WO2014093438A1 - Radiation stabilized pvc compositions, and method of making same - Google Patents

Radiation stabilized pvc compositions, and method of making same Download PDF

Info

Publication number
WO2014093438A1
WO2014093438A1 PCT/US2013/074297 US2013074297W WO2014093438A1 WO 2014093438 A1 WO2014093438 A1 WO 2014093438A1 US 2013074297 W US2013074297 W US 2013074297W WO 2014093438 A1 WO2014093438 A1 WO 2014093438A1
Authority
WO
WIPO (PCT)
Prior art keywords
pvc
pvc article
limited
article according
amount
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/US2013/074297
Other languages
French (fr)
Inventor
Anthony Bourassa
Vadim V. Krongauz
Yann-Per Lee
Michael Tung-Kiung Ling
Richard J. Mennenoh
Zehra Sibel SEVINC
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Baxter Healthcare SA
Baxter International Inc
Original Assignee
Baxter Healthcare SA
Baxter International Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Baxter Healthcare SA, Baxter International Inc filed Critical Baxter Healthcare SA
Publication of WO2014093438A1 publication Critical patent/WO2014093438A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Classifications

    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08KUse of inorganic or non-macromolecular organic substances as compounding ingredients
    • C08K5/00Use of organic ingredients
    • C08K5/04Oxygen-containing compounds
    • C08K5/09Carboxylic acids; Metal salts thereof; Anhydrides thereof
    • C08K5/098Metal salts of carboxylic acids
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08LCOMPOSITIONS OF MACROMOLECULAR COMPOUNDS
    • C08L91/00Compositions of oils, fats or waxes; Compositions of derivatives thereof
    • C08L91/06Waxes
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08JWORKING-UP; GENERAL PROCESSES OF COMPOUNDING; AFTER-TREATMENT NOT COVERED BY SUBCLASSES C08B, C08C, C08F, C08G or C08H
    • C08J3/00Processes of treating or compounding macromolecular substances
    • C08J3/28Treatment by wave energy or particle radiation
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08JWORKING-UP; GENERAL PROCESSES OF COMPOUNDING; AFTER-TREATMENT NOT COVERED BY SUBCLASSES C08B, C08C, C08F, C08G or C08H
    • C08J5/00Manufacture of articles or shaped materials containing macromolecular substances
    • C08J5/18Manufacture of films or sheets
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08KUse of inorganic or non-macromolecular organic substances as compounding ingredients
    • C08K3/00Use of inorganic substances as compounding ingredients
    • C08K3/18Oxygen-containing compounds, e.g. metal carbonyls
    • C08K3/20Oxides; Hydroxides
    • C08K3/22Oxides; Hydroxides of metals
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08KUse of inorganic or non-macromolecular organic substances as compounding ingredients
    • C08K5/00Use of organic ingredients
    • C08K5/0008Organic ingredients according to more than one of the "one dot" groups of C08K5/01 - C08K5/59
    • C08K5/0016Plasticisers
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08KUse of inorganic or non-macromolecular organic substances as compounding ingredients
    • C08K5/00Use of organic ingredients
    • C08K5/04Oxygen-containing compounds
    • C08K5/10Esters; Ether-esters
    • C08K5/12Esters; Ether-esters of cyclic polycarboxylic acids
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08KUse of inorganic or non-macromolecular organic substances as compounding ingredients
    • C08K5/00Use of organic ingredients
    • C08K5/04Oxygen-containing compounds
    • C08K5/15Heterocyclic compounds having oxygen in the ring
    • C08K5/151Heterocyclic compounds having oxygen in the ring having one oxygen atom in the ring
    • C08K5/1515Three-membered rings
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08LCOMPOSITIONS OF MACROMOLECULAR COMPOUNDS
    • C08L23/00Compositions of homopolymers or copolymers of unsaturated aliphatic hydrocarbons having only one carbon-to-carbon double bond; Compositions of derivatives of such polymers
    • C08L23/02Compositions of homopolymers or copolymers of unsaturated aliphatic hydrocarbons having only one carbon-to-carbon double bond; Compositions of derivatives of such polymers not modified by chemical after-treatment
    • C08L23/04Homopolymers or copolymers of ethene
    • C08L23/06Polyethylene
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61LMETHODS OR APPARATUS FOR STERILISING MATERIALS OR OBJECTS IN GENERAL; DISINFECTION, STERILISATION OR DEODORISATION OF AIR; CHEMICAL ASPECTS OF BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES; MATERIALS FOR BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES
    • A61L2/00Disinfection or sterilisation of materials or objects, in general; Accessories therefor
    • A61L2/02Disinfection or sterilisation of materials or objects, in general; Accessories therefor using physical processes
    • A61L2/08Radiation
    • A61L2/081Gamma radiation
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61LMETHODS OR APPARATUS FOR STERILISING MATERIALS OR OBJECTS IN GENERAL; DISINFECTION, STERILISATION OR DEODORISATION OF AIR; CHEMICAL ASPECTS OF BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES; MATERIALS FOR BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES
    • A61L2103/00Materials or objects being the target of disinfection or sterilisation
    • A61L2103/15Laboratory, medical or dentistry appliances, e.g. catheters or sharps
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08JWORKING-UP; GENERAL PROCESSES OF COMPOUNDING; AFTER-TREATMENT NOT COVERED BY SUBCLASSES C08B, C08C, C08F, C08G or C08H
    • C08J2327/00Characterised by the use 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 a halogen; Derivatives of such polymers
    • C08J2327/02Characterised by the use 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 a halogen; Derivatives of such polymers not modified by chemical after-treatment
    • C08J2327/04Characterised by the use 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 a halogen; Derivatives of such polymers not modified by chemical after-treatment containing chlorine atoms
    • C08J2327/06Homopolymers or copolymers of vinyl chloride
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08KUse of inorganic or non-macromolecular organic substances as compounding ingredients
    • C08K3/00Use of inorganic substances as compounding ingredients
    • C08K3/18Oxygen-containing compounds, e.g. metal carbonyls
    • C08K3/20Oxides; Hydroxides
    • C08K3/22Oxides; Hydroxides of metals
    • C08K2003/2227Oxides; Hydroxides of metals of aluminium
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08KUse of inorganic or non-macromolecular organic substances as compounding ingredients
    • C08K3/00Use of inorganic substances as compounding ingredients
    • C08K3/18Oxygen-containing compounds, e.g. metal carbonyls
    • C08K3/20Oxides; Hydroxides
    • C08K3/22Oxides; Hydroxides of metals
    • C08K2003/2289Oxides; Hydroxides of metals of cobalt

