US20070187860A1 - Direct coupling of melt polymerization and solid state processing for pet - Google Patents

Direct coupling of melt polymerization and solid state processing for pet Download PDF

Info

Publication number
US20070187860A1
US20070187860A1 US11/729,348 US72934807A US2007187860A1 US 20070187860 A1 US20070187860 A1 US 20070187860A1 US 72934807 A US72934807 A US 72934807A US 2007187860 A1 US2007187860 A1 US 2007187860A1
Authority
US
United States
Prior art keywords
pellets
water
stream
temperature
dryer
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.)
Abandoned
Application number
US11/729,348
Inventor
Richard Bonner
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.)
Individual
Original Assignee
Individual
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 Individual filed Critical Individual
Priority to US11/729,348 priority Critical patent/US20070187860A1/en
Publication of US20070187860A1 publication Critical patent/US20070187860A1/en
Abandoned legal-status Critical Current

Links

Images

Classifications

    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08GMACROMOLECULAR COMPOUNDS OBTAINED OTHERWISE THAN BY REACTIONS ONLY INVOLVING UNSATURATED CARBON-TO-CARBON BONDS
    • C08G63/00Macromolecular compounds obtained by reactions forming a carboxylic ester link in the main chain of the macromolecule
    • C08G63/02Polyesters derived from hydroxycarboxylic acids or from polycarboxylic acids and polyhydroxy compounds
    • C08G63/12Polyesters derived from hydroxycarboxylic acids or from polycarboxylic acids and polyhydroxy compounds derived from polycarboxylic acids and polyhydroxy compounds
    • C08G63/16Dicarboxylic acids and dihydroxy compounds
    • C08G63/18Dicarboxylic acids and dihydroxy compounds the acids or hydroxy compounds containing carbocyclic rings
    • C08G63/181Acids containing aromatic rings
    • C08G63/183Terephthalic acids
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29BPREPARATION OR PRETREATMENT OF THE MATERIAL TO BE SHAPED; MAKING GRANULES OR PREFORMS; RECOVERY OF PLASTICS OR OTHER CONSTITUENTS OF WASTE MATERIAL CONTAINING PLASTICS
    • B29B9/00Making granules
    • B29B9/02Making granules by dividing preformed material
    • B29B9/06Making granules by dividing preformed material in the form of filamentary material, e.g. combined with extrusion
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29BPREPARATION OR PRETREATMENT OF THE MATERIAL TO BE SHAPED; MAKING GRANULES OR PREFORMS; RECOVERY OF PLASTICS OR OTHER CONSTITUENTS OF WASTE MATERIAL CONTAINING PLASTICS
    • B29B9/00Making granules
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29BPREPARATION OR PRETREATMENT OF THE MATERIAL TO BE SHAPED; MAKING GRANULES OR PREFORMS; RECOVERY OF PLASTICS OR OTHER CONSTITUENTS OF WASTE MATERIAL CONTAINING PLASTICS
    • B29B9/00Making granules
    • B29B9/16Auxiliary treatment of granules
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08FMACROMOLECULAR COMPOUNDS OBTAINED BY REACTIONS ONLY INVOLVING CARBON-TO-CARBON UNSATURATED BONDS
    • C08F2/00Processes of polymerisation
    • C08F2/01Processes of polymerisation characterised by special features of the polymerisation apparatus used
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29BPREPARATION OR PRETREATMENT OF THE MATERIAL TO BE SHAPED; MAKING GRANULES OR PREFORMS; RECOVERY OF PLASTICS OR OTHER CONSTITUENTS OF WASTE MATERIAL CONTAINING PLASTICS
    • B29B9/00Making granules
    • B29B9/16Auxiliary treatment of granules
    • B29B2009/165Crystallizing granules
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29KINDEXING SCHEME ASSOCIATED WITH SUBCLASSES B29B, B29C OR B29D, RELATING TO MOULDING MATERIALS OR TO MATERIALS FOR MOULDS, REINFORCEMENTS, FILLERS OR PREFORMED PARTS, e.g. INSERTS
    • B29K2067/00Use of polyesters or derivatives thereof, as moulding material

