TECHNICAL FIELD
[0001] Embodiments of the present application relate to the technical field of microwave
communications, and in particular to a waveguide interface structure.
BACKGROUND
[0002] In the microwave frequency band, the waveguide has the smallest transmission loss,
and is an irreplaceable transmission line type for improving the sending and receiving
sensitivity of the microwave communication system. When a gap exists in the waveguide
interconnection, the strong radiation loss and interference will occur, and the normal
operation of the system will be affected. In some cases, the waveguide interconnection
solution mostly adopts a single waveguide port and the priority is to ensure the electrical
connection. That is, the end surfaces of the two interconnected waveguide ports are
in close contact. When a small interconnection gap exists in the waveguide interconnection,
a shielding sealing ring is generally provided around the waveguide port to solve
the problem about electromagnetic leakage.
[0003] US2009/058571A1 discloses a waveguide connector. The connector includes a connecting portion having
a plurality of conductive convex portions that are deformable by an external force.
The convex portions are formed with a height and an interval less than ¼ wavelength
of a propagating electrical wave to be propagated inside waveguides.
[0004] EP1104042A2 discloses a waveguide connecting method. A shim is fabricated to have a cylindrical
portion and flange. The cylindrical portion has an outer diameter substantially equal
to an inner diameter of a first waveguide which is to be connected to a second waveguide.
The flange projects from one end of the cylindrical portion outwardly. The other end
of the cylindrical portion of the shim is inserted into the first waveguide. The second
waveguide is urged against the first waveguide, with an end face of the second waveguide
being in contact with the flange of the shim, until the end face of the second waveguide
abuts against an end face of the first waveguide. A waveguide connecting structure
is also disclosed.
[0005] US2018/034124A1 discloses a waveguide gasket arranged for electrically sealing a waveguide interface
between a first contact end and second contact end of the waveguide gasket. The waveguide
gasket comprises a plurality of electrically conducting members that are positioned
along a circumference along which the waveguide gasket extends. Each electrically
conducting member has a first end and a second end compressibly separable by a variable
first height along a first direction. Each first end faces the first contact end and
each second end faces the second side contact end, where each first contact end and
each second contact end are separated by a variable second height along the first
direction, At least one electrically conducting member is arranged to expand only
along said circumference when compressed.
[0006] The above-mentioned solution has at least following problems: requirements for processing
and assembling the waveguide end surfaces are high, and the processing difficulty
of the waveguide structure is relatively great. Moreover, the above-mentioned solution
can only adapt to the situation of small interconnection gaps, and cannot adapt to
the using situation of large gaps with random tolerances.
SUMMARY
[0007] The purpose of the embodiments in the present application is to provide a waveguide
interface structure, which can reduce the processing difficulty of the waveguide structure
and adapt to the using situation of large gaps with random tolerances under the premise
that the signal in the waveguide interconnection channel can be ensured to transmit
normally.
[0008] In order to solve the above technical problems, embodiments of the present application
provide a waveguide interface structure according to the independent claim, for electrically
connecting a first waveguide and a second waveguide. The waveguide interface structure
includes an electrical connection portion with elasticity and a fixing portion connected
to the electrical connection portion. The fixing portion is configured to abut against
the end surface of the first waveguide. An opening for electromagnetic waves to pass
is enclosed by the electrical connection portion. The electrical connection portion
is elastically pressed between an end surface of the first waveguide and an end surface
of the second waveguide, and the electrical connection portion is configured for electrically
connecting the first waveguide and the second waveguide.
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] One or more embodiments are exemplified by pictures in the accompanying drawings,
and these exemplifications are not intended to limit the embodiments. Elements in
the drawings with the same reference numerals denote similar elements. Unless otherwise
stated, and the pictures in the drawings are not limited to scale.
FIG. 1 is a schematic structural view of a waveguide interface structure according
to a first embodiment of the present application.
FIG. 2 is a schematic structural view of the waveguide interface structure applied
to a waveguide according to the first embodiment of the present application.
FIG. 3 is an assembly view of the waveguide interface structure applied to the waveguide
according to the first embodiment of the present application.
FIG. 4 is another schematic structural view of the waveguide interface structure according
to the first embodiment of the present application.