Definitions

  • the present disclosure relates generally to polyvinyl chloride (PVC) compositions. More particularly, the disclosure relates to PVC compositions with enhanced color resistance to electromagnetic irradiation & shelf life color stability.
  • PVC polyvinyl chloride
  • Polyvinyl chloride (PVC) compositions, and articles made therefrom, are well known in the art. Particularly, a variety of medical devices are formed out of PVC. An effective method for the sterilization of such medical devices is exposure of the device to gamma-radiation. However, upon exposure to heat or electromagnetic radiation, including ultraviolet, electron beam, X-ray and gamma radiation, polyvinyl chloride articles may eventually alter their appearance and in particular their color.
  • PVC Polyvinyl chloride
  • the alteration in appearance of an irradiated PVC material is generally in one and/or two general visually noticeable areas.
  • the first alteration in appearance is when the material appears to become more yellow.
  • the second alteration in appearance is where there is a distinct color change for example to display more blue or green.
  • This alteration in appearance may be fairly immediate or may occur over a longer period of time extending several weeks or months.
  • the alteration in appearance may cause the user of the device to believe it is no longer suitable for use. Because medical devices may be sold with a relatively long shelf life, having even a slight color change between the recently purchased products and those that have been in inventory longer will be especially noticeable and lead to complaints.
  • UV bleaching it is known to attempt to minimize the alteration in appearance by UV bleaching, this process appears insufficient in minimizing the level of appearance alteration.
  • One aspect of the disclosure is a gamma-irradiated polyvinyl chloride (PVC) article, including a mixture of a PVC resin, a primary plasticizer present in an amount of about 30 to about 60 phr and a metal-carboxylate acid scavenger present in an amount of about 0.01 to about 0.5 phr.
  • PVC polyvinyl chloride
  • Another aspect of the disclosure is a method of making a gamma-irradiated PVC article, including the steps of providing a PVC article including a mixture of a PVC resin, a primary plasticizer present in an amount of about 30 phr to about 60 phr and a metal- carboxylate acid scavenger present in an amount of about 0.01 to about 0.5 phr, and exposing the PVC article to gamma radiation in an amount in a range of about 10 KGy to about 100 KGy.
  • PVC article including a mixture of a PVC resin, a primary plasticizer present in an amount of about 25 to about 55 phr, and an inorganic colorant in an amount of at least about 0.008 phr and optionally less than 0.15 phr.
  • the PVC article is gamma-irradiated.
  • Another aspect of the disclosure is a method of making a gamma-irradiated PVC article, including the steps of providing a PVC article including a mixture of a PVC resin, a primary plasticizer present in an amount of about 30 to about 60 phr, and an inorganic colorant in an amount of at least about 0.008 phr and optionally less than 0.15 phr, and exposing the PVC article to gamma radiation in an amount in a range of about 10 KGy to about 100 KGy.
  • Figure 1 shows a plot of the change in color vs. time post-sterilization (in weeks) for molded PVC articles sterilized with 27 KGy Gamma radiation and aged at 57 °C and comprised of a commercially-available, medical grade Control PVC (hot runner mold), the medical grade Control PVC (cold runner mold), DEHP-free PVC with 5 ppm Co/Al oxide inorganic pigment, and the medical grade Control DEHP-free PVC with 50 ppm Co/Al oxide inorganic pigment.
  • Figure 2 shows a plot of PVC part color change in the presence of different colorants. This plot shows indicates that PVC compositions with organometallic colorant after gamma radiation exposure became yellower to a great extent following accelerated aging at 57 °C while PVC compositions with inorganic colorant retained their original color.
  • Figures 3(a)-3(c) show plots of PVC part yellowness index (YI) change as a function of sterilization dose, colorant type & colorant concentration. These plots provide a comparison of PVC compositions prepared with (a) inorganic, (b) organic, and (c) organometallic colorants. The plots indicate that PVC compositions with inorganic colorant retained their yellowness index after gamma radiation while PVC compositions with organic & organometallic colorants did not retain their original color following gamma radiation.
  • Figures 3(a)-3(c) are the same as Figures 4(a)-4(c) except that the approximate yellowness index (YI) color bands are indicated by brackets in Figures 3(b) and 3(c). In Figure 3(a) the Yellowness Index did not vary substantially over the range of sterilization and concentration shown, YI ranging only from about 4 to about -2.
  • Figure 4 shows a plot of PVC color change ( ⁇ ) vs. time post-sterilization (in weeks) for molded PVC articles sterilized with 16-21 KGy Gamma radiation and aged at 40 °C comprised of (in order from top to bottom in the figure) a commercially-available, medical grade Non-DEHP PVC, a medical grade DEHP PVC, DEHP-free PVC with 100 ppm Co/Al oxide inorganic pigment, DEHP-free PVC with 50 ppm Co/Al oxide inorganic pigment.
  • the gamma-irradiated PVC articles include a PVC resin, a primary plasticizer present in an amount of about 30 to about 60 phr and a metal-carboxylate acid scavenger present in an amount of about 0.01 to about 0.5 phr.
  • a gamma-irradiated, plasticized PVC article further includes a secondary plasticizer present in an amount up to about 30 phr.
  • the PVC articles according to the disclosure include a PVC resin, a primary plasticizer present in an amount of about 25 to about 55 phr, and an inorganic colorant in an amount of at least about 0.008 phr and optionally less than about 0.15 phr, for example in a range of about 0.008 phr to 0.149 phr.
  • the PVC articles according to this aspect can further include a secondary plasticizer present in an amount up to about 30 phr and/or a metal-carboxylate acid scavenger present in an amount up to about 0.5 phr.
  • the PVC article is gamma-irradiated.
  • the PVC articles according to the disclosure are heat processed.
  • methods of making gamma-irradiated PVC articles including the steps of providing a PVC article according to the disclosure and exposing the PVC article to gamma radiation in an amount in a range of about 10 KGy to about 100 KGy.
  • the method further includes heat processing the PVC mixture to form the PVC article.
  • the gamma- sterilized PVC articles of the disclosure can be particularly advantageous in that they can be designed such that the articles are less yellow after electromagnetic irradiation, e.g. having a maximum yellowness index as described herein of 7, or 6, or 5, for example after gamma-irradiation, as measured by a colorimeter.
  • the minimum yellow index can be -3, or -2, or -1, for example.
  • Contemplated ranges include any combination of the foregoing and intermediate values, for example -2 to 7, -2 to 6, and -2 to 5, and -1 to 5.
  • the PVC article can be designed such that the clarity & color of the PVC article is maintained following gamma irradiation (see Figures 3 and 4).
  • the PVC article can undergo UV bleaching to reduce the amount of yellowing after irradiation, in a further aspect of the disclosure, the PVC article can be designed such the articles are less yellow after irradiation without UV bleaching of the article.
  • compositions, articles, and their methods of manufacture and use are contemplated to include embodiments including any combination of one or more of the additional optional elements, features, and steps further described below (including those shown in any figures), unless stated otherwise. While the present disclosure provides PVC examples, the compositions and articles described herein can be based upon other halogenated polymers, including, but not limited to, vinylidene chloride and fluoro polymers, for example.
  • wt.% and wt% are intended to refer to the composition of the identified element in “dry” (non water) parts by weight of the entire composition (when applicable).
  • phr is intended to refer to the composition of the identified element in parts per one hundred parts halogenated polymer resins, e.g. polyvinyl chloride (PVC) resin.
  • PVC resins suitable for use in PVC articles of the disclosure include medical-grade and food-grade polyvinyl chloride homopolymers, available, for example, from OxyVinyls, LP (Dallas, TX).
  • the PVC resin can be included in the composition in any suitable amount, for example an amount in a range of about 35 wt to about 90 wt .
  • the preferred weight ratio of the amount of the PVC resin as compared to the combined amount of all additives can be any suitable ratio, for example a ratio in a range of about 0.5 to about 5, or about 1 to 3, or about 1 to 2.
  • the K value of PVC is correlated with the molecular weight of PVC and is often used as a proxy for molecular weight.
  • PVC resins for use in the compositions described herein can be characterized by any suitable K value for the desired PVC article end use as is already known in the art, optionally a K value in a range of about 35 to about 80, optionally in a range of about 60 to about 80, for example 70.
  • Acid scavengers will be evident to the person of ordinary skill in the art in view of the present disclosure.
  • Metal salt and metal oxide (such as MgO, ZnO, CaO, etc.) acid scavengers are commonly added to PVC compositions to stabilize the compositions to heat and radiation during both the formation of PVC articles and the long-term storage of PVC articles.
  • Suitable acid scavengers can be selected from those already known in the art.
  • suitable acid scavengers for use in compositions according to the disclosure can include alkaline metal carboxylates, including but not limited to, metal stearates, metal palmitates, metal salts of other C 14 -C2o fatty acetates, and combinations thereof.
  • Suitable metals for use herein include, but are not limited to, Zn, Ca, Cd, Ba, Al, Pb and combinations thereof. Without intending to be bound by theory, it is believed that the ZnCl 2 formed by the reaction of a zinc carboxylate with HC1 can act as a catalyst towards further
  • the acid scavenger will not include zinc
  • the acid scavenger comprises two or more metal carboxylates.
  • one of the two or more metal carboxylates is a zinc carboxylate.
  • the acid scavenger comprises a combination of calcium carboxylate and zinc carboxylate.
  • the acid scavenger comprises a combination of calcium stearate and zinc stearate.
  • the acid scavenger consists only of a zinc stearate.
  • the amount of the acid scavengers incorporated into the composition can be less than 0.5 phr, for example in a range of about 0.01 to about 0.5 phr, or about 0.01 to 0.49 phr, or 0.01 to 0.45 phr.
  • the amount of acid scavenger incorporated into a composition can be defined by the relative amount of acid scavenger to primary plasticizer, as measured by their FTIR peak intensities. For example, the characteristic IR peak for Ca/Zn stearate is 1540 cm "1 and the characteristic IR absorption peak for aromatic type plasticizer is 1600 cm "1 .
  • the acid scavenger to primary plasticizer ratio is less than 0.2, or less than 0.1, or less than 0.05, or less than 0.01.
  • the amount of acid scavenger necessary to provide stabilization to gamma irradiation can vary depending on the type of plasticizer included in the composition.
  • Some plasticizers for example, epoxidized oils, protect PVC from thermal and gamma radiation-induced discoloration while others, for example, diethylhexylphthalate offer no protection.
  • the acid scavenger such as epoxy-group containing compounds or alkaline earth metal salts (Mg, Zn, Al, Ca, etc.) stabilizes the PVC to discoloration caused by high temperature or by gamma-radiation exposure. It is believed that discoloration of PVC is caused by the formation of conjugated polyenes forming due to dehydrochlorination of the PVC resin. Further, it is believed that the hydrochloric acid (HC1) formed from the dehydrochlorination of the PVC autocatalyzes further release of HC1.
  • the PVC composition includes less than 0.5 phr acid scavenger and does not include secondary stabilizers.
  • the HC1 released upon thermal forming of PVC and subsequent gamma radiation may undergo radiation-induced radical decomposition. It is believed that the resulting chlorine and hydrogen radicals can react with the double bonds of the PVC, removing conjugation and reducing coloration of the partially-degraded PVC.
  • the PVC compositions herein include one or more inorganic colorants.
  • the inorganic colorant is an inorganic pigment.
  • the inclusion of inorganic colorants into PVC compositions can stabilize the PVC compositions against color change upon molding of PVC articles and also upon exposure of a PVC article to gamma radiation.
  • Inorganic colorants can be included in a PVC composition in an amount of about 5 ppm to about 50 ppm or 100 ppm, for example.
  • Suitable inorganic colorants include metal oxides, and may include one or more different metals.
  • the inorganic colorant is a ternary oxide.
  • Suitable metals for inorganic colorants include, but are not limited to, the transition metals and metals of groups IIA, IIIB, and IVB.
  • the inorganic colorant is blue in color.
  • the inorganic colorant is purple in color.
  • Inorganic colorants may be included in the PVC composition in an amount in the range of about 0.01 phr to about 0.5 phr, or about 0.01 phr to about 0.1 phr, or about 0.01 phr to about 0.05 phr, or about 0.04 phr.
  • Inorganic pigments may be included in the PVC composition in an amount of at least 0.008 phr and optionally less than 0.15 phr, or in a range of about 0.008 phr to less than 0.15 phr, for example.
  • metal will vary based on the concentration to be included in the composition. For example, it has been found that organometallic colorants provide higher intensity of color than inorganic colorants when used at the same colorant concentration. Also, transparency may be lost when the inorganic colorants are used at high amount where organic colorants would still retain transparency.
  • PVC compositions that include an inorganic colorant maintain almost invariant coloration and appearance after gamma irradiation.
