WO2010103007A1 - Refrigerator interior liner - Google Patents
Refrigerator interior liner Download PDFInfo
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- WO2010103007A1 WO2010103007A1 PCT/EP2010/052984 EP2010052984W WO2010103007A1 WO 2010103007 A1 WO2010103007 A1 WO 2010103007A1 EP 2010052984 W EP2010052984 W EP 2010052984W WO 2010103007 A1 WO2010103007 A1 WO 2010103007A1
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- WIPO (PCT)
- Prior art keywords
- rubber
- interior liner
- monovinylaromatic
- refrigerator interior
- weight
- Prior art date
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Classifications
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08L—COMPOSITIONS OF MACROMOLECULAR COMPOUNDS
- C08L25/00—Compositions of, homopolymers or copolymers of compounds having one or more unsaturated aliphatic radicals, each having only one carbon-to-carbon double bond, and at least one being terminated by an aromatic carbocyclic ring; Compositions of derivatives of such polymers
- C08L25/02—Homopolymers or copolymers of hydrocarbons
- C08L25/04—Homopolymers or copolymers of styrene
- C08L25/06—Polystyrene
-
- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08F—MACROMOLECULAR COMPOUNDS OBTAINED BY REACTIONS ONLY INVOLVING CARBON-TO-CARBON UNSATURATED BONDS
- C08F2/00—Processes of polymerisation
- C08F2/38—Polymerisation using regulators, e.g. chain terminating agents, e.g. telomerisation
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08F—MACROMOLECULAR COMPOUNDS OBTAINED BY REACTIONS ONLY INVOLVING CARBON-TO-CARBON UNSATURATED BONDS
- C08F12/00—Homopolymers and copolymers of compounds having one or more unsaturated aliphatic radicals, each having only one carbon-to-carbon double bond, and at least one being terminated by an aromatic carbocyclic ring
- C08F12/02—Monomers containing only one unsaturated aliphatic radical
- C08F12/04—Monomers containing only one unsaturated aliphatic radical containing one ring
- C08F12/06—Hydrocarbons
- C08F12/08—Styrene
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08F—MACROMOLECULAR COMPOUNDS OBTAINED BY REACTIONS ONLY INVOLVING CARBON-TO-CARBON UNSATURATED BONDS
- C08F279/00—Macromolecular compounds obtained by polymerising monomers on to polymers of monomers having two or more carbon-to-carbon double bonds as defined in group C08F36/00
- C08F279/02—Macromolecular compounds obtained by polymerising monomers on to polymers of monomers having two or more carbon-to-carbon double bonds as defined in group C08F36/00 on to polymers of conjugated dienes
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08L—COMPOSITIONS OF MACROMOLECULAR COMPOUNDS
- C08L51/00—Compositions of graft polymers in which the grafted component is obtained by reactions only involving carbon-to-carbon unsaturated bonds; Compositions of derivatives of such polymers
- C08L51/04—Compositions of graft polymers in which the grafted component is obtained by reactions only involving carbon-to-carbon unsaturated bonds; Compositions of derivatives of such polymers grafted on to rubbers
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25D—REFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
- F25D23/00—General constructional features
- F25D23/06—Walls
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25D—REFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
- F25D23/00—General constructional features
- F25D23/08—Parts formed wholly or mainly of plastics materials
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25D—REFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
- F25D23/00—General constructional features
- F25D23/06—Walls
- F25D23/065—Details
- F25D23/066—Liners
Definitions
- the present invention concerns a refrigerator interior liner made of a rubber modified monovinylaromatic polymer composition such as, by way of example, an ABS (acrylonitrile-butadiene-styrene) or a HiPS (high impact polystyrene).
- "Refrigerator" in the present invention has to be understood as (i) an apparatus having a compartment at about 4°C and a compartment at -18°C or even as low as about -30 0 C or as (ii) an apparatus (freezer) having one or more compartments at -18°C or even as low as about -30 0 C.
- the liner of a refrigerator is in contact on one side with the food inside the refrigerator and on the other side with the insulation foam.
- Said insulation foam typically a polyurethane foam, is made with a blowing agent which can cause environmental stress cracking (ESCR) of the liner.
- ESCR environmental stress cracking
- the blowing agent can cause liner blistering, catastrophic cracks, tiny cracks (crazing) and loss of impact properties (embrittlement), as well as stress whitening and/or dissolution.
- US 5,221 ,136 describes a refrigerator comprising an ABS or HiPS liner but said liner comprises a barrier layer on the side facing the polyurethane foam.
- the barrier layer comprises a polymer or copolymer of ethylene or propylene containing 0 to 40% by weight of a block copolymer rubber.
- US 5,834,126 is similar to the one above but the composition of the barrier layer resistant to the action of polyurethane foam blowing agents has an effective amount of a polyethylene modified with a compound such as maleic anhydride, maleic acid, maleic anhydride derivatives, maleic acid derivatives, or mixtures thereof and an effective amount of a rubber.
- the barrier layer composition may contain polyethylene, polypropylene, polybutylene, or copolymers thereof.
- US 6,706,814 describes a rubber modified monovinylidene aromatic polymer comprising: a) a monovinylidene aromatic polymer matrix; and b) rubber particles dispersed therein, characterized in that the rubber particles a re produced from a diene rubber having substantially linear structure containing less than one long chain branch per 10,000 carbon atoms in the polymer backbone with a solution viscosity of 5 cPoise to 1 ,000 cPoise and a Mooney Viscosity of 5 to 120.