FIG. 5 is another schematic structural view of the waveguide interface structure applied
to the waveguide according to the first embodiment of the present application.
FIG. 6 is another assembly view of the waveguide interface structure applied to the
waveguide according to the first embodiment of the present application.
FIG. 7 is yet another schematic structural view of the waveguide interface structure
according to the first embodiment of the present application.
FIG. 8 is yet another schematic structural view of the waveguide interface structure
applied to the waveguide according to the first embodiment of the present application.
FIG. 9 is yet another assembly view of the waveguide interface structure applied to
the waveguide according to the first embodiment of the present application.
FIG. 10 is a schematic structural view of the waveguide interface structure according
to a second embodiment of the present application.
FIG. 11 is a schematic structural view of the waveguide interface structure applied
to the waveguide according to the second embodiment of the present application.
FIG. 12 is an assembly view of the waveguide interface structure applied to the waveguide
according to the second embodiment of the present application.
[0010] The claims are directed to the second embodiment according to figs. 10-12. The first
embodiment according to figs. 1-9 is not fully encompassed by the wording of the claims
but is considered useful for understanding the invention.
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0011] In order to make the objectives, technical solutions and advantages of the embodiments
of the present application clearer, each embodiment of the present application will
be described in detail below with reference to the accompanying drawings. However,
those of ordinary skill in the art can understand that, in each embodiment of the
present application, many technical details are provided for the reader to better
understand the present application. However, even without these technical details
and various changes and modifications based on the following embodiments, the technical
solutions claimed in the present application can be realized.
[0012] As shown in FIG. 1 to FIG. 9, a first embodiment of the present application relates
to a waveguide interface structure 100, for electrically connecting a first waveguide
10 and a second waveguide 20. The core of this embodiment is that the waveguide interface
structure 100 includes an electrical connection portion 11 with elasticity and a fixing
portion 12 connected to the electrical connection portion 11. An opening 30 for electromagnetic
waves to pass is enclosed by the electrical connection portion 11. The electrical
connection portion 11 is elastically pressed between an end surface of the first waveguide
10 and an end surface of the second waveguide 20, and the electrical connection portion
11 is configured for electrically connecting the first waveguide 10 and the second
waveguide 20. The fixing portion 12 is configured to abut against the end surface
of the first waveguide 10.
[0013] The electrical connection portion 11 has elasticity, and is elastically pressed between
the end surface of the first waveguide 10 and the end surface of the second waveguide
20. Therefore, the electrical connection portion 11 can be elastically deformed according
to the size of the gap between the end surface of the first waveguide 10 and the end
surface of the second waveguide 20. Since the electrical connection portion 11 is
configured for electrically connecting a first waveguide 10 and a second waveguide
20, the gap between the first waveguide 10 and the second waveguide 20 can be absorbed
by the electrical connection portion 11 (that is, an opening 30 for electromagnetic
waves to pass is enclosed by the electrical connection portion 11, the electromagnetic
wave leakage at the gap between the first waveguide 10 and the second waveguide 20
can be avoided, and the gap between the first waveguide 10 and the second waveguide
20 can be compensated). In this way, not only the problem of non-coplanar interconnection
between a plurality of waveguide ports can be solved, but also the electromagnetic
wave leakage can be avoided, and the normal signal transmission in the waveguide interconnection
channel can be ensured. Moreover, the influence of the cumulative tolerance on the
waveguide interconnection is little. Not only the processing accuracy and the assembly
requirements of each end surface on the waveguide are low, but also each waveguide
port channel can be processed independently, which reduces the processing difficulty
of the waveguide structure, and can adapt to the using situation of large gaps with
random tolerances.
[0014] Moreover, in the related art, the connection of the waveguide port is firstly ensured,
then the waterproofing and heat dissipation of the casing is considered, which limits
the architecture solution of the whole system, such as the stacking sequence of the
whole machine structure, the waveguide port number of the whole machine, the position
of the heat sink, the size of the waterproof sealing ring, and the like. In the embodiment
of the present application, the first waveguide 10 is connected to the second waveguide
20 through the above-mentioned waveguide interface structure 100, and the waveguide
interface structure 100 can be elastically deformed according to the size of the gap
between the first waveguide 10 and the second waveguide 20, to absorb waveguide gaps
of different sizes.
