Boiler system controlling fuel to a furnace based on temperature of a structure in a superheater section

Information

  • Patent Grant
  • 9541282
  • Patent Number
    9,541,282
  • Date Filed
    Monday, March 10, 2014
    10 years ago
  • Date Issued
    Tuesday, January 10, 2017
    7 years ago
Abstract
A boiler system is provided comprising: a furnace adapted to receive a fuel to be burned to generate hot working gases; a fuel supply structure associated with the furnace for supplying fuel to the furnace; a superheater section associated with the furnace and positioned to receive energy in the form of heat from the hot working gases; and a controller. The superheater section may comprise a platen including a tube structure with an end portion and a temperature sensor for measuring the temperature of the tube structure end portion and generating a signal indicative of the temperature of the tube structure end portion. The controller may be coupled to the temperature sensor for receiving and monitoring the signal from the sensor.
Description
FIELD OF THE INVENTION

The present invention relates to a boiler system comprising a controller for monitoring a temperature of a structure in a superheater section and controlling fuel provided to a furnace based on the monitored temperature.


BACKGROUND OF THE INVENTION

In a paper-making process, chemical pulping yields, as a by-product, black liquor, which contains almost all of the inorganic cooking chemicals along with lignin and other organic matter separated from the wood during pulping in a digester. The black liquor is burned in a recovery boiler. The two main functions of the recovery boiler are to recover the inorganic cooking chemicals used in the pulping process and to make use of the chemical energy in the organic portion of the black liquor to generate steam for a paper mill.


In a kraft recovery boiler, a superheater structure is placed in the furnace in order to extract heat by radiation and convection from the furnace gases. Saturated steam enters the superheater section, and superheated steam exits from the section. The superheater structure comprises a plurality of platens.


SUMMARY OF THE INVENTION

In accordance with a first aspect of the present invention, a boiler system is provided comprising: a furnace adapted to receive a fuel to be burned to generate hot working gases; a fuel supply structure associated with the furnace for supplying fuel to the furnace; a superheater section associated with the furnace and positioned to receive energy in the form of heat from the hot working gases, the superheater section comprising: at least one platen including at least one tube structure, the one tube structure having an end portion; and a temperature sensor for measuring the temperature of the tube structure end portion and generating a signal indicative of the temperature of the tube structure end portion; and a controller coupled to the temperature sensor for receiving and monitoring the signal from the sensor.


The controller may control an amount of fuel provided by the supply structure to the furnace based on the signal.


The controller may monitor the signal from the temperature sensor for rapid changes in temperature of the tube structure end portion.


Rapid changes in temperature of the tube structure end portion may comprise a monotonic increase in temperature of least about 25 degrees F. occurring over a time period of between about one to ten minutes and a monotonic decrease in temperature greater than zero in magnitude occurring over a time period of between about one to fifteen minutes.


The controller may increase an amount of fuel supplied by the supply structure to the furnace after the temperature of the tube structure end portion has experienced rapid changes.


The boiler system may further comprise a temperature measuring device for sensing the temperature of the working gases contacting the superheater section and generating a corresponding temperature signal to the controller.


The controller may control the amount of fuel provided by the supply structure to the furnace such that the temperature of the working gases is below a threshold temperature until the temperature of the tube structure end portion has experienced rapid changes.


The controller may increase an amount of fuel supplied by the supply structure to the furnace after the temperature of the tube structure end portion has experienced rapid changes.


The controller may request an operator to input a tube structure clearing verification signal after the temperature of the tube structure end portion has experienced rapid changes.


In accordance with a second aspect of the present invention, a monitoring system is provided for a boiler system. The boiler system may comprise a furnace adapted to receive a fuel to be burned to generate hot working gases, a fuel supply structure associated with the furnace for supplying fuel to the furnace, and a superheater section associated with the furnace and positioned to receive energy in the form of heat from the hot working gases. The superheater section may comprise at least one platen including at least one tube structure. The one tube structure may have an end portion. The monitoring system may comprise: a sensor for measuring the temperature of the tube structure end portion and generating a signal indicative of the temperature of the tube structure end portion; and a controller coupled to the sensor for receiving and monitoring the signal from the sensor.


The controller may monitor the signal from the temperature sensor for rapid changes in temperature of the tube structure end portion.


The controller may generate a request to an operator to input a tube structure clearing verification signal after the temperature of the tube structure end portion has experienced rapid changes.


