TRANSMISSION CABLE
20220334306 · 2022-10-20
Assignee
Inventors
Cpc classification
G02B6/02214
PHYSICS
G02B6/4277
PHYSICS
International classification
Abstract
A transmission cable is provided to implement high-speed inter-device interconnection and intercommunication. The transmission cable includes a positive dispersion transmission section, a negative dispersion transmission section, and a dispersion matching section. A cross-sectional diameter of the positive dispersion transmission section is less than a cross-sectional diameter of the negative dispersion transmission section. The dispersion matching section is configured to connect the positive dispersion transmission section and the negative dispersion transmission section. The transmission cable can implement dispersion cancellation to reduce total group delay.
Claims
1. A transmission cable, comprising a positive dispersion transmission section, a negative dispersion transmission section, and a dispersion matching section, wherein: a dispersion coefficient of the positive dispersion transmission section is a positive value, a dispersion coefficient of the negative dispersion transmission section is a negative value, a cross-sectional diameter of the positive dispersion transmission section is less than a cross-sectional diameter of the negative dispersion transmission section, and the dispersion matching section is configured to connect the positive dispersion transmission section and the negative dispersion transmission section.
2. The transmission cable according to claim 1, wherein the cross-sectional diameter D.sub.p of the positive dispersion transmission section and the cross-sectional diameter D.sub.n of the negative dispersion transmission section meet the following relationship:
3. The transmission cable according to claim 1, wherein the dispersion coefficient C.sub.p of the positive dispersion transmission section and the dispersion coefficient C.sub.n of the negative dispersion transmission section have a same value and opposite symbols.
4. The transmission cable according to claim 1, wherein the dispersion matching section comprises a positive-to-negative dispersion matching section and a negative-to-positive dispersion matching section, the positive-to-negative dispersion matching section being configured to connect the positive dispersion transmission section and the negative dispersion transmission section, and the other end of the negative dispersion transmission section is connected to the negative-to-positive dispersion matching section or the other end of the positive dispersion transmission section is connected to the negative-to-positive dispersion matching section.
5. The transmission cable according to claim 1, wherein the transmission cable comprises a plurality of periodic structures, each periodic structure comprising a positive dispersion transmission section, a negative dispersion transmission section, a positive-to-negative dispersion matching section, and a negative-to-positive dispersion matching section.
6. The transmission cable according to claim 1, wherein all of a length of the positive dispersion transmission section, a length of the negative dispersion transmission section, and a length of the dispersion matching section are not less than
7. The transmission cable according to claim 6, wherein the length of each of the positive dispersion transmission section, the negative dispersion transmission section, and the dispersion matching section is an integer multiple of
8. The transmission cable according to claim 1, wherein the transmission cable further comprises a shielding cladding, the shielding cladding wraps the positive dispersion transmission section, the negative dispersion transmission section, and the dispersion matching section to shield external electromagnetic interference.
9. The transmission cable according to claim 8, wherein the shielding cladding is a dielectric foam shielding cladding, a relative dielectric constant of the dielectric foam shielding cladding being less than the relative dielectric constant el of the transmission cable.
10. The transmission cable according to claim 8, wherein the shielding cladding is a metal shielding cladding, conductivity of the metal shielding cladding being not less than 1×10.sup.7 seconds/meter (s/m).
11. The transmission cable according to claim 4, wherein the dispersion coefficient C.sub.p and a length L.sub.p of the positive dispersion transmission section, the dispersion coefficient C.sub.n and a length L.sub.n of the negative dispersion transmission section, a dispersion coefficient C.sub.1 and a length L.sub.1 of the positive-to-negative dispersion matching section, and a dispersion coefficient C.sub.2 and a length L.sub.2 of the negative-to-positive dispersion matching section meet the following relationship:
12. The transmission cable according to claim 1, wherein the dispersion coefficient C.sub.p and the length L.sub.p of the positive dispersion transmission section and the dispersion coefficient C.sub.n and the length L.sub.n of the negative dispersion transmission section meet the following relationships:
L.sub.p=L.sub.n and C.sub.p+C.sub.n=0.
