WO2005067591A2 - A method and apparatus for measurement and controlling the inside and outside temperature of thermoplastic preforms - Google Patents
A method and apparatus for measurement and controlling the inside and outside temperature of thermoplastic preforms Download PDFInfo
- Publication number
- WO2005067591A2 WO2005067591A2 PCT/US2005/000234 US2005000234W WO2005067591A2 WO 2005067591 A2 WO2005067591 A2 WO 2005067591A2 US 2005000234 W US2005000234 W US 2005000234W WO 2005067591 A2 WO2005067591 A2 WO 2005067591A2
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- set forth
- surface temperature
- preform
- temperature
- blow molding
- Prior art date
Links
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- 238000005259 measurement Methods 0.000 title claims description 24
- 229920001169 thermoplastic Polymers 0.000 title claims description 4
- 239000004416 thermosoftening plastic Substances 0.000 title claims description 4
- 238000000071 blow moulding Methods 0.000 claims abstract description 48
- 238000009529 body temperature measurement Methods 0.000 claims abstract description 37
- 230000003750 conditioning effect Effects 0.000 claims abstract description 23
- 238000012544 monitoring process Methods 0.000 claims abstract description 5
- 230000005855 radiation Effects 0.000 claims description 20
- 238000001816 cooling Methods 0.000 claims description 19
- 238000012545 processing Methods 0.000 claims description 13
- 230000009471 action Effects 0.000 claims description 10
- 230000004044 response Effects 0.000 claims description 8
- 229910000530 Gallium indium arsenide Inorganic materials 0.000 claims description 6
- XCAUINMIESBTBL-UHFFFAOYSA-N lead(ii) sulfide Chemical compound [Pb]=S XCAUINMIESBTBL-UHFFFAOYSA-N 0.000 claims description 3
- GGYFMLJDMAMTAB-UHFFFAOYSA-N selanylidenelead Chemical compound [Pb]=[Se] GGYFMLJDMAMTAB-UHFFFAOYSA-N 0.000 claims description 3
- 150000003839 salts Chemical class 0.000 claims description 2
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- 238000004886 process control Methods 0.000 description 3
- 238000007664 blowing Methods 0.000 description 2
- 238000005265 energy consumption Methods 0.000 description 2
- 238000010438 heat treatment Methods 0.000 description 2
- 229920000139 polyethylene terephthalate Polymers 0.000 description 2
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Classifications
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01J—MEASUREMENT OF INTENSITY, VELOCITY, SPECTRAL CONTENT, POLARISATION, PHASE OR PULSE CHARACTERISTICS OF INFRARED, VISIBLE OR ULTRAVIOLET LIGHT; COLORIMETRY; RADIATION PYROMETRY
- G01J5/00—Radiation pyrometry, e.g. infrared or optical thermometry
- G01J5/02—Constructional details
- G01J5/06—Arrangements for eliminating effects of disturbing radiation; Arrangements for compensating changes in sensitivity
- G01J5/061—Arrangements for eliminating effects of disturbing radiation; Arrangements for compensating changes in sensitivity by controlling the temperature of the apparatus or parts thereof, e.g. using cooling means or thermostats
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
- B29C—SHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
- B29C49/00—Blow-moulding, i.e. blowing a preform or parison to a desired shape within a mould; Apparatus therefor
- B29C49/42—Component parts, details or accessories; Auxiliary operations
- B29C49/78—Measuring, controlling or regulating
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01J—MEASUREMENT OF INTENSITY, VELOCITY, SPECTRAL CONTENT, POLARISATION, PHASE OR PULSE CHARACTERISTICS OF INFRARED, VISIBLE OR ULTRAVIOLET LIGHT; COLORIMETRY; RADIATION PYROMETRY
- G01J5/00—Radiation pyrometry, e.g. infrared or optical thermometry
- G01J5/02—Constructional details
- G01J5/08—Optical arrangements
- G01J5/0803—Arrangements for time-dependent attenuation of radiation signals
- G01J5/0805—Means for chopping radiation
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
- B29C—SHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
- B29C49/00—Blow-moulding, i.e. blowing a preform or parison to a desired shape within a mould; Apparatus therefor
- B29C49/42—Component parts, details or accessories; Auxiliary operations
- B29C49/78—Measuring, controlling or regulating
- B29C49/786—Temperature
- B29C2049/7861—Temperature of the preform
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
- B29C—SHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
- B29C49/00—Blow-moulding, i.e. blowing a preform or parison to a desired shape within a mould; Apparatus therefor
- B29C49/42—Component parts, details or accessories; Auxiliary operations
- B29C49/78—Measuring, controlling or regulating
- B29C2049/788—Controller type or interface
- B29C2049/78805—Computer or PLC control
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
- B29C—SHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
- B29C2949/00—Indexing scheme relating to blow-moulding
- B29C2949/07—Preforms or parisons characterised by their configuration
- B29C2949/0715—Preforms or parisons characterised by their configuration the preform having one end closed
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B29—WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
- B29C—SHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
- B29C49/00—Blow-moulding, i.e. blowing a preform or parison to a desired shape within a mould; Apparatus therefor
- B29C49/02—Combined blow-moulding and manufacture of the preform or the parison
- B29C49/06—Injection blow-moulding
Definitions
- This invention is directed to blow molding systems. More specifically, it is directed to stretch blow molding systems that condition preforms such that the temperature distribution within the cross-section of each preform is optimized prior to blow molding operations.
