US3705283A - Microwave applicator employing a broadside slot radiator - Google Patents

Microwave applicator employing a broadside slot radiator Download PDF

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US3705283A
US3705283A US172176A US3705283DA US3705283A US 3705283 A US3705283 A US 3705283A US 172176 A US172176 A US 172176A US 3705283D A US3705283D A US 3705283DA US 3705283 A US3705283 A US 3705283A
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slots
waveguide
broadside
treated
radiator
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US172176A
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William H Sayer Jr
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Varian Medical Systems Inc
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Varian Associates Inc
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    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B6/00Heating by electric, magnetic or electromagnetic fields
    • H05B6/64Heating using microwaves
    • H05B6/70Feed lines
    • H05B6/705Feed lines using microwave tuning
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q21/00Antenna arrays or systems
    • H01Q21/0006Particular feeding systems
    • H01Q21/0037Particular feeding systems linear waveguide fed arrays
    • H01Q21/0043Slotted waveguides
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B6/00Heating by electric, magnetic or electromagnetic fields
    • H05B6/64Heating using microwaves
    • H05B6/70Feed lines
    • H05B6/707Feed lines using waveguides
    • H05B6/708Feed lines using waveguides in particular slotted waveguides
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B6/00Heating by electric, magnetic or electromagnetic fields
    • H05B6/64Heating using microwaves
    • H05B6/78Arrangements for continuous movement of material
    • H05B6/788Arrangements for continuous movement of material wherein an elongated material is moved by applying a mechanical tension to it

Definitions

  • the applicator includes a broadside radiator formed by a hollow elongated waveguide having an array of resonant slots communicating through the wall of the waveguide,
  • an array of slot loading members are disposed to project into the waveguide from alternate sides of adjacent slots for-coupling microwave energy from the waveguide radiator through the slots in an in-phase relation to obtain a broadside radiator.
  • the loading members may be separately adjusted for adjusting the energy profile coupled form the antenna to the load.
  • One feature of thepresent invention is the provision of a microwave applicator employing a broadside microwave radiator comprising a section of hollow waveguidehaving an array of resonant slots communicating through the wall thereof and each'of said slots including a slot loading member alternating from one side of the slots to'the other in adjacent slots for controlling the coupling of energy through each of the slots, whereby adjustment of the slot loading members permits control of the energy profile radiated from the antenna and into;the material to be treated.
  • Another feature of the present invention is the same as the preceding feature including the provision of two broadside antenna portions of the aforedescribed type spaced apart in the direction of movement of the material to be treated for sequentially treating the material with the broadside energy lobes emanating from each of the antenna portions and wherein the radiative slots in one antenna are offset with respect to the other such that the center of the slots in one portion of the array are aligned in the direction of material movement with the region between the ends of adjacent slots in the other waveguide portion to obtain uniform treatment of material as conveyed through the two broadside lobes.
  • slot loading members include means for adjusting their positions to adjust the energy profile radiated from the antenna into the material to be-treated.
  • FIG. 1 is a schematic transverse view of a microwave applicator employing features of the present invention
  • FIG. 2 is a sectional view of the structure of FIG. 1 taken along line 2-2 in the direction of the arrows,
  • FIG. 3 is a view of the structure of FIG. 2 taken along line 3-3 in the direction of the arrows,
  • FIG. 4 is an enlarged perspective view, partly broken away, ofa portion of the structure of FIG. 3 delineated by line "4-4,
  • FIG. 5 is .a plot of electric field intensity E- versus length of a broadside slot radiator of the present invention depicting the energy profile immediately adjacent the radiative slots
  • FIG. 6 is aschematic plan view, sirni lar to the view of FIG. 3, depicting an alternative embodiment of the present invention
  • a FIG. 7 is a schematic line diagram depicting the lobe pattern of microwave power radiated from a slot radiator ofthe present invention.
