Cooking appliance with steam generator

Information

  • Patent Grant
  • 8704138
  • Patent Number
    8,704,138
  • Date Filed
    Monday, November 29, 2010
    13 years ago
  • Date Issued
    Tuesday, April 22, 2014
    10 years ago
Abstract
An apparatus and method for cooking with steam in a cooking appliance by forming the steam from atomized particles of water.
Description
BACKGROUND OF THE INVENTION

1. Field of the Invention


This invention generally relates to a cooking appliance that incorporates a fluid into the cooking process.


2. Description of the Related Art


Conventional cooking appliances, such as ovens, for cooking food are well known, and typically comprise a cabinet containing at least one housing defining a cooking chamber and having a heating system for cooking food.


Some cooking appliances introduce water in the form of steam into the cooking chamber to facilitate the cooking process, such as in the baking of bread and pastries. Such cooking appliances use a steam generator that changes the phase of water from liquid to steam by heating liquid water. The steam is then introduced into the cooking chamber.


Heating the liquid water to such an extent, however, undesirably consumes a great deal of energy due to the high specific heat capacity of water created by hydrogen bonding between the water molecules.


SUMMARY OF THE INVENTION

The invention provides a more energy efficient way of using steam in cooking appliance. In one aspect, the invention is a method of forming steam in a cooking chamber of cooking appliance having a housing defining the cooking chamber, comprising atomizing a liquid to form a plurality of particles of the liquid, introducing the particles into the cooking chamber, and maintaining the temperature of air in the cooking chamber at a temperature sufficient to change the phase of the particles in the cooking chamber from liquid to gas to form the steam.


In another aspect, the invention is a cooking appliance comprising a housing defining a cooking chamber, a heating element for heating the cooking chamber, an atomizer for generating particles of liquid and having an outlet for emitting the generated particles, with the outlet directly connected to the cooking chamber such that the emitted particles enter the cooking chamber without subsequent conditioning.





BRIEF DESCRIPTION OF THE DRAWINGS

In the drawings:



FIG. 1 is a schematic view of a conventional oven with attached atomizer for atomizing liquid water according to one embodiment of the invention.



FIG. 2 is a schematic view of the atomizer of FIG. 1.



FIG. 3 is a perspective view of the atomizer of FIG. 1.





DESCRIPTION OF THE PREFERRED EMBODIMENT

Referring now to the figures, FIG. 1 schematically illustrates a cooking appliance in the form of a conventional oven 10 according to the invention. The oven 10 comprises a cabinet 12 with an open-face cooking chamber 14 defined by a housing 16. The housing 16 comprises a pair of spaced sides 17A, 17B joined by a top 17C, bottom 17D, and rear 17E. A door (not shown) selectively closes the cooking chamber 14. When the door is in the open position, a user can access the cooking chamber, while the door in the closed position prevents access to the cooking chamber 14 and seals the chamber 14 from the external environment. The oven 10 further comprises an opening 21 located in the top of the oven 10 adapted to receive liquid water.


The oven 10 further comprises a heating system for heating the cooking chamber or the food in the cooking chamber. As illustrated, the heating system comprises at least one heating element 18, which is typically either a gas or electric heating element. The heating element 18 can be mounted in any position suitable for heating the air in the cooking chamber 14, such as outside the cooking chamber 14 or at one of its sides, as is well-known in the oven art. Multiple heating elements 18 can be mounted in any combination of positions.


The oven 10 may comprise a circulation system 20 that circulates air and steam, when present, within the cooking chamber 14. The circulation system 20 can be any suitable system providing circulation, such as a fan, and can be mounted in any suitable location of the cooking chamber 14, such as in the rear.


While the cooking appliance is illustrated as a conventional oven, it can be any type of cooking appliance that has a cooking chamber that is heated to cook the food.


An atomizer 22 is provided in the oven. The atomizer 22 generates water particles, which are then converted to steam that is used in the cooking chamber. The heat from the cooking chamber 14 is used to convert the water particles to steam, which negates the need for the use of a separate heating system for generating steam and reduces the overall energy consumption of the oven when steam is used for cooking. The atomizer 22 is preferably mounted within the cabinet 12 by any suitable means. A control 23 linked to the atomizer 22 is located on the top of the oven 10 and can be in the form of a button or switch.