The controller may increase an amount of fuel supplied by the supply structure to the furnace after the temperature of the tube structure end portion has experienced rapid changes and an operator has input a tube structure clearing verification signal.


The controller may increase an amount of fuel supplied by the supply structure to the furnace after the temperature of the tube structure end portion has experienced rapid changes and without requiring that an operator input a tube structure clearing verification signal.


In accordance with a third aspect of the present invention, a process is provided for monitoring a boiler system comprising a furnace for burning a fuel to generate hot working gases, a fuel supply structure for supplying fuel to the furnace, a superheater section comprising at least one platen including at least one tube structure, the one tube structure having an end portion, and a sensor for measuring the temperature of the tube structure end portion and generating a signal indicative of the temperature of the tube structure end portion. The process may comprise: monitoring the signal from the sensor, and controlling an amount of fuel provided to the furnace based on the signal.


Monitoring may comprise monitoring the signal from the temperature sensor for rapid changes in temperature of the tube structure end portion.


Controlling may comprise increasing an amount of fuel supplied by the supply structure to the furnace after the temperature of the tube structure end portion has experienced rapid changes.





BRIEF DESCRIPTION OF THE DRAWINGS

While the specification concludes with claims particularly pointing out and distinctly claiming the present invention, it is believed that the present invention will be better understood from the following description in conjunction with the accompanying Drawing Figures, in which like reference numerals identify like elements, and wherein:



FIG. 1 is a schematic view of a kraft black liquor recovery boiler system constructed in accordance with the present invention;



FIG. 2 illustrates a portion of a superheater section of the boiler system of FIG. 1; wherein tube structures defining platens are illustrated schematically as rectangular structures;



FIG. 3 illustrates first, second and third tube structures of a platen; and



FIG. 4 is an example plot of a tube structure clearing event.





DETAILED DESCRIPTION OF THE INVENTION

In the following detailed description of the preferred embodiments, reference is made to the accompanying drawings that form a part hereof, and in which are shown by way of illustration, and not by way of limitation, specific preferred embodiments in which the invention may be practiced. It is to be understood that other embodiments may be utilized and that changes may be made without departing from the spirit and scope of the present invention.



FIG. 1 illustrates a kraft black liquor recovery boiler system 10 constructed in accordance with the present invention. Black liquor is a by-product of chemical pulping in a paper-making process. The initial concentration of “weak black liquor” is about 15%. It is concentrated to firing conditions (65% to 85% dry solids content) in an evaporator 20, and then burned in the recovery boiler system 10. The evaporator 20 receives the weak black liquor from washers (not shown) downstream from a cooking digester (not shown).


The boiler system 10 comprises a recovery boiler 12 comprising a sealed housing 12A defining a furnace 30 where a fuel, e.g., black liquor, is burned to generate hot working gases, a heat transfer section 32 and a bullnose 34 in between the furnace 30 and the heat transfer section 32, see FIG. 1. Hence, “hot working gases,” as used herein, means the gases generated when fuel is burned in the furnace. The boiler system 10 further comprises an economizer 40, a boiler bank 50 and a superheater section 60, all of which are located in the heat transfer section 32, see FIG. 1. The hot working gases resulting from the burning of the fuel in the furnace 30 pass around the bullnose 34, travel into and through the heat transfer section 32, are then filtered through an electrostatic precipitator 70 and exit through a stack 72, see FIG. 1. It is noted that when the furnace 30 is initially fired, another fuel other than black liquor, such as natural gas or fuel oil, may be provided to the furnace 30 via injectors 137. Once the furnace 30 has reached a desired temperature, black liquor instead of natural gas or fuel oil may be used as the fuel in the furnace 30.


Vertically aligned wall tubes 130 are incorporated into vertical walls 31 of the furnace 30. As will be discussed further below, a fluid, primarily water, passes through the wall tubes 130 such that energy in the form of heat from the hot working gases generated in the furnace 30 is transferred to the fluid flowing through the wall tubes 130. The furnace 30 has primary level air ports 132, secondary level air ports 134, and tertiary level air ports 136 for introducing air for combustion at three different height levels. Black liquor BL is sprayed into the furnace 30 out of spray guns 138. The black liquor BL is supplied to the guns 138 from the evaporator 20. The injectors 137 and the spray guns 138 define fuel supply structure.


