Claims
- 1. An oven for heating an essentially liquid medium flowing through the oven, having an inlet into a channel located in said oven for the medium to be heated, in which channel there is arranged a separate pipe through which the medium to be heated flows and in which it is heated by means of electromagnetic radiation, wherein along the channel several heating units are arranged, each heating unit comprises an electromagnetic radiator containing a waveguide which guides the radiation to the channel through which the medium flows and which couples the radiation into that channel, wherein the heating units are substantially decoupled from one another by means of a decoupling diaphragm which is provided in the channel and which is arranged between two adjacent heating units or radiators essentially at right angles to the direction of flow, the pipe through which the medium flows passes through a passage in the decoupling diaphragm, the diaphragm thus also constituting a support for said pipe.
- 2. An oven according to claim 1, wherein the waveguides of said electromagnetic radiator are so arranged along the channel that said waveguides couple the radiation into the channel transversely to the direction of flow of the medium to be heated.
- 3. An oven according to claim 1, wherein the radiators comprise a magnetron and a hollow guide connected thereto as a waveguide which opens into the channel, guides the radiation generated by the magnetron to the channel and couples it into the channel.
- 4. An oven according to claim 1, wherein the pipe consists of a material that is loss-free or low loss for a selected operational wavelength of radiation.
- 5. An oven according to claim 1, wherein the diaphragm is designed to lead in the form of a funnel towards its passage for the pipe, the generatrix of the funnel in the longitudinal direction viewed in the plane of longitudinal section complying with an exponential function having a negative exponent.
- 6. An oven according to claim 5, wherein the exponential function with which the generatrix of the funnel of the diaphragm in the longitudinal direction complies is described by
- a(z)=a.sub.1 .times.exp-(3.13.times.10.sup.-.phi. .times.k.times.z.times.(1-f.sub.c /f).sup.2)
- wherein z denotes the coordinate on the longitudinal axis (L), a(z) denotes the distance of the respective point of the generatrix of the funnel from the longitudinal axis, a.sub.1 denotes the distance from the longitudinal axis (L) at the beginning of the funnel, k denotes the wave number, .phi. is the attenuation in dB of the return component of the wave compared with the forward component, f.sub.c denotes the minimum possible frequency, that is the lower limiting frequency, and f denotes the actual frequency of the wave.
- 7. An oven according to claim 1, wherein the waveguides of adjacent radiators are so arranged along the channel that said waveguides open into the channel each offset at the circumference of the channel by an angle (.alpha.).
- 8. An oven according to claim 7 wherein the angle (.alpha.) is approximately 90.degree..
- 9. An oven according to claim 1, wherein the medium to be heated is repeatedly passed through the oven and exposed to the electromagnetic radiation.
- 10. An oven according to claim 9, wherein a forward pipe and a return pipe are provided in the channel, the medium to be heated flowing first through the forward pipe and then through the return pipe, and the longitudinal axes of the two pipes being arranged at a distance from the longitudinal axis of the channel that is so selected that the electrical field component of the radiation has a maximum on the longitudinal axis of the two pipes.
- 11. An oven according to claim 1, wherein the oven is of modular design and each individual module comprises an electromagnetic radiator having a waveguide which opens into a channel portion bounded at each end by closing walls and thus defining a resonance chamber into which the electromagnetic radiation is coupled and through which there is guided by means of passages in the closing walls the pipe through which the medium to be heated is guided.
- 12. An oven according to claim 11, wherein the channel portion is in the form of a hollow cylinder and has an internal diameter d.sub.i that is so selected that it is approximately
- d.sub.i =n.times..lambda..sub.g /1.236,
- n denoting positive integer and .lambda..sub.g the wavelength of the radiation in the waveguide, and wherein furthermore the channel portion has a length (l) that is smaller than half the wavelength and is selected approximately in the region of
- l.apprxeq.d.sub.i /2,
- it being possible for said length (l) to vary by a constant which depends on the frequency of the radiation and on the medium flowing through the pipe, and the selection of the length (l) of the channel portion is such that the electrical field component of the radiation has a minimum at the passage through the closing wall.
- 13. An oven according to claim 10, wherein the distance (b) between the longitudinal axes of the forward pipe and the return pipe is approximately
- b.apprxeq.d.sub.i /2
- for pipe diameters (d.sub.r) in the range d.sub.i /4.ltoreq.d.sub.r <d.sub.i /2, and the distance (b) between the longitudinal axes of the forward pipe and the return pipe is
- b.apprxeq.d.sub.i /2+c.times.d.sub.r
- for pipe diameters d.sub.r in the range d.sub.r <d.sub.i /4, the factor c lying in the range 0.5.ltoreq.c.ltoreq.1.2.
- 14. An oven according to claim 1, wherein the medium to be heated is guided through the oven along a helical line.
- 15. An oven according to claim 1, wherein there is provided in the waveguide a displaceable tuning screw which can be so displaced that it represents an open circuit for the radiation going towards the channel and a short circuit for the radiation returning from the channel.
- 16. A plant for the manufacture of solid castings from an essentially liquid reactive medium as casting material which, on reaching its gelation temperature, reacts to form a solid material, with a supply tank for providing the medium, in which the temperature of the casting material lies substantially below the gelation temperature of the casting material, and with a feeding means for feeding the casting material into a casting mold which has been heated to a temperature that lies above the gelation temperature of the casting material, wherein an oven according to claim 20 is connected directly upstream of the casting mold.
- 17. A plant according to claim 16, wherein there is provided between the supply tank and the oven a separate pressure vessel from which the casting material is taken and fed through the oven to the casting mold.
