US20090173291A1 - Gas and electric heating system - Google Patents

Gas and electric heating system Download PDF

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Publication number
US20090173291A1
US20090173291A1 US12/219,764 US21976408A US2009173291A1 US 20090173291 A1 US20090173291 A1 US 20090173291A1 US 21976408 A US21976408 A US 21976408A US 2009173291 A1 US2009173291 A1 US 2009173291A1
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United States
Prior art keywords
steam
duct
heating
producing chamber
boiler tank
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
US12/219,764
Inventor
Bernard H. Azrikam
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Shemer & Azrikam Partnership
Original Assignee
Shemer & Azrikam Partnership
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
Priority claimed from US12/007,108 external-priority patent/US20090173294A1/en
Application filed by Shemer & Azrikam Partnership filed Critical Shemer & Azrikam Partnership
Priority to US12/219,764 priority Critical patent/US20090173291A1/en
Assigned to SHEMER & AZRIKAM PARTNERSHIP reassignment SHEMER & AZRIKAM PARTNERSHIP ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: AZRIKAM, BERNARD H.
Priority to PCT/US2008/014078 priority patent/WO2009088458A2/en
Publication of US20090173291A1 publication Critical patent/US20090173291A1/en
Abandoned legal-status Critical Current

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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F22STEAM GENERATION
    • F22BMETHODS OF STEAM GENERATION; STEAM BOILERS
    • F22B1/00Methods of steam generation characterised by form of heating method
    • F22B1/28Methods of steam generation characterised by form of heating method in boilers heated electrically
    • F22B1/284Methods of steam generation characterised by form of heating method in boilers heated electrically with water in reservoirs
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F22STEAM GENERATION
    • F22BMETHODS OF STEAM GENERATION; STEAM BOILERS
    • F22B9/00Steam boilers of fire-tube type, i.e. the flue gas from a combustion chamber outside the boiler body flowing through tubes built-in in the boiler body
    • F22B9/02Steam boilers of fire-tube type, i.e. the flue gas from a combustion chamber outside the boiler body flowing through tubes built-in in the boiler body the boiler body being disposed upright, e.g. above the combustion chamber
    • F22B9/08Steam boilers of fire-tube type, i.e. the flue gas from a combustion chamber outside the boiler body flowing through tubes built-in in the boiler body the boiler body being disposed upright, e.g. above the combustion chamber the fire tubes being in horizontal arrangement
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F22STEAM GENERATION
    • F22BMETHODS OF STEAM GENERATION; STEAM BOILERS
    • F22B9/00Steam boilers of fire-tube type, i.e. the flue gas from a combustion chamber outside the boiler body flowing through tubes built-in in the boiler body
    • F22B9/10Steam boilers of fire-tube type, i.e. the flue gas from a combustion chamber outside the boiler body flowing through tubes built-in in the boiler body the boiler body being disposed substantially horizontally, e.g. at the side of the combustion chamber