- the rubber particles are dispersed in the form of small and large particles, wherein the volume average particle diameter of the small particles is from about 0.1 to about 2 micrometers and volume average particle diameter of the large particles is from about 2 to about 6 micrometers.
- volume average particle diameter of the small particles is from about 0.1 to about 2 micrometers
- volume average particle diameter of the large particles is from about 2 to about 6 micrometers.
- US 6,545,090 describes a rubber modified monovinylidene aromatic polymer comprising: a) a monovinylidene aromatic polymer matrix, b) rubber particles dispersed therein, characterized in that the rubber particles are produced from a diene rubber having I) a high molecular weight component and I I) a low molecular weight component; the high molecular weight component having a weight average molecular weight at least two and one half times greater than the weight average molecular weight of the low molecular weight component and the low molecular weight component constitutes from about 20 to about 80 weight percent of the total rubber content, wherein both components I and Il have a 1 ,4 cis content of greater than 70 percent and III) the rubber is grafted using a graft promoting chemical in itiator, with monovinylidene aromatic polymer to the extent that the amount of grafted rubber is at least 30 percent of the total rubber at phase inversion.
- the rubber particles are dispersed in the form of small and large particles, wherein the volume average particle diameter of the small particles is from about 0.1 to about 2 micrometers and the volume average particle diameter of the large particles is from about 2 to about 6 micrometers and the small rubber particles are from 20 to 80 weight percent of the total rubber.
- a lot of applications are described including refrigerators and freezers.
- US 6,441 ,090 describes a rubber modified monovinylidene aromatic polymer having a bimodal particle size distribution comprising: a) rubber particles of a star or branched low viscosity rubber having a volume average particle size of from 0.1 to 2 ⁇ m, and a cellular or core shell morphology or mixture thereof, and b) rubber particles of a star or branched low viscosity rubber, linear diene rubber or block copolymer rubber having a volume average particle size of from 0.5 to 10 ⁇ , characterized in that the rubber particles of b) are more dense than the rubber particles of a), having a smaller occluded monovinylidene aromatic polymer content than the particles of a), wherein the particles of a) are from 50 to 99 weight percent of the total diene rubber content.
- Rubber-reinforced bimodal compositions are described as useful in a wide variety of applications such as consumer electronics, small household appliances, toys and furniture. These polymers are also deemed to be useful in extrusion applications such as in the preparation of a gloss layer using coextrusion techniques for refrigerator liners.
- US 7,115,684 describes a mass polymerized rubber-modified polymeric composition
- a continuous matrix phase comprising a polymer of a monovinylidene aromatic monomer, and optionally, an ethylenically unsaturated nitrile monomer, and discrete rubber particles dispersed in said matrix, said rubber particles produced from a rubber component comprising from 5 to 100 weight percent of a functionalized diene rubber having at least one functional g rou p per ru bber mol ecu l e capabl e of ena bl i ng control l ed rad ical polymerization; wherein the composition is further characterized by: a) a volume average rubber particle size of from about 0.15 to 0.35 micron, b) a total rubber phase volume between 12 and 45 percent, based on the total volume of the combination of the matrix phase and the rubber particles; c) a partial rubber phase volume between 2 and 20 percent characterized by rubber particles having a volume average particle size of greater
- Rubber modified polymers can be used in a variety of applications including injection molding and thermoforming of refrigerator liners, household appliances, toys, automotive applications and furniture.
- Another techn ical problem is the environmental stress cracking resistance of the plastic material induced by localized sharp temperature variations and/or the presence of fats and oils in food or any aggressive chemical agent that may get in contact with the plastic material.
- a refrigerator interior liner made of a rubber modified monovinylaromatic polymer composition which at least fits one of the above criteria.
- the main features of this polymer composition are (i) a large size of moderately crosslinked rubber particles combined with a monomodal particle size distribution and (ii) a rubber phase volume fraction (RPVF) of at least 39%.
- the broadness of the rubber particle size distribution estimated by the RPS volume-to-RPS surface ratio is preferably below 2.0, more preferably below 1.5 and most preferably equal or below 1.4.
- RPS volume means the volume median particle size
- RPS surface means the surface median particle size of the rubber.
- the average molecular-weight in weight of the PS phase should be sufficiently high, whereas the global concentration of low-molecular weight plasticizers such as white mineral oil and PS oligomers should be kept low-to-moderate.
- the present invention also relates to a process to make said polymer.
- the process for making H IPS is well known to those skilled in the art and consists of polymerizing styrene monomer in the presence of dissolved rubber. Polymerization of styrene, and optionally a comonomer, is initiated by heating and/or by an initiator, by way of example a radical initiator. The rubber is "dissolved" in the styrene monomer (actually the rubber is infinitely swollen with the monomer).
- the usual rubber types utilized in the manufacture of HIPS include polybutadiene (PB), styrene-butadiene rubber (SBR), and styrene- butadiene-styrene rubber (SBS).
- Polystyrene is initially formed from the styrene monomer within the homogeneous rubber solution in styrene.
- the reacting solution is at a point prior to the rubber/styrene inversion point, i.e. the point at which the solution being reacted goes from polystyrene particles in a rubber/styrene monomer matrix to rubber particles in a polystyrene matrix.
- the degree of polymerization is about equal to the weight % of rubber in the system, it inverts e.g. the styrene/styrene polymer phase becomes continuous and the ru bber phase becomes discontinuous.
- Styrene is polymerized around and within the rubber particles which leads to polystyrene inclusions in the rubber particles.