In this way, there is no need to ensure the connection of the waveguide port first,
and the heat sink can be designed on the outside of the whole machine and the antenna
feeder to achieve the best heat dissipation effect, thereby effectively reducing the
volume of the whole machine and costs.
In addition, not only the waterproof surface of the whole machine structure can be ensured
to contact firstly, and the sealing reliability of the whole machine can be improved,
but also the mechanical strength of the docking between the whole machine and the
antenna feeder can be improved. Further, the reliability risk of the external field
and the later maintenance cost can be reduced.
[0015] Implementation details of the waveguide interface structure 100 in this embodiment
will be described in detail below, and the following contents are the implementation
details only for the convenience of understanding, and are not necessary for implementing
this solution.
[0016] In practical applications, the electrical connection portion 11 may include an annular
body portion 111 connected to the fixing portion 12 and a plurality of elastic pieces
112 provided on the annular body portion 111 at intervals. The annular body portion
111 is configured to attach to the end surface of the first waveguide 10. The plurality
of elastic pieces 112 are configured to abut against the end surface of the second
waveguide 20, and the plurality of elastic pieces 112 extends along a direction away
from the annular body portion 111 to jointly enclose the opening 30. The opening 30
is provided opposite to a central through hole of the annular body portion 111, to
facilitate the transmission of electromagnetic waves. A plurality of elastic pieces
112 are elastically pressed between the end surfaces of the first waveguide 10 and
the end surface of the second waveguide 20, and electrically connect the first waveguide
10 and the second waveguide 20.
In this way, the large-surface contact is transformed into multi-point contact, thereby
effectively avoiding the problem of poor contact in a large area, and reducing the
processing accuracy and assembly requirements of the elastic pieces 112.
[0017] In order to meet the signal transmission requirements, the size of the opening 30 can
change according to the size of the waveguide interconnection gap and the deformation
of the elastic piece 112, as long as the electrical performance of the opening 30
size always matches with the electrical performance of the waveguide size. The waveguide
interface structure 100 can be applied to application scenarios such as rectangular
waveguides, circular waveguides, ridge waveguides, and the like. The elastic piece
112 can be designed as a broadband, whose operating frequency range is consistent
with that of the waveguide. Different central opening 30s are designed according to
different waveguide types. For rectangular waveguides, the opening 30 can be a rectangular.
For circular waveguides, the opening 30 can be a circular. For ridge waveguides, the
opening 30 can be ridge-shaped.
[0018] The annular body portion 111 can be made of a conductive material, such as metal.
The elastic piece 112 may be made of an elastic conductive material, such as metal.
Of course, the surfaces of the annular body portion 111 and the elastic piece 112
can be made of conductive materials, while the inner materials of the annular body
portion 111 and the elastic piece 112 can be insulating materials (such as plastic),
as long as the first waveguide 10 can be electrically connected to the second waveguide
20 through the annular body portion 111 and the elastic piece 112.
[0019] In practical applications, the elastic piece 112 can be folded into shape after stamping
or etching. The planar metal sheet can be bent into a cylindrical shape firstly, and
then be weld into the cylindrical isolation portion 114.
In order to reduce the processing difficulty, the elastic piece 112 and the cylindrical
isolation portion 114 can be processed separately, and then welded together.
In the waveguide interface structure 100 of this embodiment, the material cost is low,
and the waveguide interface structure 100 is easy to process and can be mass-produced
through molds. Compared with the conductive rubber ring, the waveguide interface structure
100 of this embodiment has advantages in cost.
[0020] In this embodiment, each elastic piece 112 may include a first extension portion 112a
connected to the annular body portion 111, and a second extension portion 112b bending
and extending from the first extension portion 112a. The second extension portion
112b is configured to abut against the end surface of the second waveguide 20. The
second extension portion 112b bends and extends from the first extension portion 112a,
to make the junction between the first extension portion 112a and the second extension
portion 112b more likely to be elastically deformed, so that the junction can better
adapt to gaps of different sizes between the first waveguide 10 and the second waveguide
20.