  • PVC compositions with organic colorants are initially colored and undergo a color change during exposure to gamma radiation, and accelerated aging.
  • PVC compositions with organometallic colorants are initially colored and either undergo a color change or maintain their color during exposure to gamma radiation, however they cannot retain the same color upon accelerated aging after gamma irradiation.
  • Blue organic and organometallic colorants (pigments and dyes) are added to PVC compositions to mask the yellow color formation that occurs upon exposure to heat and/or radiation and/or accelerated aging.
  • these pigments and dyes may degrade under radiation exposure or accelerated aging, resulting in color change.
  • PVC articles that include organic or organometallic colorants are colored either pre-gamma radiation or post-gamma radiation, and often both.
  • the PVC compositions described herein can be designed to maintain their color and appearance before and after irradiation and can therefore be used both in applications that require the PVC to undergo gamma radiation sterilization and applications that do not.
  • irradiated PVC articles according to the disclosure that include inorganic colorants also exhibit long term color stability, up to 17 weeks, as determined by accelerated aging studies of post-gamma irradiated (27KGy) articles at 57 °C.
  • inorganic colorants stabilize PVC to gamma radiation by one or both of two mechanisms.
  • the inorganic pigment acts as an acid scavenger thereby reducing the amount of HC1 available for autocatalysis of dehydrochlorination of the PVC which leads to formation of colored conjugated polyenes.
  • the inorganic pigment can terminate radicals that are formed or which would otherwise be formed during gamma irradiation. Inhibition of PVC degradation by transition metals and their compounds may start at the early stages of gamma radiation and lead to prevention of organic, and hydrogen and chlorine radicals formation .
  • the PVC compositions according to the disclosure can include other optional additive ingredients including, but not limited to, plasticizers, lubricants, impact modifiers, biocides, fillers, colorants, antioxidants, and other functional ingredients, for example in amounts suitable for their intended purpose.
  • the PVC compositions according to the disclosure can include a primary and, optionally, a secondary plasticizer.
  • Plasticizers for use in PVC compositions are well known in the art. Suitable plasticizers for use as a primary or secondary plasticizer include phthalate plasticizers, for example di-2-ethylhexylphthalate (DEHP), di(2-ethylhexyl) terephthalate (DEHT), di-butylphthalate (DBP), di-isobutylphthalate (DIBP), butyl benzylphthalate (BBP), and di(isononyl)phthalate (DINP), epoxidized vegetable oils, for example, soy and linseed, trimellitates, for example, trimethyl trimellitate (TMTM), , tris (2-ethylhexyl) trimellitate (TOTM), and n-octyltrimellitate (OTM), polyesters, phosphates, for example, isodect
  • the primary plasticizers can be included in the PVC compositions in any suitable amount, for example in a range of about 30 phr to about 70 phr, or from about 35 phr to about 65 phr, or from about 30 phr to about 60 phr, or from about 25 phr to about 55 phr.
  • the PVC compositions will include a secondary plasticizer.
  • a secondary plasticizer can be included in the PVC composition in any suitable amount, for example, up to about 30 phr. As less plasticizer is used, the PVC articles can become more brittle, whereas as more plasticizer is used the PVC articles can lose strength.
  • the primary plasticizer is DEHP.
  • a PVC composition includes an inorganic colorant and a non-DEHP plasticizer, optionally, the PVC composition is free of DEHP.
  • DEHP is a common plasticizer in PVC articles; however, DEHP-free PVC compositions are advantageous for medical or food-packaging applications in view of growing concerns over leaching of DEHP from PVC articles.
  • Lubricants for use in PVC compositions according to the disclosure are well known in the art. Suitable lubricants include, but are not limited to, polyethylene, paraffin wax, and acrawax, for example ⁇ , ⁇ ' ethylene bisstearamide. Lubricants can be included in the PVC compositions in an amount up to about 0.5 phr.
  • the PVC compositions described herein can be formed into PVC articles.
  • PVC articles can be made using any suitable equipment and method, including the various methods already commonly known in the art.
  • the PVC articles can be heat-processed.
  • the PVC article can be made with one or more processing steps including, but not limited to, extrusion, extrusion blow molding, injection molding, injection blow molding, insert molding, rotational molding, thermoforming, vacuum forming, pultrusion, resin transfer molding, and welding.
  • the PVC articles for use herein can have a thickness (e.g., at their thinnest point or in another embodiment measured by average thickness) in any desired range, including values in a range of about 0.5 mm to about 10 mm, or about 0.5 mm to about 5 mm, or about 0.5 mm to about 2 mm, or about 1 mm, for example.
  • a thickness e.g., at their thinnest point or in another embodiment measured by average thickness
  • any desired range including values in a range of about 0.5 mm to about 10 mm, or about 0.5 mm to about 5 mm, or about 0.5 mm to about 2 mm, or about 1 mm, for example.
  • the HC1 formed by dehydrochlorination diffuses quickly out of the PVC article and is therefore unavailable for autocatalyzing further decomposition.
  • the advantages of the invention are more pronounced with articles thicker than 0.1mm.
  • the irradiated PVC articles of the disclosure can characterized by a maximum yellowness index as described herein of 7, or 6, or 5, for example.
  • the minimum yellow index can be -3, or -2, or -1, for example.
  • Contemplated ranges include any combination of the foregoing and intermediate values, for example -2 to 7, -2 to 6, and -2 to 5, and -1 to 5.
  • the maximum change in YI for gamma-irradiated PVC articles of the disclosure optionally can be 3 or less, or 2 or less, or 1 or less for example about 0.7 or less.
  • the irradiated PVC article can have a net color change of less than 5 ⁇ , or less than 4 ⁇ , or less than 3 ⁇ , or no greater than about 2 ⁇ , or less than about 2 ⁇ , after aging about 15 weeks.
  • the irradiated PVC article can have such net color change limits when sterilized with 27 KGy Gamma radiation and then aged for 15 weeks at 57 °C.
  • the irradiated PVC article can have such net color change limits when sterilized with 16-21 KGy Gamma radiation and aged at 40 °C for 8 weeks.
  • One aspect of the disclosure is a method of making a gamma-irradiated PVC article.
  • the method of making the gamma- irradiated PVC article includes the steps of:
  • a PVC article including a mixture of a PVC resin, a primary plasticizer present in an amount of about 30-60 phr and a metal-carboxylate acid scavenger present in an amount of about 0.01 to about 0.5 phr;
  • the method further includes heat processing the PVC mixture to form the PVC article.
  • the method of making the gamma- irradiated PVC article includes the steps of:
  • a PVC article including a mixture of a PVC resin, a primary plasticizer present in an amount of about 30 to about 60 phr, and an inorganic colorant in an amount in a range of about 0.008 phr to less than about 0.15 phr;
  • the method further includes heat processing the PVC mixture to form the PVC article.
  • the colorimeter is configured to measure the color in Hunter Lab space in total transmission mode using a 1" large area view (TTranLAV), D65/10 Illuminant/observer, and standardized using a reference standard for white and a light trap for black.
  • TranLAV 1" large area view
  • D65/10 Illuminant/observer D65/10 Illuminant/observer
  • a white fixture or sample holder custom-made to the shape of the part, is then installed into the colorimeter; the color of the fixture is measured and is set as the background color to be subtracted from the color of the measured part.
  • the parts are measured individually. Color is measured using the standard Hunter Lab measurements. ASTM D2244-07 provides the most comparable methods to the technique used.
  • a L corresponds to the lightness of the color, where a positive value for AL corresponding to a lightening of color, and a negative value to a darkening of the color.
  • Aa is the Red-Green value with a positive Aa corresponding to a shift towards red, and a negative value a shift toward green.
  • Ab is the Yellow-Blue value with a positive Ab corresponding to a shift toward yellow, and a negative value a shift toward blue.
  • is used as a single value to represent overall color, it is the magnitude of the value of color in the three dimensional space.
  • yellowness index (YI) is used as an indicator for monitoring the change in yellow color due to specific concerns with PVC particles becoming yellower. Yellowness index measurements were made in reflectance mode using the same instrument, standard white fixture (sample holder) and testing parameters aforementioned. Yellowness Index per ASTM Method E313 scale [D65 illuminant/2°] was selected for reporting yellowness index, according to the following formula:
  • PVC molded articles were prepared from commercially available medical grade PVC compositions obtained from a PVC compounder.
  • the molded articles were prepared using four different PVC compositions that included PVC resin, di (2-ethylhexyl) phthalate (DEHP) plasticizer, an epoxidized oil secondary plasticizer, and an acid scavenger comprising Ca/Zn stearate.
  • the level of DEHP plasticizer was constant across PVC compositions.
  • the level of Ca/Zn stearate was varied, and the four PVC compositions were characterized by stearate:DEHP ratios of 0.04, 0.18, 0.20, and 0.60, as measured by FTIR peak intensity.
  • the PVC molded articles were exposed to 27KGy of gamma irradiation. The change in color of the PVC molded articles was determined by a colorimeter.
  • PVC molded articles were prepared from PVC compositions comprising PVC resin, a DEHP free primary plasticizer, an epoxidized oleic acid secondary plasticizer, Zn stearate, and a Co/Al oxide inorganic pigment.
  • the inorganic pigments were included in the compositions at a level of either 5 ppm or 50 ppm.
  • PVC molded articles prepared from both compositions were initially colorless.
  • the PVC molded articles were exposed to 25 KGy gamma radiation.
  • the PVC molded articles prepared from both PVC compositions retained their original color after exposure to gamma radiation (Table 2). This example demonstrates the color stability of PVC compositions including inorganic pigments.
  • compositions was improved with the addition of inorganic colorants, as compared to compositions with no colorant, and no change in yellowness was observed following gamma sterilization.
  • PVC molded articles were prepared from PVC compositions comprising PVC resin, a DEHP free primary plasticizer, an epoxidized oleic acid secondary plasticizer, Zn stearate, and an organic colorant comprised of l-hydroxy-4-[(4-methyphenyl)amino)] anthracene- 9,10-dione.
  • the organic colorants were included in the compositions at a level of either 5 ppm or 50 ppm.
  • PVC molded articles prepared from both compositions were initially blue. The PVC molded articles were exposed to 25 KGy gamma radiation.
  • the PVC molded articles prepared from 50 ppm PVC composition were yellowish-red after exposure to gamma radiation while molded articles prepared from 5 ppm PVC composition didn't retain its original color.
  • This example demonstrates the effect of gamma radiation on the color of PVC compositions including organic pigments.
  • PVC molded articles were prepared from PVC compositions comprising PVC resin, a DEHP free primary plasticizer, an epoxidized oleic acid secondary plasticizer, Zn stearate, and a Cu-phthalocyanine beta organometallic pigment (Cu organic).
  • the organometallic pigments were included in the compositions at a level of either 5 ppm or 50 ppm.
  • the PVC molded articles were exposed to 27 Kgy gamma radiation.
  • the PVC molded articles were subjected to accelerated aging at 57 °C.
  • PVC molded articles were prepared from PVC compositions comprising PVC resin, a DEHP free primary plasticizer, an epoxidized oleic acid secondary plasticizer, Zn stearate, and a Co/Al oxide inorganic pigment.
  • the inorganic pigments were included in the compositions at a level of either 5 ppm (aqua line) or 50 ppm (purple line) ( Figure 1).
  • PVC molded articles were also prepared from commercially available PVC compositions.
  • the commercially available PVC compositions included PVC resin, DEHP, and Ca/Zn stearate.
  • the stearate: aromatic type plasticizer ratio in the commercial PVC formulation was 0.2, as measured by FTIR peak intensity.
  • the PVC molded articles were exposed to 27 KGy gamma radiation.
  • the PVC molded articles were subjected to accelerated aging at 57 °C.
  • the color stability of the molded PVC articles is shown in Figure 1.
  • the PVC molded articles that included an inorganic colorant showed improved color stability over the commercially available PVC.
  • PVC molded articles were prepared from PVC compositions comprising PVC resin, a DEHP free primary plasticizer, an epoxidized vegetable oil secondary plasticizer, Zn stearate, and a Co/Al oxide inorganic pigment.
  • the inorganic pigments were included in the compositions at a level of either 50 ppm or 100 ppm ( Figure 5).
  • PVC molded articles were also prepared from commercially available, medical grade PVC compositions.
  • the commercially available PVC compositions included PVC resin and Ca/Zn stearate (top line) or PVC resin, DEHP, and Ca/Zn stearate (second line from top) ( Figure 5).
  • the commercially available PVC compositions included PVC resin and Ca/Zn stearate (top line) or PVC resin, DEHP, and Ca/Zn stearate (second line from top) ( Figure 5).
  • the stearate: aromatic type plasticizer ratio in the commercial PVC formulations was 0.2, as measured by FTIR peak intensity.
  • the PVC molded articles were drip chamber housings. Drip chambers were assembled and then administration sets were assembled, packaged and exposed to 16-21 KGy gamma radiation.
  • the PVC molded articles were subjected to accelerated aging at 40 °C. The color stability of the molded PVC articles is shown in Figure 5.
  • the PVC molded articles that included an inorganic colorant showed improved color stability over the commercially available PVC.