- preforms one of the most critical process variables when attempting to stretch blow mold certain materials is the temperature distribution of the preform as it is being blown. This variable often has a significant impact on the most important physical properties of the final blown article.
- the preform wall cross-sectional temperature distribution should be optimized for blow molding operations.
- it is advantageous within an automated blow molding process if preforms that are moving through the system are consistent in temperature profile, one preform to the next.
- both the inside and outside surface temperature of the preforms it is advantageous for both the inside and outside surface temperature of the preforms to be equal to each other and at the preferred blow molding temperature of the material.
- This sampling scheme is that significant preform to preform temperature variations, if present, are averaged out and go undetected by the process control apparatus deployed in prior art machines.
- thermocouples are impractical because of speed limitations and because such devices may cause damage to the hot pliable preform. If such damage occurred, it would undesirably render the process a high maintenance endeavor.
- An additional and perhaps more severe limitation related to the slow response time of pyrometers is that that there has been no direct practical manner discovered by which a reasonable and accurate measurement of the inside surface temperature of moving preforms can be obtained using these devices.
- the inside surface temperature of a preform 10 can only be directly measured through the open end of the preform.
- Indirect methods, using complex thermal conduction equations and multiple, time spaced pyrometers, have been theorized but have not been implemented into factory production systems.
- the difficulty of implementing, maintaining, and calibrating such systems is a serious drawback.
- Further, such systems only predict from indirect measurements -which allows uncontrolled environmental and other variables to adversely affect the temperature estimates and create inaccuracy and mistrust of such estimates.
- the present invention overcomes these difficulties and others.
- An object of this invention is to provide a blow molding system with a temperature measurement and control system capable of directly monitoring the
- Another object of this invention is to use these inside and/or outside surface temperature measurements in an automated manner to control both heating elements and cooling control elements of the blow forming machine in order to optimize the temperature profile along the long axis of the preforms and, thus, the overall manufacturing operation.
- Another object of this invention is to provide a blow molding system with a temperature measurement and control system capable of making measurements on individual preforms as they dynamically move towards the blow molding operation, eliminating the need to make control decisions based on average preform temperature measurements.
- Yet another object of this invention is to provide dynamic surface temperature measurements on discrete parts to an accuracy of ⁇ 1 degree Celsius.
- a system comprises a conveyance means operative to transport a series of preforms through a thermal conditioning section of a stretch blow molding machine, at least one high speed, snapshot action thermal infrared temperature sensor deployed in position to acquire at least one of an outside surface temperature measurement of a preform and an inside surface temperature measurement of a preform and an infrared processing and control subsystem used to monitor temperature data supplied by the infrared temperature sensors and, in response, generate a control signal to be sent to the thermal conditioning section.
- a method comprises transporting a series of preforms through a thermal conditioning section of a blow molding machine, configuring at least one high-speed, snapshot action thermal infrared temperature sensor such that at least one of an outside surface temperature of the preform and an inside surface temperature of the preform can be measured during its transport, acquiring at least one of outside and inside surface temperature measurements of each individual preform transported through the blow molding machine, monitoring a status of an infrared radiation subsystem and an outside surface cooling subsystem of the blow molding machine, generating a thermal control signal in response to the outside or inside surface temperature measurements and thermal control subsystem status data and communicating this thermal control signal to at least one of the infrared radiation subsystem and the outside surface cooling subsystem to enact closed loop control of a temperature profile of the transported preforms.