[0021] The first extension portion 112a can be provided on an inner edge 111a of the annular
body portion 111. Or the first extension portion 112a can be provided on an outer
edge 111b of the annular body portion 111. Or a part of the first extension portion
112a can be provided on the inner edge 111a of the annular body portion 111, and another
part of the first extension portion 112a can be provided on the outer edge 111b of
the annular body portion 111. Of course, the first extension portion 112a may not
be provided at the edge of the annular body portion 111, but between the inner edge
and the outer edge, which is not limited herein.
[0022] For each elastic piece 112, an obtuse angle, an acute angle or a right angle can
be set between the second extension portion 112b and the first extension portion 112a
(that is, the angle between the second extension portion 112b and the first extension
portion 112a can be an obtuse angle, an acute angle or a right angle). The junction
between the second extension portion 112b and the first extension portion 112a is
configured to abut against the end surface of the second waveguide 20. Or an end of
the second extension portion 112b away from the first extension portion 112a is configured
to abut against the end surface of the second waveguide 20.
[0023] All the elastic pieces 112 can be set in a same way. For example, an obtuse angle,
an acute angle or a right angle can be set between each second extension portion 112b
and the corresponding first extension portion 112a. Or elastic pieces 112 set in various
ways can be assembled, and each elastic piece 112 can be set in any of the above-mentioned
ways. For example, an obtuse angle can be set between a part of the second extension
portion 112b and the corresponding first extension portion 112a, and an acute angle
can be set between another part of the second extension portion 112b and the corresponding
first extension portion 112a.
[0024] For the convenience of understanding, two examples are illustrated in the following.
[0025] As shown in FIG. 1, FIG. 2 and FIG. 3, the first extension portion 112a is provided
on the inner edge 111a of the annular body portion 111, and an obtuse angle can be
set between the second extension portion 112b and the first extension portion 112a.
The junction between the second extension portion 112b and the first extension portion
112a is configured to abut against the end surface of the first waveguide 10, and
an end of the second extension portion 112b away from the first extension portion
112a is configured to abut against the end surface of the second waveguide 20.
[0026] As shown in FIG. 4, FIG. 5 and FIG. 6, a part of the first extension portion 112a
is provided on the inner edge 111a of the annular body portion 111, and another part
of the first extension portion 112a is provided on the outer edge 111b of the annular
body portion 111. Moreover, an acute angle can be set between the second extension
portion 112b and the first extension portion 112a. The junction between the second
extension portion 112b and the first extension portion 112a is configured to abut
against the end surface of the first waveguide 10, and an end of the second extension
portion 112b away from the first extension portion 112a is configured to abut against
the end surface of the second waveguide 20.
[0027] As shown in FIG. 7, FIG. 8, and FIG. 9, the first extension portion 112a are provided
on the inner edge 111a of the annular body portion 111. An obtuse angle can be set
between a part of the second extension portion 112b and the corresponding first extension
portion 112a, and an acute angle can be set between another part of the second extension
portion 112b and the corresponding first extension portion 112a. The junction between
the second extension portion 112b and the first extension portion 112a is configured
to abut against the end surface of the first waveguide 10, and an end of the second
extension portion 112b away from the first extension portion 112a is configured to
abut against the end surface of the second waveguide 20.
[0028] In order to ensure the reliable contact and the electrical performance within the tolerance
range, the finger width, the finger spacing, the finger length and the shape of the
elastic piece 112 are designed through simulation. The finger width needs to consider
the elastic force and deformation of the material (the smaller the finger width, the
better the elasticity), to ensure good contact at all times under different gap sizes.
The finger spacing meets the cutoff waveguide theory and is reasonably designed according
to the anti-leakage target. The tolerance absorption capacity (adaptability to the
gap size of the waveguides) and the electrical performance are determined by the finger
length and the shape.
[0029] If the above-mentioned waveguide interface structure 100 is suitable for transmitting
a waveguide of the electromagnetic waves with a first wavelength (the opening 30 is
configured for electromagnetic waves with a first wavelength to pass). That is, the
first waveguide 10 and the second waveguide 20 are configured for transmitting electromagnetic
waves with a first wavelength, and the length of the contact surface between the elastic
piece 112 and the waveguide is determined by the finger width.