  • the microwave applicator 1 includes a broadside slot radiative antenna 2 which is excited with microwave energy derived" from a microwave generator 3, such as a klystron or mag netron, via a suitable waveguide or other transmission line 4, which is coupled into the radiative antenna 2 via a suitable T-connection or other conventional coupling means.
  • the radiative antenna 2 may be center fed or fed from either end.
  • a sheet of material-5 to be treated is passed through the main radiative lobe of the antenna 2 for treating the material 5 with microwave energy.
  • a sheet of material such as plywood, paper pulp or dielectric sheet material, to be treated is pulled via a suitable conveying means, such as two sets of rollers 6 and 7, through the radiative lobe of the antenna 2.
  • the sheet material 5 may be disposed immediately adjacent the radiative side of the antenna 2 or it may be disposed up to several wavelengths from the antenna 2.
  • Radiative antenna 2 includes a hollow section of waveguide 8 which is preferably a rectangular waveguide but in certain instances may be a cylindrical waveguide.
  • An array of resonant slots 9 are axially aligned along the axis of the waveguide 8 and each slot 9 is dimensioned to be approximately one-half of a free space wavelength long at the operating frequency (see FIG. 4).
  • the slots 9 are spaced on their centers by onehalf a guide wavelength along the axial direction of the waveguide 8;.
  • Slot loading members ll 1 such as conductive screws, posts or the like are disposed on alternate sides of adjacent slots 9 for coupling microwave energy from the waveguide through the slots 9 in an in-phase relation to obtain a broadside antenna radiator 2.
  • Such antenna radiators of this type are disclosed in a text titled, Microwave Antenna Theory and Design edited by Samuel Silver and published by McGraw Hill in 1949, see pages 299-30 I.
  • the slot loading members 11 serve to introduce asymmetry into the conductive currents in the waveguide 8 such that the wave energy is coupled out of successive slots in the desired in-phase relation to obtain a broadside radiative structure.
  • the degree of coupling through each of the respective slots 9 is a function of the amount of perturbation introduced into the waveguide structure by the loading memberll.
  • the loading member being a screw projecting into the waveguide 8 and threaded through a hole in the waveguide, the amount of coupling in a function of the, amount of penetration of the screw 1 1 into the waveguide 8.
  • FIG. 5 there is shown a plot of energy coupled through the slots 9 versus length of broadside array for a measurement taken'immediately adjacent to the slots. It is seen that the energy profile of FIG. has a generally squared sinusoidal shape reaching a maximum at the center of each of the radiative slots 9.
  • the material can be moved further away from the slots 9 in which case the ripples in the energy profile diminish to substantially a uniform pattern at a few wavelengths from the antenna.
  • a plurality of staggered radiators 2 may be employed for superimposing their sinusoidal energy profiles in a'staggered relation such that the null points of one antenna profile are superimposed upon'the maximum pointsof the other antenna profile to obtain a nearly uniform total energy profile applied to the material being treated.
  • a staggered applicator system is shown in FIG. 6 wherein a pair of broadside slot applicators 2 of the type previously described, extend across the sheet of material 5 which is moving in the direction of the arrow.
  • the center of slots 9 of one of the broadside antennas are aligned in the direction of material flow with the web portion between the ends of adjacent slots 9 in the other broadside antenna.
  • the adjustable slot loading members 11 also provide a means for reducing the side lobe power radiated out the end portions of the radiators 2.
  • the side lobe power is generally much lower than the main lobe power as indicated by the length of the power vectors P and P respectively. However, by decreasing the coupling through the slots 9 near the ends of the array 2, the side lobe power can be reduced.
  • loading member 11 such as a threaded screw mating with a threaded hole in the lower wall of the waveguide 8 may be threadably adjusted by means of a dielectric extension 12, such as a low loss ceramic material, affixed to the screw 11 and extending through a hole 13 in the top wall of the guide and being affixed to a gear 14 which mates with a worm shaft 15.