- a sensor apparatus comprises a sensor element operative to selectively detect thermal energy emitted by a specimen to determine a surface temperature of the specimen, a cooling element associated with the sensor element, an element positioned to define a field of view between the sensor element and the specimen and a means for selectively enabling and disabling the field of view.
- Figures 1(a) and 1(b) are diagrams illustrating an embodiment of the present invention
- Figures 2(a) and 2(b) illustrate a sensor according to the present invention
- Figure 3 is a flow chart illustrating a method according to the present invention.
- An objective of this invention is to provide a blow molding system having an improved thermal conditioning section with improved temperature measurement and control features.
- the temperature measurement and control features enable the system to directly monitor one or both of the outside and inside surface temperatures of preforms at different stages of transport throughout the thermal conditioning section of the system. That is, the present invention implements a methodology for the direct and precise measurement of individual preforms and selected sub-portions thereof.
- This advancement in the art was not heretofore known and provides significant advantages in the blow molding field.
- the components of a thermal conditioning section 100 include high-speed infrared temperature sensors 20 and an infrared temperature processing and control subsystem 30.
- the infrared temperature processing and control subsystem 30 interfaces directly with the infrared radiation subsystem 40 and the outside surface cooling subsystem 50 that are contained within existing prior art implementations.
- the system according to the invention is configured to facilitate closed- loop control of the manufacturing operations.
- the system is capable of directly monitoring the outside surface temperature, as well as inside surface temperature, of preforms at different stages of transport throughout the thermal conditioning portion of the system.
- measurement of only the outside surface temperature or only the inside surface temperature of a preform using the present invention may be advantageous in some circumstances.
- the invention is not limited to detecting both inside surface temperatures and outside surface temperatures but may also be deployed to detect one or the other.
- the inside and/or outside temperature measurements are used in an automated manner to control both heating elements and cooling control elements of the blow forming machine in order to optimize the temperature profile along the long axis of the preforms and, thus, the overall manufacturing operation.
- the system preferably has the capability to directly relate specific machine components such as spindles and/or lamps to specific thermal data and profiles to minimize maintenance time and to optimize manufacturing system performance.
- the system provides a way of correlating or linking the specific heat measurements to subsequent quality or process measurements after blowing to best optimize the stretch blow molding process or energy consumption efficiency.
- preforms 10 enter into the thermal conditioning section 100 of the blow molding system by way of the preform infeed mechanism 70. These feed mechanisms are conventional in the art.
- preforms 10 are transported via a conveyance device 80 through a region of the thermal conditioning section 100 wherein infrared radiation is applied to the preforms 10 by way of the infrared radiation assembly(ies) 40.
- Infrared radiation is added at this stage for the purpose of raising the temperature of the preforms 10 to a temperature that is preferred for blow molding operations.
- the conveyance device 80 and infrared assemblies 40 preferably take forms that are well known in the industry.
- the infrared assemblies 40 may take the form of banks of quartz infrared lamps having different heights.
- the outside surface temperature is lowered by way of the surface cooling mechanism 50.
- the surface cooling mechanism 50 is typically implemented as a forced air convection cooler, e.g.
- the preforms 10 After being heated to a preferred temperature, the preforms 10 are transported via a conveyance device 90 through a passive zone on the way to the blow molding section 60.
- Figures 1(a) and (b) show several high-speed infrared temperature sensors 20 deployed within this passive zone so as to sample both the outside and inside surface temperature of each preform as it approaches the blow molding section 60. Snapshot temperature measurements are preferably made when the preforms 10 are within the field-of-view (FOV) 105 of an individual sensor 20.
- FOV field-of-view
- the outside surface temperature of the preforms 10 are measured by directing the field of view (FOV) 105 of a sensor 20 onto the outside cylindrical surface of the preforms 10 (as in Figure 1(a)).
- the inside surface temperature of the preforms 10 can by measured by directing the field of view (FOV) 105 of a sensor 20 into the preform opening (as in Figure 1(b)).
- FOV field of view
- a total of 4 sensors 20 are depicted (two deployed to measure the outside surface temperature and two deployed to measure the inside surface temperature). As shown, the sensors 20 are deployed after thermal energy has been added to the preforms 10.
- the sensors may also be deployed to detect temperatures at different times during the thermal conditioning phase of the stretch blow molding process.
- the invention also extends to embodiments deploying any number of the sensors 20 (one or greater) within the thermal conditioning section of the process in a variety of forms and configurations.
- a plurality of sensors may be disposed in a bank. This also includes placing sensors 20 at the preform infeed section 70 or any other location prior to the blow molding section 60.