Definitions

  • the present invention pertains to the commercial manufacture of polyethylene terephthalate (“PET”) polymers.
  • PET polyethylene terephthalate
  • PET has numerous uses, principle among which are for films, fibers, and food containers. Despite the stringent matrix of properties required for such uses, particularly for food packaging, some PET has become a commodity polymer. Commercial production of PET is energy intensive, and therefore even relatively small improvements in energy consumption are of considerable commercial value.
  • PET (inclusive of copolymers) begins with an esterification step where the dicarboxylic acid component, predominantly terephthalic acid, is slurried in ethylene glycol and heated to produce a mixture of oligomers of a low degree of polymerization.
  • This “esterification” step may be followed by a further “oligomerization” or “prepolymer” step, where a higher degree of polymerization is obtained.
  • the product still has a very low molecular weight at this stage.
  • the previously described steps are then followed by a polycondensation.
  • the polycondensation is catalyzed by metal compounds such as Sb, Ti, Ge, Sn, etc.
  • Polycondensation occurs at relatively high temperature, generally in the range of 280-300° C., under vacuum, water and ethylene glycol produced by the condensation being removed.
  • the polymer at the end of polycondensation has an inherent viscosity generally in the range of 0.4 to 0.65, corresponding to a molecular weight too low for many applications.
  • solid stating a subsequent post-polymerization in the solid state, termed “solid stating.”
  • the PET granules are heated in inert gas, preferably nitrogen, at temperatures below the melt temperature, i.e. from 210-220° C. in many cases.
  • Solid stating is complicated by the fact that most PET polymers, following extrusion from the melt and pelletizing, are substantially amorphous.
  • the pellets are first crystallized over a period of 30 to 90 minutes at a lower temperature, e.g. 160-190° C., typically in a flow of inert gas or air.
  • lid stating refers to the solid state polycondensation per se, and not to the combined processes of crystallization and solid state polycondensation. These procedures are well known to those skilled in the art, as evidenced by U.S. Pat. Nos. 5,597,891 and 6,159,406.
  • the polymer is extruded directly from the polycondensation reactor into strands.
  • the hot, extruded strands are contacted with cool water prior to chopping into pellets, dried, and stored into silos prior to crystallizing.
  • Conventional pelletizing processes as well as a pelletizing process wherein strands are stretched prior to pelletizing are disclosed in U.S. Pat. No. 5,310,515.
  • the pellets can be further cooled to the desired temperature with cool air or nitrogen.
  • the pellets are stored, and then subsequently reheated to the desired crystallization temperature.
  • PET pellets from the polycondensation reactor are cooled only to a temperature below the glass transition temperature of the particular polymer or copolymer, and at or above 50° C., and held within this temperature range up to entry into the crystallizer. Despite the higher temperature of the feed pellets, agglomeration does not occur.
  • FIG. 1 illustrates the prior art process of PET production from polycondensation through solid stating.
  • FIG. 2 illustrates one embodiment of a subject invention PET process from polycondensation through solid stating.
  • FIG. 3 illustrates yet another embodiment for the subject invention.
  • esterification, oligomerization, and other process steps up to and including polycondensation may be performed conventionally or by any process where pellets are produced from a polymerization melt.
  • the improvement provided by the subject invention takes place during and/or following pelletization, and through the crystallization stage.
  • the PET polymers are conventional, and are polymers prepared from terephthalic acid and ethylene glycol. While dimethylterephthalate may in principle be used as well as terephthalic acid, use of the latter is preferred.
  • the PET polymers may contain up to 20 mol percent, preferably up to 10 mol percent, and more preferably no more than 5 mol percent of dicarboxylic acids other than terephthalic acid, and the same mol percentages of glycols (diols) other than ethylene glycol.
  • diols other than ethylene glycol which may be employed include, but are not limited to, 1,2-propane diol (propylene glycol), 1,3-propane diol (trimethylene glycol), diethylene glycol, triethylene glycol, dipropylene glycol, 1,4-butane diol, 1,6-hexanediol, cyclohexane diol, neopentyl glycol, and cyclohexanedimethanol.
  • Preferred glycols other than ethylene glycol include diethylene glycol, and most preferredly, cyclohexanedimethanol (“CHDM”), the latter generally used as a mixture of isomers.
  • CHDM cyclohexanedimethanol
  • polyols such as pentaerythritol, glycerine, and trimethylolpropane may be used in most minor quantities when branched or partially crosslinked polyesters are desired.
  • difunctional carboxylic acids and difunctional hydroxyl-functional compounds are employed.
  • the subject invention process is also applicable to other polyesters wherein pellets formed from the melt are amorphous.
  • Pelletizers are available commercially from firms such as Reiter Automatic Apparate-mill GmbH, Germany, and Gala Industries, Eagle Rock, Va. Pelletizers, for example, are described in U.S. Pat. Nos. 4,123,207; 4,500,271; 4,728,276; 5,059,103; 5,310,515; 5,403,176; and 6,551,087; while a variety of mechanical dryers are disclosed in U.S. Pat. Nos. 4,447,325; 4,565,015; 5,638,606; 6,138,375; and 6,237,244. All foregoing patents are incorporated herein by reference.
  • FIG. 1 A conventional PET process is shown in FIG. 1 .
  • the PET polymer 1 is polycondensed in the melt at about 285° C. in polycondensation reactor 2 .
  • the polymer is pumped through outlet 3 to extrusion die 4 through which the molten polymer, still very hot, exits as a plurality of strands 5 .
  • Below the die may be a grooved plate 6 , the extruded strands following the grooves.
  • Cool water 7 is directed over the strands and the plate, cooling the strands rapidly, e.g. to a surface temperature in the range of 75° to 150° C., following which the strands enter a pelletizer 8 , which chops the strands into pellets 9 several mm in length.
  • the still warm pellets fall into a moving stream of cool water, generally at 20° C. to 30° C., in conduit 10 , which conveys them to a mechanical separator 19 , i.e. a screen, and by air supplied through line 13 or by mechanical means, into dryer 12 .
  • a mechanical separator 19 i.e. a screen
  • the dryer 12 may be any type of dryer, such as those supplied by Reiter or Gala. Paddle dryers, serpentine dryers, centrifugal dryers, and the like may all be used.
  • FIG. 1 is shown a serpentine dryer having an “S -shaped” serpentine passageway of foraminous material.
  • the moist pellets are directed through the dryer by the air stream, water and water vapor escaping through the foraminous walls of the passageway. Water and water vapor exit the dryer through exit 15 , and the cool and substantially dry pellets exit the dryer 12 through exit 16 and enter storage silo 17 .
  • the pellets are conveyed from the storage silo through conduit 18 to a crystallizer where they are at least partially crystallized.
