Method and Apparatus For Controlling Air Temperature for Making Seals
20210197495 · 2021-07-01
Assignee
Inventors
- Casey J. Calmes (Neenah, WI, US)
- Thomas C. Jansen (Appleton, WI, US)
- Paul A. Johnson (Menasha, WI, US)
- Scott A. Beinema (Little Chute, WI, US)
- Timothy J. Rymer (Neenah, WI, US)
- Michael J. Stickney (Appleton, WI, US)
Cpc classification
B29C66/1122
PERFORMING OPERATIONS; TRANSPORTING
B29C66/43
PERFORMING OPERATIONS; TRANSPORTING
B29C66/80
PERFORMING OPERATIONS; TRANSPORTING
B29C66/83511
PERFORMING OPERATIONS; TRANSPORTING
B29C65/7894
PERFORMING OPERATIONS; TRANSPORTING
B29C66/872
PERFORMING OPERATIONS; TRANSPORTING
B29C66/91951
PERFORMING OPERATIONS; TRANSPORTING
B29C66/91213
PERFORMING OPERATIONS; TRANSPORTING
B29C65/10
PERFORMING OPERATIONS; TRANSPORTING
B29C66/135
PERFORMING OPERATIONS; TRANSPORTING
B29C66/91443
PERFORMING OPERATIONS; TRANSPORTING
B29C66/83433
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C65/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A method and apparatus for making bags from a film that follows a film path through a bag machine includes an input section located on the film path, a sealing section located on the film path downstream of the input section, an output section located on the film path downstream of the sealing section, and a controller, connected to control the sealing section. The sealing section includes a sealer that includes a heater block and a manifold. There is an air flow path from the heater block to the manifold. Air is heated in the heater block in response to a control signal provided by the controller to the heater block. The heated air is provided through the air path to the manifold. A temperature sensor is disposed in at least one of the air path and the manifold.
Claims
1. A sealing section of a bag machine that forms bags from a film, the sealing section comprising: a pressure regulator configured to receive air and regulate the air; an air flow restriction configured to receive the air from the pressure regulator and restrict the flow of the air; a heater block configured to heat the air received from the air flow restriction and dispense heated air to an air flow path; and a manifold configured to receive the heated air from the air flow path and further dispense the heated air to thereby form seals in the film such that the bags are at least partially formed.
2. The sealing section according to claim 1, wherein the air flow restriction is positioned upstream of the heater block to thereby promote even flow of the air downstream therefrom.
3. The sealing section according to claim 1, wherein the manifold is configured to evenly dispense the heated air therefrom.
4. The sealing section according to claim 1, wherein the sealing station is devoid of air flow restrictions downstream from the heater block.
5. The sealing section according to claim 1, further comprising: a temperature sensor configured to sense temperature of the heated air in the air flow path, temperature of the heated air in the manifold, or temperature of the manifold and further generate temperature signals; and a controller, in communication with the heater block and the temperature sensor, that controls the heater block to heat the air based on the temperature signals.
6. A method for forming bags, the method comprising: receiving a film into a sealing section of a bag forming machine; receiving air into a pressure regulator that regulates the air; receiving the air from the pressure regulator into an air flow restriction that restricts flow of the air; receiving the air from the air flow restriction into a heater block; heating the air in the heater block; dispensing heated air from the heater block to an air flow path that extends to a manifold; dispensing the heated air from the manifold to thereby form seals in the film such that bags are at least partially formed; and dispensing the bags from the sealing section.
7. The method according to claim 6, wherein the air flow restriction is positioned upstream of the heater block to thereby promote even flow of the air downstream therefrom.
8. The method according to claim 6, wherein the manifold is configured to evenly dispense the heated air therefrom.
9. The method according to claim 6, further comprising: sensing, with a temperature sensor, temperature of the heated air in the air flow path, temperature of the heated air in the manifold, or temperature of the manifold and generate temperature signals; and controlling, with a controller, the heater block to heat the air based on the temperature signals received from the temperature sensor.
10. A sealing section of a bag machine that forms bags from a film, the sealing section comprising: a pressure regulator configured to receive air and regulate the air; an air flow restriction configured to receive the air from the pressure regulator and restrict the flow of the air; a heater block configured to heat the air received from the air flow restriction and dispense heated air to an air flow path; and a manifold configured to receive the heated air from the air flow path and further dispense the heated air to thereby form seals in the film such that the bags are at least partially formed.
11. The sealing section according to claim 10, further comprising: an air flow sensor configured to sense air flow downstream from the pressure regulator and further generate air flow signals; and a controller, in communication with the pressure regulator and the air flow sensor, that controls the pressure regulator to thereby regulate the air flow based on the air flow signals.