Landscapes

  • Chemical & Material Sciences (AREA)
  • Health & Medical Sciences (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Medicinal Chemistry (AREA)
  • Polymers & Plastics (AREA)
  • Organic Chemistry (AREA)
  • Engineering & Computer Science (AREA)
  • Manufacturing & Machinery (AREA)
  • Materials Engineering (AREA)
  • Oil, Petroleum & Natural Gas (AREA)
  • Compositions Of Macromolecular Compounds (AREA)

Abstract

Disclosed are PVC compositions with enhanced color resistance to electromagnetic irradiation & shelf life color stability; gamma-irradiated PVC articles; methods of making the gamma-irradiated PVC articles; and compositions including PVC resins for making the gamma-irradiated PVC articles.

Description

RADIATION STABILIZED PVC COMPOSITIONS, AND METHOD OF MAKING
SAME
Cross-Reference to Related Application
[0001] The benefit under 35 U.S.C. § 119(e) of U.S. Provisional Patent Application Serial No. 61/735,888 filed December 11, 2012, is hereby claimed, and the disclosure thereof is hereby incorporated by reference herein.
Field of the Disclosure
[0002] The present disclosure relates generally to polyvinyl chloride (PVC) compositions. More particularly, the disclosure relates to PVC compositions with enhanced color resistance to electromagnetic irradiation & shelf life color stability.
Background
[0003] Polyvinyl chloride (PVC) compositions, and articles made therefrom, are well known in the art. Particularly, a variety of medical devices are formed out of PVC. An effective method for the sterilization of such medical devices is exposure of the device to gamma-radiation. However, upon exposure to heat or electromagnetic radiation, including ultraviolet, electron beam, X-ray and gamma radiation, polyvinyl chloride articles may eventually alter their appearance and in particular their color.
[0004] The alteration in appearance of an irradiated PVC material is generally in one and/or two general visually noticeable areas. The first alteration in appearance is when the material appears to become more yellow. The second alteration in appearance is where there is a distinct color change for example to display more blue or green. This alteration in appearance may be fairly immediate or may occur over a longer period of time extending several weeks or months. When the PVC material is used in the molding of articles in medical devices, the alteration in appearance may cause the user of the device to believe it is no longer suitable for use. Because medical devices may be sold with a relatively long shelf life, having even a slight color change between the recently purchased products and those that have been in inventory longer will be especially noticeable and lead to complaints. Although it is known to attempt to minimize the alteration in appearance by UV bleaching, this process appears insufficient in minimizing the level of appearance alteration.
[0005] The discoloration of PVC upon exposure to heat or radiation is due to degradation of the PVC. The major degradation products responsible for coloration are conjugated polyenes that form due to dehydrochlorination. Conjugated polyenes are yellowish-red due to absorption in the blue region of the visible light spectrum. Once the dehydrochlorination is initiated, the released hydrochloric acid (HCl) contributes to further dehydrochlorination and discoloration of the PVC.
Summary
[0006] One aspect of the disclosure is a gamma-irradiated polyvinyl chloride (PVC) article, including a mixture of a PVC resin, a primary plasticizer present in an amount of about 30 to about 60 phr and a metal-carboxylate acid scavenger present in an amount of about 0.01 to about 0.5 phr.
[0007] Another aspect of the disclosure is a method of making a gamma-irradiated PVC article, including the steps of providing a PVC article including a mixture of a PVC resin, a primary plasticizer present in an amount of about 30 phr to about 60 phr and a metal- carboxylate acid scavenger present in an amount of about 0.01 to about 0.5 phr, and exposing the PVC article to gamma radiation in an amount in a range of about 10 KGy to about 100 KGy.
[0008] Another aspect of the disclosure is a PVC article, including a mixture of a PVC resin, a primary plasticizer present in an amount of about 25 to about 55 phr, and an inorganic colorant in an amount of at least about 0.008 phr and optionally less than 0.15 phr.
Optionally, the PVC article is gamma-irradiated.
[0009] Another aspect of the disclosure is a method of making a gamma-irradiated PVC article, including the steps of providing a PVC article including a mixture of a PVC resin, a primary plasticizer present in an amount of about 30 to about 60 phr, and an inorganic colorant in an amount of at least about 0.008 phr and optionally less than 0.15 phr, and exposing the PVC article to gamma radiation in an amount in a range of about 10 KGy to about 100 KGy.
[0010] For the compositions and methods described herein, optional features, including but not limited to components, compositional ranges thereof, substituents, conditions, and steps, are contemplated to be selected from the various aspects, embodiments, and examples provided herein.
[0011] Further aspects and advantages will be apparent to those of ordinary skill in the art from a review of the following detailed description. While the compositions and methods are susceptible of embodiments in various forms, the description hereafter includes specific embodiments with the understanding that the disclosure is illustrative, and is not intended to limit the invention to the specific embodiments described herein.
Figures
[0012] Figure 1 shows a plot of the change in color vs. time post-sterilization (in weeks) for molded PVC articles sterilized with 27 KGy Gamma radiation and aged at 57 °C and comprised of a commercially-available, medical grade Control PVC (hot runner mold), the medical grade Control PVC (cold runner mold), DEHP-free PVC with 5 ppm Co/Al oxide inorganic pigment, and the medical grade Control DEHP-free PVC with 50 ppm Co/Al oxide inorganic pigment.
[0013] Figure 2 shows a plot of PVC part color change in the presence of different colorants. This plot shows indicates that PVC compositions with organometallic colorant after gamma radiation exposure became yellower to a great extent following accelerated aging at 57 °C while PVC compositions with inorganic colorant retained their original color.
[0014] Figures 3(a)-3(c) show plots of PVC part yellowness index (YI) change as a function of sterilization dose, colorant type & colorant concentration. These plots provide a comparison of PVC compositions prepared with (a) inorganic, (b) organic, and (c) organometallic colorants. The plots indicate that PVC compositions with inorganic colorant retained their yellowness index after gamma radiation while PVC compositions with organic & organometallic colorants did not retain their original color following gamma radiation. Figures 3(a)-3(c) are the same as Figures 4(a)-4(c) except that the approximate yellowness index (YI) color bands are indicated by brackets in Figures 3(b) and 3(c). In Figure 3(a) the Yellowness Index did not vary substantially over the range of sterilization and concentration shown, YI ranging only from about 4 to about -2.
[0015] Figure 4 shows a plot of PVC color change (ΔΕ) vs. time post-sterilization (in weeks) for molded PVC articles sterilized with 16-21 KGy Gamma radiation and aged at 40 °C comprised of (in order from top to bottom in the figure) a commercially-available, medical grade Non-DEHP PVC, a medical grade DEHP PVC, DEHP-free PVC with 100 ppm Co/Al oxide inorganic pigment, DEHP-free PVC with 50 ppm Co/Al oxide inorganic pigment.
Detailed Description
[0016] Disclosed herein are gamma-irradiated, plasticized polyvinyl chloride (PVC) articles, and methods of making the same. In one aspect, the gamma-irradiated PVC articles according to the disclosure include a PVC resin, a primary plasticizer present in an amount of about 30 to about 60 phr and a metal-carboxylate acid scavenger present in an amount of about 0.01 to about 0.5 phr. In one type of embodiment, a gamma-irradiated, plasticized PVC article further includes a secondary plasticizer present in an amount up to about 30 phr. In another, non-exclusive aspect, the PVC articles according to the disclosure include a PVC resin, a primary plasticizer present in an amount of about 25 to about 55 phr, and an inorganic colorant in an amount of at least about 0.008 phr and optionally less than about 0.15 phr, for example in a range of about 0.008 phr to 0.149 phr. Optionally, the PVC articles according to this aspect can further include a secondary plasticizer present in an amount up to about 30 phr and/or a metal-carboxylate acid scavenger present in an amount up to about 0.5 phr. In one contemplated class of embodiments the PVC article is gamma-irradiated. Optionally, the PVC articles according to the disclosure are heat processed. Further, disclosed herein are methods of making gamma-irradiated PVC articles, including the steps of providing a PVC article according to the disclosure and exposing the PVC article to gamma radiation in an amount in a range of about 10 KGy to about 100 KGy. Optionally, the method further includes heat processing the PVC mixture to form the PVC article. The gamma- sterilized PVC articles of the disclosure can be particularly advantageous in that they can be designed such that the articles are less yellow after electromagnetic irradiation, e.g. having a maximum yellowness index as described herein of 7, or 6, or 5, for example after gamma-irradiation, as measured by a colorimeter. Optionally the minimum yellow index can be -3, or -2, or -1, for example. Contemplated ranges include any combination of the foregoing and intermediate values, for example -2 to 7, -2 to 6, and -2 to 5, and -1 to 5. In one aspect of the disclosure, the PVC article can be designed such that the clarity & color of the PVC article is maintained following gamma irradiation (see Figures 3 and 4). Although it is known in the art that PVC articles can undergo UV bleaching to reduce the amount of yellowing after irradiation, in a further aspect of the disclosure, the PVC article can be designed such the articles are less yellow after irradiation without UV bleaching of the article.
[0017] The PVC compositions, articles, and their methods of manufacture and use are contemplated to include embodiments including any combination of one or more of the additional optional elements, features, and steps further described below (including those shown in any figures), unless stated otherwise. While the present disclosure provides PVC examples, the compositions and articles described herein can be based upon other halogenated polymers, including, but not limited to, vinylidene chloride and fluoro polymers, for example.
[0018] As used herein, the term "comprising" indicates the potential inclusion of other agents, elements, steps, or features, in addition to those specified.
[0019] As used herein and unless specified otherwise, the terms "wt.%" and "wt%" are intended to refer to the composition of the identified element in "dry" (non water) parts by weight of the entire composition (when applicable). As used herein and unless specified otherwise, the term "phr" is intended to refer to the composition of the identified element in parts per one hundred parts halogenated polymer resins, e.g. polyvinyl chloride (PVC) resin.
[0020] Polyvinyl chloride compositions, optional ingredients for use therein, and methods of making the same are well known in the art.
[0021] PVC resins suitable for use in PVC articles of the disclosure include medical-grade and food-grade polyvinyl chloride homopolymers, available, for example, from OxyVinyls, LP (Dallas, TX). The PVC resin can be included in the composition in any suitable amount, for example an amount in a range of about 35 wt to about 90 wt . The preferred weight ratio of the amount of the PVC resin as compared to the combined amount of all additives can be any suitable ratio, for example a ratio in a range of about 0.5 to about 5, or about 1 to 3, or about 1 to 2.
[0022] The K value of PVC is correlated with the molecular weight of PVC and is often used as a proxy for molecular weight. PVC resins for use in the compositions described herein can be characterized by any suitable K value for the desired PVC article end use as is already known in the art, optionally a K value in a range of about 35 to about 80, optionally in a range of about 60 to about 80, for example 70.
[0023] Acid Scavengers