  • pellets due to their transit to the dryer in cool water, are already at a relatively low temperature, and are further lowered in temperature in the dryer, typically to the range of 20° C. to 30° C. on the pellet surfaces. Subsequent to crystallization, the pellets are typically conveyed to a solid stating reactor where further polycondensation to a higher inherent viscosity takes place in the solid state.
  • the present invention is also useful in processes where solid state polymerization is not performed. Embodiments of the present invention are shown in FIGS. 2 and 3 . In FIG. 2 , the process of FIG.
  • any water present on the pellets will rapidly evaporate, either during transit, or upon initial entry into the crystallizer, which generally operates at temperatures above 160° C. at ambient or reduced pressure, and generally in conjunction with a stream of inert gas. It is preferable that the pellets remain warm, i.e. close to or above a minimum temperature of 50° C. upon entry into the crystallizer, preferably about 90° C.
  • the strands 5 are contacted with water 7 , i.e. warm water or a limited quantity of cooler water, and optionally air, prior to pelletization in the pelletizer 8 .
  • the pellets are then conveyed by air through conduit 10 directly into the crystallizer 20 where they are crystallized under conventional conditions, i.e. 160°-190° C. in a flow of inert gas or air, following which they exit the crystallizer through conduit 21 and are thus directed to the solid stating reactor, when the latter is used.
  • FIG. 3 represents a preferred embodiment wherein warm water is used to transport the pellets 9 past dewatering screen 19 , and wherein air through air inlet 23 directs the pellets directly to crystallizer 20 , or through optional dryer 24 and then to crystallizer 20 , exiting the crystallizer through conduit 21 to the optional solid stating reactor.
  • Water collected from the dewatering screen 19 is preferably recirculated and used as water 7 to initially cool the strands, and/or as the warm transport water supply to conduit 10 . If full or partial drying of the pellets is desired, as described as an embodiment in FIG. 3 , the pellets may be introduced into a dryer prior to being conveyed to the crystallizer.
  • the air flow into the dryer is such that while substantial water is removed, the pellets remain at a relatively high temperature, i.e. about 70-90° C.
  • any type of dryer can be used with the subject invention process, and any type of crystallizer. Since the crystallizer operates at relatively high temperature and itself is capable of volatizing relatively large amounts of water, the dryer may be of relatively small size. From the dewatering screen, the wet pellets may constitute 40-60% by weight of water. Much of this water can be removed by a simple dryer, i.e. a centrifugal dryer of relatively small size, and the moist pellets, now containing much less water, e.g. 5 to 15% water, are then introduced into the crystallizer.
  • the molten polyester strands Due to the relatively high temperature of the molten polyester strands as they exit the polycondensation reactor, there is an abundance of thermal energy in the overall process which may be used, e.g. to heat air necessary for transport of dry, wet, or moist pellets, or as a feed to the crystallizer. It is important to remember that it is desired to keep the pellet temperature as high as possible but preferably near or below the polymer Tg, and in any case, higher than 50° C. The higher the pellet temperature at the crystallizer inlet, the greater the heat savings, and the more economical the process becomes. The subject invention process has the benefit that a substantial portion of the energy penalty for cooling the pellets and subsequently reheating them does not occur.
  • the water which contacts the pellets will be either a small quantity of cool water whose temperature rapidly rises and is insufficient to cool the pellets substantially below the Tg of the polymer, or a larger quantity of warm water which has the same effect.
  • the water supply is preferably recirculated, and excess heat may be removed in a heat exchanger. The excess heat may be used in other portions of the overall process.
  • the water temperature is from 40° C. to 70° C., more preferably 50° C. to 70° C., and most preferably 50° C. to 60° C.
  • the water which contacts the pellets may be supplied in total during initial cooling of the hot strands of molten PET.
  • the temperature of the pellets, both exterior and interior, is preferably somewhat above the polymer Tg to aid in pelletizing.
  • the pellets may be contacted with an air stream, which further cools the surface of the pellets to a temperature below the Tg, for example but not by limitation, to a temperature in the range of 70° to 90° C.
  • the air may be recirculated if desired, which will ordinarily assure that the air stream remains warm.
  • a water stream may be used to transfer the pellets to the crystallizer, for example with a water separator positioned prior to the crystallizer as is now customary prior to entry into the storage silo where pellets are stored prior to entry into the crystallizer.
  • cool water cannot be used in this embodiment. Rather, warm water having a temperature of about 50° C. or more is preferably used.
  • the water temperature may be lower than 50° C. when the distance of transport prior to removal of water, or the velocity of the conveying water stream, or both, are such that a short transit time does not allow pellet temperature to drop below the desired range.
  • This water is preferably recirculated following separation of water from the pellets, optionally also augmented with hot water vapor which exits the crystallizer, such that little if any heat will be required to maintain the water temperature. Preferably, no additional heat is required.
  • the pellets are fed directly to the crystallizer, and in the embodiment illustrated in FIG. 3 , intermediately and optionally through a dryer. It is thus preferred that transport to the crystallizer be substantially continuous, without bulk storage in a silo which is the current practice. However, it would not depart from the spirit of the invention to employ a holding stage which temporarily disrupts the continuous flow. Such a holding stage, when employed, will be of much smaller size than a storage silo, and would only have the effect of delaying the continuous flow to the crystallizer.
  • pellet temperature is the temperature of the exterior of the pellets. If the exterior temperature is above the Tg of the polymer for substantial portions of time following pelletization, the pellets may exhibit agglomeration, particularly when flowing in an air stream to the crystallizer.
  • the exterior temperature may be measured by any convenient method. One suitable method is to take a fresh sample of pellets and insert them in an insulated vessel with one or preferably a plurality of rapid reacting temperature probes, and plotting the temperature versus time. Extrapolation backwards in time will give the temperature of the exterior of the pellets, as at “zero” time, no heat will have been diffused from the pellet interior.
  • the pellet exterior temperature may be assumed to be the same as the water temperature at the pellet/water separation point.