- a portion of the styrene is polymerized by grafting on the rubber, another portion is homopolymerized, said portion is referred to as a "non-grafting" polymerization.
- a part of the styrene may be replaced by unsaturated monomers copolymerizable with styrene such as other monovinylaromatic monomers, alkyl esters of acrylic or methacrylic acid and acrylonitrile.
- styrene comonomer which means one portion of the styrene and of the comonomer are polymerized by grafting on the rubber, another portion of the styrene and of the comonomer are copolymerized.
- the properties of HIPS are related to the amount of rubber, the type of rubber, the rubber particles size distribution and volume fraction as well as the polystyrene included in the rubber particles.
- Rubber-modified vinylaromatic polymer compositions are well-known in the prior art. Composition fine-tuning so as to reach well balanced physical properties remains however a matter of know-how. Apart from the control of the phase rheological behaviours, the control of rubber phase grafting that occurs typically in situ during the conventional radical HIPS process is a challenge hard to overcome. Rubber phase grafting is indeed usually adjusted through the addition of organic peroxides, generating preferably H-abstracting radicals by thermal decomposition, and well-chosen according to their half-life decomposition temperature and the reactor temperature settings. However, the in situ rubber grafting during the HIPS process remains intrinsically a random reaction.
- the main features of the process of the present invention are the use of a grafting initiator, a viscous rubber essentially of linear structure and the use of a chain transfer agent before the phase inversion. Additionally, the process as described in the present invention is performed in one or several polymerization reactors, under batch-wise or continuous polymerization conditions, with preferably limited back-mixing conditions within the inversion reactor - i.e. the reactor within phase inversion takes place - and within the just-former and just- subsequent reactors, and with also limited spillback flows between these aforementioned reactors.
- EP 1201693 A2 has already described similar compositions for food containers and trays for a refrigerator but not for the liner. Moreover this prior art is silent on the ESCR of the liner due to the blowing agent of the insulation.
- WO 94 12551 A1 describes impact styrenic polymers having good ESCR properties and improved physical properties to be employed in the production of thinner sheet stock for use in the manufacture of, for example, refrigerator liners, thereby resulting in reduced liner manufacturing costs.
- the compositions have a volume average particle size of at least 4 microns and a melt strength of at least 4.5 grams. There are no specific requirements for the rubber and nothing is mentionned on the broadness of the rubber particle size distribution.
- the present invention is a refrigerator interior liner made of a rubber modified monovinylaromatic polymer composition
- a rubber modified monovinylaromatic polymer composition comprising: a) a monovinylaromatic polymer matrix having an average molecular weight in weight Mw above 150,000 g/mol, b) rubber particles dispersed therein, said particles having : a volume median particle size (RPS volume) of about 8.5 ⁇ m, a monomodal distribution with essentially no shoulder, a low-to-moderate crosslinking of the rubber expressed as a swell index (Sl) above13.8, a rubber phase volume fraction (RPVF) of at least 39%, c) a moderate amount of low- Mw plasticizers, defined as the weight fraction of solubles in methanol, and such that the weight ratio c/(a+b+c) ranges from 0 to 5%.
- RPS volume volume median particle size
- Sl swell index
- RPVF rubber phase volume fraction
- the present invention is also a process for preparing the above composition to make the refrigerator interior liner comprising : a) fo rm i n g a po l ym e riza bl e m ixtu re co m p ri s i n g at l east o n e monovinylaromatic monomer and optionally one or more comonomers, b) dissolving at least a viscous rubber of essentially linear structure in said polymerizable mixture to form a rubber containing polymerizable solution, c) contacting a free radical initiator and a chain transfer agent with the polymerizable mixture at conditions whereby phase inversion subsequently occurs, wherein the chain transfer agent is capable to produce an increase of the rubber to PS phase viscosity ratio within the inversion reactor, d) continuing the polymerization of the solution obtained at step c), optionally in the presence of a free radical initiator, until a monovinylaromatic polymer
- step d) there is an additional step for degassing the product of step d) to separate the optional unpolymerized monomers and comonomers, optional diluents and recovering the high impact monovinylaromatic polymer.
- the chain transfer agent makes the rubber particles less sensitive to the shear rate within the inversion reactor. This results in a homogeneous distribution of large rubber particles.
- the advantageous rubber of essentially linear structure within the frame of the present invention is characterized by SV-to-Mooney ratio of at least 2.8, and more preferably above 3.3.
- the Mw of the rubber ranges from 100,000 to 500,000 and preferably from 280,000 to 360,000 g/mol .
- the polydispersity index of the rubber ranges from 2.1 to 2.5 and preferably from 2.1 to 2.3. Rubber molecular-weights can be measured by the conventional size- exclusion chromatography techniques. They are here expressed in PS equivalents, i.e. using iso-molecular PS samples as calibration standards.
- the rubbers particularly suitable for this invention have a solution viscosity (SV), measured at 5.43% weight in toluene or styrene, of 50 to 1000 centipoises, preferably from 100 to 500 centipoises and more preferably from 120 to 250 centipoises.
- the rubbers particularly suitable for this invention also have a Mooney viscosity (ML4+1 , 100° C) of 5 to 120, preferably from 10 to 100 and more preferably from 30 to 60.
- the melt-flow index of the modified monovinylaromatic polymer composition to make the liner is advantageously from 2 to 10, more advantageously from 2 to 7, preferably from 2.5 to 6 and more preferably from 2.5 to 5.