The economizer 40 receives feedwater from a supply FS. In the illustrated embodiment, the feedwater may be supplied to the economizer 40 at a temperature of about 250° F. The economizer 40 may heat the water to a temperature of about 450° F. The hot working gases moving through the heat transfer section 32 supply energy in the form of heat to the economizer 40 for heating the feedwater. The heated water is then supplied from the economizer 40 to a top drum (steam drum) 52 of the boiler bank 50, see FIG. 1. The top drum 52 functions generally as a steam-water separator. In the embodiment illustrated in FIG. 1, the water flows down a first set of tubes 54 extending from the top drum 52 to a lower drum (mud drum) 56. As the water flows down the tubes 54, it may be heated to a temperature of about 400-600° F. From the lower drum 56, a portion of the heated water flows through a second set of tubes 58 in the boiler bank 50 to the upper drum 52. A remaining portion of the heated water in the lower drum 56 is supplied to the wall tubes 130 in the furnace 30. The water flowing through the second set of tubes 58 in the boiler bank 50 and the wall tubes 130 in the furnace 30 may be heated to a saturated state. In the saturated state, the fluid is mainly a liquid, but some steam may be provided. The fluid in the wall tubes 130 is returned to the boiler bank 50 at the top drum 52. The steam is separated from the liquid in the top drum 52. The steam in the top drum 52 is supplied to the superheater section 60, while the water returns to the lower drum 56 via the first set of tubes 54.


In an alternative embodiment (not shown), the upper and lower drums 52, 56 may be replaced by a single drum, as is known to those skilled in the art, whereby steam is supplied by the single drum to a superheater section.


In the embodiment illustrated in FIG. 2, the superheater section 60 comprises first, second and third superheaters 62, 64 and 66, each of which may comprise between about 20-50 platens 62A, 64A and 66A. Steam enters the platens 62A, 64A and 66A through a corresponding manifold tube called an inlet header 62B, 64B and 66B, is superheated within the platens 62A, 64A and 66A, and exits the platens 62A, 64A and 66A as superheated steam through another manifold tube called an outlet header 62C, 64C and 66C. The platens 62A, 64A and 66A are suspended from the headers 62B, 64B, 66B, 62C, 64C and 66C, which are themselves suspended from overhead beams (not shown) by hanger rods 200. The hot working gases moving through the heat transfer section 32 supply the energy in the form of heat to the superheater section 60 for superheating the steam. It is contemplated that the superheater section 60 may comprise less than three superheaters or more than three superheaters.


A platen 62A from the first superheater 62 is illustrated in FIG. 3. The remaining platens 62A in the first superheater 62 as well as the platens 64A and 66A in the second and third superheaters 64, 66 are constructed in generally the same manner. The platen 62A may comprise first, second and third separate metal tube structures 160-162, see FIG. 3. In FIG. 2, the platens are schematically illustrated as rectangular structures, but are defined by tube structures. The tube structures 160-162 comprise inlet portions 160A-162A, which communicate with the inlet header 62B and end portions 160B-162B, which communicate with the outlet header 62C. The tube structure inlet portions 160A-162A and end portions 160B-162B are located above a roof 12B of the boiler housing 12A, see FIGS. 1 and 3, while intermediate portions 160C-162C of the tube structures 160-162 extend within the boiler housing 12A and are located within the heat transfer section 32. The tube structures 160-162 define pathways through which fluid, e.g., steam, passes from the inlet header 62B, though the tube structures 160-162 and out the outlet header 62C. It is contemplated that the platen 62A may have less than or more than three tube structures, e.g., one, two, four or five tube structures.


The steam is heated to a superheated state in the superheater section 60. Prior to boiler/furnace start-up, cooled liquid water may settle in lower bends of the tube structures 160-162 in the platens 62A, 64A and 66A. Until the liquid water is boiled away during boiler/furnace start-up, the liquid water prevents steam from passing through the tube structures 160-162. The steam moving through the tube structures 160-162 functions as a cooling fluid for the metal tube structures 160-162. When no steam moves through a tube structure 160-162, the tube structure may become overheated, especially at an end portion 160B-162B, which may cause damage to the tube structure 160-162.


In the present invention, start-up of the furnace 30 is monitored by a controller 210 to ensure that the furnace 30 is heated slowly until any liquid water in the tube structures 160-162 of the superheater section platens 62A, 64A and 66A has safely evaporated before the furnace 30 is heated to an elevated state.