Definitions

  • the present invention generally relates to heating systems. More specifically, the present invention is drawn to a gas and electric heating system having a boiler that utilizes both gaseous fuel and electric energy to generate steam.
  • the gas and electric heating system is a high-efficiency heating system that employs combination gas and electric heat generators to provide energy to a boiler that generates steam.
  • the system comprises a blue-flame, gaseous-fuel burner disposed externally of the boiler to provide heat to a steam-generating boiler.
  • a second embodiment employs a jet flame burner having a heating tube disposed in the boiler. Both embodiments employ electrical heating elements positioned inside the boiler. Steam generated in the boiler flows to a heating core. The core is positioned in an air duct so that heat is transferred from the core to air flowing through the duct. The heated air flows from the duct into an area to be heated. Controls are provided to correlate the functions of the various components in the system.
  • the duct can be oriented in any direction (horizontal, down-flow, up-flow, etc.). Accordingly, the instant invention presents a heating system that employs a combination of energy sources to produce steam.
  • the heating system is effective and efficient and may reduce the user's annual heating bill up to 80%.
  • the system provides for an arrangement of improved elements for the purposes described that are inexpensive, dependable and fully effective in accomplishing their intended purposes.
  • FIG. 1 is a diagrammatic view of a first embodiment of a gas and electric heating system according to the present invention.
  • FIG. 2 is a schematic drawing of the electrical control circuitry for a first embodiment of a gas and electric heating system according to the present invention.
  • FIG. 3 is a partial, perspective view of the boiler tank for a first embodiment of a gas and electric heating system according to the present invention.
  • FIG. 4 is diagrammatic view of a second embodiment of a gas and electric heating system according to the present invention.
  • FIG. 5 is a diagrammatic section view of the boiler and heat tube of the gas and electric heating system of FIG. 4 .
  • System 10 comprises a blue-flame, gaseous-fuel, burner manifold assembly 12 .
  • Gaseous fuel is provided via conduit 14 to the manifold assembly 12 .
  • Primary and secondary combustion air is provided in a conventional manner in quantities to allow blue-flame combustion.
  • a pilot burner 12 a is positioned adjacent manifold assembly 12 and functions to ignite the mixture of fuel and air to produce a flame indicated at 15 .
  • Valves 16 and 18 control the flow of gas to manifold assembly 12 and pilot burner 12 a .
  • Flame 15 is directed to heat boiler tank 20 to generate steam therein.
  • a flame shield 22 surrounds the space between manifold assembly 12 and boiler tank 20 . Flame shield 22 functions to concentrate the heat to an area beneath the boiler tank 20 and to prevent extraneous air from entering the flame area, thereby allowing the flame to burn steadily.
  • Water is fed to boiler tank 20 via water conduit 24 .
  • Shutoff valve 26 , low-water cutout valve and switch 28 , and water-feeder sensor 30 control the flow of water through conduit 24 .
  • a drain valve 32 and pressure-relief valve 34 are disposed on boiler tank 20 for obvious safety reasons.
  • Electric heating elements 36 , 38 (shown in phantom lines) are positioned within the interior of boiler tank 20 . Two elements are preferred. It should be noted however, that one element or more than two elements may be used, if suitable.
  • Energy applied to boiler tank 20 by flame 15 and electrical elements 36 , 38 combine to generate steam.
  • the generated steam flows from boiler tank 20 through conduit 40 and into heating core 42 .
  • Gauge 44 is positioned on conduit 40 to monitor the temperature and pressure of steam flow.
  • Control 46 functions to regulate and monitor the pressure of the steam.
  • Heating core 42 is positioned in the exit duct 50 a of blower 50 . Blower-driven air is heated as it flows over core 42 and into space S (the space that is to be warmed by the heated air).
  • a control sensor 52 is disposed at the exit of duct 50 a to monitor blower output and air temperature.
  • a relatively small bleeder line 54 allows an amount of steam to pass from the core directly into space S for humidification purposes.
  • a conventional thermostat 64 is disposed in space S to control system operation in the usual manner.
  • Circuitry for controlling operation of the system is illustrated in FIG. 2 .
  • the circuit includes a fuse 60 in series with an on/off switch 62 .
  • Parallel sub-circuit 63 comprises thermostat 64 , pressure control 46 , low water cutout switch 28 a , gas valve control 16 , contactor 66 and transformer 66 a .
  • Heating elements 36 , 38 , water feeder sensor 30 and blower motor 68 are in parallel.
  • Switches 46 a and 52 a are responsive to pressure control 46 and control sensor 52 respectively.
  • boiler tank 20 is positioned adjacent burner manifold 12 .
  • the burner generates flames at approximately 300° Fahrenheit.
  • the flame shield has been omitted for clarity.
  • Tank 20 can be fabricated from any suitable metallic material (steel, alloys of steel, etc.).
  • the tank 20 houses heating elements 36 , 38 therein. The heating elements are each rated at 1,500 watts. Steam generated in tank 20 exits to the heat core via line 40 . Steam condensed in the core is returned to the tank through conventional return lines.
  • FIGS. 4 and 5 are illustrative of a second embodiment of the instant invention.
  • the second embodiment includes a flame jet burner 70 to provide heat to boiler tank 20 in lieu of a blue flame burner.
  • flame jet burner 70 ejects gaseous fuel to be burned in heating duct 72 .
  • Heating duct 72 is immersed in water in tank 20 .
  • Jet flame burner 70 includes conventional igniter and flame sensor controls.
  • Electric heating elements 36 , 38 are disposed in the tank 20 , as described in the first embodiment. Burning gases G flow through duct 72 to provide heat to the water surrounding the duct 72 , thereby changing the water to steam.
  • An inducer 74 is provided in duct 72 to enhance the flow of burning gases G through the duct 72 .
  • Steam generated in tank 20 exits via lines 76 and 78 to flow to heating core 42 .
  • Condensed steam is returned to boiler 20 via a return line.
  • FIGS. 4 and 5 incorporates all appropriate control elements described above in the first embodiment.