[0024] Acid scavengers will be evident to the person of ordinary skill in the art in view of the present disclosure. Metal salt and metal oxide (such as MgO, ZnO, CaO, etc.) acid scavengers are commonly added to PVC compositions to stabilize the compositions to heat and radiation during both the formation of PVC articles and the long-term storage of PVC articles. Suitable acid scavengers can be selected from those already known in the art. For example, suitable acid scavengers for use in compositions according to the disclosure can include alkaline metal carboxylates, including but not limited to, metal stearates, metal palmitates, metal salts of other C14-C2o fatty acetates, and combinations thereof. Suitable metals for use herein include, but are not limited to, Zn, Ca, Cd, Ba, Al, Pb and combinations thereof. Without intending to be bound by theory, it is believed that the ZnCl2 formed by the reaction of a zinc carboxylate with HC1 can act as a catalyst towards further
dehydrochlorination, if there is no secondary metal carboxylate present to regenerate the zinc carboxylate. In one type of embodiment, the acid scavenger will not include zinc
carboxylates. In another type of embodiment, the acid scavenger comprises two or more metal carboxylates. In another contemplated embodiment, wherein the acid scavenger comprises two or more metal carboxylates, one of the two or more metal carboxylates is a zinc carboxylate. In one class of embodiments, the acid scavenger comprises a combination of calcium carboxylate and zinc carboxylate. In a further class of embodiments, the acid scavenger comprises a combination of calcium stearate and zinc stearate. In a further class of embodiments, the acid scavenger consists only of a zinc stearate. Prior to the present invention, it was assumed by those of skill in the art that increase in acid scavenger concentration and reduction of the acid forming during poly(vinyl chloride) processing-lead degradation lead to reduction of color indicating polymer degradation. The work of the present inventors demonstrated unexpected results, that the foregoing assertion was not correct for thermoformed poly(vinyl chloride) parts that undergo radiation sterilization.
[0025] The amount of the acid scavengers incorporated into the composition can be less than 0.5 phr, for example in a range of about 0.01 to about 0.5 phr, or about 0.01 to 0.49 phr, or 0.01 to 0.45 phr. In the alternative, the amount of acid scavenger incorporated into a composition can be defined by the relative amount of acid scavenger to primary plasticizer, as measured by their FTIR peak intensities. For example, the characteristic IR peak for Ca/Zn stearate is 1540 cm"1 and the characteristic IR absorption peak for aromatic type plasticizer is 1600 cm"1. In one contemplated class of embodiments the acid scavenger to primary plasticizer ratio is less than 0.2, or less than 0.1, or less than 0.05, or less than 0.01. In view of the present disclosure, those of ordinary skill in the art will appreciate that the amount of acid scavenger necessary to provide stabilization to gamma irradiation can vary depending on the type of plasticizer included in the composition. Some plasticizers, for example, epoxidized oils, protect PVC from thermal and gamma radiation-induced discoloration while others, for example, diethylhexylphthalate offer no protection. Without intending to be bound by any particular theory, it is believed that the acid scavenger, such as epoxy-group containing compounds or alkaline earth metal salts (Mg, Zn, Al, Ca, etc.) stabilizes the PVC to discoloration caused by high temperature or by gamma-radiation exposure. It is believed that discoloration of PVC is caused by the formation of conjugated polyenes forming due to dehydrochlorination of the PVC resin. Further, it is believed that the hydrochloric acid (HC1) formed from the dehydrochlorination of the PVC autocatalyzes further release of HC1. Accordingly, a common approach to prevent yellowing of a PVC articles, which are to be formed with heating and then exposed to gamma radiation, has been to increase the amount of acid scavenger included in a PVC composition. Surprisingly, it has been found that even in the presence of epoxidized oil plasticizer increase in metal salt stabilizer may lead to stronger color formation. Thus, it is advantageous to limit the amount of metal salt acid scavenger incorporated into the PVC composition, e.g. to less than levels found in typical commercial PVC (e.g., to less than 0.5 phr). This applies to PVC
formulations containing trimellitate, or DEHP and epoxydized oil plasticizers.
[0026] In one contemplated class of embodiments, the PVC composition includes less than 0.5 phr acid scavenger and does not include secondary stabilizers. Without intending to be bound by theory, it is believed that in this class of embodiments, the HC1 released upon thermal forming of PVC and subsequent gamma radiation may undergo radiation-induced radical decomposition. It is believed that the resulting chlorine and hydrogen radicals can react with the double bonds of the PVC, removing conjugation and reducing coloration of the partially-degraded PVC.
[0027] Inorganic Colorants
[0028] In another, non-exclusive aspect of the invention, the PVC compositions herein include one or more inorganic colorants. In one type of embodiment, the inorganic colorant is an inorganic pigment. The inclusion of inorganic colorants into PVC compositions can stabilize the PVC compositions against color change upon molding of PVC articles and also upon exposure of a PVC article to gamma radiation. Inorganic colorants can be included in a PVC composition in an amount of about 5 ppm to about 50 ppm or 100 ppm, for example. Suitable inorganic colorants include metal oxides, and may include one or more different metals. Optionally the inorganic colorant is a ternary oxide. Suitable metals for inorganic colorants include, but are not limited to, the transition metals and metals of groups IIA, IIIB, and IVB. In one type of embodiment, the inorganic colorant is blue in color. In another type of embodiment, the inorganic colorant is purple in color. Inorganic colorants may be included in the PVC composition in an amount in the range of about 0.01 phr to about 0.5 phr, or about 0.01 phr to about 0.1 phr, or about 0.01 phr to about 0.05 phr, or about 0.04 phr. Inorganic pigments may be included in the PVC composition in an amount of at least 0.008 phr and optionally less than 0.15 phr, or in a range of about 0.008 phr to less than 0.15 phr, for example. One of ordinary skill in the art will appreciate that the choice of metal will vary based on the concentration to be included in the composition. For example, it has been found that organometallic colorants provide higher intensity of color than inorganic colorants when used at the same colorant concentration. Also, transparency may be lost when the inorganic colorants are used at high amount where organic colorants would still retain transparency.
[0029] During gamma irradiation, pigments and dyes are ionized, which may result in degradation and/or reaction with the polymer matrix, plasticizer, and other radicals and/or ions formed during exposure of the PVC article to gamma radiation. Surprisingly, in one class of embodiments, PVC compositions that include an inorganic colorant maintain almost invariant coloration and appearance after gamma irradiation. In contrast, PVC compositions with organic colorants are initially colored and undergo a color change during exposure to gamma radiation, and accelerated aging. Moreover, PVC compositions with organometallic colorants are initially colored and either undergo a color change or maintain their color during exposure to gamma radiation, however they cannot retain the same color upon accelerated aging after gamma irradiation. Blue organic and organometallic colorants (pigments and dyes) are added to PVC compositions to mask the yellow color formation that occurs upon exposure to heat and/or radiation and/or accelerated aging. However, these pigments and dyes may degrade under radiation exposure or accelerated aging, resulting in color change. Accordingly, PVC articles that include organic or organometallic colorants are colored either pre-gamma radiation or post-gamma radiation, and often both.
Advantageously, unlike the PVC compositions that include organic or organometallic colorants, the PVC compositions described herein can be designed to maintain their color and appearance before and after irradiation and can therefore be used both in applications that require the PVC to undergo gamma radiation sterilization and applications that do not.
Advantageously, unlike PVC compositions that include organic and organometallic colorants, irradiated PVC articles according to the disclosure that include inorganic colorants also exhibit long term color stability, up to 17 weeks, as determined by accelerated aging studies of post-gamma irradiated (27KGy) articles at 57 °C.
[0030] Without intending to be bound by theory, it is believed that inorganic colorants (pigments) stabilize PVC to gamma radiation by one or both of two mechanisms. First, it is believed that the inorganic pigment acts as an acid scavenger thereby reducing the amount of HC1 available for autocatalysis of dehydrochlorination of the PVC which leads to formation of colored conjugated polyenes. Second, it is believed that the inorganic pigment can terminate radicals that are formed or which would otherwise be formed during gamma irradiation. Inhibition of PVC degradation by transition metals and their compounds may start at the early stages of gamma radiation and lead to prevention of organic, and hydrogen and chlorine radicals formation .
[0031] The PVC compositions according to the disclosure can include other optional additive ingredients including, but not limited to, plasticizers, lubricants, impact modifiers, biocides, fillers, colorants, antioxidants, and other functional ingredients, for example in amounts suitable for their intended purpose.
[0032] The PVC compositions according to the disclosure can include a primary and, optionally, a secondary plasticizer. Plasticizers for use in PVC compositions are well known in the art. Suitable plasticizers for use as a primary or secondary plasticizer include phthalate plasticizers, for example di-2-ethylhexylphthalate (DEHP), di(2-ethylhexyl) terephthalate (DEHT), di-butylphthalate (DBP), di-isobutylphthalate (DIBP), butyl benzylphthalate (BBP), and di(isononyl)phthalate (DINP), epoxidized vegetable oils, for example, soy and linseed, trimellitates, for example, trimethyl trimellitate (TMTM), , tris (2-ethylhexyl) trimellitate (TOTM), and n-octyltrimellitate (OTM), polyesters, phosphates, for example, isodectyl diphenyl phosphate (DDP) and tris (2-ethylhexyl) phosphate (TOF), citrates, for example, butyryl trihexyl citrate (BTHC) and acetyl tributyl citrate (ATBC), benzoates, for example dipropylene glycol dibenzoate (DPGDP), sulphonates, for example, phenyl cresyl esters of pentadecyl sulfonic acid, carboxylates, cyclohexane based, such as di(isononyl) cyclohexane- 1,2-dicarboxylate, castor oil derivatives, and adipates, for example, di-2-ethylhexyladipate (DEHA), dimethyladipate (DMAD), and dioctyladipate (DOA).
[0033] The primary plasticizers can be included in the PVC compositions in any suitable amount, for example in a range of about 30 phr to about 70 phr, or from about 35 phr to about 65 phr, or from about 30 phr to about 60 phr, or from about 25 phr to about 55 phr. In some embodiments, the PVC compositions will include a secondary plasticizer. A secondary plasticizer can be included in the PVC composition in any suitable amount, for example, up to about 30 phr. As less plasticizer is used, the PVC articles can become more brittle, whereas as more plasticizer is used the PVC articles can lose strength.
[0034] In one contemplated class of embodiments, the primary plasticizer is DEHP. In another contemplated class of embodiments, a PVC composition includes an inorganic colorant and a non-DEHP plasticizer, optionally, the PVC composition is free of DEHP. DEHP is a common plasticizer in PVC articles; however, DEHP-free PVC compositions are advantageous for medical or food-packaging applications in view of growing concerns over leaching of DEHP from PVC articles.
[0035] Lubricants for use in PVC compositions according to the disclosure are well known in the art. Suitable lubricants include, but are not limited to, polyethylene, paraffin wax, and acrawax, for example Ν,Ν' ethylene bisstearamide. Lubricants can be included in the PVC compositions in an amount up to about 0.5 phr.
[0036] The PVC compositions described herein can be formed into PVC articles. PVC articles can be made using any suitable equipment and method, including the various methods already commonly known in the art. The PVC articles can be heat-processed. For example, the PVC article can be made with one or more processing steps including, but not limited to, extrusion, extrusion blow molding, injection molding, injection blow molding, insert molding, rotational molding, thermoforming, vacuum forming, pultrusion, resin transfer molding, and welding.