  • the worm shaft is driven from a suitable motor, not shown, for adjusting the degree of penetration of the screw 11 into the waveguide 8 and, thus, the coupling through the corresponding slot 9.
  • Each slot loading member 11 would include extension 12, gear 14 and worm 15.
  • a broadside slot radiator 2 with adjustable slot loading member 1 1 has the advantage over the prior art broadside slot radiators in that it readily permits adjustment of the energy profile coupled into the material being treated and further allows better control over undesired side lobe radiation.
  • the energy profile may be adjusted in use for matching the radiated energy profile to an optimum energy profile required by the material to obtain uniform treating or drying of the material being treated.
  • adjustment of the loading members with corresponding adjustment in the energy profile may be employed to advantage for eliminating wet spots in sheets of material being treated and for preventing overheating of dry spots in such material.
  • the material being treated In the case where the material being treated is disposed a few wavelengths from the broadside antenna 2, the material treated should present a relatively large lossy'mass to the antenna 2. Typical of such an application is' the drying of moisture laden sheet materials passing through a sheet-shaped treatment zone. In such a case, the moisture laden material should preferably have a thickness in excess of one-tenth free space wavelength taken in the direction of power flow from the radiating antenna into the material being treated,
  • microwave radiator means disposed for radiating microwave energy into the material to be treated
  • said microwave radiator means includes a hollow elongated waveguide structure having an array of coupling slots communicating through the wall of said waveguide structure, said slots being disposed in the side of said waveguide structure facing the material to be treated, each of said slots being elongated in a direction parallel to the longitudinal axis of said waveguide structure, said slots being disposed along a line substantially parallel to the longitudinal axis of said waveguide structure, said slots being resonant at approximately the operating frequency of the applicator, said slots being axially spaced apart along said waveguide structure on their centers by approximately one half a guide wavelength within said waveguide structure at the operating frequency of the applicator, slot loading means disposed adjacent said slots and disposed projecting into said waveguide from alternate sides of adjacent slots for coupling microwave energy from said waveguide through said slots in an in-phase relation to obtain a broadside antenna radiator, and means for conveying material to
  • said waveguide structure includes two portions spaced apart in the direction of movement of the material being treated to be sequentially treated by the broadside lobe of microwave energy radiated from each of said spaced portions of said waveguide structure, and wherein the centers of said slots of one of said waveguide portions are aligned in the direction of material movement with the region between the ends of adjacent slots in the other waveguide portion to obtain uniform treatment of the material as conveyed through the two broadside lobes.
  • the apparatus of claim 1 including a material to be treated and conveyed by said conveyor means, said material comprising a moisture laden substance having a thickness in the direction of power flow in the radiated lobe in excess of one-tenth free space wavelength, whereby a relatively lossy load is presented to said radiator.
  • the apparatus of claim 1 including means for adjusting the amount of penetration of said loading members into the interior of said waveguide for adjusting the pattern of radiation coupled through said slots and into the material being treated.
  • said loading members include externally threaded members threadably mating with threaded holesin the wall of said waveguide, whereby the degree of penetration of said members into said waveguide is adjustable for adjusting the pattern of microwave energy radiated from said slots.

Abstract

A microwave applicator for treating material with microwave energy is disclosed. The applicator includes a broadside radiator formed by a hollow elongated waveguide having an array of resonant slots communicating through the wall of the waveguide, such slots being spaced apart on their centers along the axis of the guide by one-half a guide wavelength an array of slot loading members are disposed to project into the waveguide from alternate sides of adjacent slots for coupling microwave energy from the waveguide radiator through the slots in an in-phase relation to obtain a broadside radiator. The loading members may be separately adjusted for adjusting the energy profile coupled form the antenna to the load.

Description

United States Patent. Sayer, Jr. J Y,
[54] MICROWAVE 'APPLICATOR EMPLOYING A BROADSIDE SLOT RADIATOR [72] Inventor: William H. Sayer, Jr., San Mateo,
Calif.