Landscapes

  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Chemical & Material Sciences (AREA)
  • Health & Medical Sciences (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Medicinal Chemistry (AREA)
  • Polymers & Plastics (AREA)
  • Organic Chemistry (AREA)
  • Polyesters Or Polycarbonates (AREA)
  • Processing And Handling Of Plastics And Other Materials For Molding In General (AREA)
  • Artificial Filaments (AREA)

Abstract

Strands of molten polyethylene terephthalate (PET) from a PET polycondensation reactor are solidified, pelletized, and cooled only to a temperature in the range of 50° C. to a temperature near the polymer Tg by contact with water. The still hot pellets are conveyed, optionally followed by drying to remove water, to a PET crystallizer. By avoiding cooling the amorphous pellets to room temperature with water and cool air, significant savings of energy are realized.

Description

    CROSS REFERENCE TO RELATED CASES
  • This application is a continuation of U.S. application Ser. No. 10/663,856 filed Sep. 16, 2003.
  • BACKGROUND OF THE INVENTION
  • 1. Field of the Invention
  • The present invention pertains to the commercial manufacture of polyethylene terephthalate (“PET”) polymers.
  • 2. Background Art
  • PET has numerous uses, principle among which are for films, fibers, and food containers. Despite the stringent matrix of properties required for such uses, particularly for food packaging, some PET has become a commodity polymer. Commercial production of PET is energy intensive, and therefore even relatively small improvements in energy consumption are of considerable commercial value.
  • The production of PET (inclusive of copolymers) begins with an esterification step where the dicarboxylic acid component, predominantly terephthalic acid, is slurried in ethylene glycol and heated to produce a mixture of oligomers of a low degree of polymerization. This “esterification” step may be followed by a further “oligomerization” or “prepolymer” step, where a higher degree of polymerization is obtained. The product still has a very low molecular weight at this stage.
  • The previously described steps are then followed by a polycondensation. The polycondensation is catalyzed by metal compounds such as Sb, Ti, Ge, Sn, etc. Polycondensation occurs at relatively high temperature, generally in the range of 280-300° C., under vacuum, water and ethylene glycol produced by the condensation being removed. The polymer at the end of polycondensation has an inherent viscosity generally in the range of 0.4 to 0.65, corresponding to a molecular weight too low for many applications.
  • Commercial production of PET polyesters has required a subsequent post-polymerization in the solid state, termed “solid stating.” In this stage of the process, the PET granules are heated in inert gas, preferably nitrogen, at temperatures below the melt temperature, i.e. from 210-220° C. in many cases. Solid stating is complicated by the fact that most PET polymers, following extrusion from the melt and pelletizing, are substantially amorphous. In order to prevent the pellets from sintering and agglomerating in the solid stater, the pellets are first crystallized over a period of 30 to 90 minutes at a lower temperature, e.g. 160-190° C., typically in a flow of inert gas or air. It should be noted that “so lid stating” herein refers to the solid state polycondensation per se, and not to the combined processes of crystallization and solid state polycondensation. These procedures are well known to those skilled in the art, as evidenced by U.S. Pat. Nos. 5,597,891 and 6,159,406.
  • In the conventional PET process, the polymer is extruded directly from the polycondensation reactor into strands. The hot, extruded strands are contacted with cool water prior to chopping into pellets, dried, and stored into silos prior to crystallizing. Conventional pelletizing processes as well as a pelletizing process wherein strands are stretched prior to pelletizing are disclosed in U.S. Pat. No. 5,310,515. Conventional wisdom dictates that at least the surface of the pellets must be cooled to 20° to 30° C. to avoid sinteling during storage. During storage, heat from the hotter interior of the pellets is distributed throughout the pellets. Thus, warm pellets, i.e. pellets whose exterior is significantly higher than 20-30° C. might agglomerate during storage following temperature equilibration. In addition to the decrease in temperature brought about by contact with water, the pellets can be further cooled to the desired temperature with cool air or nitrogen. The pellets are stored, and then subsequently reheated to the desired crystallization temperature. These steps of heating, cooling, and reheating entail a significant energy penalty in an already energy intensive process.
  • SUMMARY OF THE INVENTION
  • In the present invention, PET pellets from the polycondensation reactor are cooled only to a temperature below the glass transition temperature of the particular polymer or copolymer, and at or above 50° C., and held within this temperature range up to entry into the crystallizer. Despite the higher temperature of the feed pellets, agglomeration does not occur.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • FIG. 1 illustrates the prior art process of PET production from polycondensation through solid stating.
  • FIG. 2 illustrates one embodiment of a subject invention PET process from polycondensation through solid stating.
  • FIG. 3 illustrates yet another embodiment for the subject invention.
  • DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT(S)
  • The esterification, oligomerization, and other process steps up to and including polycondensation may be performed conventionally or by any process where pellets are produced from a polymerization melt. The improvement provided by the subject invention takes place during and/or following pelletization, and through the crystallization stage.
  • The PET polymers are conventional, and are polymers prepared from terephthalic acid and ethylene glycol. While dimethylterephthalate may in principle be used as well as terephthalic acid, use of the latter is preferred. In addition, the PET polymers may contain up to 20 mol percent, preferably up to 10 mol percent, and more preferably no more than 5 mol percent of dicarboxylic acids other than terephthalic acid, and the same mol percentages of glycols (diols) other than ethylene glycol.
  • Examples of other suitable dicarboxylic acids which may be used with terephthalic acid are isophthalic acid, phthalic acid, naphthalene dicarboxylic acids, cyclohexane dicarboxylic acids, aliphatic dicarboxylic acids, and the like. This list is illustrative, and not limiting. In some cases, the presence of minor amounts of tri- or tetracarboxylic acids may be useful for generating branched or partially crosslinked polyesters. Isophthalic acid and naphthalene dicarboxylic acids are the preferred dicarboxylic acid when mixtures of acids are employed.
  • Examples of diols other than ethylene glycol which may be employed include, but are not limited to, 1,2-propane diol (propylene glycol), 1,3-propane diol (trimethylene glycol), diethylene glycol, triethylene glycol, dipropylene glycol, 1,4-butane diol, 1,6-hexanediol, cyclohexane diol, neopentyl glycol, and cyclohexanedimethanol. Preferred glycols other than ethylene glycol include diethylene glycol, and most preferredly, cyclohexanedimethanol (“CHDM”), the latter generally used as a mixture of isomers. In addition, polyols such as pentaerythritol, glycerine, and trimethylolpropane may be used in most minor quantities when branched or partially crosslinked polyesters are desired. Most preferably, only difunctional carboxylic acids and difunctional hydroxyl-functional compounds (glycols) are employed. The subject invention process is also applicable to other polyesters wherein pellets formed from the melt are amorphous.
  • In the description which follows, reference to equipment such as extruders, pelletizers, mechanical dryers, crystallizers, and to the process steps performed therein, are conventional unless indicated otherwise. Pelletizers are available commercially from firms such as Reiter Automatic Apparate-Maschinenbau GmbH, Germany, and Gala Industries, Eagle Rock, Va. Pelletizers, for example, are described in U.S. Pat. Nos. 4,123,207; 4,500,271; 4,728,276; 5,059,103; 5,310,515; 5,403,176; and 6,551,087; while a variety of mechanical dryers are disclosed in U.S. Pat. Nos. 4,447,325; 4,565,015; 5,638,606; 6,138,375; and 6,237,244. All foregoing patents are incorporated herein by reference.
  • A conventional PET process is shown in FIG. 1. In FIG. 1, the PET polymer 1 is polycondensed in the melt at about 285° C. in polycondensation reactor 2. The polymer is pumped through outlet 3 to extrusion die 4 through which the molten polymer, still very hot, exits as a plurality of strands 5. Below the die may be a grooved plate 6, the extruded strands following the grooves. Cool water 7 is directed over the strands and the plate, cooling the strands rapidly, e.g. to a surface temperature in the range of 75° to 150° C., following which the strands enter a pelletizer 8, which chops the strands into pellets 9 several mm in length. The still warm pellets fall into a moving stream of cool water, generally at 20° C. to 30° C., in conduit 10, which conveys them to a mechanical separator 19, i.e. a screen, and by air supplied through line 13 or by mechanical means, into dryer 12.