[0037] The PVC articles for use herein can have a thickness (e.g., at their thinnest point or in another embodiment measured by average thickness) in any desired range, including values in a range of about 0.5 mm to about 10 mm, or about 0.5 mm to about 5 mm, or about 0.5 mm to about 2 mm, or about 1 mm, for example. Without intending to be bound by theory, it is believed that for thin films, e.g., about 0.1 mm thick, the HC1 formed by dehydrochlorination diffuses quickly out of the PVC article and is therefore unavailable for autocatalyzing further decomposition. Thus, the advantages of the invention are more pronounced with articles thicker than 0.1mm.
[0038] The irradiated PVC articles of the disclosure (e.g. gamma-irradiated articles) can characterized by a maximum yellowness index as described herein of 7, or 6, or 5, for example. Optionally the minimum yellow index can be -3, or -2, or -1, for example.
Contemplated ranges include any combination of the foregoing and intermediate values, for example -2 to 7, -2 to 6, and -2 to 5, and -1 to 5. In another aspect, the maximum change in YI for gamma-irradiated PVC articles of the disclosure (at least 25 KGy dose) optionally can be 3 or less, or 2 or less, or 1 or less for example about 0.7 or less. Further optionally, the irradiated PVC article can have a net color change of less than 5 ΔΕ, or less than 4ΔΕ, or less than 3 ΔΕ, or no greater than about 2 ΔΕ, or less than about 2 ΔΕ, after aging about 15 weeks. For example, the irradiated PVC article can have such net color change limits when sterilized with 27 KGy Gamma radiation and then aged for 15 weeks at 57 °C. In another embodiment, the irradiated PVC article can have such net color change limits when sterilized with 16-21 KGy Gamma radiation and aged at 40 °C for 8 weeks.
[0039] One aspect of the disclosure is a method of making a gamma-irradiated PVC article. In one contemplated class of embodiments, the method of making the gamma- irradiated PVC article includes the steps of:
(a) providing a PVC article including a mixture of a PVC resin, a primary plasticizer present in an amount of about 30-60 phr and a metal-carboxylate acid scavenger present in an amount of about 0.01 to about 0.5 phr; and
(b) exposing the PVC article to gamma radiation in an amount in a range of about 10 KGy to about 100 KGy, or about 20 KGy to about 90 KGy, or at least about 20, 25, 30, 35, 40, 45, 50, 55, 60, 65, 70, 75, 80, 85, 90, 95 or 100 KGy. Optionally, the method further includes heat processing the PVC mixture to form the PVC article.
[0040] In another contemplated class of embodiments, the method of making the gamma- irradiated PVC article includes the steps of:
(a) providing a PVC article including a mixture of a PVC resin, a primary plasticizer present in an amount of about 30 to about 60 phr, and an inorganic colorant in an amount in a range of about 0.008 phr to less than about 0.15 phr; and
(b) exposing the PVC article to gamma radiation in an amount in a range of about 10 KGy to about 100 KGy, or about 20 KGy to about 90 KGy, or at least about 20, 25, 30, 35, 40, 45, 50, 55, 60, 65, 70, 75, 80, 85, 90, 95 or 100 KGy. Optionally, the method further includes heat processing the PVC mixture to form the PVC article.
[0041] The PVC articles in accordance with the disclosure can be better understood in light of the following examples, which are merely intended to illustrate the PVC compositions and articles and are not meant to limit the scope thereof in any way. Examples
Colorimetric Measurement
[0042] The colorimeter is configured to measure the color in Hunter Lab space in total transmission mode using a 1" large area view (TTranLAV), D65/10 Illuminant/observer, and standardized using a reference standard for white and a light trap for black. A white fixture or sample holder, custom-made to the shape of the part, is then installed into the colorimeter; the color of the fixture is measured and is set as the background color to be subtracted from the color of the measured part. The parts are measured individually. Color is measured using the standard Hunter Lab measurements. ASTM D2244-07 provides the most comparable methods to the technique used.
[0043] The direction of the color difference is described by the magnitude and algebraic signs of the components AL, Aa, and Ab. A L corresponds to the lightness of the color, where a positive value for AL corresponding to a lightening of color, and a negative value to a darkening of the color. Aa is the Red-Green value with a positive Aa corresponding to a shift towards red, and a negative value a shift toward green. Ab is the Yellow-Blue value with a positive Ab corresponding to a shift toward yellow, and a negative value a shift toward blue. ΔΕ is used as a single value to represent overall color, it is the magnitude of the value of color in the three dimensional space. For all values presented (ΔΕ, AL, Aa, and Ab) the shifts are measurements from the color of the fixture which has been designated 0,0,0 during the background subtraction process. The magnitude, AE, gi ves no indication of the character of the difference since it does not indicate the relative quantity and direction of hue, chroma, and lightness differences. This value is calculated using the formula:
Figure imgf000013_0001
[0044] Traditionally, yellowness index (YI) is used as an indicator for monitoring the change in yellow color due to specific concerns with PVC particles becoming yellower. Yellowness index measurements were made in reflectance mode using the same instrument, standard white fixture (sample holder) and testing parameters aforementioned. Yellowness Index per ASTM Method E313 scale [D65 illuminant/2°] was selected for reporting yellowness index, according to the following formula:
100 (CXX - CZZ)
YI £313 = — —
Y wherein Cx=1.2985 and Cz = 1.1335 (D65/2° coefficients), and X, Y, and Z are the CIE Tristimulus values. Higher values of YI indicated samples which were more yellow.
Example 1 ΓΖη/Ca Stearate levell
[0045] PVC molded articles were prepared from commercially available medical grade PVC compositions obtained from a PVC compounder. The molded articles were prepared using four different PVC compositions that included PVC resin, di (2-ethylhexyl) phthalate (DEHP) plasticizer, an epoxidized oil secondary plasticizer, and an acid scavenger comprising Ca/Zn stearate. The level of DEHP plasticizer was constant across PVC compositions. The level of Ca/Zn stearate was varied, and the four PVC compositions were characterized by stearate:DEHP ratios of 0.04, 0.18, 0.20, and 0.60, as measured by FTIR peak intensity. The PVC molded articles were exposed to 27KGy of gamma irradiation. The change in color of the PVC molded articles was determined by a colorimeter.
[0046] The results are shown in Table 1. The magnitude of color change (increase in the ΔΕ relative to white) of the 0.04, 0.18, 0.20, and 0.60 molded articles was 5.73, 6.89, 7.26, and 10.26, respectively. This example demonstrates that upon exposure to gamma radiation, the degree of color change of the molded article is positively correlated with the amount of Zn/Ca stearate included in the PVC composition.
Table 1
Figure imgf000014_0001
[* Average of the runs from two different PVC molds]
Example 2 [Inorganic pigments]
[0047] PVC molded articles were prepared from PVC compositions comprising PVC resin, a DEHP free primary plasticizer, an epoxidized oleic acid secondary plasticizer, Zn stearate, and a Co/Al oxide inorganic pigment. The inorganic pigments were included in the compositions at a level of either 5 ppm or 50 ppm. PVC molded articles prepared from both compositions were initially colorless. The PVC molded articles were exposed to 25 KGy gamma radiation. The PVC molded articles prepared from both PVC compositions retained their original color after exposure to gamma radiation (Table 2). This example demonstrates the color stability of PVC compositions including inorganic pigments. YI of the
compositions was improved with the addition of inorganic colorants, as compared to compositions with no colorant, and no change in yellowness was observed following gamma sterilization.
Table 2 Color Parameters (average of 5 measurements)
Figure imgf000015_0001
Comparative Example 3 TOrganic pigmentsl
[0048] PVC molded articles were prepared from PVC compositions comprising PVC resin, a DEHP free primary plasticizer, an epoxidized oleic acid secondary plasticizer, Zn stearate, and an organic colorant comprised of l-hydroxy-4-[(4-methyphenyl)amino)] anthracene- 9,10-dione. The organic colorants were included in the compositions at a level of either 5 ppm or 50 ppm. PVC molded articles prepared from both compositions were initially blue. The PVC molded articles were exposed to 25 KGy gamma radiation. The PVC molded articles prepared from 50 ppm PVC composition were yellowish-red after exposure to gamma radiation while molded articles prepared from 5 ppm PVC composition didn't retain its original color. This example demonstrates the effect of gamma radiation on the color of PVC compositions including organic pigments.
Table 3 Color Parameters (average of 5 measurements)
Figure imgf000016_0001
Comparative Example 4 rOrganometallic Colorantl
[0049] PVC molded articles were prepared from PVC compositions comprising PVC resin, a DEHP free primary plasticizer, an epoxidized oleic acid secondary plasticizer, Zn stearate, and a Cu-phthalocyanine beta organometallic pigment (Cu organic). The organometallic pigments were included in the compositions at a level of either 5 ppm or 50 ppm. The PVC molded articles were exposed to 27 Kgy gamma radiation. The PVC molded articles were subjected to accelerated aging at 57 °C. The PVC molded articles that included 50 ppm organometallic colorant showed no visual color change following accelerated aging while PVC molded articles that included 5 ppm organometallic colorant showed color change following gamma irradiation (Table 4). The color stability of the molded PVC articles following accelerated aging after gamma irradiation is shown in Figure 2. Figure 2 provides comparison of the change in yellow-blue color index, Ab, as a function of accelerated aging time. Even though PVC compositions made with 50 ppm organometallic colorant provided blue color initially (negative Ab value) they became yellower over time, while PVC compositions with inorganic colorant retained their original color upon accelerated aging. Table 4 Color Parameters (average of 5 measurements)
Figure imgf000017_0001
Comparative Example 5 [Accelerated Agingl
[0050] PVC molded articles were prepared from PVC compositions comprising PVC resin, a DEHP free primary plasticizer, an epoxidized oleic acid secondary plasticizer, Zn stearate, and a Co/Al oxide inorganic pigment. The inorganic pigments were included in the compositions at a level of either 5 ppm (aqua line) or 50 ppm (purple line) (Figure 1). PVC molded articles were also prepared from commercially available PVC compositions. The commercially available PVC compositions included PVC resin, DEHP, and Ca/Zn stearate. The stearate: aromatic type plasticizer ratio in the commercial PVC formulation was 0.2, as measured by FTIR peak intensity. The PVC molded articles were exposed to 27 KGy gamma radiation. The PVC molded articles were subjected to accelerated aging at 57 °C. The color stability of the molded PVC articles is shown in Figure 1. The PVC molded articles that included an inorganic colorant showed improved color stability over the commercially available PVC.
Comparative Example 6 [Accelerated Agingl
[0051] PVC molded articles were prepared from PVC compositions comprising PVC resin, a DEHP free primary plasticizer, an epoxidized vegetable oil secondary plasticizer, Zn stearate, and a Co/Al oxide inorganic pigment. The inorganic pigments were included in the compositions at a level of either 50 ppm or 100 ppm (Figure 5). PVC molded articles were also prepared from commercially available, medical grade PVC compositions. The commercially available PVC compositions included PVC resin and Ca/Zn stearate (top line) or PVC resin, DEHP, and Ca/Zn stearate (second line from top) (Figure 5). The
stearate: aromatic type plasticizer ratio in the commercial PVC formulations was 0.2, as measured by FTIR peak intensity. The PVC molded articles were drip chamber housings. Drip chambers were assembled and then administration sets were assembled, packaged and exposed to 16-21 KGy gamma radiation. The PVC molded articles were subjected to accelerated aging at 40 °C. The color stability of the molded PVC articles is shown in Figure 5. The PVC molded articles that included an inorganic colorant showed improved color stability over the commercially available PVC.