- the sensors may also be strategically placed so as to be operative to sense surface temperature of a selected portion or portions (or sub-portions or regions) of a preform (at different positions along its length, for example) to, for example, provide for a correct heat profile, as will be described.
- the sensors preferably provide dynamic surface temperature measurements on discrete parts to an accuracy of ⁇ 1 degree Celsius.
- One aspect of this invention is the nature and construction of the highspeed infrared temperature sensors 20.
- the high-speed infrared temperature sensors 20 described by this invention are deployed using high-speed lead salt or Indium Gallium Arsenide (InGaAs) infrared detectors as the photosensitive element.
- Certain types of lead salt compounds (lead selenide (PbSe) and lead sulfide (PbS) in particular) and InGaAs are adequately sensitive to radiation emitted by objects in the temperature range of 40 degrees Celsius (°C) to 150 degrees Celsius (°C).
- the response times of these devices are also fast enough to allow high-speed temperature measurement sampling through the opening of a rapidly transported preform 10.
- the sensors perform in a variety of modes. For example, the sensors may perform in a snapshot action mode.
- high-speed infrared temperature sensors 20 enable the implementation of an improved measurement and control system for thermoplastic blow molders. More particularly, one preferred implementation of the high-speed temperature sensors 20 defined by this invention is illustrated in Figures 2(a) and 2(b).
- a high-speed infrared detector element 120 is used as the photosensitive element.
- the detector may be formed from any of a variety of suitable materials, including indium gallium arsenide (InGaAs), lead selenide (PbSe), and lead sulfide (PbS).
- the detector element 120 is constructed using a PbSe detector.
- a thermal-electric (TE) cooler element 121 Situated in direct contact with the high-speed infrared detector element 120 is a thermal-electric (TE) cooler element 121.
- Solid-state TE-cooler elements are well known in the art. By allowing an electrical current to flow through the individual solid-state cells of a TE-cooler, TE-cooler elements exhibit the behavior of transferring thermal energy from one side of its structure to the other.
- TE-cooler elements it is possible to both heat or cool an object placed in contact with one side of the TE-cooler simply by passing an appropriate electrical signal through the cooler.
- the fact that the measurement sensitivity parameter of thermal infrared detectors is directly related to their operational temperature is well known in the art of infrared sensing.
- the TE-cooler element 121 is used to stabilize the operating temperature of the high-speed infrared detector element 120 within a tight operational window centered around 10 degrees Celsius (°C).
- chopper wheel 122 Another aspect of the high-speed infrared temperature sensors 20 is the use of a chopper wheel 122 and associated chopper motor 123. It is well known in the art of infrared sensing that the process of chopping the sensor input signal increases the resultant signal-to-noise ratio (SNR) of the infrared measurements.
- SNR signal-to-noise ratio
- the term chopping refers to the process of alternately enabling and disabling a direct optical path from the scene of interest to the infrared detector element 120. There are various means known in the art to enact such a behavior. In the preferred embodiment, the advantageous chopping process is enabled using a mechanical chopper wheel 122 driven by an associated chopper motor 123.
- Chopping the infrared input to the high-speed infrared detector 120 at a controlled frequency it is possible to filter out large low-frequency and DC signals that result from thermal radiation emitted by support and packaging entities located in close proximity to the infrared detector element 120 (detector housing, detector window, etc.). Chopping the input signal also allows DC signals associated with detector bias voltages and currents to be effectively filtered out. It is typical within state-of-the-art of infrared sensors to chop the input signal at rates ranging from 10 to perhaps 200 Hertz (Hz). These types of chop frequencies can easily be achieved using existing chopper wheel or tuning fork- type mechanical assemblies.
- a signal chop rate one or two orders of magnitude higher in frequency is required in order to ensure the acquisition of surface temperature measurements of rapidly moving manufactured parts, such as preforms 10 moving through the thermal conditioning section 100 of a stretch blow molding system.
- FOV field of view
- a preform 10 is within the field of view (FOV) 105 of the high-speed infrared temperature sensor 20.
- FOV field of view
- a chop frequency within the range of 1 to 5 kilohertz (KHz) is preferred.
- the high-speed infrared detector element 120 could be implemented as a multiple element area or liner detector array.
- the high-speed infrared temperature sensor 20 would operate as a snapshot action thermal infrared camera.
- a lens element 124 is used to limit its field of view (FOV) 105 to a well-defined region.
- this lens element is implemented as a Fresnel- type lens.
- These types of imaging components are well known in the field of infrared sensing. Alternately, it could be implemented using either refractive or reflective optical components.