In order to ensure reliable electrical contact, along a distribution direction of the
elastic pieces 112, a width w of the elastic piece 112 (namely the finger width) may
be less than 0.2 times of the first wavelength. According to the anti-leakage target
and the cutoff waveguide theory, along the distribution direction of the elastic pieces
112, a spacing v between adjacent elastic pieces 112 (namely the finger spacing) may
be less than 0.05 times of the first wavelength.
In order to ensure sufficient elasticity, the thickness of the elastic piece 112 is
generally less than 0.2 mm.
[0030] In practical applications, installation holes 13 can be provided on the fixing portion
12, and screws can be inserted into the installation holes 13 and fixed on one end
of the waveguide (that is, the first waveguide 10), thereby realizing the installation
of the waveguide interface structure 100.
[0031] For the waveguide interface structure 100 in this embodiment, the gap absorption
capacity can be 0 to 2 mm. That is, when the distance between the end surface of the
first waveguide 10 and the end surface of the second waveguide 20 is within 2 mm,
the waveguide interface structure 100 can realize a good electrical connection and
the effect of preventing electromagnetic wave leakage.
[0032] A second embodiment of the present application relates to a waveguide interface structure
200. As shown in FIG. 10, FIG. 11 and FIG. 12, the second embodiment is substantially
the same as the first embodiment, and the main difference is that: in the first embodiment,
the electrical connection portion 11 includes an annular body portion 111 connected
to the fixing portion 12 and a plurality of elastic pieces 112 provided on the annular
body portion 111 at intervals. The annular body portion 111 is configured to attach
to the end surface of the first waveguide 10, and the plurality of elastic pieces
112 extends along a direction away from the annular body portion 111 to jointly enclose
the opening 30. The plurality of elastic pieces 112 are configured to abut against
the end surface of the second waveguide 20. However, in the second embodiment of the
present application, the electrical connection portion 11 includes a plurality of
elastic pieces 113 provided on the fixing portion 12 at intervals and a cylindrical
isolation portion 114 connected to the plurality of elastic pieces 113. The elastic
piece 113 is configured to abut against the end surface of the second waveguide 20,
and the opening 30 is enclosed by the cylindrical isolation portion 114.
In addition, the cylindrical isolation portion 114 is configured to contact an inner
wall of the first waveguide 10. The technical effect of this embodiment is similar
to that of the first embodiment, which will not be repeated herein.
[0033] That is, in the first embodiment, the annular body portion 111 and the plurality
of elastic pieces 113 are configured to respectively abut against the end surface
of the first waveguide 10 and the end surface of the second waveguide 20, to realize
the elastic connection and electrical connection between the first waveguide 10 and
the second waveguide 20.
In the second embodiment, the fixing portion 12 and a plurality of elastic pieces 113
are configured to respectively abut against the end surface of the first waveguide
10 and the end surface of the second waveguide 20, to realize the elastic connection
between the first waveguide 10 and the second waveguide 20. Moreover, the cylindrical
isolation portion 114 is connected to a plurality of elastic pieces 113 and configured
to contact an inner wall of the first waveguide 10, to realize the electrical connection
between the first waveguide 10 and the second waveguide 20.
[0034] The implementation details of the waveguide interface structure 200 of this embodiment
will be described detailedly below, and the following contents are the implementation
details only for the convenience of understanding, and are not necessary for implementing
this solution.
[0035] The cylindrical isolation portion 114 may include a cylindrical wall 114a connected
to the plurality of the elastic pieces 113 and a plurality of abutting portions 114b
connected to the cylindrical wall 114a. The free end of the abutting portion 114b
is configured to abut against the inner wall of the first waveguide 10. That is, two
opposite end edges (edges at both ends) are provided on the cylindrical isolation
portion 114 along the axial direction of the cylindrical isolation portion 114. The
elastic piece 113 is connected to one end edge (the top edge), and the abutting portion
114b is connected to the other end edge (the bottom edge). The large-surface contact
is transformed into multi-point contact, which effectively avoids the problem of poor
contact in a large area, and reduces the processing accuracy and assembly requirements
of the abutting portion 114b.
[0036] In this embodiment, the abutting portion 114b extends from an end edge or an outer wall
surface of the cylinder wall towards a direction away from an inner space of the cylinder
wall.