A specific example of a suitable atomizer is illustrated in FIGS. 2 and 3. For the purpose of describing the atomizer 22 of FIGS. 2 and 3, the directions of inward, outward, forward, rearward, top, and bottom are used with respect to the orientation of the atomizer 22 in FIG. 2. The atomizer 22 comprises an open-faced housing 24, which is closed by a cover 40. The housing 24 defines an upper chamber 26 and lower chamber 28. The upper chamber 26 is primarily for holding particles of water and the lower chamber 28 is primarily a reservoir for water. The housing 24 is preferably constructed of porcelain-coated steel, although it can be made of any suitable material. The housing 24 comprises a pair of spaced side walls 30, 32, a top wall 34, bottom wall 36, and a back wall 37. The housing 24 further comprises a divider wall 38, a portion of which is oriented approximately parallel to the top wall 34 and bottom wall 36. The divider wall 38 is interposed between the side walls 30, 32, top wall 34, bottom wall 36, and back wall 37 in any suitable manner effectively separating the upper chamber 26 from the lower chamber 28.


The cover 40 closes the open face of the housing and abuts the side walls 30, 32, top wall 34, bottom wall 36, and divider wall 38, and has an orientation approximately parallel to the back wall 37. The cover 40 can be fastened to the other elements of the housing 24 by any means suitable for creating an impermeable seal, such as by gluing or caulking. An integral outlet 42 extends outwardly from the portion of the cover 40 defining the foremost face of the upper chamber 26. The outlet 42 fluidly connects to the cooking chamber 14.


A liquid water inlet 54 supplies water to the lower chamber 28. The liquid inlet 54 can be configured for the unidirectional flow of liquid water into the lower chamber 28. As illustrated, the inlet 54 is connected to the opening 21 in the top of the oven 10 by a conduit 56 (FIGS. 1 and 3) to permit direct filling by the user. However, other methods and structures for supplying water to the conduit 56 may be used. For example, the conduit can be directly coupled to a household water supply. The conduit 56 can be coupled to the inlet 54 in any suitable manner creating a watertight seal and enabling liquid water flow to the inlet 54, such as by constructing the conduit 56 of resilient tubing adapted to fit tightly around and retain the inlet 54.


A piezoelectric vibrator 44 is mounted to a portion of the bottom wall 35 in which an opening 45 is formed. The piezoelectric vibrator 44 vibrates at an ultrasonic frequency and transmits the vibrations into the lower chamber 28 through the opening 45. In this way the piezoelectric vibrator 44 can vibrate the water contained in the lower chamber 28 and convert the water into particles.


A particle filter 48 is located between the lower chamber 28 and the upper chamber 26 and permits the transfer of water particles from the lower chamber 28 to the upper chamber 26. The particle filter 48 also retards the splashing of water from the lower chamber 28 into the upper chamber 26. As illustrated, the particle filter 48 comprises an opening 50 in the divider wall 38 and which fluidly connects the upper chamber 26 to the lower chamber 28. The particle filter 48 further comprises a particle deflector 52 formed from the divider wall 38 by the opening 50. The particle deflector 52 is located above the opening 45 in the bottom wall 36. The particle filter 48 and its deflector 52 are formed as part of the divider wall 38 for convenience. The particle filter 48 can be separate from the divider wall.


A fan 46 is mounted to a portion of the housing 24 and is in fluid communication with the lower chamber 28. The fan 46 can be any fan having a size and composition suitable for the purposes described herein. The fan 46 is configured to draw air from outside the housing 24, through the lower chamber 28, into the upper chamber 28, and out the outlet 42 into the cooking chamber.


A brief description of the operation of the oven 10 with the atomizer 22 will be helpful in understanding the invention. As the atomizer 22 does not contain its own heating source and relies upon the heated cooking chamber for converting the water particles into steam, the cooking chamber 14 should be heated prior to the introduction of water particles from the atomized. For the water particles to be converted to steam in the cooking chamber 14, the air in the cooking chamber 14 should be heated to a temperature appropriate for creating steam. This level should be at least 212° F. for the typical operating pressures of most ovens, which operate at atmospheric pressure, as this is the boiling temperature of water. It has been found that a temperature higher than the boiling temperature is beneficial. The higher temperature should be great enough such that all surfaces in the cooking chamber are at least the boiling temperature. In this way, any water particle that does not change phase after entering the cooking chamber 14, will change phase upon contact with the surfaces, which will prevent water from pooling on the surfaces. Pooling water can be detrimental to many oven surfaces, such a ceramic, where it can lead to cracking. An air temperature of 250° F. is typically great enough such that all surfaces within the cooking chamber 14 are at least 212° F.