A temperature measurement device 170, which, in the illustrated embodiment, comprises an optical pyrometer, may be provided in or near the heat transfer section 32 to measure the temperature of the hot working gases in the heat transfer section 32 and entering the superheater section 60. The temperature measuring device 170 generates a corresponding temperature signal to the controller 210. The temperature sensed by the temperature measurement device 170 provides an indication of the amount of energy in the form of heat being generated by the furnace 30. Until the controller 210 has verified that liquid water in the tube structures 160-162 has been cleared, the amount of fuel provided by the injectors 137 or the spray guns 138 to the furnace 30 is controlled by the controller 210 at a low level. That is, in the illustrated embodiment, the amount of fuel provided by the injectors 137 or the spray guns 138 to the furnace 30 is controlled by the controller 210 such that the temperature of the hot working gases in the heat transfer section 32 and entering the superheater section 60, as measured by the temperature measuring device 170, is less than a predefined initial working gas threshold temperature, such as a threshold temperature falling within the range of 800-1000 degrees F., and preferably 900 degrees F. If the temperature of the hot working gases exceeds the threshold temperature, the amount of fuel provided to the furnace 30 is reduced. Once the controller 210 has verified that liquid water in the tube structures 160 has been cleared, then the controller 210 will allow the rate at which fuel is provided to the furnace 30 to increase such that the temperature of the hot working gases entering the superheater section 60 exceeds the threshold temperature.


The controller 210 comprises any device which receives input data, processes that data through computer instructions, and generates output data. Such a controller can be a hand-held device, laptop or notebook computer, desktop computer, microcomputer, digital signal processor (DSP), mainframe, server, other programmable computer devices, or any combination thereof. The controller 210 may also be implemented using programmable logic devices such as field programmable gate arrays (FPGAs) or, alternatively, realized as application specific integrated circuits (ASICs) or similar devices.


Preferably, for each of the tube structures 160-162 in the platens 62A, 64A and 66A, a temperature sensor 220, such as a thermocouple in the illustrated embodiment, is provided at the end portion 160B-162B of the tube structure 160 to measure the temperature of the tube structure 160-162 at that location, see FIG. 3. The temperature sensors 220 generate corresponding temperature signals to the controller 210. Each tube structure end portion 160B-162B is located near its corresponding outlet header. It is contemplated that a temperature sensor 220 may not be provided for all of the tube structures 160-162 in each of the platens 62A, 64A and 66A. However, it is preferred that a temperature sensor 220 is provided for at least one tube structure 160-162 in each platen 62A, 64A and 66A.


Liquid water evaporating in a tube structure 160-162 after furnace startup is referred to herein as a “tube structure clearing event.” Such a tube structure clearing event is characterized by rapid changes in temperature at the end portion of the tube structure. In the illustrated embodiment, “rapid changes in temperature” of the end portion 160B-162B of a tube structure 160-162, as measured by a corresponding temperature sensor 220, are characterized by the temperature increasing monotonically, rapidly, e.g., over a 1-10 minute period, and significantly, e.g., by a temperature increase of at least 25 degrees F., and immediately thereafter, decreasing monotonically, rapidly, e.g., over a 1-15 minute period, by a temperature magnitude decrease equal to or less than the magnitude of the temperature increase but, in any event, the magnitude of the decrease in temperature is greater than zero.


In FIG. 4, a plot is illustrated corresponding to a measured tube structure clearing event. As shown in FIG. 4, the temperature of a tube structure end portion, as measured by a corresponding temperature sensor 220, began to monotonically increase in temperature at about 8075 seconds from about 550 degrees F. to a maximum temperature of about 700 degrees F. at about 8225 seconds. Hence, over a time period of about 150 seconds, the tube structure end portion increased in temperature by about 150 degrees F. After reaching the maximum temperature at about 8225 seconds, the temperature of the tube structure end portion immediately began to decrease monotonically to a temperature of about 610 degrees F. at about 8725 seconds. Hence, over a time period of about 500 seconds, the tube structure end portion monotonically decreased in temperature by about 90 degrees.


Hence, the temperature sensors 220 are monitored by the controller 210 for rapid temperature changes, i.e., a rapid increased in temperature immediately followed by a rapid decrease in temperature, indicating that fluid is moving through the entire length of their corresponding tube structures 160-162. In the illustrated embodiment, once all of the temperature sensors 220 have provided signals indicating that rapid temperature changes have occurred at their corresponding tube structure end portions, the controller 210 may automatically cause (without input from an operator) the injectors 137 or spray guns 138 to increase the amount of fuel provided to the furnace 30 since the temperature of the hot working gases in the heat transfer section 32 and entering the superheater section 60 can safely exceed the predefined initial working gas threshold temperature (800-1000 degrees F. in the illustrated embodiment).