Claims

What is Claimed:
1. A polyvinyl chloride (PVC) article, comprising: a gamma-irradiated PVC article comprising a mixture of
a PVC resin;
a primary plasticizer present in an amount of about 30 to about 60 parts per hundred parts resin (phr); and
a metal-carboxylate acid scavenger present in an amount of about 0.01 to about 0.5 phr.
2. The PVC article according to claim 1, wherein the PVC article is a heat-processed PVC article.
3. The PVC article according to claim 1 or claim 2, further comprising a secondary plasticizer.
4. The PVC article according to claim 3, wherein the secondary plasticizer is present in an amount of up to about 30 phr.
5. The PVC article according to any one of the preceding claims, wherein the primary plasticizer is selected from the group consisting of phthalates, including but not limited to di- 2-ethylhexylphthalate (DEHP), di(2-ethylhexyl) terephthalate (DEHT), di-butylphthalate (DBP), di-isobutylphthalate (DIBP), butyl benzylphthalate (BBP), and di(isononyl)phthalate (DINP), epoxidized vegetable oils, for example, soy and linseed, trimellitates, for example, trimethyl trimellitate (TMTM), tris (2-ethylhexyl) trimellitate (TOTM), and n- octyltrimellitate (OTM), polyesters, phosphates, including but not limited to isodectyl diphenyl phosphate (DDP) and tris (2-ethylhexyl) phosphate (TOF), citrates, including but not limited to butyryl trihexyl citrate (BTHC) and acetyl tributyl citrate (ATBC), benzoates, including but not limited to dipropylene glycol dibenzoate (DPGDP), sulphonates, including but not limited to phenyl cresyl esters of pentadecyl sulfonic acid, carboxylates, cyclohexane based, including but not limited to di(isononyl) cyclohexane- 1,2-dicarboxylate, castor oil derivatives, and adipates, including but not limited to di-2-ethylhexyladipate (DEHA), dimethyladipate (DMAD), dioctyladipate (DOA), and combinations thereof.
6. The PVC article according to any one of claims 3-5, wherein the secondary plasticizer is selected from the group consisting of phthalates, including but not limited to di-2- ethylhexylphthalate (DEHP), di(2-ethylhexyl) terephthalate (DEHT), di-butylphthalate (DBP), di-isobutylphthalate (DIBP), butyl benzylphthalate (BBP), and di(isononyl)phthalate (DINP), epoxidized vegetable oils, including but not limited to soy and linseed, trimellitates, including but not limited to trimethyl trimellitate (TMTM), tris (2-ethylhexyl) trimellitate (TOTM), and n-octyltrimellitate (OTM), polyesters, phosphates, including but not limited to butyryl trihexyl citrate (BTHC) and acetyl tributyl citrate (ATBC), benzoates, including but not limited to dipropylene glycol dibenzoate (DPGDP), sulphonates, including but not limited to phenyl cresyl esters of pentadecyl sulfonic acid, carboxylates, cyclohexane based, including but not limited to di(isononyl) cyclohexane- 1,2-dicarboxylate, castor oil derivatives, and adipates, including but not limited to di-2-ethylhexyladipate (DEHA), dimethyladipate (DMAD), dioctyladipate (DOA), and combinations thereof.
7. The PVC article according to any one of the preceding claims, wherein the primary plasticizer is DEHP.
8. The PVC article according to any one of the preceding claims, wherein the primary plasticizer is free of epoxidized vegetable oils and trimellitates.
9. The PVC article according to any one of claims 3-8, wherein the secondary plasticizer is free of epoxidized vegetable oils and trimellitates.
10. The PVC article according to any one of the preceding claims, wherein the metal- carboxylate acid scavenger comprises one or more metal stearates.
11. The PVC article according to claim 10, wherein the metal-carboxylate acid scavenger comprises a combination of zinc stearate and calcium stearate.
12. The PVC article according to claim 10, wherein the metal-carboxylate acid scavenger is free of zinc stearate.
13. The PVC article according to any one of the preceding claims, further comprising a lubricant.
14. The PVC article according to claim 13, wherein the lubricant is selected from the group consisting of polyethylene, paraffin wax, acrawax, and combinations thereof.
15. The PVC article according to claim 13 or claim 14, wherein the lubricant is included in the PVC article in an amount up to about 0.5 phr.
16. The PVC article according to any one of the preceding claims, wherein the PVC article has a thickness in a range of about 0.5 mm to about 10 mm.
17. The PVC article according to claim 16, wherein the PVC article has a thickness in a range of about 0.5 mm to about 5 mm.
18. The PVC article according to claim 17, wherein the PVC article has a thickness in of about 0.5 mm to about 2 mm.
19. The PVC article according to any one of the preceding claims, wherein the PVC article has a color characterized by a yellowness index according to ASTM E313 [D65/2°] in a range of about-2.0 to about 5.0.
20. The PVC article according to any one of the preceding claims, wherein the change in yellowness index according to ASTM E313 [D65/2°] of the PVC article following 25 KGy gamma irradiation is 3 or less.
21. A method of making a gamma- irradiated, plasticized PVC article, comprising:
providing a PVC article comprising a mixture of a PVC resin, a primary plasticizer present in an amount of about 30 phr to about 60 phr and a metal-carboxylate acid scavenger present in an amount of about 0.01 to about 0.5 phr; and
exposing the PVC article to gamma radiation in an amount in a range of about 10 KGy to about 100 KGy.
22. The method according to claim 21, wherein the PVC article is exposed to gamma radiation in an amount of at least about 20 KGy.
23. The method according to claim 22, wherein the PVC article is exposed to gamma radiation in an amount of at least about 50 KGy.
24. The method according to claim 23, wherein the PVC article is exposed to gamma radiation in an amount of at least about 75 KGy.
25. The method according to any one of claims 21-24, further comprising heat processing the PVC mixture to form the PVC article prior to exposure to gamma radiation.
26. A polyvinyl chloride (PVC) article, comprising: a PVC article comprising a mixture of
a PVC resin;
a primary plasticizer present in an amount of about 25 to about 55 parts per hundred parts resin (phr); and
an inorganic pigment present in an amount of about 0.008 phr to less than 0.15 phr.
27. The PVC article according to claim 26, further comprising a secondary plasticizer.
28. The PVC article according to claim 27, wherein the secondary plasticizer is present in an amount up to about 30 phr.
29. The PVC article according to any one of claims 26-28, further comprising a metal- carboxylate acid scavenger.
30. The PVC article according to claim 29, wherein the metal-carboxylate acid scavenger is present in an amount of up to about 0.5 phr.
31. The PVC article according to any one of claims 26-30, wherein the PVC article has been exposed to gamma-irradiation.
32. The PVC article according to any one of claims 26-31, wherein the PVC article is a heat-processed PVC article.
33. The PVC article according to any one of claims 26-32, wherein the inorganic pigment comprises a metal oxide.
34. The PVC article according to claim 33, wherein the metal oxide is a ternary oxide.
35. The PVC article according to any one of claims 26-34, wherein the inorganic pigment is blue or purple.
36. The PVC article according to any one of claims 26-35, wherein the primary plasticizer is selected from the group consisting of phthalates, including but not limited to di-2- ethylhexylphthalate (DEHP), di(2-ethylhexyl) terephthalate (DEHT), di-butylphthalate (DBP), di-isobutylphthalate (DIBP), butyl benzylphthalate (BBP), and di(isononyl)phthalate (DINP), epoxidized vegetable oils, including but not limited to soy and linseed, trimellitates, including but not limited to trimethyl trimellitate (TMTM), tris (2-ethylhexyl) trimellitate (TOTM), and n-octyltrimellitate (OTM), polyesters, phosphates, including but not limited to isodectyl diphenyl phosphate (DDP) and tris (2-ethylhexyl) phosphate (TOF), citrates, including but not limited to butyryl trihexyl citrate (BTHC) and acetyl tributyl citrate
(ATBC), benzoates, including but not limited to dipropylene glycol dibenzoate (DPGDP), sulphonates, including but not limited to phenyl cresyl esters of pentadecyl sulfonic acid, carboxylates, cyclohexane based, such as di(isononyl) cyclohexane- 1,2-dicarboxylate, castor oil derivatives, and adipates, including but not limited to di-2-ethylhexyladipate (DEHA), dimethyladipate (DMAD), dioctyladipate (DOA), and combinations thereof.
37. The PVC article according to any one of claims 27-36, wherein the secondary plasticizer is selected from the group consisting of phthalates, including but not limited to di- 2-ethylhexylphthalate (DEHP), di(2-ethylhexyl) terephthalate (DEHT), di-butylphthalate (DBP), di-isobutylphthalate (DIBP), butyl benzylphthalate (BBP), and di(isononyl)phthalate (DINP), epoxidized vegetable oils, including but not limited to soy and linseed, trimellitates, including but not limited to trimethyl trimellitate (TMTM), tris (2-ethylhexyl) trimellitate (TOTM), and n-octyltrimellitate (OTM), polyesters, phosphates, including but not limited to isodectyl diphenyl phosphate (DDP) and tris (2-ethylhexyl) phosphate (TOF), citrates, including but not limited to butyryl trihexyl citrate (BTHC) and acetyl tributyl citrate
(ATBC), benzoates, including but not limited to dipropylene glycol dibenzoate (DPGDP), sulphonates, including but not limited to phenyl cresyl esters of pentadecyl sulfonic acid, carboxylates, cyclohexane based, including but not limited to di(isononyl) cyclohexane-1,2- dicarboxylate, castor oil derivatives, and adipates, including but not limited to di-2- ethylhexyladipate (DEHA), dimethyladipate (DMAD), dioctyladipate (DOA), and
combinations thereof.
38. The PVC article according to any one of claims 26-37, wherein the primary plasticizer is DEHP.
39. The PVC article according to any one of claims 26-37, wherein the primary plasticizer is free of DEHP.
40. The PVC article according to any one of claims 29-39, wherein the metal-carboxylate acid scavenger comprises one or more metal stearates.
41. The PVC article according to claim 40, wherein the metal-carboxylate acid scavenger comprises a combination of zinc stearate and calcium stearate.
42. The PVC article according to claim 40, wherein the metal-carboxylate acid scavenger is free of zinc stearate.
43. The PVC article according to any one of claims 26-42, further comprising a lubricant.
44. The PVC article according to claim 43, wherein the lubricant is selected from the group consisting of polyethylene, paraffin wax, acrawax, and combinations thereof.
45. The PVC article according to claim 43 or 44, wherein the lubricant is included in the PVC article in an amount up to about 0.5 phr.
46. The PVC article according to any one of claims 26-45, wherein the PVC article has a color characterized by a yellowness index according to ASTM E313 [D65/2°] in a range of about -2.0 to 5.0.
47. The PVC article according to any one of claims 26-46, wherein the change in yellowness index according to ASTM E313 [D65/2°] of the PVC article following 25 KGy gamma irradiation is 3 or less.
48. The PVC article according to any one of claims 46-47, wherein the PVC article has not been UV bleached.
49. The PVC article according to any one of claims 46-49, wherein the PVC article has a net color change of no greater than about 2 ΔΕ after aging about 15 weeks.
50. A method of making a gamma-irradiated, plasticized PVC article, comprising:
providing a PVC article including a mixture of a PVC resin, a primary plasticizer present in an amount of about 30 to about 60 phr, and an inorganic colorant in an amount of about 0.01 to about 0.05 phr; and
exposing the PVC article to gamma radiation in an amount in a range of about 10 KGy about 100 KGy.
51. The method according to claim 50, wherein the PVC article is exposed to gamma radiation in an amount of at least about 20 KGy.
52. The method according to claim 51, wherein the PVC article is exposed to gamma radiation in an amount of at least about 50 KGy.
53. The method according to claim 52, wherein the PVC article is exposed to gamma radiation in an amount of at least about 75 KGy.
54. The method according to any one of claims 50-53, further comprising heat processing the PVC mixture to form the PVC article prior to exposure to gamma radiation.
PCT/US2013/074297 2012-12-11 2013-12-11 Radiation stabilized pvc compositions, and method of making same Ceased WO2014093438A1 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US201261735888P 2012-12-11 2012-12-11
US61/735,888 2012-12-11

