TECHNICAL FIELD
[0001] The present invention relates to a microwave circuit used in a microwave communication
apparatus, a satellite broadcast receiving converter or the like.
BACKGROUND ART
[0002] Recently, there have been remarkable developments in microwave devices used in microwave
communication apparatuses, and it is easy to procure low-noise devices such as HEMT
and MES-FET, so that the noise factor in reception-type low-noise converters, in particular,
is decreasing year after year. However, if the low-noise microwave device itself exhibits
a satisfactory noise factor, the loss and impedance mismatching between the input
section and the microwave device have a significant influence, making it impossible,
in some cases, to obtain a desired noise factor for the low-noise converter as a whole.
[0003] Such a conventional microwave circuit will be described with reference to the drawings.
[0004] Fig. 7 shows a short-circuit section of a conventional cylindrical waveguide, and
Fig. 8 is a sectional view of the same. In Fig. 7, numeral 1 indicates a metal body
including a cylindrical waveguide 5, and numeral 2 indicates a mounting surface for
a short-circuit plate 4. Usually, the short-circuit plate 4 is fixed to the mounting
surface 2 by means of screws or the like to form a short-circuit plane. If the short-circuit
plate 4 is in an ideal short-circuit state, a microwave being propagated through the
cylindrical waveguide 5 makes a total reflection to change the direction of propagation
without involving any loss.
[0005] In the above-described construction, however, an adequate contact cannot be attained,
in particular, at an end of the cylindrical waveguide due to a variation in the surface
precision of the mounting plate 2 and in the flatness of the short-circuit plate 4,
with the result that the short-circuit plate 4 does not function as a perfect short-circuit
plane. Thus, when using the short-circuit plane of a low-noise converter, the input
power cannot be reflected adequately, resulting in deterioration in noise factor and
input VSWR.
[0006] In view of the above problem, it is an object of the present invention to provide
a microwave circuit in which an adequate contact is ensured between a first, external
conductor including a cylindrical microwave transmission path and a second conductor
having a planar configuration, and which exhibits satisfactory characteristics.
DISCLOSURE OF THE INVENTION
[0007] To achieve the above object, the microwave circuit of the present invention comprises:
a first metal body having a concentric-circle-like prominence provided at an end of
a cylindrical microwave transmission path and extending outwardly from a cylindrical
inner wall; and a second metal body having a planar configuration and held in contact
with the first metal body.
[0008] Due to the above construction of the present invention, the first metal body is held
in contact with the second planar metal body solely through a small region corresponding
to the prominence provided on the outside of the cylindrical inner wall thereof, thereby
attaining an adequate electromagnetic contact between the two metal bodies and ensuring
satisfactory characteristics.
BRIEF DESCRIPTION OF THE DRAWINGS
[0009]
Fig. 1 is an exploded perspective view of a short-circuit section of a cylindrical
waveguide according to an embodiment of the present invention;
Fig. 2 is sectional view of the same;
Fig. 3 is an exploded perspective view of a short-circuit section of a cylindrical
waveguide according to another embodiment of the present invention;
Fig. 4 is a sectional view of the same;
Figs. 5 and 6 are sectional views of cylindrical-waveguide/microstrip-line conversion
sections according to second and third embodiments of the present invention;
Fig. 7 is an exploded perspective view of short-circuit section of a conventional
cylindrical waveguide; and
Fig. 8 is a sectional view of the same.
BEST MODE FOR CARRYING OUT THE INVENTION
[0010] A microwave circuit according to an embodiment of the present invention will now
be described with reference to the drawings.
[0011] Fig. 1 shows a short-circuit section of a cylindrical waveguide according to the
present invention; and Fig. 2 shows a sectional view of the same. In Fig. 1, numeral
1 indicates a metal body including a cylindrical waveguide 5, and numeral 2 indicates
a mounting surface for a short-circuit plate 4. If the short-circuit plate 4 is in
an adequate short-circuit state, a microwave propagated through the cylindrical waveguide
5 makes a total reflection to change the direction of propagation without involving
any loss. In this embodiment, the short-circuit plate 4 is brought into contact with
a concentric-circle-like prominence 3 before it is brought into contact with the mounting
surface 2 at the time of mounting, so that the contact of the short-circuit plate
4 with the end surface of the inner-wall section of the cylindrical waveguide 5, which
is important when realizing a short-circuit plane, can be attained in an adequate
manner, thereby ensuring a satisfactory short-circuit characteristic not depending
upon the surface precision of the mounting surface 2. Further, since the short-circuit
plate 4 is brought into contact with the inner wall of the cylindrical waveguide 5
before it is brought into contact with the mounting surface 2, it is possible to realize
a satisfactory short-circuit plate even if a particularly high level of flatness cannot
be ensured for the short-circuit plate 4.