[73] Assignee: Varrian Associates, Palo Alto, Calif.
[22] Filed: Aug. 16, 1971 [21] Appl. No.: 172,176
Related US. Application Data [63] Continuation of Ser. No. 5,442, Jan. 23, 1970, abandoned.
[56] References Cited Q UNITEDSTATES PATENTS I 3,263,052 7/1966 lleppson et al.... ..2l9/10.55
[1s] 3,705,2 83 [451' Dec. 5, 1972 2,636,975 4/1953 Baker et al.-....'..... ..2l9/l0.55
Primary Examiner-J. V. Truhe Assistant Examinerl-lugh D. Jaeger Attorney-Leon F. Herbert [S 7] ABSTRACT A microwave applicator for treating material with microwave energy is disclosed. The applicator includes a broadside radiator formed by a hollow elongated waveguide having an array of resonant slots communicating through the wall of the waveguide,
'such slots being spaced apart on their centers along the axis of the guide by one-half a guide wavelength [521 U.S.Cl ..2'19/1o.ss 51 lnt.Cl. ..H05b 9/06 [58] FieldofSearchn 219/1055.
an array of slot loading members are disposed to project into the waveguide from alternate sides of adjacent slots for-coupling microwave energy from the waveguide radiator through the slots in an in-phase relation to obtain a broadside radiator. The loading members may be separately adjusted for adjusting the energy profile coupled form the antenna to the load.
6 Claims, 7 Drawing Figures PATENTEDHEB 1972 3.705.2 3
.3 I F|G.I I ,1
' INVENTOR.
WILLIAM H. SAYER JR.
MICROWAVE APPLICATOR EMPLOYING A BROADSIDE SLOT RADIATOR RELATED APPLICATIONS DESCRIPTION OF THE PRIOR ART I Heretofore, it has been proposed to employ a broadside antenna for directing microwave energy into material to be treated as carried on a conveyor belt disposed immediately adjacent the array of radiating elements of the antenna. Such a microwave applicator is disclosed in the Journal of Microwave Power, Vol. 2, (l9'67)No. 2, of April, page 32. Use of a broadside radiator for applying microwave energy to large sheets of material is desired because such broadside radiators can be-made relatively large for applying energyto wide sheets of material and the electric field vector is in-phase and uniform fromone end of the antenna to the other to obtain uniform treatment of the material .,being t reated However, the'problemassociated with SUMMARY OF THE PRESENT INVENTION The principal object of the present invention is the provision of an improved microwave applicator for treating materials with microwave energy.
' One feature of thepresent invention is the provision of a microwave applicator employing a broadside microwave radiator comprising a section of hollow waveguidehaving an array of resonant slots communicating through the wall thereof and each'of said slots including a slot loading member alternating from one side of the slots to'the other in adjacent slots for controlling the coupling of energy through each of the slots, whereby adjustment of the slot loading members permits control of the energy profile radiated from the antenna and into;the material to be treated.
Another feature of the present invention is the same as the preceding feature including the provision of two broadside antenna portions of the aforedescribed type spaced apart in the direction of movement of the material to be treated for sequentially treating the material with the broadside energy lobes emanating from each of the antenna portions and wherein the radiative slots in one antenna are offset with respect to the other such that the center of the slots in one portion of the array are aligned in the direction of material movement with the region between the ends of adjacent slots in the other waveguide portion to obtain uniform treatment of material as conveyed through the two broadside lobes.
Another feature of the present invention is the same as any one or more of the preceding features wherein the slot loading members include means for adjusting their positions to adjust the energy profile radiated from the antenna into the material to be-treated.
