The present invention relates to a microwave feeding system for a microwave oven or for an oven with microwave heating function according to the preamble of claim 1. Further, the present invention relates to a microwave oven or an oven with microwave heating functions.
Current microwave feeding systems provide a power efficiency of not more than about 55%, since a substantial amount of the power delivered by a magnetron is lost by reflecting phenomenon and by heating of the outside body of said magnetron.
U.S. Pat. No. 5,204,503 discloses a microwave oven, wherein the microwave feeding system comprises a magnetron, a rectangular waveguide and a cylindrical cavity. A rotatable antenna and an inner cavity are arranged inside the cylindrical cavity. The waveguide extends horizontally. The cylindrical cavity is arranged beneath said waveguide.
FR 2 410 414 A1 discloses a microwave oven, wherein the microwave feeding system comprises a magnetron, a rectangular waveguide and a cylindrical cavity. A rotatable antenna is arranged inside the cylindrical cavity. The waveguide extends horizontally. The rotatable antenna is arranged above said waveguide.
It is an object of the present invention to provide a microwave feeding system for a microwave oven, which optimizes the power transfer from the magnetron to the oven cavity.
The object is achieved by the microwave feeding system according to claim 1.
According to the present invention the magnetron, the rectangular waveguide and the cylindrical cavity are connected in straight series, wherein the microwave feeding system provides elliptically polarized TEM electromagnetic waves for the oven cavity, and wherein the omnidirectional antenna acts as a continuous phase shifter, and wherein an inner diameter of the cylindrical cavity is between 0.75 and three multiples of the wavelength of the microwaves guided within said cylindrical cavity.
The core of the present invention is the cylindrical cavity, the inner cavity and the shaft arranged coaxially to each other on the one hand and the arrangement of the magnetron, the rectangular waveguide and the cylindrical cavity in straight series on the other hand. The microwave feeding system increases the energy transfer to the oven cavity by the elliptically polarized electromagnetic waves. The uniformity and density of the power of the electromagnetic field in the oven cavity and in the load of said oven cavity is significantly improved. The efficiency of the real power absorbed by the load in relation to the microwave power delivered by the magnetron is more than 80%. The efficiency of the real power absorbed by the load in relation to the main power supply is about 60%. Thus, the power consumption is reduced.
Preferably, a Chebyshev waveguide transformer is interconnected between the rectangular waveguide and the cylindrical cavity.
In particular, the omnidirectional antenna is a quadrupole antenna and includes four blades.
For example, the blades of the omnidirectional antenna extend within one plane.
Further, the plane of the blades of the omnidirectional antenna may extend parallel to a longitudinal axis of the rectangular waveguide.
Moreover, the plane of the blades of the omnidirectional antenna may extend perpendicular to a the rotation axis of said omnidirectional antenna.
Preferably, the omnidirectional antenna and the shaft are formed as a single-piece part.
For example, the omnidirectional antenna and/or the shaft are made of metal, in particular made of stainless steel or aluminmium.
Preferably, an inner diameter of the cylindrical cavity is between 1.5 and two multiples of the wavelength of the microwaves guided within said cylindrical cavity.
Further, the rotation axis of the omnidirectional antenna may correspond with the symmetry axis of the cylindrical cavity. Thus, the omnidirectional antenna is in the centre of the cylindrical cavity. This results in symmetry of the output stage of the microwave feeding system.
In particular, the inner cavity is formed as a cylinder barrel, wherein preferably an inner diameter of the inner cavity is between 1.1 and five multiples, in particular between two and four multiples, of the diameter of the shaft enclosed by said inner cavity. In this case, the inner cavity has the same shape as the cylindrical cavity. This contributes to the symmetry of the output stage of the microwave feeding system.
Moreover, the microwave feeding system may comprise at least one choke filter arranged between the antenna motor and the cylindrical cavity.
Furthermore, the microwave feeding system may comprise at least one cover plate made of dielectric material and arranged or arrangeable between the cylindrical cavity and the oven cavity. The cover plate made of dielectric material protects the inner space of the cylindrical cavity on the one hand and lets pass the electromagnetic waves from the cylindrical cavity to the oven cavity.
Preferably, the rectangular waveguide, the Chebyshev waveguide transformer, the cylindrical cavity, the inner cavity and/or the choke filter are made of metal, in particular made of stainless steel and/or aluminium.
Further, the present invention relates to a microwave oven or an oven with microwave heating functions, wherein the microwave oven or the oven with microwave heating function, respectively, comprises at least one microwave feeding system mentioned above.
In particular, the microwave feeding system is arranged inside a wall of an oven cavity, preferably inside a top wall of said oven cavity.
Novel and inventive features of the present invention are set forth in the appended claims.
The present invention will be described in further detail with reference to the drawings, in which
The microwave feeding system 10 comprises a magnetron 12, a rectangular waveguide 14, a Chebyshev waveguide transformer 16 and a cylindrical cavity 18. The magnetron 12 is connected to the rectangular waveguide 14, wherein a magnetron antenna penetrates into the rectangular waveguide 14. The Chebyshev waveguide transformer 16 is connected to the rectangular waveguide 14 and arranged opposite to the magnetron 12. The cylindrical cavity 18 is connected to the Chebyshev waveguide transformer 16. Thus, the magnetron 12, the rectangular waveguide 14, the Chebyshev waveguide transformer 16 and the cylindrical cavity 18 are connected in series. The rectangular waveguide 14, the Chebyshev waveguide transformer 16 and the cylindrical cavity 18 are made of metal, for example stainless steel or aluminium.