[0012] Another embodiment of the present invention will be described with reference to the
drawings. Fig. 3 shows a short-circuit section of a cylindrical waveguide according
to another embodiment of the present invention, and Fig. 4 shows a sectional view
of the same.
[0013] In Figs. 3 and 4, numeral 1 indicates a metal body including a cylindrical waveguide
5; numeral 2 indicates a mounting surface for a short-circuit plate; and numeral 3
indicates a concentric-circle-like prominence. In this embodiment, the sectional configuration
of the concentric-circle-like prominence 3 is changed so as to facilitate the machining
thereof. Like the previous embodiment, this structure is free from the influence of
the surface precision of the contact surface 2, and through the contact of the short-circuit
plate 4 with the concentric-circle-like prominence 3, it is possible to ensure satisfactory
characteristics for the short-circuit plane of the cylindrical waveguide.
[0014] Further, second and third embodiments of the present invention will be described
with reference to the drawings. Figs. 5 and 6 show a sectional view of cylindrical-waveguide/microstrip-line
conversion sections in other embodiments of the present invention.
[0015] Numeral 10 indicates a metal body including a cylindrical waveguide; numeral 6 indicates
a post member; numeral 7 indicates an MIC substrate having a microstrip line; numeral
8 indicates a metal supporter for forming a hollow coaxial line-together with the
post member 6; and numeral 9 indicates a dielectric supporter forming a dielectric
coaxial line with the post member 6.
[0016] In Figs. 5 and 6, a microwave propagated through the cylindrical waveguide in a direction
perpendicular to the plane of the drawings is converted to a coaxial mode in the section
of the post member 6 and propagated through coaxial lines formed by the components
9 and 8, and mode conversion is further effected in the connecting section between
the MIC substrate 7 and the post member 6 to propagate the microwave through the microstrip
line on the MIC substrate 7.
[0017] If, in the above waveguide/microstrip-line conversion section, the contact between
the metal spacer 8 and the metal body 10 is not adequate, discontinuous portions are
present in external conductors in the coaxial lines formed by the metal spacer 8 and
the dielectric supporter 9, thereby causing a loss and deterioration in VSWR during
microwave propagation. In view of this, a concentric-circle-like prominence 11 is
provided on the side of the metal body 10, in the case of Fig. 5, and on the side
of the metal support 8, in the case of Fig. 6, thereby an adequate contact is attained
in the external conductor sections of the two coaxial lines mentioned above, thus
ensuring satisfactory propagating characteristics.
[0018] Thus, in accordance with the present invention, a concentric-circle-like prominence
is provided on the external conductor forming one coaxial line, and brought into contact
with the external conductor of the other coaxial line, thereby preventing loss and
deterioration in VSWR due to the generation of discontinuous portions in the coaxial
external conductors.
INDUSTRIAL APPLICABILITY
[0019] Thus, in accordance with the present invention, a first metal body having a concentric-circle-like
prominence at an end of a cylindrical microwave transmission path and extending outwardly
from a cylindrical wall is brought into contact with a second metal body having a
planar configuration, whereby any discontinuity in the external conductor sections
in the microwave transmission path is eliminated and satisfactory transmission characteristics
can be obtained, this providing a remarkable advantage.
LIST OF THE COMPONENTS IN THE DRAWINGS
[0020]
- 1, 10
- metal body
- 2
- mounting surface
- 3, 11
- concentric-circle-like prominence
- 4
- short-circuit plate
- 5, 12
- cylindrical waveguide
- 6
- post member
- 7
- MIC substrate
- 8
- metal supporter
- 9
- dielectric supporter