In this way, when the first waveguide 10 is connected to the second waveguide 20 through
the waveguide interface structure 200, the cylinder wall extends into the waveguide
port of the first waveguide 10, the abutting portion 114b abuts against the inner
wall of the first waveguide 10, the elastic piece 113 abuts against the end surface
of the second waveguide 20, and the elastic piece 113 is connected to the abutting
portion 114b through the cylinder wall, thereby realizing the electrical connection
between the first waveguide 10 and the second waveguide 20. Moreover, when the size
of the interconnection gap between the first waveguide 10 and the second waveguide
20 changes, the abutting portion 114b slides on the inner wall of the first waveguide
10, keeping the abutting portion 114b in contact with the inner wall of the first
waveguide 10.
In addition, the electromagnetic wave in the electromagnetic wave transmission channel
is isolated by the cylinder wall and the abutting portion 114b, thereby avoiding the
problem of electromagnetic wave leakage.
[0037] In this embodiment, each elastic piece 113 includes a first extension portion 113a connected
to the fixing portion 12, a second extension portion 113b bending and extending from
the first extension portion 113a, and a third extension portion 113c bending and extending
from the second extension portion 113b. The third extension portion 113c is connected
to the cylindrical isolation portion 114, and the third extension portion 113c is
configured to abut against the end surface of the second waveguide 20. The third extension
portion 113c is connected to an end edge (the top edge) of the cylindrical wall 114a,
and the abutting portion 114b is connected to the other end edge (the bottom edge)
of the cylindrical wall 114a. Since the second extension portion 113b bends and extends
from the first extension portion 113a, the junction between the first extension portion
113a and the second extension portion 113b is more likely to be elastically deformed,
thereby better adapting to different sizes of gaps between the first waveguide 10
and the second waveguide 20.
[0038] It can be understood that the elastic piece 113 can have other elastic structures,
such as a spring, as long as the elastic pieces 113 can be elastically pressed between
the end surface of the first waveguide 10 and the end surface of the second waveguide
20, which is not limited herein.
[0039] The material, the manufacturing method and the size of the abutting portion 114b
are similar to those of the elastic piece 112 in the first embodiment. For example,
the abutting portion 114b can be made of a metal material, which can be bent and welded
after stamping or etching (the cylinder wall and the abutting portion 114b are molded
together), or the abutting portion 114b is welded to the cylinder wall by a welding
process. If the opening 30 is configured for the electromagnetic wave with the first
wavelength to pass, in order to ensure a reliable electrical contact, along a distribution
direction of the abutting portion 114b, a width w of the abutting portion 114b (namely
the finger width) may be less than 0.2 times of the first wavelength. According to
the anti-leakage target and the cutoff waveguide theory, along a distribution direction
of the abutting portion 114b, a spacing v between adjacent abutting portions 114b
(namely the finger spacing) may be less than 0.05 times of the first wavelength, and
the setting of other dimensions will not be repeated herein.
[0040] In practical applications, the third extension portion 113c and the cylindrical isolation
portion 114 (specifically, the cylindrical wall 114a and the abutting portion 114b)
may be made of conductive materials, such as metal. In this way, an electrical connection
between the first waveguide 10 and the second waveguide 20 can be realized through
the third extension portion 113c, the cylinder wall and the abutting portion 114b.
Of course, the surfaces of the third extension portion 113c, the cylinder wall and
the abutting portion 114b can be made of conductive materials, while the inner materials
of the third extension portion 113c, the cylinder wall and the abutting portion 114b
can be insulating materials (such as plastic), as long as the electrical connection
can be realized.
[0041] In the waveguide interface structure 200 provided in this embodiment, the gap absorption
capacity is greater than 2 mm. That is, when the distance between the end surface
of the first waveguide 10 and the end surface of the second waveguide 20 is more than
2 mm, the waveguide interface structure 200 can achieve a good electrical connection
and the effect of preventing electromagnetic wave leakage.
[0042] Since the first embodiment corresponds to this embodiment, this embodiment can be
implemented in cooperation with the first embodiment. The relevant technical details
mentioned in the first embodiment are still valid in this embodiment, and the technical
effects that can be achieved in the first embodiment can further be realized in this
embodiment. In order to reduce repetition, details are not repeated herein. Correspondingly,
the relevant technical details mentioned in this embodiment can further be applied
in the first embodiment.