  • The dryer 12 may be any type of dryer, such as those supplied by Reiter or Gala. Paddle dryers, serpentine dryers, centrifugal dryers, and the like may all be used. In FIG. 1 is shown a serpentine dryer having an “S -shaped” serpentine passageway of foraminous material. The moist pellets are directed through the dryer by the air stream, water and water vapor escaping through the foraminous walls of the passageway. Water and water vapor exit the dryer through exit 15, and the cool and substantially dry pellets exit the dryer 12 through exit 16 and enter storage silo 17. Eventually, the pellets are conveyed from the storage silo through conduit 18 to a crystallizer where they are at least partially crystallized. It should be noted that pellets, due to their transit to the dryer in cool water, are already at a relatively low temperature, and are further lowered in temperature in the dryer, typically to the range of 20° C. to 30° C. on the pellet surfaces. Subsequent to crystallization, the pellets are typically conveyed to a solid stating reactor where further polycondensation to a higher inherent viscosity takes place in the solid state. However, the present invention is also useful in processes where solid state polymerization is not performed. Embodiments of the present invention are shown in FIGS. 2 and 3. In FIG. 2, the process of FIG. 1 is followed, except that water contacting the strands, instead of cooling the strands substantially, cools them, for example, only to about 70° C.-90° C., or a temperature near the glass transition temperature (“Tg”) of the polymer. This temperature may even be above the Tg, since no intermediate storage is necessary, and the temperature will decrease somewhat, preferably to below the Tg, in the air conveying stream to the crystallizer. The temperature, for example, may be 120° C. These pellets are termed “warm pellets” herein. The warm pellets are conveyed, i.e. by an air stream, preferably directly to the crystallizer. Since the pellets are still quite warm, any water present on the pellets will rapidly evaporate, either during transit, or upon initial entry into the crystallizer, which generally operates at temperatures above 160° C. at ambient or reduced pressure, and generally in conjunction with a stream of inert gas. It is preferable that the pellets remain warm, i.e. close to or above a minimum temperature of 50° C. upon entry into the crystallizer, preferably about 90° C.
  • Thus, as illustrated by FIG. 2, in one embodiment of the subject invention process, the strands 5 are contacted with water 7, i.e. warm water or a limited quantity of cooler water, and optionally air, prior to pelletization in the pelletizer 8. The pellets are then conveyed by air through conduit 10 directly into the crystallizer 20 where they are crystallized under conventional conditions, i.e. 160°-190° C. in a flow of inert gas or air, following which they exit the crystallizer through conduit 21 and are thus directed to the solid stating reactor, when the latter is used.
  • FIG. 3 represents a preferred embodiment wherein warm water is used to transport the pellets 9 past dewatering screen 19, and wherein air through air inlet 23 directs the pellets directly to crystallizer 20, or through optional dryer 24 and then to crystallizer 20, exiting the crystallizer through conduit 21 to the optional solid stating reactor. Water collected from the dewatering screen 19 is preferably recirculated and used as water 7 to initially cool the strands, and/or as the warm transport water supply to conduit 10. If full or partial drying of the pellets is desired, as described as an embodiment in FIG. 3, the pellets may be introduced into a dryer prior to being conveyed to the crystallizer. However, the air flow into the dryer is such that while substantial water is removed, the pellets remain at a relatively high temperature, i.e. about 70-90° C. It should be noted that any type of dryer can be used with the subject invention process, and any type of crystallizer. Since the crystallizer operates at relatively high temperature and itself is capable of volatizing relatively large amounts of water, the dryer may be of relatively small size. From the dewatering screen, the wet pellets may constitute 40-60% by weight of water. Much of this water can be removed by a simple dryer, i.e. a centrifugal dryer of relatively small size, and the moist pellets, now containing much less water, e.g. 5 to 15% water, are then introduced into the crystallizer.
  • Due to the relatively high temperature of the molten polyester strands as they exit the polycondensation reactor, there is an abundance of thermal energy in the overall process which may be used, e.g. to heat air necessary for transport of dry, wet, or moist pellets, or as a feed to the crystallizer. It is important to remember that it is desired to keep the pellet temperature as high as possible but preferably near or below the polymer Tg, and in any case, higher than 50° C. The higher the pellet temperature at the crystallizer inlet, the greater the heat savings, and the more economical the process becomes. The subject invention process has the benefit that a substantial portion of the energy penalty for cooling the pellets and subsequently reheating them does not occur.
  • In the present invention, the water which contacts the pellets will be either a small quantity of cool water whose temperature rapidly rises and is insufficient to cool the pellets substantially below the Tg of the polymer, or a larger quantity of warm water which has the same effect. The water supply is preferably recirculated, and excess heat may be removed in a heat exchanger. The excess heat may be used in other portions of the overall process. Preferably, the water temperature is from 40° C. to 70° C., more preferably 50° C. to 70° C., and most preferably 50° C. to 60° C.
  • The water which contacts the pellets may be supplied in total during initial cooling of the hot strands of molten PET. In this case, the temperature of the pellets, both exterior and interior, is preferably somewhat above the polymer Tg to aid in pelletizing. Instead of entering a stream of cool water, the pellets may be contacted with an air stream, which further cools the surface of the pellets to a temperature below the Tg, for example but not by limitation, to a temperature in the range of 70° to 90° C. The air may be recirculated if desired, which will ordinarily assure that the air stream remains warm.
  • Alternatively, as in FIG. 3, a water stream may be used to transfer the pellets to the crystallizer, for example with a water separator positioned prior to the crystallizer as is now customary prior to entry into the storage silo where pellets are stored prior to entry into the crystallizer. However, in the case of the subject invention, cool water cannot be used in this embodiment. Rather, warm water having a temperature of about 50° C. or more is preferably used. The water temperature may be lower than 50° C. when the distance of transport prior to removal of water, or the velocity of the conveying water stream, or both, are such that a short transit time does not allow pellet temperature to drop below the desired range. This water is preferably recirculated following separation of water from the pellets, optionally also augmented with hot water vapor which exits the crystallizer, such that little if any heat will be required to maintain the water temperature. Preferably, no additional heat is required.
  • In the present invention, the pellets are fed directly to the crystallizer, and in the embodiment illustrated in FIG. 3, intermediately and optionally through a dryer. It is thus preferred that transport to the crystallizer be substantially continuous, without bulk storage in a silo which is the current practice. However, it would not depart from the spirit of the invention to employ a holding stage which temporarily disrupts the continuous flow. Such a holding stage, when employed, will be of much smaller size than a storage silo, and would only have the effect of delaying the continuous flow to the crystallizer.
  • It should be understood that when pellet temperature is referred to in the claims, this temperature is the temperature of the exterior of the pellets. If the exterior temperature is above the Tg of the polymer for substantial portions of time following pelletization, the pellets may exhibit agglomeration, particularly when flowing in an air stream to the crystallizer. The exterior temperature may be measured by any convenient method. One suitable method is to take a fresh sample of pellets and insert them in an insulated vessel with one or preferably a plurality of rapid reacting temperature probes, and plotting the temperature versus time. Extrapolation backwards in time will give the temperature of the exterior of the pellets, as at “zero” time, no heat will have been diffused from the pellet interior. However, since heat conduction through the polymer is relatively slow, simple measurement of the temperature of a small bulk sample will provide an excellent approximation to the exterior temperature, and may be used for that purpose herein. In the case where warm water is used to transport the pellets, the pellet exterior temperature may be assumed to be the same as the water temperature at the pellet/water separation point.
  • While embodiments of the invention have been illustrated and described, it is not intended that these embodiments illustrate and describe all possible forms of the invention. Rather, the words used in the specification are words of description rather than limitation, and it is understood that various changes may be made without departing from the spirit and scope of the invention.