A rotational omnidirectional antenna 22 is arranged inside the cylindrical cavity 18. The rotation axis of the omnidirectional antenna 22 corresponds with the symmetry axis of the cylindrical cavity 18. Since the microwave feeding system 10 is arranged inside a top wall of an oven cavity 20, the rotation axis of the omnidirectional antenna 22 is vertical. In this example, the omnidirectional antenna 22 is a quadrupole antenna and includes four blades. The omnidirectional antenna 22 is driven by an antenna motor 24. In this example, the antenna motor 24 is arranged above the cylindrical cavity 18. A shaft 30 is interconnected between the antenna motor 24 and omnidirectional antenna 22. The shaft 30 is made of a conductive material. For example, the shaft 30 and the omnidirectional antenna 22 are formed as a single-piece part. Preferably, the shaft 30 and the omnidirectional antenna 22 are made of metal, for example stainless steel or aluminium.
An inner cavity 26 is arranged inside the cylindrical cavity 18. The inner cavity 26 is arranged coaxial to the cylindrical cavity 18. Preferably, the inner cavity 26 is formed as a cylinder barrel. The inner cavity 26 encloses the shaft 30. The inner cavity 26 and the shaft 30 are arranged coaxially to each other. The inner cavity 26 is made of metal, for example stainless steel or aluminium. Preferably, the inner diameter of the inner cavity 26 is between 1.1 and five multiples of the diameter of the shaft 30 enclosed by said inner cavity 26. In particular, the inner diameter of the inner cavity 26 may be between two and four multiples of the diameter of the shaft 30 enclosed by said inner cavity 26.
Further, a cover plate 28 is arranged between the cylindrical cavity 18 and the oven cavity 20. Said cover plate 28 is made of a dielectric material. In particular, the cover plate 28 protects the omnidirectional antenna 22 and the inner cavity 26.
Moreover, a choke filter 32 is arranged between the antenna motor 24 and the cylindrical cavity 18. Said choke filter 32 has a cylindrical shape and is arranged coaxially to the cylindrical cavity 18. The choke filter 32 avoids that microwave energy escapes through the antenna motor 24.
The magnetron 12 is connected to the rectangular waveguide 14. The Chebyshev waveguide transformer 16 is connected to the rectangular waveguide 14 and arranged opposite to the magnetron 12. In turn, the cylindrical cavity 18 is connected to the Chebyshev waveguide transformer 16. The magnetron 12, the rectangular waveguide 14, the Chebyshev waveguide transformer 16 and the cylindrical cavity 18 are connected in series. In this example, the omnidirectional antenna 22 includes four blades. The inner cavity 26 is arranged coaxially to the cylindrical cavity 18.
The microwave feeding system 10 of the present invention provides elliptically polarized TEM electromagnetic waves for the oven cavity 20. The omnidirectional antenna 22 acts as a continuous phase shifter.
The inner cavity 26 acts additionally as a microwave choke filter, which avoids that microwave energy escapes to the antenna motor 24. Further, the inner cavity 26 provides an attenuation of more than 90% for the main working frequency. Usually, the main working frequency of the magnetron 12 is 2.45 GHz.
The microwave feeding system 10 of the present invention increases the energy transfer to the oven cavity 20 by the elliptically polarized electromagnetic waves. The electric field vector extends parallel to the bottom wall of the oven cavity 20. The uniformity and density of the power of the electromagnetic field in the oven cavity 20 and in the load of said oven cavity 20 is significantly improved. The efficiency of the real power absorbed by the load in relation to the microwave power delivered by the magnetron 12 is more than 80%. The efficiency of the real power absorbed by the load in relation to the main power supply is about 60%. Thus, the power consumption is reduced. The distribution of the microwave field in the oven cavity 20 is improved.
The microwave feeding system 10 of the prior art comprises the magnetron 12, the rectangular waveguide 14, the Chebyshev waveguide transformer 16 and the cylindrical cavity 18. The magnetron 12 is connected to the rectangular waveguide 14. The Chebyshev waveguide transformer 16 is connected to the rectangular waveguide 14 and arranged opposite to the magnetron 12. The cylindrical cavity 18 is connected to the Chebyshev waveguide transformer 16. Thus, the magnetron 12, the rectangular waveguide 14, the Chebyshev waveguide transformer 16 and the cylindrical cavity 18 are connected in series. The rectangular waveguide 14, the Chebyshev waveguide transformer 16 and the cylindrical cavity 18 are made of metal, for example stainless steel or aluminium.
A wave stirrer 34 is arranged inside the cylindrical cavity 18. The rotation axis of the wave stirrer 34 corresponds with the symmetry axis of the cylindrical cavity 18. The wave stirrer 34 is connected to the motor 24 via a stirrer shaft 36. Said stirrer shaft 36 is made of dielectric material.
Although an illustrative embodiment of the present invention has been described herein with reference to the accompanying drawings, it is to be understood that the present invention is not limited to that precise embodiment, and that various other changes and modifications may be affected therein by one skilled in the art without departing from the scope or spirit of the invention. All such changes and modifications are intended to be included within the scope of the invention as defined by the appended claims.
Number | Date | Country | Kind |
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16177601.8 | Jul 2016 | EP | regional |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2017/065215 | 6/21/2017 | WO | 00 |