- the optics By designing the optics to have a particular field of view appropriate for any specific application of the high-speed infrared temperature sensor system it is possible to perform very high-speed measurement of many different kinds of fast moving items of different size, shape, and distance.
- it is often desirous to measure a specific sub-region of an item which may require the use of optical techniques, which are well known in the art, in order to facilitate guiding the electromagnetic energy properly into the sensor 20.
- the sensors may be implemented to check the preform 10 in a substantial number of zones along its length to verify the specific temperatures in each zone. This may be accomplished using various focusing and positioning techniques known to those in the optics and/or machine vision field.
- the present invention allows for more precise measurement of individual preforms or sub-portions and represents a marked improvement over any such averaging.
- the system allows for the measurement of sub-portions of the preform, either inside or outside, as may be most advantageous. If the application requires multiple measurement points or sub-regions measurements in proximity to one another, it may require the positioning of multiple detector elements inside one sensor 120.
- This embodiment can be implemented such that the detector elements utilize a common chopper or multiple parallel choppers depending on physical size and practicality constraints consistent with the application needs.
- sensor control and processing circuit boards 125 are included as part of the high-speed infrared temperature sensor 20.
- This board or board-set 125 is used to perform functions including, but not limited to, detector signal processing, motor speed control, analog -to-digital conversion, closed-loop TE- cooler control, and data receipt and transmission.
- the infrared temperature processing and control subsystem 30 is implemented as a highly intelligent, multi-function microprocessor-based computer with data display and logging functions. In this format, the infrared temperature processing and control subsystem 30 receives, or monitors, surface temperature signals from the infrared temperature sensors 20.
- control signals In response to these input signals, it generates (through, for example, various hardware and software techniques based on a desired thermal profile that may be stored in the subsystem 30) appropriate control signals that are issued to the infrared radiation subsystem 40, as well as the outside surface cooling subsystem 50.
- the control signals will facilitate a variety of functions to be performed by the subsystems 40 and 50.
- the control signals may direct the infrared radiation subsystem 40 to increase its energy level or decrease its energy level.
- the control signals may serve as a similar command structure for the cooling subsystem.
- the subsystem 30 also preferably monitors the status (e.g., energy levels) of the subsystems 40 and 50 so that the control signals can be generated to be effective for the process.
- the preferred embodiment of the infrared temperature processing and control subsystem 30 also monitors the temperature data provided by the sensors over specified time periods so as to provide data display and logging functions related to the surface temperature measurements made by the infrared temperature sensors 20.
- the infrared temperature processing and control subsystem 30 could be implemented as an industrial programmable logic controller (PLC). Implemented in this fashion, the data logging and display of temperature information would be omitted.
- PLC programmable logic controller
- the infrared temperature processing and control subsystem 30 would function in a minimal fashion, receiving temperature signals from the infrared temperature sensors 20 and providing control signals to the infrared radiation subsystem 40 and the outside surface cooling subsystem 50.
- Preforms 10 are transported via a conveyance means 90 through a passive zone of the thermal conditioning section 100 of a blow molding system. At some instant in time, the preforms 10 pass through the respective fields of view (FOVs) 105 of the various infrared temperature sensors 20 (step 210). At the instant the preforms 10 are within the field of view (FOV) 105 of an individual sensor 20, the surface temperature(s) of the preforms 10 are measured. Various sensors 20 are properly deployed and positioned to acquire at least one of an outside and an inside surface temperature measurement (step 220).
- the operational status of the infrared radiation subsystem 40 and outside surface cooling subsystem 50 are monitored (step 230). Algorithms are then applied by the subsystem 30 that reduce the outside and/or inside surface temperature and subsystem status data into appropriate control signals which will optimize the thermal profile of the preforms 10 prior to stretch blow-forming operations (step 240). These control signals are then communicated to the infrared radiation subsystem 40 and outside surface cooling subsystem 50 to enact optimized, closed-loop control of the preform 10 thermal profile (step 250).
- the system preferably has the capability to directly relate specific machine components such as spindles and/or lamps to specific thermal data and profiles to minimize maintenance time and to optimize manufacturing system performance.
- specific machine components such as spindles and/or lamps
- specific thermal data and profiles to minimize maintenance time and to optimize manufacturing system performance.