Abstract

The gas and electric heating system has combination gas and electric heat generators to provide energy to a steam-generating boiler. The system utilizes a blue-flame, gaseous-fuel burner disposed externally of the boiler in one embodiment and a flame jet burner in a second embodiment. Electrical heating elements are positioned inside the boiler. Steam generated in the boiler flows to a heating core. The core is positioned in an air duct. Heat is transferred from the core to air flowing through the duct. The heated air flows from the duct into an area to be heated. Controls are provided to correlate the functions of the various components in the system.

Description

    CROSS-REFERENCE TO RELATED APPLICATION
  • This application is a continuation-in-part of application Ser. No. 12/007,108, filed Jan. 7, 2008.
  • BACKGROUND OF THE INVENTION
  • 1. Field of the Invention
  • The present invention generally relates to heating systems. More specifically, the present invention is drawn to a gas and electric heating system having a boiler that utilizes both gaseous fuel and electric energy to generate steam.
  • 2. Description of the Related Art
  • Potential shortages of gas and oil and pollution generated during hydrocarbon combustion have caused builders to consider electric energy as a cleaner alternative for heating steam-producing boilers. However, the high costs of producing electricity and the relative inefficiency of using only electric power to generate steam render this alternative economically imprudent. The heating industry and the consumer would certainly welcome a heating system that could incorporate the best features of both an electric and a hydrocarbon-fueled, steam-generated heating system. Thus, a gas and electric heating system solving the aforementioned problems is desired.
  • SUMMARY OF THE INVENTION
  • The gas and electric heating system is a high-efficiency heating system that employs combination gas and electric heat generators to provide energy to a boiler that generates steam. In one embodiment, the system comprises a blue-flame, gaseous-fuel burner disposed externally of the boiler to provide heat to a steam-generating boiler. A second embodiment employs a jet flame burner having a heating tube disposed in the boiler. Both embodiments employ electrical heating elements positioned inside the boiler. Steam generated in the boiler flows to a heating core. The core is positioned in an air duct so that heat is transferred from the core to air flowing through the duct. The heated air flows from the duct into an area to be heated. Controls are provided to correlate the functions of the various components in the system. The duct can be oriented in any direction (horizontal, down-flow, up-flow, etc.). Accordingly, the instant invention presents a heating system that employs a combination of energy sources to produce steam. The heating system is effective and efficient and may reduce the user's annual heating bill up to 80%. The system provides for an arrangement of improved elements for the purposes described that are inexpensive, dependable and fully effective in accomplishing their intended purposes.
  • These and other features of the present invention will become readily apparent upon further review of the following specification and drawings.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • FIG. 1 is a diagrammatic view of a first embodiment of a gas and electric heating system according to the present invention.
  • FIG. 2 is a schematic drawing of the electrical control circuitry for a first embodiment of a gas and electric heating system according to the present invention.
  • FIG. 3 is a partial, perspective view of the boiler tank for a first embodiment of a gas and electric heating system according to the present invention.
  • FIG. 4 is diagrammatic view of a second embodiment of a gas and electric heating system according to the present invention.
  • FIG. 5 is a diagrammatic section view of the boiler and heat tube of the gas and electric heating system of FIG. 4.
  • Similar reference characters denote corresponding features consistently throughout the attached drawings.
  • DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