- the present invention is also a process for preparing a high impact monovinylaromatic polymer comprising : a) form i ng a pol ymeriza bl e m ixtu re co m p r i s i n g a t l e a st o n e monovinylaromatic monomer and optionally one or more comonomers, b) dissolving at least a viscous rubber of essentially linear structure in said polymerizable mixture to form a rubber containing polymerizable solution, c) contacting a free radical initiator and a chain transfer agent with the polymerizable mixture at conditions whereby phase inversion subsequently occurs, wherein the chain transfer agent is capable to produce an increase of the rubber to PS phase viscosity ratio within the inversion reactor, d) continuing the polymerization of the solution obtained at step c), optionally in the presence of a free radical initiator, until a monovinylaromatic
- the chain transfer agent makes the rubber particles less sensitive to the shear rate within the inversion reactor. This results in a homogeneous distribution of large rubber particles.
- Monovinylaromatic polymer suitable for the present invention are those produced by polymerizing a vinyl aromatic monomer.
- the monovinylaromatic monomer it relates to any aromatic having a vinyl function.
- a part of the monovinylaromatic monomer may be replaced by unsaturated monomers copolymehzable with styrene.
- unsaturated monomers copolymehzable with styrene By way of example mention may be made of alkyl esters of acrylic or methacrylc acid, acrylonitrile and methacrylonitrile.
- the proportion of comonomer may be from 0 to 50% by weight for respectively 100 to 50% of the monovinylaromatic monomer.
- the monovinylaromatic polymer comprises : i) from 60 to 100 weight % of one or more C-8-12 monovinylaromatic monomers; and ii) from 0 to 40 weight % of one or more monomers selected from the group consisting of Ci -4 alkyl esters of acrylic or methacrylc acid and acrylonitrile and methacrylonitrile; which polymer may contain from about 2 to about 20 percent, preferably from about 3 to about 17 percent, more preferably about 3 to about 15 weight percent rubber, based on the total weight of the rubber modified monovinylaromatic polymer.
- Mw ranges from 150,000 to 250,000 g/mol, preferably from 160,000 to 190,000 g/mol and more preferably from 160,000 to 170,000 g/mol.
- the polydispersity index (ratio MwIMn ) ranges e.g . from 2.2 to 3, advantageously from 2.4 to 2.7.
- Mw ranges from 150,000 to 170,000 g/mol, preferably from 150,000 to 160,000 g/mol.
- Mw ranges from 180,000 to 220,000 g/mol, preferably from 190,000 to 210,000 g/mol.
- the rubbers preferably employed in the practice of the present invention one can cite those polymers and copolymers which exhibit a second order transition temperature which is not higher than about 0 0 C, preferably not higher than about -50 0 C and more preferably not higher than about -70°C as determined or approximated using conventional techniques, e.g., ASTM Test Method D-746-52 T.
- rubbers can be selected from the group consisting of: a) Co- and homopolymers of C 4- 6 conjugated diolefins, b) copolymers comprising from 60 to 85 weight % of one or more C 4- 6 conjugated diolefins and from 15 to 40 weight % of a monomer selected from the group consisting of acrylonithle and methacrylonithle and c) copolymers comprising from 20 to 60, preferably from 40 to 50 weight % of one or more C-8-12 vinyl aromatic monomers which are unsubstituted or substituted by a Ci -4 alkyl radical and from 60 to 40, preferably from 60 to 50 weight % of one or more monomers selected from the group consisting of C 4- 6 conjugated diolefins.
- the rubber may be prepared by a number of methods, preferably by emulsion or solution polymerization. These processes are well known to those skilled in the art. Highly preferred rubbers are alkadiene polymers. Suitable alkadienes are 1 ,3-conjugated dienes such as butadiene, isoprene, chloroprene or piperylene. Most preferred are homopolymers (excepting any coupl ing monomers) prepared from 1 ,3-conjugated dienes, with such homopolymers of 1 ,3- butadiene being especially preferred.
- Alkadiene copolymer rubbers containing small amounts, for example less than 15, preferably less than 10 weight percent, of other monomers such as monovinylidene aromatics can also be employed if the rubbers meet the other qualifications described herein.
- the most preferred rubbers are the linear homopolymers of 1 ,3-butadiene which have a cis content of at least 30 percent.
- the rubbers suitable for the present i nvention ca n be mad e by a n ion ic polym erization or Z ieg l er-Natta polymerization well known to those skilled in the art. Such processes are described e.g. in US 2002-107339, the content of which is incorporated in the present invention.
- An essentially linear rubber is e.g. a rubber which does not contain a significant amount of long chain branches. Such rubbers usually contain less that one long chain branch per 10,000 carbon atoms on the polymer backbone. These rubbers must have molecular-weights in the range most suitable for making HIPS and ABS resins.
- the micro-structure of the polybutadiene rubbers can be any of the conventional types containing various amounts of 1 ,2-vinyl, 1 ,4-cis and 1 ,4- trans levels. The level of branching in rubbers can be determined readily by the techniques generally well known to those skilled in the art as detailed in T. H. Mourey and S. T.
- the rubber of essentially linear structure recommended within the frame of the present invention is characterized by SV-to-Mooney viscosity ratio of at least 2.8, and more preferably above 3.3.
- the Mw of the rubber ranges from 100,000 to 500,000 and preferably from 280,000 to 360,000 g/mol.
- the polydispersity index of the rubber ranges from 2.1 to 2.5 and preferably from 2.1 to 2.3. Rubber molecular-weights can be measured by the conventional size- exclusion chromatography techniques. They are here expressed in PS equivalents, i.e. using iso-molecular PS samples as calibration standards.