Claims (14)

1. A process comprising:
a) pelletizing a molten polyethylene terephthalate to form amorphous polyethylene terephthalate pellets;
b) transporting the pellets in a stream of water to a dryer to form a stream of dry or moist pellets, wherein the stream of water has a temperature of 50° C. or more; and
c) a crystallization step wherein the stream of dry or moist pellets are crystallized and the stream of dry or moist pellets is introduced into the step of crystallizing at a pellet temperature of 50° C. or more.
2. The process of claim 1, wherein the stream of dry or moist pellets are continuously fed from the dryer to the crystallization step.
3. The process of claim 2, wherein the dryer is a centrifugal dryer.
4. The process of claim 3, wherein said water is separated from the pellets and re-circulated to transport the pellets in said stream of water.
5. The process of claim 2, wherein the stream of dry or moist pellets are continuously fed from the dryer to the crystallization step.
6. The process of claim 1, wherein the stream of dry or moist pellets are dry.
7. The process of claim 1, wherein no external heat is required to maintain the water temperature.
8. The process of claim 1, wherein a portion of the water is separated from the water stream through a dewatering screen.
9. The process of claim 1, wherein the water in the water stream is at a temperature insufficient to cool the temperature of the pellets in the water stream to below the Tg of the pellets.
10. The process of claim 1, wherein water present on the surface of the pellets, if any, after the dryer is evaporated prior to the crystallization step.
11. The process of claim 1, wherein following the crystallization step, the pellets are solid state polymerized.
12. The process of claim 1, wherein the polyethylene terephthalate is a polymer modified with up to 10 mol percent dicarboxylic acids other than terephthalic acid and up to 10 mol percent of diols other than ethylene glycol.
13. The process of claim 12, wherein the diols other than ethylene glycol comprise CHDM.
14. The process of claim 12, wherein the dicaroxylic acids other than terephthalic acid comprise isophthalic acid.
US11/729,348 2003-09-16 2007-03-28 Direct coupling of melt polymerization and solid state processing for pet Abandoned US20070187860A1 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
US11/729,348 US20070187860A1 (en) 2003-09-16 2007-03-28 Direct coupling of melt polymerization and solid state processing for pet

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US10/663,856 US7204945B2 (en) 2003-09-16 2003-09-16 Direct coupling of melt polymerization and solid state processing for PET
US11/729,348 US20070187860A1 (en) 2003-09-16 2007-03-28 Direct coupling of melt polymerization and solid state processing for pet

Related Parent Applications (1)

Application Number Title Priority Date Filing Date
US10/663,856 Continuation US7204945B2 (en) 2003-09-16 2003-09-16 Direct coupling of melt polymerization and solid state processing for PET

Publications (1)

Publication Number Publication Date
US20070187860A1 true US20070187860A1 (en) 2007-08-16

Family

ID=34274463

Family Applications (2)

Application Number Title Priority Date Filing Date
US10/663,856 Expired - Lifetime US7204945B2 (en) 2003-09-16 2003-09-16 Direct coupling of melt polymerization and solid state processing for PET
US11/729,348 Abandoned US20070187860A1 (en) 2003-09-16 2007-03-28 Direct coupling of melt polymerization and solid state processing for pet

Family Applications Before (1)

Application Number Title Priority Date Filing Date
US10/663,856 Expired - Lifetime US7204945B2 (en) 2003-09-16 2003-09-16 Direct coupling of melt polymerization and solid state processing for PET

Country Status (16)

Country Link
US (2) US7204945B2 (en)
EP (1) EP1675713B1 (en)
JP (2) JP4723498B2 (en)
KR (1) KR101149857B1 (en)
CN (1) CN100537173C (en)
AR (1) AR045537A1 (en)
BR (1) BRPI0413763A (en)
CA (1) CA2535277C (en)
ES (1) ES2440952T3 (en)
MX (1) MX338609B (en)
MY (1) MY138204A (en)
PL (1) PL1675713T3 (en)
PT (1) PT1675713E (en)
RU (1) RU2358866C2 (en)
TW (1) TWI286509B (en)
WO (1) WO2005035608A2 (en)

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20090203840A1 (en) * 2008-02-12 2009-08-13 Gala Industries, Inc. Method And Apparatus To Achieve Crystallization Of Polymers Utilizing Multiple Processing Systems
US9259857B2 (en) 2008-02-12 2016-02-16 Gala Industries, Inc. Method and apparatus to condition polymers utilizing multiple processing systems