Otherfeatures and advantages of the present invention will become apparent upon a perusal of the following specification taken in connection with the accompanying drawings wherein:
BRIEF DESCRIPTION OF THE DRAWINGS FIG. 1 is a schematic transverse view of a microwave applicator employing features of the present invention,
FIG. 2 is a sectional view of the structure of FIG. 1 taken along line 2-2 in the direction of the arrows,
FIG. 3 is a view of the structure of FIG. 2 taken along line 3-3 in the direction of the arrows,
FIG. 4 is an enlarged perspective view, partly broken away, ofa portion of the structure of FIG. 3 delineated by line "4-4,
, FIG. 5 is .a plot of electric field intensity E- versus length of a broadside slot radiator of the present invention depicting the energy profile immediately adjacent the radiative slots, I I v FIG. 6 is aschematic plan view, sirni lar to the view of FIG. 3, depicting an alternative embodiment of the present invention, and a FIG. 7 is a schematic line diagram depicting the lobe pattern of microwave power radiated from a slot radiator ofthe present invention.
- DESCRIPTION OF THE PREFERRED EMBODIMENTS Referring now to FIGS., 1-3, there is shown a microwave applicator 1 incorporating features of the present invention. The microwave applicator l includes a broadside slot radiative antenna 2 which is excited with microwave energy derived" from a microwave generator 3, such as a klystron or mag netron, via a suitable waveguide or other transmission line 4, which is coupled into the radiative antenna 2 via a suitable T-connection or other conventional coupling means. The radiative antenna 2 may be center fed or fed from either end. A sheet of material-5 to be treated is passed through the main radiative lobe of the antenna 2 for treating the material 5 with microwave energy. In a typical example, a sheet of material, such as plywood, paper pulp or dielectric sheet material, to be treated is pulled via a suitable conveying means, such as two sets of rollers 6 and 7, through the radiative lobe of the antenna 2. The sheet material 5 may be disposed immediately adjacent the radiative side of the antenna 2 or it may be disposed up to several wavelengths from the antenna 2.
Radiative antenna 2 includes a hollow section of waveguide 8 which is preferably a rectangular waveguide but in certain instances may be a cylindrical waveguide. An array of resonant slots 9 are axially aligned along the axis of the waveguide 8 and each slot 9 is dimensioned to be approximately one-half of a free space wavelength long at the operating frequency (see FIG. 4). The slots 9 are spaced on their centers by onehalf a guide wavelength along the axial direction of the waveguide 8;. Slot loading members ll 1, such as conductive screws, posts or the like are disposed on alternate sides of adjacent slots 9 for coupling microwave energy from the waveguide through the slots 9 in an in-phase relation to obtain a broadside antenna radiator 2. Such antenna radiators of this type are disclosed in a text titled, Microwave Antenna Theory and Design edited by Samuel Silver and published by McGraw Hill in 1949, see pages 299-30 I.
In this type of radiator, the slot loading members 11 serve to introduce asymmetry into the conductive currents in the waveguide 8 such that the wave energy is coupled out of successive slots in the desired in-phase relation to obtain a broadside radiative structure. The degree of coupling through each of the respective slots 9 is a function of the amount of perturbation introduced into the waveguide structure by the loading memberll. In the case of the loading member being a screw projecting into the waveguide 8 and threaded through a hole in the waveguide, the amount of coupling in a function of the, amount of penetration of the screw 1 1 into the waveguide 8. I
Referring now to FIG. 5, there is shown a plot of energy coupled through the slots 9 versus length of broadside array for a measurement taken'immediately adjacent to the slots. It is seen that the energy profile of FIG. has a generally squared sinusoidal shape reaching a maximum at the center of each of the radiative slots 9. When treating sheets of material it may be .desirable to obtain a more uniform application of microwave energy to the material being treated. Accordingly, the material can be moved further away from the slots 9 in which case the ripples in the energy profile diminish to substantially a uniform pattern at a few wavelengths from the antenna.