An “increase in the amount of fuel provided to the furnace” is intended to encompass increasing the rate at which fuel is input into the furnace 30 by either the injectors 137 or the spray guns 138. Hence, an increase in the amount of fuel provided to the furnace 30 may result when the injectors 137 increase the rate at which natural gas or fuel oil is input into the furnace 30; when the injectors 137 stop inputting natural gas or fuel oil while, at that same time, the spray guns 138 begin inputting black liquor into the furnace 30 at a rate which exceeds the rate at which natural gas or fuel oil was injected into the furnace 30; or when the spray guns 138 increase the rate at which black liquor is input into the furnace.


In accordance with a further aspect of the present invention, once all of the temperature sensors 220 have provided signals to the controller 210 indicating that rapid temperature changes have occurred at their corresponding tube structure end portions, the controller 210 may generate a message or otherwise indicate to an operator that a tube structure clearing event has occurred and/or request that the operator input a tube structure clearing verification signal. In an embodiment, the controller 210 will not automatically cause the injectors 137 or spray guns 138 to increase the amount of fuel provided to the furnace 30 once all of the temperature sensors 220 have provided signals to the controller 210 indicating that rapid temperature changes have occurred at their corresponding tube structure end portions, as is done by the embodiment discussed above. Instead, the controller 210 will wait until it receives a verification signal input from the operator, via a keypad, keyboard or other input device, indicating that the operator has verified that a tube structure clearing event has occurred. In this embodiment, only after receiving the verification signal input by the operator will the controller 210 cause the injectors 137 or spray guns 138 to increase the amount of fuel provided to the furnace 30. In another embodiment, without waiting to receive a verification signal input from the operator (but may occur before or after generating a message indicating to an operator that a tube structure clearing event has occurred, after being preferable), the controller 210 will automatically cause the injectors 137 or spray guns 138 to increase the amount of fuel provided to the furnace 30 once all of the temperature sensors 220 have provided signals to the controller 210 indicating that rapid temperature changes have occurred at their corresponding tube structure end portions, as is done in the embodiment discussed above.


The controller 210, temperature measuring device 170 and temperature sensors 220, as discussed above with regards to FIGS. 1 and 3, define a monitoring system for the boiler system 10.


While particular embodiments of the present invention have been illustrated and described, it would be obvious to those skilled in the art that various other changes and modifications can be made without departing from the spirit and scope of the invention. It is therefore intended to cover in the appended claims all such changes and modifications that are within the scope of this invention.