13. The transmission cable according to claim 1, wherein a diameter of a joint face between the dispersion matching section and the positive dispersion transmission section is substantially the same as the cross-sectional diameter of the positive dispersion transmission section, a diameter of a joint face between the dispersion matching section and the negative dispersion transmission section being substantially the same as the cross-sectional diameter of the negative dispersion transmission section, and a cross-sectional diameter of the dispersion matching section is provided with one of a gradient transition or a step transition.
14. The transmission cable according to claim 1, wherein the positive dispersion transmission section, the negative dispersion transmission section, and the dispersion matching section are made of a same material, and the material comprises any one of polytetrafluorethylene, polypropylene, polyethylene, high-density polyethylene (HDPE), or polystyrene.
15. A transmission cable system, comprising: a radio frequency chip; an electromagnetic coupling structure; a baseband signal processing chip electrically connected to the radio frequency chip and to the electromagnetic coupling structure; and a transmission cable, the transmission cable comprising: a positive dispersion transmission section, a negative dispersion transmission section, and a dispersion matching section, a dispersion coefficient of the positive dispersion transmission section is a positive value, a dispersion coefficient of the negative dispersion transmission section is a negative value, a cross-sectional diameter of the positive dispersion transmission section is less than a cross-sectional diameter of the negative dispersion transmission section, and the dispersion matching section is configured to connect the positive dispersion transmission section and the negative dispersion transmission section; wherein the electromagnetic coupling structure is connected to the transmission cable.
16. The transmission cable system according to claim 15, wherein the transmission cable system further comprises a packaging structure configured to package the radio frequency chip, the baseband signal processing chip, and the electromagnetic coupling structure.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
[0063] Before embodiments of this application are described in detail, application scenarios of embodiments of this application are described first.
[0064] As traffic of a network data center increases at a high speed, a requirement for an inter-device transmission rate becomes increasingly high. In particular, in a data center network, a large quantity of high-speed cables need to be interconnected between racks of the data center and between servers inside each rack, as shown in
[0065] This disclosure provides a transmission cable. As shown in
[0066] A specific connection manner is shown in
[0067] It should be understood that a sorting manner of the four sections remains unchanged, and only a start section may be different. That is, the periodic structure may alternatively have another division manner. For example, the negative dispersion transmission section is used as a start, and the periodic structure includes the negative dispersion transmission section, the negative-to-positive dispersion matching section, the positive dispersion transmission section, and the positive-to-negative dispersion matching section that are successively connected. Alternatively, the negative-to-positive dispersion matching section is used as a start, and the periodic structure includes the negative-to-positive dispersion matching section, the positive dispersion transmission section, the positive-to-negative dispersion matching section, and the negative dispersion transmission section that are successively connected. Alternatively, the positive-to-negative dispersion matching section is used as a start, and the periodic structure includes the positive-to-negative dispersion matching section, the negative dispersion transmission section, the negative-to-positive dispersion matching section, and the positive dispersion transmission section that are successively connected. Any one of the foregoing division manners falls within the protection scope of this application.
[0068] In addition, the transmission cable falls within the protection scope of this application, provided that the transmission cable includes at least one periodic structure 200 disclosed in this application, and it is not required that the transmission cable includes only the periodic structure 200. For example, a positive dispersion transmission section is used as a start, and the transmission cable includes 100 periodic structures 200 shown in
[0069] In this embodiment, transmission sections that respectively have a positive dispersion characteristic and a negative dispersion characteristic and have different cross-sectional sizes are periodically spaced, and the two transmission sections corresponding to the two cross-sectional sizes are separately connected through a matching section, thereby implementing a beneficial effect of partial or complete cancellation between positive dispersion and negative dispersion in an operating band. Under a premise of ensuring an excellent transmission characteristic, the total group delay quantity is greatly reduced, and an impact of dispersion on a signal is greatly reduced.