  • Attention is first directed to FIG. 1, wherein a first embodiment of the gas and electric heating system is diagrammatically illustrated and is generally indicated at 10. System 10 comprises a blue-flame, gaseous-fuel, burner manifold assembly 12. Gaseous fuel is provided via conduit 14 to the manifold assembly 12. Primary and secondary combustion air is provided in a conventional manner in quantities to allow blue-flame combustion. A pilot burner 12 a is positioned adjacent manifold assembly 12 and functions to ignite the mixture of fuel and air to produce a flame indicated at 15. Valves 16 and 18 control the flow of gas to manifold assembly 12 and pilot burner 12 a. Flame 15 is directed to heat boiler tank 20 to generate steam therein. A flame shield 22 surrounds the space between manifold assembly 12 and boiler tank 20. Flame shield 22 functions to concentrate the heat to an area beneath the boiler tank 20 and to prevent extraneous air from entering the flame area, thereby allowing the flame to burn steadily.
  • Water is fed to boiler tank 20 via water conduit 24. Shutoff valve 26, low-water cutout valve and switch 28, and water-feeder sensor 30 control the flow of water through conduit 24. A drain valve 32 and pressure-relief valve 34 are disposed on boiler tank 20 for obvious safety reasons. Electric heating elements 36, 38 (shown in phantom lines) are positioned within the interior of boiler tank 20. Two elements are preferred. It should be noted however, that one element or more than two elements may be used, if suitable.
  • Energy applied to boiler tank 20 by flame 15 and electrical elements 36, 38 combine to generate steam. The generated steam flows from boiler tank 20 through conduit 40 and into heating core 42. Gauge 44 is positioned on conduit 40 to monitor the temperature and pressure of steam flow. Control 46 functions to regulate and monitor the pressure of the steam. Heating core 42 is positioned in the exit duct 50a of blower 50. Blower-driven air is heated as it flows over core 42 and into space S (the space that is to be warmed by the heated air). A control sensor 52 is disposed at the exit of duct 50 a to monitor blower output and air temperature. A relatively small bleeder line 54 allows an amount of steam to pass from the core directly into space S for humidification purposes. A conventional thermostat 64 is disposed in space S to control system operation in the usual manner.
  • Circuitry for controlling operation of the system is illustrated in FIG. 2. The circuit includes a fuse 60 in series with an on/off switch 62. Parallel sub-circuit 63 comprises thermostat 64, pressure control 46, low water cutout switch 28 a, gas valve control 16, contactor 66 and transformer 66 a. Heating elements 36, 38, water feeder sensor 30 and blower motor 68 are in parallel. Switches 46 a and 52 a are responsive to pressure control 46 and control sensor 52 respectively.
  • As best seen in FIG. 3, boiler tank 20 is positioned adjacent burner manifold 12. The burner generates flames at approximately 300° Fahrenheit. The flame shield has been omitted for clarity. Tank 20 can be fabricated from any suitable metallic material (steel, alloys of steel, etc.). The tank 20 houses heating elements 36, 38 therein. The heating elements are each rated at 1,500 watts. Steam generated in tank 20 exits to the heat core via line 40. Steam condensed in the core is returned to the tank through conventional return lines.
  • FIGS. 4 and 5 are illustrative of a second embodiment of the instant invention. The second embodiment includes a flame jet burner 70 to provide heat to boiler tank 20 in lieu of a blue flame burner. As best seen in FIG. 5, flame jet burner 70 ejects gaseous fuel to be burned in heating duct 72. The duct-traverses boiler tank 20. Heating duct 72 is immersed in water in tank 20. Jet flame burner 70 includes conventional igniter and flame sensor controls. Electric heating elements 36, 38 are disposed in the tank 20, as described in the first embodiment. Burning gases G flow through duct 72 to provide heat to the water surrounding the duct 72, thereby changing the water to steam. An inducer 74 is provided in duct 72 to enhance the flow of burning gases G through the duct 72. Steam generated in tank 20 exits via lines 76 and 78 to flow to heating core 42. Condensed steam is returned to boiler 20 via a return line. The embodiment of FIGS. 4 and 5 incorporates all appropriate control elements described above in the first embodiment.
  • It is to be understood that the present invention is not limited to the embodiment described above, but encompasses any and all embodiments within the scope of the following claims.