Claims
  • 1. A boiler system comprising: a furnace adapted to receive a fuel to be burned to generate hot working gases;a fuel supply structure associated with said furnace for supplying fuel to said furnace;a superheater section associated with said furnace and positioned to receive energy in the form of heat from the hot working gases, said superheater section comprising: at least one platen including at least one tube structure, the one tube structure having an end portion; anda temperature sensor for measuring the temperature of the tube structure end portion and generating a signal indicative of the temperature of said tube structure end portion; anda controller coupled to said temperature sensor for receiving and monitoring the signal from said temperature sensor.
  • 2. The boiler system as set out in claim 1, wherein the controller controls an amount of fuel provided by the supply structure to the furnace based on the signal.
  • 3. The boiler system as set out in claim 1, wherein said controller monitors the signal from said temperature sensor for rapid changes in temperature of said tube structure end portion.
  • 4. The boiler system as set out in claim 3, wherein rapid changes in temperature of said tube structure end portion comprises a monotonic increase in temperature of least about 25 degrees Fahrenheit occurring over a time period of between about one to ten minutes and a monotonic decrease in temperature greater than zero in magnitude occurring over a time period of between about one to fifteen minutes.
  • 5. The boiler system as set out in claim 3, wherein said controller increases an amount of fuel supplied by said supply structure to said furnace after the temperature of said tube structure end portion has experienced rapid changes.
  • 6. The boiler system as set out in claim 1, further comprising a temperature measuring device for sensing the temperature of the working gases contacting said superheater section and generating a corresponding temperature signal to said controller.
  • 7. The boiler system as set out in claim 6, wherein said controller controls the amount of fuel provided by said supply structure to said furnace such that the temperature of the working gases is below a threshold temperature until the temperature of said tube structure end portion has experienced rapid changes.
  • 8. The boiler system as set out in claim 7, wherein said controller increases an amount of fuel supplied by said supply structure to said furnace after the temperature of said tube structure end portion has experienced rapid changes.
  • 9. The boiler system as set out in claim 3, wherein said controller request an operator to input a tube structure clearing verification signal after the temperature of said tube structure end portion has experienced rapid changes.
  • 10. A monitoring system for a boiler system comprising a furnace adapted to receive a fuel to be burned to generate hot working gases, a fuel supply structure associated with said furnace for supplying fuel to said furnace, a superheater section associated with the furnace and positioned to receive energy in the form of heat from the hot working gases, the superheater section comprising at least one platen including at least one tube structure, the one tube structure having an end portion, the monitoring system comprising: a sensor for measuring the temperature of the tube structure end portion and generating a signal indicative of the temperature of the tube structure end portion; anda controller coupled to said sensor for receiving and monitoring the signal from said sensor.
  • 11. The monitoring system as set out in claim 10, wherein said controller monitors the signal from said temperature sensor for rapid changes in temperature of said tube structure end portion.
  • 12. The monitoring system as set out in claim 11, wherein rapid changes in temperature of said tube structure end portion comprises a monotonic increase in temperature of least about 25degrees Fahrenheit occurring over a time period of between about one to ten minutes and a monotonic decrease in temperature greater than zero in magnitude occurring over a time period of between about one to fifteen minutes.
  • 13. The monitoring system as set out in claim 11, wherein said controller generates a request to an operator to input a tube structure clearing verification signal after the temperature of said tube structure end portion has experienced rapid changes.