However, if the material is to be passed immediately adjacent the waveguide radiator 2, where the energy profile of a single radiator 2 is similar to that illustrated in FIG; 5, then a plurality of staggered radiators 2 may be employed for superimposing their sinusoidal energy profiles in a'staggered relation such that the null points of one antenna profile are superimposed upon'the maximum pointsof the other antenna profile to obtain a nearly uniform total energy profile applied to the material being treated. Such a staggered applicator systemis shown in FIG. 6 wherein a pair of broadside slot applicators 2 of the type previously described, extend across the sheet of material 5 which is moving in the direction of the arrow. The center of slots 9 of one of the broadside antennas are aligned in the direction of material flow with the web portion between the ends of adjacent slots 9 in the other broadside antenna.
The adjustable slot loading members 11 also provide a means for reducing the side lobe power radiated out the end portions of the radiators 2. The side lobe power is generally much lower than the main lobe power as indicated by the length of the power vectors P and P respectively. However, by decreasing the coupling through the slots 9 near the ends of the array 2, the side lobe power can be reduced.
In case the material to be treated is passed immediately adjacent the slots 9, it is desirable to adjust the slot loading member 11 from the remote side of the antenna 2. In this case, as seen in FIG. 4, loading member 11, such as a threaded screw mating with a threaded hole in the lower wall of the waveguide 8, may be threadably adjusted by means of a dielectric extension 12, such as a low loss ceramic material, affixed to the screw 11 and extending through a hole 13 in the top wall of the guide and being affixed to a gear 14 which mates with a worm shaft 15. The worm shaft is driven from a suitable motor, not shown, for adjusting the degree of penetration of the screw 11 into the waveguide 8 and, thus, the coupling through the corresponding slot 9. Each slot loading member 11 would include extension 12, gear 14 and worm 15.
Thus, use of a broadside slot radiator 2 with adjustable slot loading member 1 1 has the advantage over the prior art broadside slot radiators in that it readily permits adjustment of the energy profile coupled into the material being treated and further allows better control over undesired side lobe radiation. Moreover, the energy profile may be adjusted in use for matching the radiated energy profile to an optimum energy profile required by the material to obtain uniform treating or drying of the material being treated. In other words, adjustment of the loading members with corresponding adjustment in the energy profile may be employed to advantage for eliminating wet spots in sheets of material being treated and for preventing overheating of dry spots in such material.
In the case where the material being treated is disposed a few wavelengths from the broadside antenna 2, the material treated should present a relatively large lossy'mass to the antenna 2. Typical of such an application is' the drying of moisture laden sheet materials passing through a sheet-shaped treatment zone. In such a case, the moisture laden material should preferably have a thickness in excess of one-tenth free space wavelength taken in the direction of power flow from the radiating antenna into the material being treated,
such that a relatively lossy load is presented to the radiator.
Since many changes could be made in the above construction and many apparently widely different embodiments of this invention could be made without departing from the scope thereof, it is intended that all matter contained in the above description or shown in the accompanying drawings shall be interpreted as illustrative and not in a limiting sense.
What is claimed is:
1. In a microwave energy applicator for treating materials with microwave energy, broadside radiator means disposed for radiating microwave energy into the material to be treated, the improvement wherein, said microwave radiator means includes a hollow elongated waveguide structure having an array of coupling slots communicating through the wall of said waveguide structure, said slots being disposed in the side of said waveguide structure facing the material to be treated, each of said slots being elongated in a direction parallel to the longitudinal axis of said waveguide structure, said slots being disposed along a line substantially parallel to the longitudinal axis of said waveguide structure, said slots being resonant at approximately the operating frequency of the applicator, said slots being axially spaced apart along said waveguide structure on their centers by approximately one half a guide wavelength within said waveguide structure at the operating frequency of the applicator, slot loading means disposed adjacent said slots and disposed projecting into said waveguide from alternate sides of adjacent slots for coupling microwave energy from said waveguide through said slots in an in-phase relation to obtain a broadside antenna radiator, and means for conveying material to be treated through the broadside lobe of microwave energy radiated from said radiator along a path having a substantial component normal to the longitudinal axis of said waveguide structure.
