 6 occurred Example 3 80.sup.1) 20.sup.5) 24.1 0.918 2,680 38 >200 >2,000 Not 5 occurred Example 4 80.sup.1) 20.sup.6) 25.6 0.915 2,196 35 150 500 Not 10 occurred Example 5 80.sup.2) 20.sup.4) 21.5 0.913 2,050 42 >200 100 Not 8 occurred Example 6 80.sup.3) 20.sup.4) 26.8 0.920 3,040 33 100 >2,000 Not 10 occurred Comparative 50.sup.1) 50 28.4 0.920 2,480 42 65 2 Occurred Example 1 Comparative 100.sup.1) 22.7 0.925 3,560 45 120 10 Occurred Example 2 * Note .sup.1)Polydispersity index 4.5 .sup.2)Polydispersity index 2 .sup.3)Polydispersity index 7 .sup.4)Random copolymer of ethylene and 1-octene .sup.5)Random copolymer of ethylene and 1-hexene .sup.6)Random copolymer of ethylene and 1-butene
[0059] Referring to Table 1 and
[0060] On the other hand, it may be seen that the alpha-olefin of an ethylene-alpha-olefin copolymer is more preferable to apply 1-octene or 1-hexene rather than 1-butene (Example 4) in view of balance of physical properties, and when the polydispersity index of the linear low density polyethylene resin is out of the range of 3 to 6 (Examples 5 and 6), the overall migration index and the impact property thereof are somewhat lowered.
[0061] As described above, the preferred embodiments of the present invention have been described in detail. The description of the present invention is intended to be illustrative, and it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the spirit and scope of the invention as defined by the appended claims.
[0062] Therefore, the scope of the present invention is defined by the appended claims rather than the foregoing detailed description, and all changes or modifications that come within the meaning and range of equivalency of the claims, and equivalents thereof, are to be construed as being included within the scope of the present invention.