Waveguide comprising first and second dielectric parts, where the first dielectric part comprises two or more separate dielectric parts
10777868 ยท 2020-09-15
Assignee
Inventors
- Hyeon Min Bae (Daejeon, KR)
- Ha Il Song (Daejeon, KR)
- Joon Yeong Lee (Daejeon, KR)
- Tae Hoon Yoon (Daejeon, KR)
- Hyo Sup Won (Daejeon, KR)
Cpc classification
H01P3/16
ELECTRICITY
H01P3/10
ELECTRICITY
H01Q9/0407
ELECTRICITY
International classification
H01P3/16
ELECTRICITY
H01P3/10
ELECTRICITY
Abstract
The present invention relates to a waveguide for transmission of electromagnetic wave signals. According to one aspect of the invention, there is provided a waveguide for transmission of electromagnetic wave signals, comprising: a dielectric part comprising two or more dielectrics having different permittivity; and a conductor part surrounding at least a part of the dielectric part.
Claims
1. A waveguide for transmission of electromagnetic wave signals, comprising: a dielectric part comprising two or more dielectrics having different permittivity; and a conductor part surrounding at least a part of the dielectric part, wherein the two or more dielectrics comprise a first dielectric and a second dielectric, and the second dielectric surrounds at least a part of the first dielectric, and wherein the first dielectric consists of two or more partial dielectrics separated from each other, and the second dielectric surrounds at least a part of the two or more partial dielectrics.
2. The waveguide of claim 1, wherein a change in a group delay, which occurs according to a frequency change in a signal transmission channel of a signal transmitted through the waveguide, does not exceed a predetermined level.
3. The waveguide of claim 1, wherein central axes of the first dielectric, the second dielectric, and the conductor part coincide with each other.
4. The waveguide of claim 1, further comprising: a support disposed between the first dielectric and the conductor part to maintain a space in which the second dielectric is located between the first dielectric and the conductor part.
5. The waveguide of claim 1, wherein a signal transmitted through the waveguide is guided along a boundary between the first dielectric and the second dielectric, along a boundary between the first dielectric and the conductor part, or along a boundary between the second dielectric and the conductor part.
6. The waveguide of claim 1, wherein one of the first dielectric and the second dielectric consists of air.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(15) In the following detailed description of the present invention, references are made to the accompanying drawings that show, by way of illustration, specific embodiments in which the invention may be practiced. These embodiments are described in sufficient detail to enable those skilled in the art to practice the invention. It is to be understood that the various embodiments of the invention, although different from each other, are not necessarily mutually exclusive. For example, specific shapes, structures and characteristics described herein may be implemented as modified from one embodiment to another without departing from the spirit and scope of the invention. Furthermore, it shall be understood that the locations or arrangements of individual elements within each of the disclosed embodiments may also be modified without departing from the spirit and scope of the invention. Therefore, the following detailed description is not to be taken in a limiting sense, and the scope of the invention, if properly described, is limited only by the appended claims together with all equivalents thereof. In the drawings, like reference numerals refer to the same or similar functions throughout the several views.
(16) Hereinafter, preferred embodiments of the present invention will be described in detail with reference to the accompanying drawings to enable those skilled in the art to easily implement the invention.
(17) Configuration of a chip-to-chip interface apparatus
(18) Referring to
(19) According to one embodiment of the invention, a signal generated from the first chip may be propagated along a feeding line and a probe of the first microstrip circuit 200a, and may be transmitted to the second chip through the waveguide 100 as it is transited at an impedance discontinuity surface between the first microstrip circuit 200a and the waveguide 100.
(20) Further, according to one embodiment of the invention, a signal transmitted through the waveguide 100 may be transmitted to the second chip through the second microstrip circuit 200b as it is transited at an impedance discontinuity surface between the waveguide 100 and the second microstrip circuit 200b.
(21) Configuration of the waveguide Hereinafter, the internal configuration of the waveguide 100 crucial for implementing the present invention and the functions of the respective components thereof will be discussed.
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(23) Referring to
(24) When signals are transmitted using the waveguide according to prior art, there may arise problems that a great change or variation in a group delay is caused by a non-linear phase response, and that a great signal loss is caused by the length or bending of the waveguide in an actual communication environment.
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(26) Referring to
(27) Specifically, according to one embodiment of the invention, the two or more dielectrics included in the dielectric part may comprise a first dielectric 110 and a second dielectric 120, and the second dielectric 120 may be formed to surround at least a part of the first dielectric 110. For example, the second dielectric 120 may surround all or a part of the first dielectric 110.
(28) More specifically, according to one embodiment of the invention, the first dielectric 110 may be in the form or a circular core, and the second dielectric 120 and the conductor part 130 may be in the form of an annular cladding, as seen from a cross-section cut along a direction perpendicular to the length of the waveguide 100, as shown in
(29) However, it is noted that the internal configuration or shape of the waveguide 100 according to the invention is not necessarily limited to those mentioned above, and may be changed without limitation as long as the objects of the invention can be achieved.
(30) Meanwhile, according to one embodiment of the invention, the conductor part 130 may consist of a material having electrical conductivity. For example, the conductor part 130 according to one embodiment of the invention may consist of a metallic material such as copper (Cu) which is traditionally in wide use, or may consist of a non-metallic material such as graphene.