12. The sealing section according to claim 11, wherein the air flow sensor is positioned downstream of the pressure regulator and upstream of the air flow restriction.
13. A sealing section of a bag machine that forms bags from a film, the sealing section comprising: a heater block configured to receive air, heat the air, and further dispense heated air downstream along an air flow path; a plenum in the air flow path through which the heated air is conveyed; and a manifold configured to receive the heated air from the air flow path and further dispense the heated air to thereby form seals in the film such that the bags are at least partially formed; wherein at least one of the heater block, the plenum, and the manifold are insulated.
14. The sealing station according to claim 13, wherein the at least one of the heater block, the plenum, and the manifold has an insulation jacket.
15. The sealing station according to claim 13, wherein the plenum and the manifold are each insulated.
16. The sealing station according to claim 13, wherein only the manifold is insulated.
17. The sealing station according to claim 13, further comprising: a temperature sensor configured to sense temperature of the heated air in the air flow path, temperature of the heated air in the manifold, or temperature of the manifold and generate temperature signals; and a controller, in communication with the heater block and the temperature sensor, that controls the heater block to heat the air based on the temperature signals.
18. The sealing section according to claim 17, wherein the temperature sensor is disposed in the air flow path or the manifold.
19. The sealing section according to claim 17, wherein the temperature sensor is a first temperature sensor, and further comprising a second temperature sensor configured to sense temperature near the heater block and generate temperature signals; and wherein the controller is in communication with the second temperature sensor and controls the heater block to heat the air based on the temperature signals from the first temperature sensor and the second temperature sensor.
20. The sealing section according to claim 19, wherein the second temperature sensor is configured to sense temperature of the air in the heater block.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032] Before explaining at least one embodiment in detail it is to be understood that the invention is not limited in its application to the details of construction and the arrangement of the components set forth in the following description or illustrated in the drawings. The invention is capable of other embodiments or of being practiced or carried out in various ways. Also, it is to be understood that the phraseology and terminology employed herein is for the purpose of description and should not be regarded as limiting. Like reference numerals are used to indicate like components.
DETAILED DESCRIPTION
[0033] While the present disclosure will be illustrated with reference to a rotary drum bag machine, and making bags using a rotary drum, it should be understood at the outset that the seal bar described herein can also be implemented with other types of bag machines.
[0034] Generally, the operation of rotary bag machines may be consistent with the prior art, except for the design of and operation of the seal bar and related components. Thus, this disclosure will be made with reference to the prior art bag machine of
[0035] The temperature of air from the manifold (or shoe) is more directly a function of the manifold temperature, rather than the temperature of the heater block. Yet, prior art systems only use feedback of heater block temperature in their control loop. This disclosure provides for using the temperature of or near the manifold (or of air in or near the manifold). Also, in the prior art heat loss from the manifold is significant and effects the temperature of the air in the manifold. This increases heat up time, wastes energy, and results in a more difficult control. This disclosure provides, in an alternative, for reducing heat loss by insulating components, which reduces heat up time, reduces energy waste, and results in an easier control.
[0036] The preferred embodiment provides that the sealing section includes a sealer having a heater block and a manifold. An air flow path is provided so that air may be provided to the manifold by the heater block. The air is heated in the heater block. The heating of the air in the heater block is controlled by a controller. A temperature sensor is disposed in the air path and/or the manifold. A feedback circuit preferably is connected to the temperature sensor and to the controller, and the feedback sensor provides a signal indicative of temperature near the sensor to the controller so that the controller can control the air temperature. This allows the temperature of the manifold or of air in or near the manifold to be controlled to the desired temperature.
[0037] The temperature sensor is a thermocouple in the preferred embodiment but is a different type of sensor in other embodiments. A second temperature sensor is located in the heater block and provides a signal indicative of the temperature near the second sensor to the controller. The second sensor is used as a failsafe or runaway sensor. Thus, if for some reason the block overheats (for example a bad sensor in the manifold or a leak before the manifold), the failsafe sensor prevents overheating of the block.
[0038] In the preferred embodiment the sealing section includes rotary drum 208 which is disposed along the film path such that the film travels around a portion of the rotary drum. The seal bars on drum 208 each include a temperature sensor, and each is fed by a separate heater block in the preferred embodiment. The heater blocks and/or manifolds are insulated in the preferred embodiment, and not insulated in alternative embodiments. The sealer is a hem sealer, and/or a pocket sealer and/or a bottom sealer in various embodiment.
[0039] The preferred embodiment restricts air flow in the center of the manifold, so that relatively more air is directed to either end of the manifold in the preferred embodiment. The preferred embodiment provides that greater air flow at the ends than in the middle of the seal bars results in more consistent seals.