Claims (9)

1. A gas and electric heating system, comprising:
a boiler tank forming a steam producing chamber;
a flame jet burner for generating burning gases,
a heating duct positioned adjacent the flame jet burner for receiving the burning gases, the heating duct being disposed within the boiler tank;
at least one electric heating element positioned in the steam producing chamber; and
a first conduit connected to the boiler tank for supplying water to the steam producing chamber.
2. The gas and electric heating system according to claim 1, further including an inducer positioned in said heating duct to enhance the flow of burning gases in said heating duct.
3. The gas and electric heating system according to claim 2, further including a third conduit connected to said boiler tank for conveying steam from said steam producing chamber.
4. The gas and electric heating system according to claim 1, further including means on said first conduit for controlling the flow of water to said boiler tank.
5. A gas and electric heating system, comprising:
a boiler tank forming a steam producing chamber;
a flame jet burner for generating burning gases,
a heating duct positioned adjacent the flame jet burner for receiving the burning gases, the heating duct being disposed within the boiler tank;
a plurality of electric heating elements positioned in the steam producing chamber;
a heating core connected to the steam producing chamber for receiving steam therefrom;
an air blower having an air duct, the heating core being positioned in the air duct;
a first conduit connected to the boiler tank for supplying water to the steam producing chamber; and
means disposed on the first conduit for controlling the flow of water to the boiler tank.
6. The gas and electric heating system according to claim 5, further including:
second and third conduits connecting said boiler tank to said heating core for supplying steam from said steam producing chamber to said heating core; and
means disposed on the second and the third conduits for controlling the supply of steam from said steam producing chamber to said heating core.
7. A gas and electric heating system, comprising:
a boiler tank forming a steam producing chamber;
a flame jet burner for generating burning gases,
a heating duct positioned adjacent the flame jet burner for receiving the burning gases, the heating duct disposed within the boiler tank;
a plurality of electric heating elements positioned in the steam producing chamber;
a heating core connected to the steam producing chamber for receiving steam therefrom;
an air blower having a duct for providing heated air into an area to be warmed by the heated air, the heating core being positioned in the duct;
a first conduit connected to the boiler tank for supplying water to the steam producing chamber;
means disposed on the first conduit for controlling the flow of water to is the boiler tank; and
a small bleeder line connected to the heating core, the bleeder line opening into the area to be warmed for supplying humidifying steam to the area.
8. The gas and electric heating system according to claim 7, further including:
second and third conduits connecting said boiler tank to said heating core for supplying steam from said steam-producing chamber to said heating core; and
means disposed on the second and third conduits for controlling the supply of steam from said steam producing chamber to said heating core.
9. The gas and electric heating system according to claim 8, further including a control sensor disposed in said duct for controlling said blower.
US12/219,764 2008-01-07 2008-07-28 Gas and electric heating system Abandoned US20090173291A1 (en)

Priority Applications (2)