[0043] Those of ordinary skill in the art can understand that the above-mentioned embodiments
are specific embodiments for realizing the present application. However, in practical
application, various changes in form and details may be made therein without departing
from the scope of the present application.
1. Wellenleiter-Schnittstellenstruktur (200) zum elektrischen Verbinden eines ersten
Wellenleiters (10) und eines zweiten Wellenleiters (20), umfassend:
einen elastischen, elektrischen Verbindungsabschnitt (11), wobei eine Öffnung (30)
für den Durchgang elektromagnetischer Wellen von dem elektrischen Verbindungsabschnitt
(11) umschlossen ist, der elektrische Verbindungsabschnitt (11) dazu ausgebildet ist,
elastisch zwischen einer Endfläche des ersten Wellenleiters (10) und einer Endfläche
des zweiten Wellenleiters (20) eingepresst zu werden, und der elektrische Verbindungsabschnitt
(11) zur elektrischen Verbindung des ersten Wellenleiters (10) und des zweiten Wellenleiters
(20) ausgebildet ist; und
einen Befestigungsabschnitt (12), der mit dem elektrischen Verbindungsabschnitt (11)
verbunden ist, wobei der Befestigungsabschnitt (12) dazu ausgebildet ist, an der Endfläche
des ersten Wellenleiters (10) anzuliegen,
der elektrische Verbindungsabschnitt (11) Folgendes umfasst:
eine Vielzahl von elastischen Elementen (113), die in Abständen an dem Befestigungsabschnitt
(12) vorgesehen sind, wobei die Vielzahl von elastischen Elementen (113) dazu ausgebildet
ist, an der Endfläche des zweiten Wellenleiters (20) anzuliegen; und
einen zylindrischen Isolierabschnitt (114), der mit der Vielzahl von elastischen Elementen
(113) verbunden ist, wobei die Öffnung (30) von dem zylindrischen Isolierabschnitt
(114) umschlossen ist, wobei der zylindrische Isolierabschnitt (114) dazu ausgebildet
ist, mit einer Innenwand des ersten Wellenleiters (10) in Kontakt zu stehen, und Folgendes
umfasst:
eine zylindrische Wand (114a), die mit der Vielzahl von elastischen Elementen (113)
verbunden ist;
dadurch gekennzeichnet, dass der zylindrische Isolierabschnitt (114) ferner Folgendes umfasst:
eine Vielzahl von Anlegeabschnitten (114b), die mit der zylindrischen Wand (114a)
verbunden sind, wobei die Vielzahl von Anlegeabschnitten (114b) dazu ausgebildet ist,
an der Innenwand des ersten Wellenleiters (10) anzuliegen.
2. Wellenleiter-Schnittstellenstruktur (100) nach Anspruch 1, wobei sich der Anlegeabschnitt
(114b) von einer Endkante oder einer Außenwandfläche der zylindrischen Wand (114a)
in eine Richtung weg vom Innenraum der zylindrischen Wand (114a) erstreckt.
3. Wellenleiter-Schnittstellenstruktur (100) nach Anspruch 1, wobei:
die Öffnung (30) für den Durchgang elektromagnetischer Wellen mit einer ersten Wellenlänge
ausgebildet ist;
entlang einer Verteilungsrichtung der elastischen Elemente (113) die Breite des Anlegeabschnitts
(114b) weniger als das 0,2-Fache der ersten Wellenlänge beträgt; und/oder der Abstand
zwischen benachbarten Anlegeabschnitten (114b) weniger als das 0,05-Fache der ersten
Wellenlänge beträgt.
4. Wellenleiter-Schnittstellenstruktur (100) nach Anspruch 1, wobei jedes elastische
Element (113) Folgendes umfasst:
einen ersten Erstreckungsabschnitt (113a), der mit dem Befestigungsabschnitt (12)
verbunden ist;
einen zweiten Erstreckungsabschnitt (113b), der vom ersten Erstreckungsabschnitt (113a)
abknickt und sich von diesem erstreckt; und
einen dritten Erstreckungsabschnitt (113c), der vom zweiten Erstreckungsabschnitt
(113b) abknickt und sich von diesem erstreckt, wobei der dritte Erstreckungsabschnitt
(113c) mit dem zylindrischen Isolierabschnitt (114) verbunden ist und der dritte Erstreckungsabschnitt
(113c) dazu ausgebildet ist, an der Endfläche des zweiten Wellenleiters (20) anzuliegen.