Advantageously, cooking at a temperature of 250° F. requires little power relative to the total power available for cooking by the oven 10 and is well below most cooking temperatures. Typically, foods are cooked at a temperature between 300° F. and 450° F., with a temperature of approximately 530° F. using the total power available and being the maximum possible temperature for cooking. As the majority of power used to heat an oven escapes to the surrounding air as heat, cooking at a lower temperature than normal reduces power consumption and, consequently, reduces energy costs. Additionally, studies have shown that cooking at a lower temperature increases the nutritional value of the food being cooked.


Once the air in the cooking chamber 14 is heated to the appropriate temperature, the controller 23 activates the atomizer 22. The controller 23 can automatically activate the atomizer 22 or activate the atomizer in response to an input by the user. It is anticipated that a user will select a cycle that requires steam, such as bread proofing or baking of fish, and the controller 23 will take this input as a desire to generate steam in accordance with the cooking cycle.


The controller can also control the volume of liquid water in the lower chamber 28 by controller the valve in the inlet 54. Alternatively, the water can be manually filled each time. It is not germane to the invention how the water is supplied. There are many well known ways in which to supply water. The lower chamber 28 is filled with liquid water to a level such that the piezoelectric vibrator 44 is covered by liquid water, but the liquid water is not in contact with the particle deflector 52.


The piezoelectric vibrator 44 is actuated and vibrates to excite the liquid water molecules, resulting in the separation of a portion of the liquid water into liquid water particles in the space above the liquid water. Larger liquid water particles are created above the center of the piezoelectric vibrator 44 due to bubbling. These larger liquid water particles are prevented from moving into the upper chamber 26 by the particle deflector 52 of the particle filter 48. Smaller liquid water particles created by the piezoelectric vibrator 44 have a tendency to spread outwardly above the piezoelectric vibrator 44. It is preferred that the particles be of such a size that they are buoyant within the air. Buoyant particles are particles of this size will not immediately fall back into the water. Primarily, buoyant particles are of a size that they tend to stay in mixture with the air in the cooking chamber and evaporate before contacting any surface of the cooking chamber.


The fan 46 is activated by the controller to create a positive pressure in the lower chamber 28, which in turn creates a first pressure gradient in the atomizer 22. The first pressure gradient propels the smaller liquid water particles through the opening 50 of the particle filter 48 in the divider wall 38. The smaller liquid water particles then accumulate in the upper chamber 26. Any condensation resulting from the collision of liquid water particles in the upper chamber 26 is directed back down into the lower chamber 28 by the sloping of the divider wall 38. The upper chamber 26 also has a positive pressure, which creates a second pressure gradient. This second pressure gradient instigates the movement of the liquid water particles from the upper chamber 26 to the outlet 42 of the cover 40. The liquid water particles move through the outlet 42 and into the cooking chamber 14 of the oven 10.


Once in the cooking chamber 14, the liquid water particles are exposed to the heat of the air in the cooking chamber 14. Since the air in the cooking chamber has been heated to a sufficient temperature, it causes the phase change of the water from liquid to gas, producing steam. The steam is then circulated throughout the cooking chamber along with the heated air using the circulation system 20.


The piezo type ultrasonic atomizer described and illustrated herein provides a cost-efficient means of cooking with steam. The atomizer is designed to for use with any conventional oven. The atomizer also eliminates the need for the separate heating element included in steam generating apparatuses. By using the heating element already present in the oven to provide the energy needed to create steam, the piezo type ultrasonic atomizer greatly diminishes the additional costs associated with traditional steam-assisted cooking.


While the invention has been specifically described in connection with certain specific embodiments thereof, it is to be understood that this is by way of illustration and not of limitation. Reasonable variation and modification are possible within the scope of the forgoing disclosure and drawings without departing from the spirit of the invention which is defined in the appended claims.