  • 14. The monitoring system as set out in claim 11, wherein said controller increases an amount of fuel supplied by said supply structure to said furnace after the temperature of said tube structure end portion has experienced rapid changes and an operator has input a tube structure clearing verification signal.
  • 15. The monitoring system as set out in claim 11, wherein said controller increases an amount of fuel supplied by said supply structure to said furnace after the temperature of said tube structure end portion has experienced rapid changes and without requiring that an operator input a tube structure clearing verification signal.
  • 16. The monitoring system as set out in claim 11, further comprising a temperature measuring device for sensing the temperature of the working gases contacting the superheater section and generating a corresponding temperature signal to said controller.
  • 17. The monitoring system as set out in claim 16, wherein said controller controls the amount of fuel provided by said supply structure to said furnace such that the temperature of the working gases is below a threshold temperature until the temperature of said tube structure end portion has experienced rapid changes.
  • 18. The monitoring system as set out in claim 17, wherein said controller increases an amount of fuel supplied by said supply structure to said furnace after the temperature of said tube structure end portion has experienced rapid changes.
  • 19. A process for monitoring a boiler system comprising a furnace for burning a fuel to generate hot working gases, a fuel supply structure for supplying fuel to the furnace, a superheater section comprising at least one platen including at least one tube structure, the one tube structure having an end portion, and a sensor for measuring the temperature of the tube structure end portion and generating a signal indicative of the temperature of the tube structure end portion, the process comprising; monitoring the signal from the sensor, andcontrolling an amount of fuel provided to the furnace based on the signal.
  • 20. The process as set out in claim 19, wherein monitoring comprises monitoring the signal from the temperature sensor for rapid changes in temperature of the tube structure end portion.
  • 21. The process as set out in claim 19, wherein controlling comprises increasing an amount of fuel supplied by the supply structure to the furnace after the temperature of the tube structure end portion has experienced rapid changes.
US Referenced Citations (175)
Number Name Date Kind
2416462 Wilcoxson Feb 1947 A
2819702 Koch Jan 1958 A
2830440 Durham Apr 1958 A
2832323 Craig Apr 1958 A
2962006 Blodgett Nov 1960 A
2966896 Vogler Jan 1961 A
3028844 Durham Apr 1962 A
3040719 Dickey Jun 1962 A
3161180 Durham Dec 1964 A
3207134 Miller Sep 1965 A
3246635 Powell Apr 1966 A
3274979 Petit Sep 1966 A
3291106 Palchik Dec 1966 A
3362384 Caracristi Jan 1968 A
3364903 Covell Jan 1968 A
3439376 Nelson et al. Apr 1969 A
3452722 Evers Jul 1969 A
3575002 Vuia Apr 1971 A
3955358 Martz May 1976 A
3965675 Martz Jun 1976 A
3974644 Martz Aug 1976 A
4004647 Forst et al. Jan 1977 A
4028884 Martz Jun 1977 A
4031404 Martz Jun 1977 A
4037469 Nordstrom et al. Jul 1977 A
4085438 Butler Apr 1978 A
4099384 Stevens et al. Jul 1978 A
4237825 Kochey Dec 1980 A
4339998 Finch Jul 1982 A
4351277 Ryan et al. Sep 1982 A
4359800 Ziels Nov 1982 A
4375710 Hammond Mar 1983 A
4377134 Frey Mar 1983 A
4380843 Sullivan et al. Apr 1983 A
4411204 Hamilton Oct 1983 A
4421067 Krowech Dec 1983 A
4422882 Nelson et al. Dec 1983 A
4430963 Finet Feb 1984 A
4454840 Dziubakowski Jun 1984 A
4466383 Klatt et al. Aug 1984 A
4475482 Moss et al. Oct 1984 A
4488516 Bueters et al. Dec 1984 A
4492187 Hammond Jan 1985 A
4539840 Klatt et al. Sep 1985 A
4565324 Rebula et al. Jan 1986 A
4567622 Ziels Feb 1986 A
4599975 Reeve et al. Jul 1986 A
4621583 Kaski Nov 1986 A
4716856 Beisswenger Jan 1988 A
4718363 Williames Jan 1988 A
4718376 Leroueil et al. Jan 1988 A
RE32723 Neundorfer Aug 1988 E
4779690 Woodman Oct 1988 A
4803959 Sherrick et al. Feb 1989 A
4887431 Peet Dec 1989 A
4920994 Nachbar May 1990 A
4957049 Strohmeyer, Jr. Sep 1990 A
4980674 Scheibel et al. Dec 1990 A
4986391 Salmon Jan 1991 A
4996951 Archer et al. Mar 1991 A