5. Wellenleiter-Schnittstellenstruktur (100) nach Anspruch 4, wobei sowohl der dritte
Erstreckungsabschnitt (113c) als auch der zylindrische Isolierabschnitt (114) aus
leitfähigen Materialien besteht.
1. Structure d'interface de guide d'ondes (200), pour connecter électriquement un premier
guide d'ondes (10) et un deuxième guide d'ondes (20), comprenant :
une partie de connexion électrique (11) présentant une élasticité, une ouverture (30)
permettant à des ondes électromagnétiques de passer étant entourée par la partie de
connexion électrique (11), la partie de connexion électrique (11) étant configurée
pour être pressée de manière élastique entre une surface d'extrémité du premier guide
d'ondes (10) et une surface d'extrémité du deuxième guide d'ondes (20), et la partie
de connexion électrique (11) étant configurée pour connecter électriquement le premier
guide d'ondes (10) et le deuxième guide d'ondes (20) ; et
une partie de fixation (12) reliée à la partie de connexion électrique (11), la partie
de fixation (12) étant configurée pour s'appuyer contre la surface d'extrémité du
premier guide d'ondes (10),
dans laquelle la partie de connexion électrique (11) comprend :
une pluralité de pièces élastiques (113) prévues sur la partie de fixation (12) à
intervalles, les pièces élastiques (113) étant configurées pour s'appuyer contre la
surface d'extrémité du deuxième guide d'ondes (20) ; et
une partie d'isolation cylindrique (114) reliée à la pluralité de pièces élastiques
(113), l'ouverture (30) étant entourée par la partie d'isolation cylindrique (114),
la partie d'isolation cylindrique (114) étant configurée pour entrer en contact avec
une paroi interne du premier guide d'ondes (10) et comprenant :
une paroi cylindrique (114a) reliée à la pluralité de pièces élastiques (113) ;
caractérisée en ce que la partie d'isolation cylindrique (114) comprend en outre :
une pluralité de parties d'appui (114b) reliées à la paroi cylindrique (114a), la
pluralité de parties d'appui (114b) étant configurées pour s'appuyer contre la paroi
interne du premier guide d'ondes (10).
2. Structure d'interface de guide d'ondes (100) selon la revendication 1, dans laquelle
la partie d'appui (114b) s'étend à partir d'un bord d'extrémité ou d'une surface de
paroi externe de la paroi cylindrique (114a) en une direction s'éloignant d'un espace
interne de la paroi cylindrique (114a).
3. Structure d'interface de guide d'ondes (100) selon la revendication 1, dans laquelle
:
l'ouverture (30) est configurée pour permettre à des ondes électromagnétiques présentant
une première longueur d'onde de passer ;
dans une direction de répartition des pièces élastiques (113), une largeur de la partie
d'appui (114b) est inférieure à 0,2 fois la première longueur d'onde ; et/ou
un espacement entre les parties d'appui (114b) adjacentes est inférieur à 0,05 fois
la première longueur d'onde.
4. Structure d'interface de guide d'ondes (100) selon la revendication 1, dans laquelle
chaque pièce élastique (113) comprend :
une première partie d'extension (113a) reliée à la partie de fixation (12) ;
une deuxième partie d'extension (113b) se pliant et s'étendant à partir de la première
partie d'extension (113a) ; et
une troisième partie d'extension (113c) se pliant et s'étendant à partir de la deuxième
partie d'extension (113b), la troisième partie d'extension (113c) étant reliée à la
partie d'isolation cylindrique (114), et la troisième partie d'extension (113c) étant
configurée pour s'appuyer contre la surface d'extrémité du deuxième guide d'ondes
(20).
5. Structure d'interface de guide d'ondes (100) selon la revendication 4, dans laquelle
la troisième partie d'extension (113c) et la partie d'isolation cylindrique (114)
sont toutes deux réalisées de matériaux conducteurs.