2. The apparatus according to claim 1 wherein said conveying means conveys the material in a direction with a substantial component transverse to the longitudinal axis of said waveguide. 1
3. The apparatus of claim 1 wherein said waveguide structure includes two portions spaced apart in the direction of movement of the material being treated to be sequentially treated by the broadside lobe of microwave energy radiated from each of said spaced portions of said waveguide structure, and wherein the centers of said slots of one of said waveguide portions are aligned in the direction of material movement with the region between the ends of adjacent slots in the other waveguide portion to obtain uniform treatment of the material as conveyed through the two broadside lobes.
4. The apparatus of claim 1 including a material to be treated and conveyed by said conveyor means, said material comprising a moisture laden substance having a thickness in the direction of power flow in the radiated lobe in excess of one-tenth free space wavelength, whereby a relatively lossy load is presented to said radiator.
5. The apparatus of claim 1 including means for adjusting the amount of penetration of said loading members into the interior of said waveguide for adjusting the pattern of radiation coupled through said slots and into the material being treated.
6. The apparatus of claim 1 wherein said loading members include externally threaded members threadably mating with threaded holesin the wall of said waveguide, whereby the degree of penetration of said members into said waveguide is adjustable for adjusting the pattern of microwave energy radiated from said slots.

Claims (6)

1. In a microwave energy applicator for treating materials with microwave energy, broadside radiator means disposed for radiating microwave energy into the material to be treated, the improvement wherein, said microwave radiator means includes a hollow elongated waveguide structure having an array of coupling slots communicating through the wall of said waveguide structure, said slots being disposed in the side of said waveguide structure facing the material to be treated, each of said slots being elongated in a direction parallel to the longitudinal axis of said waveguide structure, said slots being disposed along a line substantially parallel to the longitudinal axis of said waveguide structure, said slots being resonant at approximately the operating frequency of the applicator, said slots being axially spaced apart along said waveguide structure on their centers by approximately one half a guide wavelength within said waveguide structure at the operating frequency of the applicator, slot loading means disposed adjacent said slots and disposed projecting into said waveguide from alternate sides of adjacent slots for coupling microwave energy from said waveguide through said slots in an in-phase relation to obtain a broadside antenna radiator, and means for conveying material to be treated through the broadside lobe of microwave energy radiated from said radiator along a path having a substantial component normal to the longitudinal axis of said waveguide structure.
2. The apparatus according to claim 1 wherein said conveying means conveys the material in a direction with a substantial component transverse to the longitudinal axis of said waveguide.
3. The apparatus of claim 1 wherein said waveguide structure includes two portions spaced apart in the direction of movement of the material being treated to be sequentially treated by the broadside lobe of microwave energy radiated from each of said spaced portions of said waveguide structure, and wherein the centers of said slots of one of said waveguide portions are aligned in the direction of material movement with the region between the ends of adjacent slots in the other waveguide portion to obtain uniform treatment of the material as conveyed through the two broadside lobes.
4. The apparatus of claim 1 including a material to be treated and conveyed by said conveyor means, said material comprising a moisture laden substance having a thickness in the direction of power flow in the radiated lobe in excess of one-tenth free space wavelength, whereby a relatively lossy load is presented to said radiator.
5. The apparatus of claim 1 including means for adjusting the amount of penetration of said loading members into the interior of said waveguide for adjusting the pattern of radiation coupled through said slots and into the material being treated.
6. The apparatus of claim 1 wherein said loading members include externally threaded members threadably mating with threaded holes in the wall of said waveguide, whereby the degree of penetration of said members into said waveguide is adjustable for adjusting the pattern of microwave energy radiated from said slots.