5027751 Archer et al. Jul 1991 A
5048636 Roehrs Sep 1991 A
5050108 Clark Sep 1991 A
5063632 Clark et al. Nov 1991 A
5065472 Carpenter et al. Nov 1991 A
5090087 Hipple et al. Feb 1992 A
5113802 Leblanc May 1992 A
5181482 Labbe et al. Jan 1993 A
5209324 Hogbacka May 1993 A
5230306 Barringer et al. Jul 1993 A
5237718 Brown Aug 1993 A
5241723 Garrabrant Sep 1993 A
5261965 Moslehi Nov 1993 A
5267533 Smith Dec 1993 A
5271356 Kling et al. Dec 1993 A
5286063 Huston Feb 1994 A
5299533 Johnston et al. Apr 1994 A
5305713 Vadakin Apr 1994 A
5320073 Silcott et al. Jun 1994 A
5348774 Golecki et al. Sep 1994 A
5353996 Gallacher et al. Oct 1994 A
5365890 Johnston, Jr. et al. Nov 1994 A
5375771 Jamelle et al. Dec 1994 A
5379727 Kling et al. Jan 1995 A
5398623 Lautenschlager et al. Mar 1995 A
5416946 Brown et al. May 1995 A
5423272 Dunn, Jr. Jun 1995 A
5423483 Schwade Jun 1995 A
5429076 Johnston, Jr. et al. Jul 1995 A
5477683 Persson Dec 1995 A
5505163 Jameel Apr 1996 A
5509607 Booher et al. Apr 1996 A
5522348 Tanaka Jun 1996 A
5530987 Piccirillo et al. Jul 1996 A
5549079 Johnston, Jr. et al. Aug 1996 A
5549305 Freund Aug 1996 A
5553778 Jameel et al. Sep 1996 A
5605117 Moskal Feb 1997 A
5606924 Martin et al. Mar 1997 A
5615734 Hyp Apr 1997 A
5619771 Minic Apr 1997 A
5626184 Campbell et al. May 1997 A
5663489 Thungstrom et al. Sep 1997 A
5675863 Holden et al. Oct 1997 A
5740745 Smyrniotis et al. Apr 1998 A
5745950 Holden et al. May 1998 A
5756880 Chen et al. May 1998 A
5765510 Krowech et al. Jun 1998 A
5769034 Zilka et al. Jun 1998 A
5769035 Fiedler Jun 1998 A
5778830 Wall Jul 1998 A
5778831 Jameel Jul 1998 A
5793014 Sobkowiak et al. Aug 1998 A
5836268 Wall Nov 1998 A
5894806 Smyrniotis et al. Apr 1999 A
5920951 Piccirillo et al. Jul 1999 A
5943865 Cohen Aug 1999 A
5983639 Kral et al. Nov 1999 A
6065528 Fierle et al. May 2000 A
6073641 Bude et al. Jun 2000 A
6105590 Martin et al. Aug 2000 A
6109096 Chen et al. Aug 2000 A
6170117 Batt Jan 2001 B1
6178924 Hakulinen Jan 2001 B1
6244098 Chen et al. Jun 2001 B1
6321690 Zilka et al. Nov 2001 B1
6323442 Jones Nov 2001 B1
6325025 Perrone Dec 2001 B1
6425352 Perrone Jul 2002 B2
6431073 Zilka et al. Aug 2002 B1
6437285 Thomas et al. Aug 2002 B1
6575122 Hipple Jun 2003 B2
6581549 Stewart et al. Jun 2003 B2
6604468 Zilka et al. Aug 2003 B2
6644201 Zilka et al. Nov 2003 B2
6710285 Brown et al. Mar 2004 B2
6715499 Bartels et al. Apr 2004 B2
6725911 Jayaweera et al. Apr 2004 B2
6736089 Lefebvre et al. May 2004 B1
6755156 Zilka et al. Jun 2004 B1
6764030 Habib et al. Jul 2004 B2
6772775 Ackerman et al. Aug 2004 B2
6782902 Shover et al. Aug 2004 B2
6892679 Jameel et al. May 2005 B2
6964709 Matsumoto et al. Nov 2005 B2
7017500 Jones Mar 2006 B2
7028926 Habib et al. Apr 2006 B2
7055209 Zalewski Jun 2006 B2
7204208 Johnson et al. Apr 2007 B2
7267134 Hochstein, Jr. et al. Sep 2007 B2
7341067 Jones et al. Mar 2008 B2
7395760 Zilka et al. Jul 2008 B2
7458342 Lefebvre et al. Dec 2008 B2
7584024 Wroblewski et al. Sep 2009 B2
7633033 Thomas et al. Dec 2009 B2
7735435 Eriksson et al. Jun 2010 B2
9091182 Labbe Jul 2015 B2
20020043192 Philippe Apr 2002 A1
20040006841 Jameel et al. Jan 2004 A1
20040226758 Jones et al. Nov 2004 A1
20050199743 Hochstein et al. Sep 2005 A1
20050252458 Saviharju Nov 2005 A1
20060065291 Jones et al. Mar 2006 A1
20060236696 Saviharju et al. Oct 2006 A1
20090090311 James et al. Apr 2009 A1
20090151656 Jones Jun 2009 A1
20100064470 Dahlen et al. Mar 2010 A1
20100077946 D'Agostini Apr 2010 A1
20100101462 Hayashi Apr 2010 A1
20100199930 Tandra Aug 2010 A1
20110011315 Hayashi Jan 2011 A1
20120270162 Dahlhielm Oct 2012 A1
20130152973 Jones Jun 2013 A1
20140150825 Hei en Jun 2014 A1
20160025600 Carlier et al. Jan 2016 A1
Foreign Referenced Citations (26)
Number Date Country
2387369 Oct 2009 CA
0071815 Feb 1983 EP
0602244 Jun 1994 EP
0905308 Sep 1998 EP
1063021 Dec 2000 EP
2784477 Jan 2014 EP
802032 Sep 1958 GB
1022254 Sep 1962 GB
1376805 Dec 1974 GB
2271440 Apr 1994 GB
2428312 Jan 2007 GB
62278217 Dec 1987 JP
10274408 Oct 1998 JP
2003156211 May 2003 JP
2143087 Dec 1999 RU
1291031 Feb 1987 SU
464031 Mar 1989 SU
9305338 Mar 1993 WO
9827384 Jun 1998 WO
03104547 Dec 2003 WO
2006037018 Apr 2006 WO
2007028447 Mar 2007 WO
2008057039 May 2008 WO
2009139714 Nov 2009 WO
2010098946 Sep 2010 WO
2014068325 May 2014 WO
Related Publications (1)
Number Date Country
20150253003 A1 Sep 2015 US