Families Citing this family (40)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20050167876A1 (en) * 2002-10-04 2005-08-04 Jan-Udo Kreyenborg Method for granulating plastics
US7157032B2 (en) * 2003-11-21 2007-01-02 Gala Industries, Inc. Method and apparatus for making crystalline PET pellets
US7250486B1 (en) * 2004-12-15 2007-07-31 Uop Llc Method and apparatus for crystallizing polymer particles
MX2007014792A (en) 2005-05-26 2008-02-14 Gala Inc Method and apparatus for making crystalline polymeric pellets and granules.
US9032641B2 (en) 2005-05-26 2015-05-19 Gala Industries, Inc. Method and apparatus for making crystalline polymeric pellets and granules
TWI440658B (en) * 2005-08-31 2014-06-11 Gala Inc Method and apparatus for underwater pelletizing polymer biomaterial composites with reduced moisture content
JP5726406B2 (en) * 2006-03-09 2015-06-03 ガラ・インダストリーズ・インコーポレイテッドGala Industries, Inc. Apparatus and method for granulating wax and wax-like material
DE102006024200A1 (en) * 2006-05-23 2007-11-29 Rieter Automatik Gmbh Process for producing a granulate from a low-viscosity polyester (PET) plastic melt
EP2043831B1 (en) * 2006-07-21 2013-02-27 Bühler AG Process for the crystallization of a slow-crystallization polymer and polymer granulate
DE102006058510A1 (en) * 2006-12-12 2008-06-19 Bühler AG Process and device for the production and treatment of granules
DE102007012450A1 (en) * 2007-03-15 2008-09-18 Rieter Automatik Gmbh Process for granulation and crystallization of thermoplastic polymers
DE102007055242A1 (en) * 2007-11-16 2009-05-20 Bühler AG Process for the crystallization of crystallizable polymers with high tendency to adhere
US8044169B2 (en) * 2008-03-03 2011-10-25 Grupo Petrotemex, S.A. De C.V. Dryer configuration for production of polyester particles
US8007701B2 (en) * 2008-06-16 2011-08-30 Gala Industries, Inc. Positionable gas injection nozzle assembly for an underwater pelletizing system
US20110245452A1 (en) * 2010-03-31 2011-10-06 Uop Llc Integrated Underwater Melt Cutting, Solid-State Polymerization Process
DE102011106709A1 (en) * 2011-07-06 2013-01-10 Automatik Plastics Machinery Gmbh Method and device for producing granules
ES2671565T3 (en) 2011-09-19 2018-06-07 Uhde Inventa-Fischer Gmbh Drying / degassing device as well as device and procedure for the direct manufacturing of molding bodies from polyester melts
US9636860B2 (en) 2012-05-31 2017-05-02 Mohawk Industries, Inc. Method of manufacturing bulked continuous filament
US9630353B2 (en) 2012-05-31 2017-04-25 Mohawk Industries, Inc. Method of manufacturing bulked continuous filament
US10487422B2 (en) 2012-05-31 2019-11-26 Aladdin Manufacturing Corporation Methods for manufacturing bulked continuous filament from colored recycled pet
US11045979B2 (en) 2012-05-31 2021-06-29 Aladdin Manufacturing Corporation Methods for manufacturing bulked continuous filament from recycled PET
US10538016B2 (en) 2012-05-31 2020-01-21 Aladdin Manufacturing Corporation Methods for manufacturing bulked continuous carpet filament
US10532495B2 (en) 2012-05-31 2020-01-14 Aladdin Manufacturing Corporation Methods for manufacturing bulked continuous filament from recycled PET
US8597553B1 (en) 2012-05-31 2013-12-03 Mohawk Industries, Inc. Systems and methods for manufacturing bulked continuous filament
US10695953B2 (en) 2012-05-31 2020-06-30 Aladdin Manufacturing Corporation Methods for manufacturing bulked continuous carpet filament
EA033812B1 (en) * 2014-11-18 2019-11-28 Mohawk Ind Inc Systems and methods for manufacturing bulked continuous filament
CN107107387A (en) * 2014-11-18 2017-08-29 莫和克工业公司 System and method for manufacturing varicosity continuous fibers
CN105773865A (en) * 2014-12-23 2016-07-20 天津市坤昊塑料制品有限公司 PVC granulator
DE102015119787A1 (en) * 2015-11-16 2017-05-18 Maag Automatik Gmbh Process for producing a plastic granulate
WO2017207828A1 (en) 2016-05-30 2017-12-07 Sociedad Anónima Minera Catalano Aragonesa Method for obtaining biodegradable polymers
RU2748939C1 (en) * 2016-06-21 2021-06-01 Юоп Ллк Method and device for crystallization and increasing molecular weight of polymer particles
US11298853B2 (en) 2016-06-21 2022-04-12 Uop Llc Processes and apparatuses for conditioning polymer particles for an SSP reactor
US10751915B2 (en) 2016-11-10 2020-08-25 Aladdin Manufacturing Corporation Polyethylene terephthalate coloring systems and methods
KR102457552B1 (en) 2017-01-30 2022-10-21 알라딘 매뉴펙쳐링 코포레이션 Method for making bulk continuous filaments from colored recycled PET
US11279071B2 (en) 2017-03-03 2022-03-22 Aladdin Manufacturing Corporation Method of manufacturing bulked continuous carpet filament
US11473216B2 (en) 2017-09-15 2022-10-18 Aladdin Manufacturing Corporation Polyethylene terephthalate coloring systems and methods
CN108608601B (en) * 2018-06-22 2024-08-16 江苏康峰高分子材料有限公司 Cooling and drying system for preparing medical polymer particles
CN108621327B (en) * 2018-06-22 2024-08-16 江苏康峰高分子材料有限公司 Particle water cooling device for preparing medical polymer material
US11242622B2 (en) 2018-07-20 2022-02-08 Aladdin Manufacturing Corporation Bulked continuous carpet filament manufacturing from polytrimethylene terephthalate
EP4003696A1 (en) * 2019-07-26 2022-06-01 General Electric Company Automated pellet drying and dispensing system for additive manufacturing

Citations (19)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3230582A (en) * 1963-02-27 1966-01-25 Black Clawson Co Plastic pelletizer
US3271821A (en) * 1964-07-24 1966-09-13 Frank W Egan & Company Underwater pelletizer
US3317957A (en) * 1965-06-11 1967-05-09 Nrm Corp Pelletizer
US4123207A (en) * 1976-03-29 1978-10-31 Gala Industries, Inc. Underwater pelletizer and heat exchanger die plate
US4447325A (en) * 1981-01-27 1984-05-08 Gala Industries, Inc. Vertical pre-dewatering screen
US4500271A (en) * 1983-12-06 1985-02-19 Gala Industries, Inc. Underwater pelletizer with adjustable blade assembly
US4565015A (en) * 1983-07-27 1986-01-21 Gala Industries, Inc. Centrifugal pellet dryer
US4728276A (en) * 1986-01-31 1988-03-01 Gala Industries, Inc. Underwater pelletizer
US5059103A (en) * 1990-07-30 1991-10-22 Gala Industries, Inc. Underwater pelletizer
US5310515A (en) * 1991-10-08 1994-05-10 Reiter Automatik Apparate-Maschinebau Gmbh Process to cool and pelletize molten strands issuing from nozzles
US5403176A (en) * 1991-02-01 1995-04-04 Gala Industries, Inc. Tapered insert die plate for underwater pelletizers
US5540868A (en) * 1995-01-20 1996-07-30 E. I. Du Pont De Nemours And Company Process for pellet formation from amorphous polyester
US5638606A (en) * 1996-03-06 1997-06-17 Gala Industries, Inc. Spider and lifter assembly for centrifugal pellet dryer
US6138375A (en) * 1999-03-01 2000-10-31 Gala Industries, Inc. Support ring for pellet dryer screen
US6237244B1 (en) * 1998-10-19 2001-05-29 Gala Industries, Inc. Centrifugal pellet dryer for small applications
US20020171159A1 (en) * 2000-04-19 2002-11-21 Andre Matthaei Method and device for producing granulates from intermediate products of thermo-plastic polyesters and copolyesters
US6551087B1 (en) * 1999-09-21 2003-04-22 Gala Industries, Inc. Flow guide for underwater pelletizer
US6551643B2 (en) * 2001-05-22 2003-04-22 Wm. Wrigley Jr. Company Process and apparatus for producing miniature gum ball centers using an underwater pelletizer
US7157032B2 (en) * 2003-11-21 2007-01-02 Gala Industries, Inc. Method and apparatus for making crystalline PET pellets