(31)
(32) Referring to
(33) Referring to
(34) Meanwhile, according to one embodiment of the invention, the permittivity of the first dielectric 110 may be greater or less than that of the second dielectric 120. More specifically, according to one embodiment of the invention, the first dielectric 110 and the second dielectric 120 having different permittivity may be used to drastically reduce the degree of change in a group delay occurring according to a frequency change in a signal transmission channel via the waveguide 100. In particular, in the embodiment of
(35) For example, the first dielectric 110 may consist of Teflon having a dielectric constant of about 2.0, and the second dielectric 120 may consist of polyethylene having a dielectric constant of about 1.2. Further, as another example, the first dielectric 110 may consist of air having a dielectric constant of about 1.0, and the second dielectric 120 may consist of Teflon having a dielectric constant of about 2.0. Conversely, the first dielectric 110 may consist of Teflon and the second dielectric 120 may consist of air.
(36) Therefore, according to one embodiment of the invention, a signal transmitted through the waveguide 100 (i.e., an electromagnetic wave) may be guided along a boundary between the first dielectric 110 and the second dielectric 120 having different permittivity, or along a boundary between the first dielectric 110 or the second dielectric 120 and the conductor part 130.
(37) Although not shown in the drawings, according to one embodiment of the invention, two or more waveguides 100 (i.e., the two or more waveguides 100 each comprising the first dielectric 110, the second dielectric 120, and the conductor part 130) may be coupled in a predetermined arrangement to form a bundle, and the two or more waveguides 100 included in the bundle may function to transmit signals through different signal transmission channels, respectively.
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(39) First, referring to
(40) Referring to
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(42) Referring to
(43) Therefore, by means of the waveguide 100 according to one embodiment of the invention, single side band transmission is enabled so that the bandwidth of the signal transmission channel may be efficiently used, and the carrier frequency may be lowered so that the chip-to-chip interface (and further, the signal transceiver) including the waveguide 100 may be reliably operated and the low-power design of the chip-to-chip interface is enabled.
(44) On the contrary, when the waveguide according to prior art without the second dielectric 120 is employed (see FIGS. and 4A), considerably non-linear phase responses are generated in the vicinity of the lower corner frequency, and thus it is unavoidable that the transmission signal is heavily distorted if the carrier frequency is lowered to the lower corner frequency.
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(47) Specifically, referring to
(48) More specifically, in the waveguide comprising only the first and second dielectrics without the conductor part according to prior art, a signal may be guided by total reflection made at a boundary between the first and second dielectrics. If the waveguide is severely bent to such an extent that the total reflection does not occur, the signal may not be properly guided in the waveguide and may escape from the waveguide, resulting in a signal loss. On the contrary, in the waveguide comprising all of the first dielectric, the second dielectric, and the conductor part according to the invention, even if the waveguide is severely bent to such an extent that total reflection is not made at the boundary between the first and second dielectrics, a signal that is not totally reflected at the boundary between the first and second dielectrics and escapes outward may be guided along a boundary between the second dielectric and the conductor part, thereby preventing the signal from leaking out of the waveguide and reducing the signal loss. Further, since the wavelength of the signal is longer as the frequency thereof is lower, the difference in performance between the waveguides according to prior art and according to the invention (i.e., capability to prevent a signal loss due to bending of the waveguide) may be more notable as the frequency of the transmitted signal is lower.
(49) Therefore, according to the waveguide according to one embodiment of the invention, it is possible to reduce losses in a signal transmission channel in an actual communication environment where the waveguide is lengthened or bent.
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(51) In the embodiment of
(52) In this case, referring to
(53) Referring further to
(54) Therefore, according to one embodiment of the invention, the conductor parts included in the two adjacent waveguides 711, 721 may bring about a remarkable effect of preventing the signal interference between the two adjacent waveguides 711, 721, as can be seen from the embodiments of
(55) Although it has been mainly described above that the dielectric part included in the waveguide according to the invention is composed of two dielectrics having different permittivity (i.e., the first dielectric 110 and the second dielectric 120), it is noted that the configuration of the dielectric part of the waveguide according to the invention is not necessarily limited to the above description, and may be changed without limitation as long as the objects or effects of the invention can be achieved. For example, the dielectric part of the waveguide according to another embodiment of the invention may comprise three or more dielectrics having different permittivity.
(56) Although details or parameters for the components included in the waveguide according to the invention have been described above in detail, it is noted that the configuration of the microstrip circuit according to the invention is not necessarily limited to those mentioned above, and may be changed without limitation as long as the objects or effects of the invention can be achieved.
(57) Although the present invention has been described in terms of specific items such as detailed elements as well as the limited embodiments and the drawings, they are only provided to help more general understanding of the invention, and the present invention is not limited to the above embodiments. It will be appreciated by those skilled in the art to which the present invention pertains that various modifications and changes may be made from the above description.
(58) Therefore, the spirit of the present invention shall not be limited to the above-described embodiments, and the entire scope of the appended claims and their equivalents will fall within the scope and spirit of the invention.