- 18. A plant according to claim 17, wherein the pressure vessel is arranged on scales which, when an adjustable amount of casting material has been taken from the pressure vessel, sends a signal to a control means which, on the basis of that signal, increases the pressure under which the casting material is conveyed from the pressure vessel to the casting mold.
- 19. An oven for heating a reactive casting material flowing through the oven, having an inlet into a channel located in said oven for the medium to be heated, in which channel there is arranged a separate pipe through which the medium to be heated flows and in which it is heated by means of electromagnetic radiation, wherein along the channel several heating units are arranged, each heating unit comprises an electromagnetic radiator containing a waveguide which guides the radiation to the channel through which the medium flows and which couples the radiation into that channel, wherein the heating units are substantially decoupled from one another by means of a decoupling diaphragm which is provided in the channel and which is arranged between two adjacent heating units or radiators essentially at right angles to the direction of flow, the pipe through which the medium flows passes through a passage in the decoupling diaphragm, the diaphragm thus also constituting a support for said pipe.
- 20. An oven according to claim 19, wherein the waveguides of said electromagnetic radiator are so arranged along the channel that said waveguides couple the radiation into the channel transversely to the direction of flow of the medium to be heated.
- 21. An oven according to claim 19, wherein the radiators comprise a magnetron and a hollow guide connected thereto as a waveguide which opens into the channel, guides the radiation generated by the magnetron to the channel and couples it into the channel.
- 22. An oven according to claim 19, wherein the pipe consists of a material that is loss-free or low loss for a selected operational wavelength of radiation.
- 23. An oven according to claim 19, wherein the diaphragm is designed to lead in the form of a funnel towards its passage for the pipe, the generatrix of the funnel in the longitudinal direction viewed in the plane of longitudinal section complying with an exponential function having a negative exponent.
- 24. An oven according to claim 23, wherein the exponential function with which the generatrix of the funnel of the diaphragm in the longitudinal direction complies is described by
- a(z)=a.sub.1 .times.exp-(3.13.times.10.sup.-.phi. .times.k.times.z.times.(1-f.sub.c /f).sup.2)
- wherein z denotes the coordinate on the longitudinal axis (L), a(z) denotes the distance of the respective point of the generatrix of the funnel from the longitudinal axis, a.sub.1 denotes the distance from the longitudinal axis (L) at the beginning of the funnel, k denotes the wave number, .phi. is the attenuation in dB of the return component of the wave compared with the forward component, f.sub.c denotes the minimum possible frequency, that is the lower limiting frequency, and f denotes the actual frequency of the wave.
- 25. An oven according to claim 19, wherein the waveguides of adjacent radiators are so arranged along the channel that said waveguides open into the channel each offset at the circumference of the channel by an angle (.alpha.).
- 26. An oven according to claim 25 wherein the angle (.alpha.) is approximately 90.degree..
- 27. An oven according to claim 19, wherein the medium to be heated is repeatedly passed through the oven and exposed to the electromagnetic radiation.
- 28. An oven according to claim 27, wherein a forward pipe and a return pipe are provided in the channel, the medium to be heated flowing first through the forward pipe and then through the return pipe, and the longitudinal axes of the two pipes being arranged at a distance from the longitudinal axis of the channel that is so selected that the electrical field component of the radiation has a maximum on the longitudinal axis of the two pipes.
- 29. An oven according to claim 19, wherein the oven is of modular design and each individual module comprises an electromagnetic radiator having a waveguide which opens into a channel portion bounded at each end by closing walls and thus defining a resonance chamber into which the electromagnetic radiation is coupled and through which there is guided by means of passages in the closing walls the pipe through which the medium to be heated is guided.
- 30. An oven according to claim 29, wherein the channel portion is in the form of a hollow cylinder and has an internal diameter d.sub.i that is so selected that it is approximately
- d.sub.i =n.times..lambda..sub.g /1.236,
- n denoting positive integer and .lambda..sub.g the wavelength of the radiation in the waveguide, and wherein furthermore the channel portion has a length (l) that is smaller than half the wavelength and is selected approximately in the region of
- l.apprxeq.d.sub.i /2,
- it being possible for said length (l) to vary by a constant which depends on the frequency of the radiation and on the medium flowing through the pipe, and the selection of the length (l) of the channel portion is such that the electrical field component of the radiation has a minimum at the passage through the closing wall.
- 31. An oven according to claim 28, wherein the distance (b) between the longitudinal axes of the forward pipe and the return pipe is approximately
- b.apprxeq.d.sub.i /2
- for pipe diameters (d.sub.r) in the range d.sub.i /4.ltoreq.d.sub.r <d.sub.i /2, and the distance (b) between the longitudinal axes of the forward pipe and the return pipe is
- b.apprxeq.d.sub.i /2+c.times.d.sub.r
- for pipe diameters d.sub.r in the range d.sub.r <d.sub.i /4, the factor c lying in the range 0.5.ltoreq.c.ltoreq.1.2.
- 32. An oven according to claim 19, wherein the medium to be heated is guided through the oven along a helical line.
- 33. An oven according to claim 19, wherein there is provided in the waveguide a displaceable tuning screw which can be so displaced that it represents an open circuit for the radiation going towards the channel and a short circuit for the radiation returning from the channel.
Priority Claims (2)
Number |
Date |
Country |
Kind |
93810331 |
May 1993 |
EPX |
|
89/94 |
Jan 1994 |
CHX |
|
Parent Case Info
This is a division of prior 371 application of PCT/EP94/01275, as amended under PCT Article 34 on Jan. 26, 1995 and Mar. 31, 1995 and assigned Ser. No. 08/545,746, now U.S. Pat. No. 5,703,343, and having a 35 U.S.C. 371 date of Jan. 30, 1996.
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Divisions (1)
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Number |
Date |
Country |
Parent |
545746 |
Jan 1996 |
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