- the rubbers particularly suitable for this invention have a solution viscosity (SV), measured at 5.43% weight in toluene or styrene, of 50 to 1000 centipoises, preferably from 100 to 500 centipoises and more preferably from 120 to 250 centipoises.
- the rubbers particularly suitable for this invention also have a Mooney viscosity (ML4+1 , 100° C) of 5 to 120, preferably from 10 to 100 and more preferably from 30 to 60.
- the rubber is advantageously employed in amounts such that the rubber-reinforced polymer product contains from about 2 to about 20 percent, preferably from about 3 to about 17 percent, more preferably about 3 to about 15 weight percent rubber, based on the total weight of the rubber modified monovinylaromatic polymer.
- the rubber phase volume fraction is a key parameter that characterizes the rubber dispersed phase and that can be calculated from Dynamic Mechnical Analysis (DMA) data.
- the rubber phase volume refers to the rubber particles or discontinuous phase, which consists of rubber, trapped polystyrene (occlusions) and grafted polymer.
- the Kerner's model Kerner, E. H., Proc. Phys. Soc. 69, 808, 1956
- Hashin's model Hashin, Z., ASME J. Appl.
- T 2 corresponding to a well-chosen temperature in between the glass transition temperatures of the rubber and of polystyrene (Tg rubber ⁇ T 2 ⁇ Tg PS) at which the storage modulus G' is steady.
- T2 is preferably chosen between -30 and +30 0 C.
- DMA measurements are carried out on compression-moulded samples, using an ARES (TA Instruments) rheometer in the torsion geometry.
- ARES TA Instruments
- the RPVF/%rubber ratio is important in the manufacture of H IPS materials because it represents the "rubber utilization efficiency" of the process, i.e., how much rubber must be used to obtain similar product quality. The less rubber needed to produce a set of desired properties in a HIPS material, the more efficient the process.
- the swell index is measured by dissolving the HiPS resin in toluene at room temperature (25°C). After separating the insoluble gel phase by centhfugation, the swollen gel is weighed, dried under vacuum and then the weight of the dry gel is obtained.
- the swell index is the ratio of the weight of swollen gel to dry gel, and it is a measure of the degree of cross-linking of the rubber phase.
- the swell index is a common parameter used to characterize the cross-linking degree of a rubber . The higher the swell index, the lower the rubber phase crosslinking level.
- the Gel Content or soft insoluble rubbery fraction, defined as the ratio of the weight of dry gel to the initial weight of the polymer sample, gives an indication of both the rubber phase crosslinling and grafting.
- the percent rubber is the total amount of rubber in the HIPS and is measured by the well-known Iodine Monochloride (I-CI) titration method.
- I-CI Iodine Monochloride
- the RPVF is at least 39%, advantageously at least 40%, preferably at least 42% and more preferably at least 45%.
- the SI is at least 14 and preferably at least 16.
- the said particle size is the diameter of the rubber particles as measured in the resultant product, including all occlusions of matrix polymer within rubber particles, which occlusions are generally present in the disperse rubber particles of a rubber- reinforced polymer prepared using mass polymerization techniques.
- morphology of the rubber particles in the different groups as it is well known, the smaller particles typically have a core-shell (single, major occlusion) or cellular (multiple, minor occlusions) morphology. The larger particles would generally have a cellular or similar multiple-occlusion morphology.
- the volume median particle size also referred as RPS volume
- the surface median particle size also referred as RPS surface
- the mode represents the value that occurs most frequently in a distribution. In particle size distributions, the mode is the particle diameter that occurs most frequently.
- the RPS volume is of about 8.5 ⁇ m.
- the RPS volume of about 8.5 ⁇ m means in the range 7 to 10 ⁇ m, and preferably in the range 8.0 to 9.0 ⁇ m.
- the monomodal distribution means that the distributions both in surface and volume are of the bell-shape with no shoulder nor side distributions.
- the particle size can be add itionally characterized by a RPS surface of about 6.5 ⁇ m.
- the RPS surface of about 6.5 ⁇ m means in the range 5 to 8 ⁇ m, advantageously in the range 5.2 to 7.8 ⁇ m and preferably in the range 5.5 to 7.5 ⁇ m.
- the broadness of the rubber particle size distribution can be also roughly estimated by the RPS volume-to-RPS surface ratio, which should be preferably below 2.0, more preferably below 1.5 and most preferably equal or below 1.4.
- the weight ratio c/(a+b+c) ranges advantageously from 0 to 5% and preferably from 1 to 4.5%.
- the plasticizer is any component that can increase the flexibility of the finished product, and reduce the melt viscosity of the bulk polymer to facilitate molding or extrusion.
- the plasticizer is e.g. a mineral oil or a non-mineral oil. "Mineral oil” means oil derived principally from petroleum, typically from the distillation of petroleum to produce gasoline.
- mineral oil is a mixture that contains a large number, e.g., hundreds, of different kinds of hydrocarbons, mainly linear and branched alkanes (n- and iso-paraffins) and cyclic paraffins, and it is liquid at ambient conditions.
- Non-mineral oil means one or more of vegetable, essential, silicone and animal oil.
- “Vegetable oil” means oil derived principally from plants, particularly the seeds and nuts of plants, and comprised largely of glycerides of saturated and unsaturated fatty acids, e.g., oleic, palmitic, stearic and linolenic.
- Animal oil means oil derived principally from animals, and those liquid under ambient conditions include fish oils, fish-liver oils, sperm oil and the like. Animal oils typically have high saturated fatty acid content.