[0070] In this embodiment, a length of each section in the four-section structure included in the periodic structure 200 is not less than c/f.sub.c√{square root over (ε.sub.1)}, that is, not less than a waveguide wavelength, where ε.sub.1 is a relative dielectric constant of a material used in the periodic structure 200, c is a speed of light in a vacuum, and fc is a lowest operating frequency in an operating band, that is, fc is a minimum operating frequency at which a fundamental mode of a signal can be transmitted in the transmission cable, and a signal whose frequency is lower than fc cannot be transmitted. The length of each of the four sections in the periodic structure meets the foregoing requirement, so that a low reflectivity can be implemented, and a transmission loss of the signal in the transmission cable is reduced.
[0071] Further, the length of each section in the four-section structure may be an integer multiple of the waveguide wavelength, or certainly, a length of any one or more sections may be an integer multiple of the waveguide wavelength. Further, both the length of the positive dispersion transmission section and the length of the negative dispersion transmission section may be n times the waveguide wavelength, and n is a positive integer. That is, the two transmission sections have a same multiple. In addition, both the length of the positive-to-negative dispersion matching section and the length of the negative-to-positive dispersion matching section may be m times the waveguide wavelength, and m is a positive integer. That is, the two matching sections have a same multiple. Usually, if a length is an integer multiple of the waveguide wavelength, a reflection parameter of a cable is smaller, and a design is simpler.
[0072] In this embodiment, the cross-sectional diameter D.sub.p of the positive dispersion transmission section 201 and the cross-sectional diameter D.sub.n of the negative dispersion transmission section 202 meet the following relationship:
[0073] In this case, a signal whose frequency is not less than f.sub.c can be transmitted in the transmission cable disclosed in this application, and interaction between positive dispersion and negative dispersion of the signal in the transmission cable can be implemented, so that dispersion and a total group delay quantity of the signal in the transmission cable are reduced.
[0074] Because a total group delay quantity is equal to a product of a dispersion coefficient and a length, a total group delay quantity of the positive dispersion transmission section is equal to a product of the dispersion coefficient C.sub.p and the length L.sub.p of the positive dispersion transmission section, a total group delay quantity of the negative dispersion transmission section is equal to a product of the dispersion coefficient C.sub.n and the length L.sub.n of the negative dispersion transmission section, a total group delay quantity of the positive-to-negative dispersion matching section is equal to a product of a dispersion coefficient C.sub.1 and the length L.sub.1 of the positive-to-negative dispersion matching section, and a total group delay quantity of the negative-to-positive dispersion matching section is equal to a product of a dispersion coefficient C.sub.2 and the length L.sub.2 of the negative-to-positive dispersion matching section. A total group delay quantity of the four sections may meet the following relationship:
C.sub.n×L.sub.n+C.sub.p×L.sub.p+C.sub.1×L.sub.1+C.sub.2×L.sub.2=0
[0075] It should be understood that a total group delay quantity of each periodic structure is 0, and 0 is an optimal case. It can be ensured that cancellation between positive dispersion and negative dispersion can be implemented in the periodic structure. In an actual case, there may be some deviations. A deviation that may occur due to a factor, for example, a process or an external environment, or cable aging, should also fall within the protection scope of this application.