Claims
  • 1. An oven comprising: a housing defining a cooking chamber;a heating element for heating the cooking chamber; andan atomizer comprising a housing for storing liquid and comprising a particle generator mounted to the housing to mechanically vibrate liquid contained within the housing to generate particles of liquid and having an outlet for emitting the generated particles, and a particle filter, located in a fluid path connecting the particle generator and the outlet, to limit a size of the particles emitted through the outlet;wherein the outlet directly connects to the cooking chamber such that the emitted particles enter the cooking chamber without subsequent conditioning.
  • 2. The oven according to claim 1 wherein the atomizer comprises a housing defining a first chamber in which the particle generator is located, a second chamber for receiving the filtered particles, and an opening connecting the first and second chambers and forming at least a portion of the particle filter.
  • 3. The oven according to claim 2, wherein the atomizer housing further comprises a deflector forming at least a portion of the particle filter.
  • 4. The oven according to claim 3, wherein the particle generator comprises an ultrasonic vibrator located in the first chamber and the deflector is located above the ultrasonic vibrator.
  • 5. The oven according to claim 1 wherein the atomizer is configured such that the generated particles are of a size that they are buoyant within air of the atomizer and stay in mixture with the air.
  • 6. The oven according to claim 5 wherein the particle filter is configured to only allow buoyant particles to pass through the particle filter towards the outlet.
  • 7. The oven according to claim 6 wherein the atomizer further comprises a fan and the fan is configured to create a pressure gradient in the atomizer such that the buoyant particles are propelled through the particle filter towards the outlet.
  • 8. The oven according to claim 1 wherein the particle generator comprises an ultrasonic vibrator.
  • 9. An oven comprising: a housing defining a cooking chamber;a heating element for heating the cooking chamber; andan atomizer comprising a housing for storing liquid and comprising a particle generator mounted to the housing to mechanically vibrate liquid contained within the housing to generate particles of liquid and having an outlet for emitting the generated particles, and a particle filter, located in a fluid path connecting the particle generator and the outlet, to limit a size of the particles emitted through the outlet;wherein the outlet directly connects to the cooking chamber such that the emitted particles enter the cooking chamber without subsequent conditioning and do not undergo a phase change prior to entry into the cooking chamber.
  • 10. An oven comprising: a housing defining a cooking chamber and having a top;a heating element for heating the cooking chamber; andan atomizer comprising a housing for storing liquid and comprising a particle generator mounted to the housing to mechanically vibrate liquid contained within the atomizer to generate particles of liquid and having an outlet near the top for emitting the generated particles into an upper portion of the cooking chamber, and a particle filter, located in a fluid path connecting the particle generator and the outlet, to limit a size of the particles emitted through the outlet;wherein the outlet directly connects to the cooking chamber such that the emitted particles enter the cooking chamber without subsequent conditioning.
CROSS-REFERENCE TO RELATED APPLICATIONS

The present application represents a division of U.S. patent application Ser. No. 11/583,674 entitled “Cooking Appliance with Steam Generator” filed Oct. 18, 2006, pending.