Family Cites Families (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE2642102C3 (en) 1976-09-18 1984-10-04 Bühler-Miag GmbH, 3300 Braunschweig Device for crystallizing plastic granulate
JPH10139873A (en) * 1996-09-12 1998-05-26 Mitsui Chem Inc Production of polyethylene terephthalate
DE19938583A1 (en) * 1999-08-18 2001-02-22 Buehler Ag Method and device for producing crystallizable plastic material
JP2003192777A (en) * 2001-10-19 2003-07-09 Toyobo Co Ltd Manufacturing method of polyester
JP2003200420A (en) * 2002-01-09 2003-07-15 Toppan Printing Co Ltd Method for granulating saturated polyester resin and apparatus for granulating it

Patent Citations (19)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3230582A (en) * 1963-02-27 1966-01-25 Black Clawson Co Plastic pelletizer
US3271821A (en) * 1964-07-24 1966-09-13 Frank W Egan & Company Underwater pelletizer
US3317957A (en) * 1965-06-11 1967-05-09 Nrm Corp Pelletizer
US4123207A (en) * 1976-03-29 1978-10-31 Gala Industries, Inc. Underwater pelletizer and heat exchanger die plate
US4447325A (en) * 1981-01-27 1984-05-08 Gala Industries, Inc. Vertical pre-dewatering screen
US4565015A (en) * 1983-07-27 1986-01-21 Gala Industries, Inc. Centrifugal pellet dryer
US4500271A (en) * 1983-12-06 1985-02-19 Gala Industries, Inc. Underwater pelletizer with adjustable blade assembly
US4728276A (en) * 1986-01-31 1988-03-01 Gala Industries, Inc. Underwater pelletizer
US5059103A (en) * 1990-07-30 1991-10-22 Gala Industries, Inc. Underwater pelletizer
US5403176A (en) * 1991-02-01 1995-04-04 Gala Industries, Inc. Tapered insert die plate for underwater pelletizers
US5310515A (en) * 1991-10-08 1994-05-10 Reiter Automatik Apparate-Maschinebau Gmbh Process to cool and pelletize molten strands issuing from nozzles
US5540868A (en) * 1995-01-20 1996-07-30 E. I. Du Pont De Nemours And Company Process for pellet formation from amorphous polyester
US5638606A (en) * 1996-03-06 1997-06-17 Gala Industries, Inc. Spider and lifter assembly for centrifugal pellet dryer
US6237244B1 (en) * 1998-10-19 2001-05-29 Gala Industries, Inc. Centrifugal pellet dryer for small applications
US6138375A (en) * 1999-03-01 2000-10-31 Gala Industries, Inc. Support ring for pellet dryer screen
US6551087B1 (en) * 1999-09-21 2003-04-22 Gala Industries, Inc. Flow guide for underwater pelletizer
US20020171159A1 (en) * 2000-04-19 2002-11-21 Andre Matthaei Method and device for producing granulates from intermediate products of thermo-plastic polyesters and copolyesters
US6551643B2 (en) * 2001-05-22 2003-04-22 Wm. Wrigley Jr. Company Process and apparatus for producing miniature gum ball centers using an underwater pelletizer
US7157032B2 (en) * 2003-11-21 2007-01-02 Gala Industries, Inc. Method and apparatus for making crystalline PET pellets

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20090203840A1 (en) * 2008-02-12 2009-08-13 Gala Industries, Inc. Method And Apparatus To Achieve Crystallization Of Polymers Utilizing Multiple Processing Systems
WO2009102863A3 (en) * 2008-02-12 2009-12-10 Gala Industries, Inc. Methods and apparatus to achieve crystallization of polymers utilizing multiple processing systems
US8080196B2 (en) 2008-02-12 2011-12-20 Gala Industries, Inc. Method and apparatus to achieve crystallization of polymers utilizing multiple processing systems
US9259857B2 (en) 2008-02-12 2016-02-16 Gala Industries, Inc. Method and apparatus to condition polymers utilizing multiple processing systems

Also Published As

Publication number Publication date
EP1675713A4 (en) 2009-09-02
JP2007505968A (en) 2007-03-15
KR20060085621A (en) 2006-07-27
CA2535277A1 (en) 2005-04-21
ES2440952T3 (en) 2014-01-31
RU2358866C2 (en) 2009-06-20
AR045537A1 (en) 2005-11-02
PL1675713T3 (en) 2014-03-31
US7204945B2 (en) 2007-04-17
BRPI0413763A (en) 2006-10-31
TWI286509B (en) 2007-09-11
TW200523088A (en) 2005-07-16
CN1852799A (en) 2006-10-25
MX338609B (en) 2016-04-25
KR101149857B1 (en) 2012-05-25
EP1675713B1 (en) 2013-10-02
JP4723498B2 (en) 2011-07-13
WO2005035608A2 (en) 2005-04-21
CA2535277C (en) 2008-12-30
MXPA06002895A (en) 2006-06-05
PT1675713E (en) 2014-01-02
EP1675713A2 (en) 2006-07-05
CN100537173C (en) 2009-09-09
JP2011127129A (en) 2011-06-30
RU2006112563A (en) 2006-08-27
MY138204A (en) 2009-05-29
WO2005035608A3 (en) 2005-06-16
US20050056961A1 (en) 2005-03-17
JP5698020B2 (en) 2015-04-08

Similar Documents

Publication Publication Date Title
CA2535277C (en) Direct coupling of melt polymerization and solid state processing for pet
US7192545B2 (en) Thermal crystallization of a molten polyester polymer in a fluid
US7193032B2 (en) Controlling the crystallization of polyesters by means of their water content
US7084235B2 (en) Method of producing highly condensed polyester granulate
US4374975A (en) Process for the production of high molecular weight polyester
JPH11509573A (en) Method for crystallizing poly (ethylene naphthalene dicarboxylate)
MXPA98000580A (en) Process for the crystallization of poly (etilennaftalendicarboxila
US20070155954A1 (en) Cooling of pellets from PET solid stating reactor with water
US7179881B2 (en) Process for heating PET pellet feed to a solid stating process by heat exchange with hot solid stated pellets
JP4663115B2 (en) Method for crystallizing polyethylene naphthalate without a devolatilization step

Legal Events

Date Code Title Description
STCB Information on status: application discontinuation

Free format text: ABANDONED -- FAILURE TO RESPOND TO AN OFFICE ACTION