[0076] Optionally, a sum of the total group delay quantity of the positive dispersion transmission section and the total group delay quantity of the negative dispersion transmission section is 0, and a sum of the total group delay quantity of the positive-to-negative dispersion matching section and the total group delay quantity of the negative-to-positive dispersion matching section is 0. It should be understood that, that the total group delay quantity is 0 should also include a deviation that may occur due to a factor, for example, a process or an external environment, or cable aging. Further, the length L.sub.p of the positive dispersion transmission section may be equal to the length L.sub.a of the negative dispersion transmission section, and the length L.sub.1 of the positive-to-negative dispersion matching section may be equal to the length L.sub.2 of the negative-to-positive dispersion matching section. The dispersion coefficient C.sub.p of the positive dispersion transmission section and the dispersion coefficient C.sub.1 of the negative dispersion transmission section have a same value and opposite symbols; and the dispersion coefficient C.sub.1 of the positive-to-negative dispersion matching section and the dispersion coefficient C.sub.2 of the negative-to-positive dispersion matching section have a same value and opposite symbols. In this case, compared with a case in which sections that have different lengths and different dispersion coefficients are used, the signal has a larger operating bandwidth in the transmission cable, and has better processing consistency.
[0077] It should be understood that same dispersion coefficients referred to in this embodiment of this application are not required to be completely the same. A slight deviation between the dispersion coefficients that is caused by a factor, for example, a process error or cable aging, should also fall within the protection scope of this embodiment of this application. Usually, when a cross-sectional diameter of the transmission cable provided in this application is about
a dispersion coefficient of a signal whose operating frequency is near f.sub.c is close to 0.
[0078] In this embodiment, the transmission cable may use a polymer material with a low loss as a core material of the transmission cable. That is, the periodic structure may be prepared by using a polymer material. For example, the polymer material may be a dielectric material with a low loss in millimeter and terahertz frequency bands, for example, polytetrafluoroethylene (PTFE), polypropylene (PP), polyethylene (PE), high-density polyethylene (HDPE), or polystyrene (PS). In the solution of this application, the transmission cable may be a solid dielectric transmission cable, that is, the transmission cable includes only a solid polymer material. Alternatively, a polymer may be used as a core, and a shielding cladding wraps an outer surface of the solid polymer material, that is, the shielding cladding wraps the periodic structure, to shield external electromagnetic interference and improve signal transmission performance. The shielding cladding may be a dielectric foam shielding cladding or a metal shielding cladding. A material of the dielectric foam shielding cladding needs to be a dielectric material with a relative dielectric constant lower than that of a dielectric core and a low loss tangent, for example, PTFE foam. The metal shielding cladding may use a metal material with an excellent electromagnetic shielding effect and a high conductivity, for example, copper foil, aluminum foil, or tin foil.
[0079] Further, when the shielding cladding is a dielectric foam shielding cladding, a relative dielectric constant of the dielectric foam shielding cladding is less than the relative dielectric constant ε.sub.1 of the periodic structure, so that an electric field of the signal is more concentrated in the core, and a radiation loss is reduced. When the shielding cladding is a metal shielding cladding, a metal needs to be a good conductor. A higher conductivity of the metal indicates a smaller signal loss. Usually, a conductivity of the metal shielding cladding is not less than 1×10.sup.7 seconds/meter (s/m).
[0080] For the transmission cable in the solution, the cross-sectional diameter of the positive dispersion transmission section in the periodic structure is small, and the cross-sectional diameter of the negative dispersion transmission section is large. The positive dispersion transmission section and the negative dispersion transmission section cannot be directly connected, and need to be connected through a matching section structure. The matching section may be of a gradient transition-type structure shown in
[0081] In addition, in an implementation process, in addition to using the gradient transition-type matching structure or the step transition-type matching structure, the matching section may alternatively implement a matching connection between a positive dispersion cross section and a negative dispersion cross section by using a form of a parabolic gradient transition, a hyperbolic gradient transition, a Chebyshev curve gradient transition, or the like.
[0082] Both the positive-to-negative dispersion matching section and the negative-to-positive dispersion matching section in the periodic structure are located between the positive dispersion transmission section and the negative dispersion transmission section, to connect the two transmission sections. A difference lies only in a signal transmission direction. The positive-to-negative dispersion matching section is configured to undertake from the positive dispersion transmission section to the negative dispersion transmission section, and the negative-to-positive dispersion matching section is configured to undertake from the negative dispersion transmission section to the positive dispersion transmission section, where a diameter of a joint face between the positive-to-negative dispersion matching section and the positive dispersion transmission section is the same as the cross-sectional diameter of the positive dispersion transmission segment, and a diameter of a joint face between the positive-to-negative dispersion matching section and the negative dispersion transmission section is the same as the cross-sectional diameter of the negative dispersion transmission section. Similarly, cross-sectional diameters at both ends of the negative-to-positive dispersion matching section also meet the foregoing condition.