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WO1980002902A1 (en) * 1979-06-11 1980-12-24 Microondes Int Soc Ind Radiation devices providing hyperfrequency circularly polarized waves and their use in the field of microwave application
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US6425663B1 (en) 2000-05-25 2002-07-30 Encad, Inc. Microwave energy ink drying system
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US4476362A (en) * 1975-05-19 1984-10-09 Matsushita Electric Industrial Co., Ltd. High frequency heating apparatus
US4160145A (en) * 1978-02-16 1979-07-03 Armstrong Cork Company Microwave applicator device
US4210793A (en) * 1978-03-06 1980-07-01 Agence Nationale De Valorisation De La Recherche (Anvar) Microwave applicator for radiating microwaves to an elongated zone
US4234775A (en) * 1978-08-17 1980-11-18 Technical Developments, Inc. Microwave drying for continuously moving webs
WO1980002902A1 (en) * 1979-06-11 1980-12-24 Microondes Int Soc Ind Radiation devices providing hyperfrequency circularly polarized waves and their use in the field of microwave application
EP0022282A1 (en) * 1979-06-11 1981-01-14 I.M.I. Industries Micro-Ondes Internationales S.A. Radiating devices producing circularly polarized microwaves and their use in the field of microwave applicators
FR2478930A1 (en) * 1980-03-20 1981-09-25 Technics Lambda Internal Microwave oven for curing continuous rubber hose or sheathing - with slotted wave guides for tuning out differential heating across rubber profile
US4458126A (en) * 1982-03-30 1984-07-03 General Electric Company Microwave oven with dual feed excitation system
EP0667732A1 (en) * 1994-02-15 1995-08-16 International Business Machines Corporation System for applying microwave energy in processing sheet like materials
US5536921A (en) * 1994-02-15 1996-07-16 International Business Machines Corporation System for applying microware energy in processing sheet like materials
US6323470B2 (en) 1998-07-16 2001-11-27 Philip S. Schmidt Method for rapid drying of coated materials with close capture of vapors
US6444964B1 (en) 2000-05-25 2002-09-03 Encad, Inc. Microwave applicator for drying sheet material
US6425663B1 (en) 2000-05-25 2002-07-30 Encad, Inc. Microwave energy ink drying system
US6508550B1 (en) 2000-05-25 2003-01-21 Eastman Kodak Company Microwave energy ink drying method
US7110072B2 (en) 2003-02-12 2006-09-19 3M Innovative Properties Company Compensators for liquid crystal displays
US20040184150A1 (en) * 2003-02-12 2004-09-23 3M Innovative Properties Company Polymeric optical film
US6965474B2 (en) 2003-02-12 2005-11-15 3M Innovative Properties Company Polymeric optical film
US7099083B2 (en) 2003-02-12 2006-08-29 3M Innovative Properties Company Polymeric optical film
US20040156106A1 (en) * 2003-02-12 2004-08-12 Allen Richard C. Polymeric optical film
US7132065B2 (en) 2003-02-12 2006-11-07 3M Innovative Properties Company Process for manufacturing polymeric optical film
US7405784B2 (en) 2003-02-12 2008-07-29 3M Innovative Properties Company Compensators for liquid crystal displays with biaxially stretched single film with crystallization modifier
US7202830B1 (en) 2005-02-09 2007-04-10 Pinyon Technologies, Inc. High gain steerable phased-array antenna
US20070097006A1 (en) * 2005-02-09 2007-05-03 Pinyon Technologies, Inc. High gain steerable phased-array antenna
US20070247385A1 (en) * 2005-02-09 2007-10-25 Pinyon Technologies, Inc. High Gain Steerable Phased-Array Antenna
US7522114B2 (en) 2005-02-09 2009-04-21 Pinyon Technologies, Inc. High gain steerable phased-array antenna
US20090273533A1 (en) * 2008-05-05 2009-11-05 Pinyon Technologies, Inc. High Gain Steerable Phased-Array Antenna with Selectable Characteristics

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