- Essential oil means oil derived principally from flowers, stems and leaves. These oils are complex, volatile liquids, typically contain terpenes, and contain relatively little, if any, glycerides of fatty acids.
- the plasticizer is selected among the mineral or vegetable oil compatible with the rubber. A major part of said plasticizer migrates in the rubber and enhance the RPVF. Plasticizers with a special structure affinity with the rubber phase and of low volatility are particularly recommended.
- the plasticizer when the rubber is a polybutadiene, can be a butene oligomer of the type depicted in US 6,613,831 and also known as a polybutene oil, a crude rapeseed oil, or a refined sunflower oil, preferably mixed with a 70 to 100 cSt white mineral oil.
- the plasticizer is introduced prior or during the polymerization.
- the process of the invention is carried out as a diluted bulk polymerization process.
- the starting solution may be mixed with up to about ten percent (10%) by weight, based on the monovinylaromatic monomer employed, of an inert solvent so as to lower the polymerization bulk viscosity, to moderate polymerization heat and to improve thermal exchanges and heat homogeneity within the bulk.
- Suitable diluents include aromatic solvents such as ethylbenzene, toluene, xylenes, cyclohexane, and aliphatic hydrocarbon solvents, such as dodecane, isoparaffinic cuts and white spirits exhibiting average boiling points close to the EB and styrene b.p., and mixtures thereof.
- aromatic solvents such as ethylbenzene, toluene, xylenes, cyclohexane, and aliphatic hydrocarbon solvents, such as dodecane, isoparaffinic cuts and white spirits exhibiting average boiling points close to the EB and styrene b.p., and mixtures thereof.
- Monovinylaromatic polymer is initially formed from the monovinylaromatic monomer within the homogeneous rubber solution in monovinylaromatic monomer.
- the reacting sol ution is at a point prior to the rubber/ monovinylaromatic monomer inversion point, i.e. the point at which the solution being reacted goes from monovinylaromatic polymer particles in a rubber/ monovinylaromatic monomer matrix to rubber particles in a monovinylaromatic polymer matrix.
- a free radical initiator and a chain transfer agent are contacted with the polymerizable mixture prior to the inversion point such that when the phase inversion subsequently occurs, the molecular weight of the monovinylaromatic polymer before and during the phase inversion is considerably lowered as compared with what it would be in the absence of chain transfer agent.
- the purpose of said molecular weight lowering is to have simultaneously a high viscous rubber phase and a fluid monovinylaromatic polymer phase at inversion point. These conditions are deemed to produce large rubber particles. Besides, they result in a much sharper increase of the rubber-to-PS phase viscosity ratio around phase inversion, making the thus formed rubber particles much less sensitive to the shear rate generated by the agitation conditions within the inversion reactor and the subsequent reactors. In other words, the large particles thus formed in the inversion reactor are less prone to be dismantled and sheared, guaranteeing a more uniform rubber particle size distribution.
- chain transfer agents mercaptans or alpha- methyl styrene dimer.
- mercaptans the most preferred one is n-dodecyl mercaptan.
- Chain transfer agent is generally employed in an amount of from about 0.001 to about 0.5 weight percent based on the total weight of the polymerization mixture to which it is added .
- the active transfer agent is preferably introduced in the pre-inversion reactor for guaranteeing the production of a well-uniform distribution of rubber particles in the subsequent inversion reactor.
- the peroxides can be classified as grafting initiators and as non-grafting initiators.
- the grafting initiator doesn't make only grafting polymerization and non-grafting initiator doesn't make only non-grafting polymerization but the grafting initiator has an enhanced power to lead to grafting polymerization than the non-grafting initiator.
- the grafting initiator is advantageously selected from the group consisting of 1 ,1 -di-(t-butylperoxy)cyclohexane; 1 ,1 -di-(t- amylperoxy)cyclohexane); 1 ,1-di-(t-butylperoxy)-3,3,5-thmethyl-cyclohexane; 00-t-amyl-0-(2-ethylbexyl monoperoxy-carbonate); OO-t-butyl O-isopropyl monoperoxy-carbonate; OO-t-butyl-0-(2-ethylhexyl) monoperoxy-carbonate; butyl 4,4-di(t-butylperoxy)valerate; Ethyl 3,3-Di-(t-butylperoxy)butyrate; and mixtures thereof.
- the non-grafting initiator is advantageously selected from the group consisting of 2 ,2'-azobis(isobutyronithle), 2,2'-azobis(2-methylbutyronithle), lauroyl peroxide, decanoyl peroxide, and mixtures thereof. From about 50 to about 2000, preferably from about 100 to about 1500, weight parts of the initiator are employed per million weight parts of the polymerizable mixture.
- Monovinylaromatic monomer is polymerized around and within the rubber particles, which leads to monovinylaromatic polymer inclusions in the rubber particles.
- a portion of the monovinylaromatic monomer is polymerized by grafting on the rubber, another portion is homopolymerized, said portion is referred to as a "non-grafting" polymerization.
- a part of the monovinylaromatic monomer may be replaced by unsaturated copolymerizable monomers as explained above.
- grafting and “non-grafting” occurs with the comonomer, which means one portion of the monovinylaromatic monomer and of the comonomer are polymerized by grafting on the rubber and another portion of the monovinylaromatic monomer and of the comonomer are copolymerized.
- the high impact monovinylaromatic polymers of the present invention can be prepared using additives.
