The invention is illustrated in the attached drawings, in which like numerals designate like elements, and wherein:
In
A gas fed burner 5 (
Burner 5 is equipped with a continuous flame modulator, preferably composed of a gas supply valve connected to a Venturi air intake tube serving a variable speed electronically adjustable electric fan, for automatic regulation of the gas flow to burner 5 based on the incoming flow of air and adjusted by the variable speed fan and consequent mixing of the two fluids in order to optimize the stoichiometric combustion ratios.
A partition 7 is displaced behind flame column 6 and between flame column 6 and a blower 8 within heating chamber 2. Blower 8 is centrally positioned with respect to flame column 6. Blower 8 is preferably a left rotating centrifugal fan located on the side of flame column 6 opposite heating chamber 2. Blower 8 centrally draws in air heated by flame column 6 and evenly expels it peripherally into a ventilation chamber 10 extending parallel to the length of heating chamber 2.
Blower 8 includes a motor 9 located in the rear of oven 100, externally of ventilation chamber 10, and operates a second external coaxial centrifugal fan 11. Fan 11 circulates forced air outside of heating chamber 2 and within a peripheral space 12 delimited by a sheet metal covering 13 on the exterior of oven 100 to keep the exterior of oven 100 at a safe temperature.
Left and right angular baffles 14 and 15 (
Three radial deflectors 16A, 16B and 16C are positioned within ventilation chamber 10. A first deflector 16A is positioned below the left angular baffle 14, and the other two deflectors 16B and 16C are positioned respectively below and above right angular baffle 15.
Ventilation chamber 10 opens into lower feeder channel 17 and upper feeder channel 18, which each have their respective openings along the entire length of ventilation chamber 10 (see
Lower and upper feeder channels 17, 18, extend respectively below and above flame column 6 and then diagonally into heating chamber 2 respectively below and above conveyor belt 1 along the entire length of conveyor belt 1 within heating chamber 2. Lower and upper feeder channels 17, 18 empty into heating chamber 2 through respective lower and upper diffusers 19, 20 which define respective series of lower and upper calibrated holes 19A, 20A.
Lower and upper splitters 21, 22 are positioned in respective lower and upper feeder channels 17, 18.
The article or item to be heated is transported by conveyor belt 1 through a transport canal 23. Transport canal 23 is bounded by conveyor belt 1, upper diffuser 20 and front door 3, and is partially closed at its rear by a deflector 24 that includes a lower opening 25 extending along the length of deflector 24.
Positioned rearward of deflector 24 is the convex face of a curved partition 26. Partition 26 extends substantially parallel to flame column 6 along its entire length within lower and upper feeder channels 17, 18. The space between the outer extent of partition 24 and lower and upper feeder channels 17, 18 respectively defines lower and upper gaps 27, 28.
Disposed within heating chamber 2, and preferably located in upper output feeder channel 18, are electronic temperature sensors 29 that are operatively connected to burner 5, as further explained below.
In the operation of gas conveyor oven 100, blower 8 draws hot air from around flame column 6, and expels it peripherally outward by its counter-clockwise rotation. The expelled heated air is intercepted by left and right angular baffles 14, 15, which are configured with respective apexes 14A, 15A defined above and alongside the horizontal disposition of fan 8 (see
In this manner, through lower and upper feeder channels 17, 18, the flow of heated air reaches and crosses diffusers 19, 20 and is forced below and above conveyor belt 2. The greater flow of heated air to lower feeder channel 17 provides more heat to the bottom of the pizza crust transported on conveyor belt 2, while at the same time providing less heat to the upper feeder channel 18 to properly cook the toppings carried on the top of the crust.
After circulating over and under the conveyor belt 2 for cooling the transported article, the flow of air coming through diffusers 19, 20 is centrally drawn into transport canal 23 and passes through opening 25 below deflector 24 and into curved partition 26. The heated waste air is then split and channeled through lower and upper gaps 27, 28, thus returning to flame column 6 for reheating and return to the forced air cooling operation. Recycling of the already-heated air back to flame column 6 efficiently decreases the overall cost of operation of conveyor oven 100.
Even with just one burner and one blower, as is preferred, this labyrinthian structure can achieve uniform and optimal cooking of pizzas by directing the heat where it is needed, the proper temperatures being maintained without shutting off flame column 6. The intensity of the flame is instead modulated by adjusting the parameters to achieve the optimum mixture of combustible gas and air, thus resulting in more efficient use of gas as compared to the normal waste of gas in “on-off” systems, while offering uniform cooking of pizzas.
In particular, in a currently preferred embodiment of the invention, temperature sensors 29 located in upper feeder channel 18 monitor the temperature of the heated air where it is at its maximum temperature. The temperature of the heated air may then be electronically controlled based on preset optimization parameters such as regulation of the variable speed electric fan serving a Venturi air intake tube that is connected to the gas supply valve of the continuous flame supply modulator of burner 5. This valve suitably increases or decreases the supply of combustible gas to flame column 6 based on the temperature detected by sensors 29, and thus increases or decreases the intensity of flame column 6. The desired temperature is accordingly maintained by constantly optimizing the stoichiometric ratio for the air-gas mixture.
There are of course alternative ways of achieving these functions, while using the innovative construction herein described. The system presented here can be realized with structures equivalent to those described as would be appreciated by those of ordinary skill in the art, and those of ordinary skill would also appreciate that the parameters and structures hereof may be varied without under experimentation to realize the benefits provided by the invention.
For example, the structure of the ventilation chamber can be modified to change the running direction of the blower to thereby provide a more sustained flow in the lower duct than in the upper duct. In other embodiments, the relative flow of air to the lower and upper feeder channels 17, 18 can be adjusted by providing means for varying the orientation and positioning of at least one of the baffles 14, 15, such as a motor 30 operative to raise and/or lower the baffle.
As should now be apparent, the preferred system and contemplated variations offer numerous advantages, including the provision of an implementation that successfully yields a gas conveyor food oven with only a single burner and a single blower while achieving high efficiency and desirable adjustability.
It will also be appreciated that the gas conveyor oven of the invention will have utility in any heating application in which it is desired to use a single heater to heat two sides of an item at different temperatures or heat levels, even where the two sides are not top and bottom but, rather, left and right, or front and back. One of ordinary skill in the art can readily modify the constructions described herein without undue experimentation to adapt the inventive gas conveyor oven for a particular application or utility.
It will also be appreciated by those of ordinary skill in the art that the relative rate of heated air flow to the upper and lower feeder channels may be adjusted or set by the relative positioning of apices 14A and 15A with respect to each other and to blower 8, to thereby set the relative heated air flow rates through the feeder channels to the desired proportion.
Thus, while there have shown and described and pointed out fundamental novel features of the invention as applied to preferred embodiments thereof, it will be understood that various omissions and substitutions and changes in the form and details of the devices illustrated, and in their operation, may be made by those skilled in the art without departing from the spirit of the invention. For example, it is expressly intended that all combinations of those elements which perform substantially the same function in substantially the same way to achieve the same results are within the scope of the invention. Moreover, it should be recognized that structures and/or elements shown and/or described in connection with any disclosed form or embodiment of the invention may be incorporated in any other disclosed or described or suggested form or embodiment as a general matter of design choice. It is the intention, therefore, to be limited only as indicated by the scope of the claims appended hereto.
Number | Date | Country | Kind |
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PS 2006 A 000024 | Jul 2006 | IT | national |