US Referenced Citations (151)
Number Name Date Kind
213029 Ashcroft Mar 1879 A
339228 Smith Apr 1886 A
1332216 Hodge and Robinson Mar 1920 A
1544481 Reese Jun 1925 A
1792465 Peterson Feb 1931 A
1870459 Klenk Aug 1932 A
2141591 Bonner Dec 1938 A
2502172 Paulsen Mar 1950 A
2636969 Lewis Apr 1953 A
2885194 Winkler May 1959 A
3299800 Angelo Jan 1967 A
3331943 Eff Jul 1967 A
3364338 Holtkamp Jan 1968 A
3394665 Williams Jul 1968 A
3503760 Allen Mar 1970 A
3518949 Stock Jul 1970 A
3732396 Tucker May 1973 A
3751632 Kaurenen Aug 1973 A
3814901 Morhack Jun 1974 A
3815949 Ulert Jun 1974 A
3820524 Buckell Jun 1974 A
3839616 Risman Oct 1974 A
3873363 Bakka et al. Mar 1975 A
3947241 Caridis et al. Mar 1976 A
4010349 Lee Mar 1977 A
4011805 Vegh et al. Mar 1977 A
4058635 Durth Nov 1977 A
4245148 Gisske et al. Jan 1981 A
4258731 Tsujimoto et al. Mar 1981 A
4267976 Chatwin May 1981 A
4367724 Willett Jan 1983 A
4426923 Ohata Jan 1984 A
4623780 Shelton Nov 1986 A
4655192 Jovanovic Apr 1987 A
4700685 Miller Oct 1987 A
4724824 McCoy et al. Feb 1988 A
4737373 Forney Apr 1988 A
4817582 Oslin et al. Apr 1989 A
4835368 Fortmann et al. May 1989 A
4876426 Smith Oct 1989 A
4906485 Kirchhoff Mar 1990 A
4913039 Sutphen Apr 1990 A
4920948 Koether et al. May 1990 A
4924071 Jacobs May 1990 A
4924072 Oslin May 1990 A
4991545 Rabe et al. Feb 1991 A
5014679 Childs et al. May 1991 A
5075120 Leary et al. Dec 1991 A
5075121 Leary et al. Dec 1991 A
5077065 Ash et al. Dec 1991 A
5171974 Koether et al. Dec 1992 A
5176856 Takahashi et al. Jan 1993 A
5200225 Apaydin Apr 1993 A
5209941 Wuest May 1993 A
5215000 Desage et al. Jun 1993 A
5235902 Ogawa et al. Aug 1993 A
5279676 Oslin et al. Jan 1994 A
5318792 Tippman Jun 1994 A
5330223 Hiramitsu et al. Jul 1994 A
5355840 Violi Oct 1994 A
5367145 Takagi Nov 1994 A
5369252 Kondo Nov 1994 A
5411753 Tippmann May 1995 A
5463940 Cataldo Nov 1995 A
5474789 Hayami et al. Dec 1995 A
5494690 Shelton Feb 1996 A
5512312 Forney et al. Apr 1996 A
5515773 Bullard May 1996 A
5525782 Yoneno et al. Jun 1996 A
5532456 Smith et al. Jul 1996 A
5549038 Kolvites Aug 1996 A
5552578 Violi Sep 1996 A
5619983 Smith Apr 1997 A
5631033 Kolvites May 1997 A
5640946 Oslin Jun 1997 A
5653919 White et al. Aug 1997 A
5662959 Tippmann Sep 1997 A
5680810 Sham Oct 1997 A
5694835 Mangina Dec 1997 A
5710409 Scwarzbacker et al. Jan 1998 A
5756970 Barger et al. May 1998 A
5768982 Violi et al. Jun 1998 A
5938959 Wang Aug 1999 A
5942142 Forney et al. Aug 1999 A
5945018 Halen Aug 1999 A
5967020 Soyama et al. Oct 1999 A
6023050 Violi Feb 2000 A
6035763 Yung Mar 2000 A
6040564 Ueda et al. Mar 2000 A
6133558 Ueda et al. Oct 2000 A
6138558 Ueda et al. Oct 2000 A
6175100 Creamer et al. Jan 2001 B1
6188045 Hansen et al. Feb 2001 B1
6202637 Roberts Mar 2001 B1
6233464 Chmaytelli May 2001 B1
6267045 Wiedemann et al. Jul 2001 B1
6318246 Fukushima et al. Nov 2001 B2
6323464 Cohn Nov 2001 B1
6323467 Alsafadi Nov 2001 B1
6342262 Wuest Jan 2002 B1
6453802 Manganiello et al. Sep 2002 B1
6497907 Hofer Dec 2002 B2
6521871 Shelton Feb 2003 B1
6545251 Allera et al. Apr 2003 B2
6565762 Silverbrook May 2003 B1
6570136 Lockwood et al. May 2003 B1
6572911 Corcoran et al. Jun 2003 B1
6666086 Colman et al. Dec 2003 B2
6727478 Rael et al. Apr 2004 B2
6743454 Gibson et al. Jun 2004 B1
6773738 Berger et al. Aug 2004 B2
6815644 Muegge et al. Nov 2004 B1
6833032 Douglas et al. Dec 2004 B1
6900414 Fisher May 2005 B2
6909070 Veltrop et al. Jun 2005 B2
6909071 Shozo Jun 2005 B2