[0083] It should be understood that a structure of the positive-to-negative dispersion matching section and a structure of the negative-to-positive dispersion matching section may be the same. As shown in
[0084] Further, another embodiment further discloses a transmission cable preparation method. A shaping mold with a thick-thin spaced periodic arrangement is prepared first, any one of the polymer materials disclosed in the foregoing embodiment is melted and then is injected into the shaping mold for crystallization, and the shaping mold is removed to obtain a transmission cable with a thick-thin spaced periodic arrangement. With reference to a requirement of an application scenario, wrapping by a dielectric foam shielding cladding or a metal shielding cladding may be further selected, and a wrapping manner may be encircled wrapping or longitudinal wrapping. In addition, a structure of a positive-to-negative dispersion matching section in a periodic structure is also determined by a shape of the shaping mold. It should be understood that, usually, the transmission cable disclosed in this application is a cable, and the cable has a shape characteristic of a thick-thin periodic arrangement. In a special case, the transmission cable may be formed by splicing independent transmission sections and matching sections.
[0085] Another embodiment provides a transmission cable system. The transmission cable system may be used in a short-distance interconnection scenario inside any rack or between the racks of the data center in
[0086] When a signal is sent, the baseband processing chip 501 is configured to receive a service signal, and send, after the service signal is processed through modulation and the like, a processed signal to the radio frequency transmit end chip 5021. After up-conversion processing is performed on the signal, a processed signal is coupled to the transmission cable 504 through the electromagnetic coupling structure 503, and is then transmitted through the transmission cable 504. When a signal is received, the transmission cable 504 couples the received signal to the radio frequency receive end chip 5022 through the electromagnetic coupling structure 503, the radio frequency receive end chip 5022 performs down-conversion processing on the received signal and sends a processed signal to the baseband signal processing chip 501, and the baseband signal processing chip 501 demodulates the signal.
[0087] Optionally, the transmission cable system further includes a packaging structure 505, configured to package the baseband signal processing chip 501, the radio frequency chip 502, and the electromagnetic coupling structure 503, to implement dust prevention. In addition, the packaging structure 505 may be adapted to a standard interface in a network. The transmission cable system may be inserted on a server or a switch shown in
[0088] In this embodiment, the radio frequency transmit end chip 5021 and the radio frequency receive end chip 5022 may be integrated to form a radio frequency transceiver chip, and each may include a monolithic microwave integrated circuit (MMIC). The baseband signal processing chip may be implemented by using a digital signal processing (DSP) chip, a field programmable logic gate array (FPGA), an application-specific integrated circuit (ASIC), an analog circuit, or the like. The electromagnetic coupling structure may implement electromagnetic coupling in a form of a mode converter or an on-chip integrated antenna. It should be understood that the foregoing is merely possible cases provided in this embodiment of this application, and another possible implementation form also falls within the protection scope of this application.