[0040] In operation bags are formed by directing the film to the input section and then directing the film from the input section to the sealing section. Air is heated in the heating block (or blocks) for each seal bar. The heated air is directed to the manifold of each seal bar. The temperature of the manifold, or heated air in the manifold, or the heated air as it is being directed to the manifold, is measured. The heating of air in the heating blocks is controlled in response to the measured temperature. Seals are formed using the seal bar manifolds. Alternatives provide for one or more of the seal bars to be those of the prior art, rather than as described herein The film is provided to the output section after the sealer.
[0041] Referring to
[0042] Heated air is provided by heater block 305 to a distribution plenum 315. Air flows from plenum 315 to manifold 317. A thermocouple 311 in manifold 317 provides feedback on line 312 to controller 314, 307. Because thermocouple 311 is located in manifold 317 controller 314, 307 can more accurately control the temperature of manifold 317. Thermocouple 311 can be embedded in manifold 317 where it senses the temperature of manifold 317, or it can be in an open area of manifold 317 where it senses the temperature of the air in manifold 317. Alternatives provide for thermocouple 311 to be located in plenum 315, or in the air flow path from plenum 315 to manifold 317.
[0043] A second thermocouple 309 is located in heater block 305 and provides a signal on feedback line 310 to controller 314, 307. Thermocouple 309 and is used to prevent runaway heating (overheating) of heater block 305. Thus, controller 314, 307 has two feedback loops, each with a set point—one for manifold 318 and one for heater block 305. Controller 314, 317 “ANDS” the control so that heating is provided when both feedback loops indicate heating is needed. The heater block control loop prevents runaway temperatures. Thermocouple 309 can be embedded in heater block 305 where it senses the temperature of heater block 305, or it can be in an open area of heater block 305 where it senses the temperature of the air in heater block 305. Alternatives provide for thermocouple 309 to be located in an air flow path between heater block 305 and plenum 315, in plenum 315, or for it to be omitted.
[0044] Heater block 305, distribution plenum 315 and manifold 317 are insulated in the embodiment of
[0045] The embodiment of
[0046] The typical start up time of prior art systems is about 40 minutes. It takes this long to heat the system to the desired temperature because of heat loss. Also, because the prior art systems control using heater block temperature, the heater reaches the set point before the manifold temperature is at the desired level Thus, prior art systems turn the heater off even though the temperature at the manifold is not as hot as desired.
[0047] Using the embodiment of
[0048] Referring to
[0049] Heated air is provided by heater block 305 to distribution plenum 403. Air flows from plenum 403 to a manifold 417. Thermocouple 311 is in manifold 417 and provides feedback on line 312 to controller 314, 307. Because thermocouple 311 is located in manifold 417 controller 314, 307 can more accurately control the temperature in manifold 417. Thermocouple 311 can be embedded in manifold 417 where it senses the temperature of manifold 417, or it can be in an open area of manifold 417 where it senses the temperature of the air in manifold 417. Alternatives provide for thermocouple 311 to be located in plenum 403, or in the air flow path from plenum 403 to manifold 417.
[0050] A second thermocouple 309 is located in heater block 305 and provides a signal on feedback line 310 to controller 314, 307. Thermocouple 309 and is used to prevent runaway heating (overheating) of heater block 305. Thus, controller 314, 307 has two feedback loops, each with a set point—one for manifold 317 and one for heater block 305. Controller 314, 317 “ANDS” the control so that heating is provided when both feedback loops indicate heating is needed. The heater block control loop prevents runaway temperatures. Alternatives provide for thermocouple 309 to be located in an air flow path between heater block 305 and plenum 403, in plenum 403, or for it to be omitted.
[0051] Heater block 305, distribution plenum 403 and manifold 417 are insulated in the embodiment of
[0052] The embodiment of
[0053] Referring to
[0054] Heated air is provided by integrated heater and air distributor 502 to a plenum 503, which serves the purpose of the manifold in other embodiments. Using the arrangement of
[0055] A second thermocouple can be used as in other embodiments to prevent runaway heating (overheating) of integrated heater and air distributor 502. The embodiment of
[0056] Numerous modifications may be made to the present disclosure which still full within the intended scope hereof Thus, it should be apparent that there has been provided a method and apparatus for making bags that fully satisfies the objectives and advantages set forth above. Although the disclosure has been described specific embodiments thereof, it is evident that many alternatives, modifications and variations will be apparent to those skilled in the art. Accordingly, the invention is intended to embrace all such alternatives, modifications and variations that full within the spirit and broad scope of the appended claims.