6972397 Ha Dec 2005 B2
7060941 Embury et al. Jun 2006 B1
7091454 Cho et al. Aug 2006 B2
7113695 Ono Sep 2006 B2
7199340 Yamasaki et al. Apr 2007 B2
7208701 Fraccon et al. Apr 2007 B2
7235762 Gagas et al. Jun 2007 B2
7537004 Reay May 2009 B2
7745763 Fraccon et al. Jun 2010 B2
7867534 Sells et al. Jan 2011 B2
20010051202 Hofer Dec 2001 A1
20020179588 Lubrina et al. Dec 2002 A1
20030132312 Kelly Jul 2003 A1
20040022909 Holm et al. Feb 2004 A1
20040226934 Moore, Jr. et al. Nov 2004 A1
20040232141 Yamasaki et al. Nov 2004 A1
20040256482 Linden Dec 2004 A1
20040261632 Hansen et al. Dec 2004 A1
20050006382 Hayakawa et al. Jan 2005 A1
20050034718 Van Over Feb 2005 A1
20050051036 Erdmann et al. Mar 2005 A1
20060000821 Gerola et al. Jan 2006 A1
20060249136 Reay Nov 2006 A1
20060249137 Reay Nov 2006 A1
20060251784 Sells et al. Nov 2006 A1
20060251785 Fraccon et al. Nov 2006 A1
20060289438 Fraccon et al. Dec 2006 A1
20070062927 Sells et al. Mar 2007 A1
20070104844 Fraccon et al. May 2007 A1
20070138160 Ando et al. Jun 2007 A1
20080032018 Garniss et al. Feb 2008 A1
20080095905 Sells et al. Apr 2008 A1
20090133684 Embury et al. May 2009 A1
20090136640 Embury et al. May 2009 A1
20100178395 Embury et al. Jul 2010 A1
Foreign Referenced Citations (71)
Number Date Country
PI0601034 Dec 2006 BR
PI0601041 Dec 2006 BR
PI0601130 Dec 2006 BR
PI0601196 Dec 2006 BR
PI0601213 Dec 2006 BR
PI0601334 Dec 2006 BR
PI0601214 Mar 2007 BR
PI0601331 Aug 2007 BR
2524764 Oct 2006 CA
2524583 Nov 2006 CA
2524597 Nov 2006 CA
2524757 Nov 2006 CA
2524763 Nov 2006 CA
2524766 Nov 2006 CA
2524604 Jan 2007 CA
2534521 Mar 2007 CA
1928426 Mar 2007 CN
3909283 Oct 1990 DE
4303656 Aug 1994 DE
19741881 Mar 1999 DE
10335295 Mar 2005 DE
0233535 Aug 1987 EP
0277337 Aug 1988 EP
0517681 Dec 1992 EP
0643923 Mar 1995 EP
0768055 Apr 1997 EP
0893084 Jan 1999 EP
0894460 Feb 1999 EP
1010384 Jun 2000 EP
1166694 Jan 2002 EP
1372358 Dec 2003 EP
1382280 Jan 2004 EP
1714555 Oct 2006 EP
1719414 Nov 2006 EP
1719415 Nov 2006 EP
1719417 Nov 2006 EP
1724529 Nov 2006 EP
1724530 Nov 2006 EP
1744104 Jan 2007 EP
1761111 Mar 2007 EP
2589678 May 1987 FR
2652234 Mar 1991 FR
2840392 Dec 2003 FR
15098 Jan 1910 GB
2373714 Oct 2002 GB
2400298 Oct 2004 GB
55068249 May 1980 JP
57077829 May 1982 JP
6014756 Jan 1994 JP
8038134 Feb 1996 JP
9004856 Jan 1997 JP
2000093341 Apr 2000 JP
2001346549 Dec 2001 JP
2002006215 Jan 2002 KR
20060110746 Oct 2006 KR
20060115327 Nov 2006 KR
20060115329 Nov 2006 KR
20060115332 Nov 2006 KR
20060115333 Nov 2006 KR
20060115579 Nov 2006 KR
20070007701 Jan 2007 KR
20070027429 Mar 2007 KR
PA05013410 Jan 2007 MX
PA06003631 Mar 2007 MX
500788 Jan 1976 SU
9534220 Dec 1995 WO
9734491 Sep 1997 WO
9852418 Nov 1998 WO
9933347 Jul 1999 WO
9953767 Oct 1999 WO
03023285 Mar 2003 WO
Non-Patent Literature Citations (6)
Entry
Lazy Day Brunch Casserole (Crustless Quiche), Food.com, [on line] Jan. 5, 2005, retrieved on May 6, 2012. Retrieved from the Internet: URL<http://www.food.com/recipe/lazy-day-brunch-casserole-crustless-quiche-107697>.
European Search Report for EP1724529 dated Sep. 29, 2006.
European Search Report for EP1744104 dated Oct. 26, 2006.
European Search Report for EP1761111 dated Nov. 3, 2008.
European Search Report for EP1719414 dated Jul. 31, 2006.
European Search Report for EP1724530 dated Sep. 15, 2006.
Related Publications (1)
Number Date Country
20110068093 A1 Mar 2011 US
Divisions (1)
Number Date Country
Parent 11583674 Oct 2006 US
Child 12955005 US