[0089] Another embodiment provides a structure of the transmission cable as shown in
[0090] A dispersion characteristic of the transmission cable in this embodiment is simulated by using simulation software. A calculation result is shown in
[0091] Based on the foregoing structure size, three periodic structures (with a total length of 78 mm) are selected for simulation calculation, to obtain S parameters of the transmission cable in an operating frequency band, namely, a transmission parameter and a reflection parameter. A simulation result is shown in
[0092] A further embodiment provides another transmission cable. A structure is still shown in
[0093] A dispersion characteristic of the transmission cable in this embodiment is simulated by using simulation software. A calculation result is shown in
[0094] Based on the foregoing structure size, three periodic structures (with a total length of 78 mm) are selected for simulation calculation, to further obtain, in the operating frequency band, S parameters of the transmission cable that meets the size of this embodiment, namely, a transmission parameter and a reflection parameter. A simulation result is shown in
[0095] It should be understood that in the foregoing embodiments, a positive dispersion transmission section with a cross-sectional diameter of 1.6 mm and a negative dispersion transmission section with a cross-sectional diameter of 2 mm are selected, and it can be learned that a dispersion cancellation effect is better in the frequency band of 135 GHz to 155 GHz. If a cross-sectional diameter of another size is selected, it can be learned that a dispersion cancellation effect in another frequency band range is better. The size provided in this application is an example, and should not be limited as a unique value.
[0096] Another embodiment provides a transmission cable having the structure of the transmission cable as shown in
[0097] A material of the transmission cable is polytetrafluoroethylene, a relative dielectric constant of the material in a D wave band is 2.1, and a loss tangent is 0.0002. In this embodiment, the cross-sectional diameter of the positive dispersion transmission section is D.sub.p=1.6 millimeters (mm), a length of the positive dispersion transmission section is L.sub.p=30 mm, the cross-sectional diameter of the negative dispersion transmission section is D.sub.n=2 mm, a length of the negative dispersion transmission section is L.sub.n=30 mm, and a length of the dispersion matching section is L.sub.1=3 mm, where the matching section is of a gradient transition-type structure, and the D wave band refers to a frequency range of 110 GHz to 170 GHz.
[0098] A dispersion characteristic of the transmission cable in this embodiment is simulated by using simulation software. A calculation result is shown in
[0099] Based on the foregoing structure size, simulation calculation is performed when a length of the transmission cable is 63 mm, to obtain S parameters of the transmission cable in an operating frequency band, namely, a transmission parameter and a reflection parameter. A simulation result is shown in
[0100] In addition, this disclosure provides a plurality of transmission cables with different structures. Each transmission cable includes at least one transmission structure. The transmission structure includes four parts: a positive dispersion transmission section 1601, a negative dispersion transmission section 1602, a positive-to-negative dispersion matching section 1603, and a negative-to-positive dispersion matching section 1603. There are a plurality of different specific structures. For example, in the periodic structure in
[0101] It should be understood that the transmission cable disclosed in this application may include only one transmission structure, or may include a plurality of transmission structures. If a plurality of transmission structures are included, the transmission cable may include a plurality of same transmission structures. For example, a repeated arrangement of the transmission cable is shown in the transmission structure in
[0102] If the matching section includes a positive-to-negative dispersion matching section and a negative-to-positive dispersion matching section, a total group delay quantity of the positive-to-negative dispersion matching section is equal to a product of a dispersion coefficient C.sub.1 and a length L.sub.1 of the positive-to-negative dispersion matching section, and a total group delay quantity of the negative-to-positive dispersion matching section is equal to a product of a dispersion coefficient C.sub.2 and a length L.sub.2 of the negative-to-positive dispersion matching section. A total group delay quantity of the transmission cable can meet the following relationship:
[0103] A total dispersion amount of the transmission cable is lower than that of a positive dispersion transmission section of a same length, and lower than that of a negative dispersion transmission section of the same length, so that the cancellation effect between positive dispersion and negative dispersion can be implemented.
[0104] In addition, requirements such as lengths, cross-sectional diameters, and materials for the positive dispersion transmission section, the negative dispersion transmission section, and the matching section and a specific structure of the matching section are already described in the foregoing embodiments. Details are not described in this embodiment again.
[0105] Although this disclosure is described with reference to specific features and embodiments thereof, various modifications and combinations may be made to them without departing from the spirit and scope of this disclosure. Correspondingly, the specification and accompanying drawings are merely example description of this disclosure and any and all modifications, variations, combinations or equivalents thereof are encompassed by the appended claims.