Publications (1)

Publication Number Publication Date
WO2014093438A1 true WO2014093438A1 (en) 2014-06-19

Family

ID=49920608

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US2013/074297 Ceased WO2014093438A1 (en) 2012-12-11 2013-12-11 Radiation stabilized pvc compositions, and method of making same

Country Status (2)

Country Link
US (1) US20140162045A1 (en)
WO (1) WO2014093438A1 (en)

Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2018024594A1 (en) * 2016-08-01 2018-02-08 Basf Se Plasticizer composition
WO2018024596A1 (en) * 2016-08-01 2018-02-08 Basf Se Plasticizer composition
US9993389B2 (en) 2011-09-19 2018-06-12 Fenwal, Inc. Red blood cell products and the storage of red blood cells in containers free of phthalate plasticizer
CN108623936A (en) * 2018-04-26 2018-10-09 湖州亚文纸模包装有限公司 A kind of packing plastics film and its preparation process
US11160728B2 (en) 2014-02-20 2021-11-02 Fresenius Kabi Deutschland Gmbh Medical containers and system components with non-DEHP plasticizers for storing red blood cell products, plasma and platelets

Families Citing this family (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US10398625B2 (en) 2013-03-13 2019-09-03 Fenwal, Inc. Medical containers with terephthalate plasticizer for storing red blood cell products
KR101907252B1 (en) * 2015-03-20 2018-10-11 주식회사 엘지화학 Plasticizer, resin composition and method for preparing them
EP3112409A1 (en) 2015-06-30 2017-01-04 Scg Chemicals Co. Ltd. Plasticizer composition
EP3476891B1 (en) * 2017-02-10 2022-09-28 LG Chem, Ltd. Plasticizer composition and resin composition comprising same
KR20200022863A (en) * 2018-08-24 2020-03-04 현대자동차주식회사 Soft artificial leather for interior material of automobile and manufacturing method thereof
KR20200041618A (en) * 2018-10-12 2020-04-22 현대자동차주식회사 Skin layer for an artificial leather and method for manufacturing the artificial leather
CN109776997B (en) * 2018-12-21 2021-06-22 成都陵川特种工业有限责任公司 Precision tire expanding liquid plastic and preparation and casting method thereof
US12521309B2 (en) * 2020-10-02 2026-01-13 Icu Medical, Inc. Compositions and devices for containing medical fluids
WO2024019965A1 (en) * 2022-07-22 2024-01-25 Baxter International Inc. Plasticizer compositions comprising deht and epoxidized vegetable oils, plasticized compositions comprising the same, films comprising the same, and bags manufactured from films comprising the same

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB1301063A (en) * 1970-02-17 1972-12-29 M & T Chemicals Inc Stabilizer for halogen-containing polymers suitable for use as packaging materials
JPS62131048A (en) * 1985-12-02 1987-06-13 Adeka Argus Chem Co Ltd Vinyl chloride resin composition for use in gamma ray sterilization
JPS6438461A (en) * 1987-08-03 1989-02-08 Kyodo Chemical Co Ltd Vinyl chloride resin composition having excellent stability to irradiation with gamma-ray
JPH02263853A (en) * 1989-04-04 1990-10-26 Adeka Argus Chem Co Ltd Polyvinyl chloride resin composition
JPH0354241A (en) * 1989-07-21 1991-03-08 Adeka Argus Chem Co Ltd Polyvinyl chloride resin composition

Family Cites Families (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS5464573A (en) * 1977-11-01 1979-05-24 Agency Of Ind Science & Technol Method of treating the surface of molded product of vinyl chloride resin
AU3584389A (en) * 1988-06-06 1989-12-07 B.F. Goodrich Company, The Rigid vinyl polymer articles resistant to discoloration from gamma radiation
US5430108A (en) * 1994-01-14 1995-07-04 Exxon Chemical Patents Inc. Polyol ester PVC plasticizers

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB1301063A (en) * 1970-02-17 1972-12-29 M & T Chemicals Inc Stabilizer for halogen-containing polymers suitable for use as packaging materials
JPS62131048A (en) * 1985-12-02 1987-06-13 Adeka Argus Chem Co Ltd Vinyl chloride resin composition for use in gamma ray sterilization
JPS6438461A (en) * 1987-08-03 1989-02-08 Kyodo Chemical Co Ltd Vinyl chloride resin composition having excellent stability to irradiation with gamma-ray
JPH02263853A (en) * 1989-04-04 1990-10-26 Adeka Argus Chem Co Ltd Polyvinyl chloride resin composition
JPH0354241A (en) * 1989-07-21 1991-03-08 Adeka Argus Chem Co Ltd Polyvinyl chloride resin composition

Non-Patent Citations (8)

* Cited by examiner, † Cited by third party
Title
ANITA SAXENA ET AL: "Studies on the effects of gamma irradiation on nontoxic PVC formulations", JOURNAL OF APPLIED POLYMER SCIENCE, vol. 34, no. 4, 1 September 1987 (1987-09-01), pages 1727 - 1738, XP055113444, ISSN: 0021-8995, DOI: 10.1002/app.1987.070340430 *
DATABASE CA [online] CHEMICAL ABSTRACTS SERVICE, COLUMBUS, OHIO, US; INOMATA, JINSUKE ET AL: "Gamma radiation-resistant poly(vinyl chloride) compositions", XP002723166, retrieved from STN Database accession no. 1989:498445 *
DATABASE CA [online] CHEMICAL ABSTRACTS SERVICE, COLUMBUS, OHIO, US; KRYLOVA, S. V. ET AL: "Effect of the nature of stabilizers on the degradation plasticizers during .gamma.-irradiation", XP002723170, retrieved from STN Database accession no. 1974:109202 *
DATABASE CA [online] CHEMICAL ABSTRACTS SERVICE, COLUMBUS, OHIO, US; OKABE, YASUNORI ET AL: "Radiation-resistant medical vinyl chloride polymer compositions", XP002723167, retrieved from STN Database accession no. 1991:493760 *
DATABASE CA [online] CHEMICAL ABSTRACTS SERVICE, COLUMBUS, OHIO, US; SHIICHI, ICHIRO ET AL: "Vinyl chloride resin compositions sterilizable by gamma radiation", XP002723168, retrieved from STN Database accession no. 1987:637992 *
KHANG, GILSON ET AL: "Stabilization of nontoxic PVC formulation for gamma irradiation sterilization, I. Effect of additives", BIO-MEDICAL MATERIALS AND ENGINEERING, CODEN: BMENEO; ISSN: 0959-2989, vol. 12, no. 2, 2002, IOS PRESS, AMSTERDAM, NL, pages 135 - 147, XP008168860 *
KRYLOVA, S. V. ET AL: "Effect of the nature of stabilizers on the degradation plasticizers during .gamma.-irradiation", PLASTICHESKIE MASSY , 15(12), 22-5 CODEN: PLMSAI; ISSN: 0554-2901, 1973 *
SACHS, G.: "Titanidioxid in Kunststoffen und Gummi", KAUTSCHUK UND GUMMI, CODEN: KAGUAW; ISSN: 0368-4768, vol. 16, no. 5, 1963, pages 256 - 266, XP008168859 *

Cited By (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US9993389B2 (en) 2011-09-19 2018-06-12 Fenwal, Inc. Red blood cell products and the storage of red blood cells in containers free of phthalate plasticizer
US11000551B2 (en) 2011-09-19 2021-05-11 Fenwal, Inc. Red blood cell products and the storage of red blood cells in containers free of phthalate plasticizer
US11833175B2 (en) 2011-09-19 2023-12-05 Fenwal, Inc. Red blood cell products and the storage of red blood cells in containers free of phthalate plasticizer
US11160728B2 (en) 2014-02-20 2021-11-02 Fresenius Kabi Deutschland Gmbh Medical containers and system components with non-DEHP plasticizers for storing red blood cell products, plasma and platelets
WO2018024594A1 (en) * 2016-08-01 2018-02-08 Basf Se Plasticizer composition
WO2018024596A1 (en) * 2016-08-01 2018-02-08 Basf Se Plasticizer composition
CN109563305A (en) * 2016-08-01 2019-04-02 巴斯夫欧洲公司 Plasticizer composition
US20190161598A1 (en) * 2016-08-01 2019-05-30 Basf Se Plasticizer composition
CN108623936A (en) * 2018-04-26 2018-10-09 湖州亚文纸模包装有限公司 A kind of packing plastics film and its preparation process

Also Published As

Publication number Publication date
US20140162045A1 (en) 2014-06-12

Similar Documents

Publication Publication Date Title
WO2014093438A1 (en) Radiation stabilized pvc compositions, and method of making same
JP6532875B2 (en) Molding resin composition
US6187456B1 (en) Method of inhibiting color change in a plastic article comprising silver-based antimicrobials
EP2083044B1 (en) Composition for stabilizing halogen-containing polymers
DE69416861T3 (en) STABILIZED VINYL CHLORIDE COMPOSITION
NO152094B (en) HEAT STABILIZED VINYL CHLORIDE PLASTIC
US9822251B2 (en) Anti yellowing composition
EP0524354B1 (en) Polyvinylchloride composition and stabilizers therefor
US4774275A (en) Polypropylene composition
EP0426852B2 (en) Use of a sealed vessel for coloured food
EP0946634B1 (en) Use of polyalcohols as polymer stabilisers
US3262896A (en) Vinyl halide resins stabilized with mixtures of zinc salts and potassium salts of monocarboxylic acids
JP5611733B2 (en) Molding
WO2014149894A1 (en) Mixed metal stabilizer compositions
WO2019065748A1 (en) Resin composition for injection molding
US5219600A (en) Molded product for colored food
EP0111829B1 (en) Radiation-resistant vinyl chloride resin compositions
WO2012004377A1 (en) Stabilizing composition for halogen-containing polymers
EP3243869B1 (en) Compositions and products for stabilizing halogen-containing polymers
JPH04183735A (en) Thermally stabilized chlorine-containing resin composition
JP2809548B2 (en) Stabilized chlorine-containing resin composition
JP3150638B2 (en) Vinyl chloride resin composition in which blocking during storage is prevented
CA2340715C (en) Method of preparing a sterile article
DE69007861T2 (en) Compounds that contain a dihydropyridine function.
WO2025205713A1 (en) Vinyl chloride-based resin composition and vinyl chloride-based resin molded body

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 13818550

Country of ref document: EP

Kind code of ref document: A1

NENP Non-entry into the national phase

Ref country code: DE

122 Ep: pct application non-entry in european phase

Ref document number: 13818550

Country of ref document: EP

Kind code of ref document: A1