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- Physics & Mathematics (AREA)
- General Physics & Mathematics (AREA)
- Spectroscopy & Molecular Physics (AREA)
- Engineering & Computer Science (AREA)
- Manufacturing & Machinery (AREA)
- Mechanical Engineering (AREA)
- Blow-Moulding Or Thermoforming Of Plastics Or The Like (AREA)
- Radiation Pyrometers (AREA)
Abstract
Description
Claims
Priority Applications (3)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP2006549372A JP2007521986A (en) | 2004-01-07 | 2005-01-05 | Method and apparatus for measuring and controlling both the inner and outer surface temperatures of a thermoplastic preform during a stretch blow molding operation |
EP05705042A EP1701834A4 (en) | 2004-01-07 | 2005-01-05 | A method and apparatus for the measurement and control of both the inside and outside surface temperature of thermoplastic preforms during stretch blow molding operations |
CA002546517A CA2546517A1 (en) | 2004-01-07 | 2005-01-05 | A method and apparatus for the measurement and control of both the inside and outside surface temperature of thermoplastic preforms during stretch blow molding operations |
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US10/753,014 | 2004-01-07 | ||
US10/753,014 US7220378B2 (en) | 2004-01-07 | 2004-01-07 | Method and apparatus for the measurement and control of both the inside and outside surface temperature of thermoplastic preforms during stretch blow molding operations |
Publications (2)
Publication Number | Publication Date |
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WO2005067591A2 true WO2005067591A2 (en) | 2005-07-28 |
WO2005067591A3 WO2005067591A3 (en) | 2006-05-26 |
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Application Number | Title | Priority Date | Filing Date |
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PCT/US2005/000234 WO2005067591A2 (en) | 2004-01-07 | 2005-01-05 | A method and apparatus for measurement and controlling the inside and outside temperature of thermoplastic preforms |
Country Status (6)
Country | Link |
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US (1) | US7220378B2 (en) |
EP (1) | EP1701834A4 (en) |
JP (1) | JP2007521986A (en) |
CN (1) | CN1906014A (en) |
CA (1) | CA2546517A1 (en) |
WO (1) | WO2005067591A2 (en) |
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CN101117019B (en) * | 2006-07-31 | 2010-12-29 | 广西工学院 | Temperature control device for full-automatic injecting blowing plastic hollow molding machine and temperature control method thereof |
US8546277B2 (en) | 2007-03-02 | 2013-10-01 | Sidel Participations | Heating plastics via infrared radiation |
US8662876B2 (en) | 2007-06-11 | 2014-03-04 | Sidel Participations | Installation for heating the bodies of preforms for blow-moulding containers |
US8852497B2 (en) | 2008-03-07 | 2014-10-07 | The Queen's University Of Belfast | Method and apparatus for providing an internal surface temperature profile of a thermoplastic preform during a stretch blow moulding process |
US9234802B2 (en) | 2012-11-21 | 2016-01-12 | Plastic Technologies, Inc. | Energy output measuring device for infrared heating device |
US10493686B2 (en) | 2010-06-02 | 2019-12-03 | Sidel Participations | Oven for the thermal conditioning of preforms and control method of an air cooling device fitted to such an oven |
US20220253049A1 (en) * | 2019-06-25 | 2022-08-11 | Kiefel Gmbh | Production machine comprising a control proramme |
EP3964348B1 (en) | 2020-09-04 | 2023-07-26 | Krones AG | Method and device for heating plastic pre-forms with spatially resolved temperature detection |
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US8662876B2 (en) | 2007-06-11 | 2014-03-04 | Sidel Participations | Installation for heating the bodies of preforms for blow-moulding containers |
US8852497B2 (en) | 2008-03-07 | 2014-10-07 | The Queen's University Of Belfast | Method and apparatus for providing an internal surface temperature profile of a thermoplastic preform during a stretch blow moulding process |
US10493686B2 (en) | 2010-06-02 | 2019-12-03 | Sidel Participations | Oven for the thermal conditioning of preforms and control method of an air cooling device fitted to such an oven |
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EP3964348B1 (en) | 2020-09-04 | 2023-07-26 | Krones AG | Method and device for heating plastic pre-forms with spatially resolved temperature detection |
Also Published As
Publication number | Publication date |
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JP2007521986A (en) | 2007-08-09 |
WO2005067591A3 (en) | 2006-05-26 |
US20050146065A1 (en) | 2005-07-07 |
EP1701834A2 (en) | 2006-09-20 |
CA2546517A1 (en) | 2005-07-28 |
EP1701834A4 (en) | 2012-10-17 |
CN1906014A (en) | 2007-01-31 |
US7220378B2 (en) | 2007-05-22 |
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