- additives include fillers such as talc, organoclays (clays wetted by an organic compatibilizer), anti oxidants (e.g., alkylated phenols such as di-tert-butyl-p-cresol or phosphates such as tri-nonyl phenyl phosphate), UV stabilizers, lubricants, mold release agents e.g., zinc stearate; PE waxes, pigments and the like.
- Any additive known to be useful in preparing high impact monovinylaromatic polymers to those of ordinary skill in the art of preparing such polymers can be used with the present invention.
- These addititives, if any, are added to the reaction mixture where appropriate including before, during or after polymerization.
- Refrigerator liners are commonly manufactured industrially using extruded sheets of HIPS. The sheets are thermoformed into the desired shape and size by first heating them to bring the polymer above its glass transition temperature. The softened polymer is then pressed into a predetermined shape of a door or inner liner.
- the present invention is also a process for preparing a high impact monovinylaromatic polymer comprising: a) fo rm i n g a po l ym e riza bl e m ixtu re co m p ri s i n g at l east o n e monovinylaromatic monomer and optionally one or more comonomers, b) dissolving at least a viscous rubber of essentially linear structure in said polymerizable mixture to form a rubber containing polymerizable solution, c) contacting a free radical initiator and a chain transfer agent with the polymerizable mixture at conditions whereby phase inversion subsequently occurs, wherein the chain transfer agent is capable to produce an increase of the rubber to PS phase viscosity ratio within the inversion reactor, d) continuing the polymerization of the solution obtained at step c), optionally in the presence of a free radical initiator, until a monovinylaromatic poly
- step d) there is an additional step for degassing the product of step d) to separate the optional unpolymerized monomers and comonomers, optional diluents and recovering the high impact monovinylaromatic polymer.
- the chain transfer agent makes the rubber particles less sensitive to the shear rate within the inversion reactor. This results in a homogeneous distribution of large rubber particles.
- the advantageous rubber of essentially linear structure within the frame of the present invention is characterized by SV-to-Mooney ratio of at least 2.8, and more preferably above 3.3.
- the Mw of the rubber ranges from 100,000 to 500,000 and preferably from 280,000 to 360,000 g/mol.
- the polydispersity index of the rubber ranges from 2.1 to 2.5 and preferably from 2.1 to 2.3. Rubber molecular-weights can be measured by the conventional size- exclusion chromatography techniques. They are here expressed in PS equivalents, i.e. using iso-molecular PS samples as calibration standards.
- the rubbers particularly suitable for this invention have a solution viscosity (SV), measured at 5.43% weight in toluene or styrene, of 50 to 1000 centipoises, preferably from 100 to 500 centipoises and more preferably from 120 to 250 centipoises.
- the rubbers particularly suitable for this invention also have a Mooney viscosity (ML4+1 , 100° C) of 5 to 120, preferably from 10 to 100 and more preferably from 30 to 60.
- the rubber is advantageously employed in amounts such that the rubber-reinforced polymer product contains from about 2 to about 20 percent, preferably from about 3 to about 17 percent, more preferably about 3 to about 15 weight percent rubber, based on the total weight of the rubber modified monovinylaromatic polymer.
- Rubber particle sizes are measured with a laser granulometer.
- the swell index when mentioned, is calculated from the wet weight and dry weight obtained by ultra-centrifugating a solution of HiPS in toluene, according to the method described above.
- the rubber phase volume fraction is calculated from Hashin's model and DMA results, using the Equation (1 ) given above.
- melt-flow indices are measured following ISO 1133 (5 kg loading, 200 0 C).
- An extensiometer is used to record the displacement and the elongation at break with a good accuracy.
- Five (5) non-deformed and non-oil-exposed halters are used as references and submitted solely to tensile test measurements.
- the stress-cracking resistance is expressed in % as the averaged elong. @ brk of the oil-exposed & deformed specimens divided by the averaged elong. @ brk of the reference specimens. See Fig 1 ;
- a variant of this test consists in following up the drop of the elongation properties - the non-exposed and non-deformed samples being still taken as references - after a given time.
- a 5 liter continuously stirred tank reactor (CSTR) used as an inversion reactor is continuously fed with a 1.5 liter/hr flow of a rubber solution consisting of :
- This feed composition is polymerized within this inversion reactor at a temperature of 135°C in the presence of 60 ppm of commercial ter-butylperoxy- isopropylcarbonate (Akzo Trigonox BPIC-C75, injected as it is) and of 60 ppm of commercial N DM (n-dodecyl mercaptan) from Arkema.
- the average residence time is of c.a. 90 min.
- the agitation speed in the reactor was adjusted so as to maintain a max shear rate at the tip of the blade of 48 s "1 .
- the bulk collected at the outlet of the inversion reactor and characterized by a solid content of c.a.
- a rubber solution feed consisting of 8.5% of commercial 170 cps LiBR lntene 50 AF from Polimeri Europa and 3% of 70 cSt white mineral oil continuously feeds a series of polymerization reactors.
- the rubber solution is mixed with a recycle flow made of c.a. 58% styrene monomer and 42% diluent (ethylbenzene mainly).
- the global flowrate within the reactor train is of 40 kg/hr.
- the feed solution is preheated at 90 0 C in a tubular preheater.
- Luperox TBIC- M75 commercial organic peroxide
- NDM non-devolatilizers
- R-201 L the temperature of which is set at 110°C and which has an average residence time of 45 min.
- the solid content of this reactor is kept within the 12-14% solids range, i.e. well below phase inversion.