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US12/219,764 US20090173291A1 (en) 2008-01-07 2008-07-28 Gas and electric heating system
PCT/US2008/014078 WO2009088458A2 (en) 2008-01-07 2008-12-29 Gas and electric heating system

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US12/007,108 US20090173294A1 (en) 2008-01-07 2008-01-07 Gas and electric heating system
US12/219,764 US20090173291A1 (en) 2008-01-07 2008-07-28 Gas and electric heating system

Related Parent Applications (1)

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US12/007,108 Continuation-In-Part US20090173294A1 (en) 2008-01-07 2008-01-07 Gas and electric heating system

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US20090173291A1 true US20090173291A1 (en) 2009-07-09

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20190105227A1 (en) * 2017-10-11 2019-04-11 Doyle Mcneil Sauna system

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US2434575A (en) * 1946-05-08 1948-01-13 Electromaster Inc Heating system
US4020822A (en) * 1975-09-19 1977-05-03 Oneida Heater Company, Incorporated (Entire) Multi-fuel forced air furnace
US4105894A (en) * 1976-01-14 1978-08-08 Parks John Allen Steam heated hot air furnace having an electric steam boiler
US4171772A (en) * 1972-11-16 1979-10-23 Amana Refrigeration, Inc. Package heat exchanger system for heating and cooling
US4274581A (en) * 1973-12-06 1981-06-23 Raytheon Company Package heat exchanger system for heating and cooling
US4310746A (en) * 1976-07-28 1982-01-12 Elkern Kenneth E Electric fluid heating apparatus
US4505254A (en) * 1983-03-29 1985-03-19 Wigdahl Arthur G Water heater for divers and for other uses
US4705213A (en) * 1986-01-27 1987-11-10 Elvin Lane Heat unit recycler
US5512312A (en) * 1994-06-15 1996-04-30 Forney; Robert B. Radiant wall oven and method of using the same
US5556566A (en) * 1994-06-22 1996-09-17 Zanussi Grandi Impianti S.P.A. Combined gas-microwave cooking oven with steam operation
US5735235A (en) * 1996-04-16 1998-04-07 Li; Weicheng Method and system for heating a liquid
US6021743A (en) * 1995-08-23 2000-02-08 Siemens Aktiengesellschaft Steam generator
US6761135B1 (en) * 2003-08-27 2004-07-13 Bryon Edward Becktold Multipurpose assembly
US6857578B2 (en) * 2003-05-15 2005-02-22 Lennox Manufacturing Inc. Combination water heating and space heating apparatus and control therefor
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US1037369A (en) * 1912-03-12 1912-09-03 Joseph Sexton Thompson Electrically-heated steam-radiator.
US2434575A (en) * 1946-05-08 1948-01-13 Electromaster Inc Heating system
US4171772A (en) * 1972-11-16 1979-10-23 Amana Refrigeration, Inc. Package heat exchanger system for heating and cooling
US4274581A (en) * 1973-12-06 1981-06-23 Raytheon Company Package heat exchanger system for heating and cooling
US4020822A (en) * 1975-09-19 1977-05-03 Oneida Heater Company, Incorporated (Entire) Multi-fuel forced air furnace
US4105894A (en) * 1976-01-14 1978-08-08 Parks John Allen Steam heated hot air furnace having an electric steam boiler
US4310746A (en) * 1976-07-28 1982-01-12 Elkern Kenneth E Electric fluid heating apparatus
US4505254A (en) * 1983-03-29 1985-03-19 Wigdahl Arthur G Water heater for divers and for other uses
US4705213A (en) * 1986-01-27 1987-11-10 Elvin Lane Heat unit recycler
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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20190105227A1 (en) * 2017-10-11 2019-04-11 Doyle Mcneil Sauna system

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WO2009088458A3 (en) 2009-10-15
WO2009088458A2 (en) 2009-07-16

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Owner name: SHEMER & AZRIKAM PARTNERSHIP, ILLINOIS

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Effective date: 20081204

STCB Information on status: application discontinuation

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