- the bulk solution therein is maintained under a high shear rate to limit the risks of formation of rubbery gels.
- Phase inversion proceeds under various conditions in the subsequent CSTR- type reactor R-202L, characterized by an average residence time of 1 10 min. and smooth agitation conditions (the agitation speed is set so as to maintain a max shear rate at the tip of the blade of 11 s "1 ).
- the polymerization is then finished in a series of plug-flow type reactors, before the product is degassed in a series of two flash-devolatilizers and pelletized.
- Example 3 the TBIC dosage and the reactor & DV settings are adjusted so as to produce a standard HiPS suitable for conventional extrusion- thermoforming applications. No NDM is injected in the reactors.
- Example 4 the TBIC & NDM dosages as well as the reactor settings are adjusted so as to produce a HiPS grade of improved stress-cracking resistance, as described in the embodiments of the present invention.
- the ESCR grade is further improved in Example 5 with refined devolatilization conditions.
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Abstract
Description
Claims
Priority Applications (11)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
KR1020117021348A KR101288783B1 (en) | 2009-03-10 | 2010-03-09 | Refrigerator interior liner |
EA201171056A EA021374B1 (en) | 2009-03-10 | 2010-03-09 | Refrigerator interior liner and process for preparing same |
SG2011055860A SG173519A1 (en) | 2009-03-10 | 2010-03-09 | Refrigerator interior liner |
PL10708758T PL2406314T3 (en) | 2009-03-10 | 2010-03-09 | Refrigerator interior liner |
EP10708758.7A EP2406314B1 (en) | 2009-03-10 | 2010-03-09 | Refrigerator interior liner |
CN201080011372.4A CN102348755B (en) | 2009-03-10 | 2010-03-09 | Refrigerator interior liner |
US13/203,886 US8785545B2 (en) | 2009-03-10 | 2010-03-09 | Refrigerator interior liner |
BRPI1009294-3A BRPI1009294B1 (en) | 2009-03-10 | 2010-03-09 | INTERNAL COATING FOR REFRIGERATORS |
JP2011553429A JP5592411B2 (en) | 2009-03-10 | 2010-03-09 | Refrigerator interior liner |
US14/222,856 US9127149B2 (en) | 2009-03-10 | 2014-03-24 | Process for preparing a polymer to make refrigerator interior liners |
US14/696,845 US9512309B2 (en) | 2009-03-10 | 2015-04-27 | Refrigerator interior liner |
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
EP09154704A EP2230260A1 (en) | 2009-03-10 | 2009-03-10 | Rubber modified monovinylaromatic polymer composition |
EP09154704.2 | 2009-03-10 |
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US13/203,886 A-371-Of-International US8785545B2 (en) | 2009-03-10 | 2010-03-09 | Refrigerator interior liner |
US14/222,856 Division US9127149B2 (en) | 2009-03-10 | 2014-03-24 | Process for preparing a polymer to make refrigerator interior liners |
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WO2010103007A1 true WO2010103007A1 (en) | 2010-09-16 |
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PCT/EP2010/052984 WO2010103007A1 (en) | 2009-03-10 | 2010-03-09 | Refrigerator interior liner |
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US (3) | US8785545B2 (en) |
EP (2) | EP2230260A1 (en) |
JP (2) | JP5592411B2 (en) |
KR (1) | KR101288783B1 (en) |
CN (1) | CN102348755B (en) |
BR (1) | BRPI1009294B1 (en) |
CO (1) | CO6420356A2 (en) |
EA (1) | EA021374B1 (en) |
PL (1) | PL2406314T3 (en) |
SG (1) | SG173519A1 (en) |
WO (1) | WO2010103007A1 (en) |
Cited By (1)
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US10066094B2 (en) | 2013-02-26 | 2018-09-04 | Trinseo Europe Gmbh | High impact polystyrene having high modulus and resistance to environmental stress cracking |
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JP6422663B2 (en) * | 2014-04-08 | 2018-11-14 | 東洋スチレン株式会社 | Rubber-modified styrenic resin for frozen containers, sheets using the same, and food containers |
US20160169575A1 (en) * | 2014-12-12 | 2016-06-16 | Honeywell International Inc. | Abs liners and cooling cabinets containing same |
KR102237633B1 (en) * | 2017-12-04 | 2021-04-08 | 주식회사 엘지화학 | Heat-resistant resin composition |
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US20150225493A1 (en) | 2015-08-13 |
KR101288783B1 (en) | 2013-07-22 |
US9127149B2 (en) | 2015-09-08 |
JP2014196498A (en) | 2014-10-16 |
SG173519A1 (en) | 2011-09-29 |
EP2406314B1 (en) | 2015-02-25 |
PL2406314T3 (en) | 2015-08-31 |
EP2230260A1 (en) | 2010-09-22 |
CN102348755B (en) | 2014-11-26 |
US8785545B2 (en) | 2014-07-22 |
BRPI1009294A2 (en) | 2016-03-08 |
BRPI1009294B1 (en) | 2020-02-27 |
JP2012520363A (en) | 2012-09-06 |
US20120059110A1 (en) | 2012-03-08 |
KR20110133562A (en) | 2011-12-13 |
CN102348755A (en) | 2012-02-08 |
EA201171056A1 (en) | 2012-01-30 |
JP5592411B2 (en) | 2014-09-17 |
US9512309B2 (en) | 2016-12-06 |
EP2406314A1 (en) | 2012-01-18 |
US20140323643A1 (en) | 2014-10-30 |
EA021374B1 (en) | 2015-06-30 |
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