Wireless Communication Rotary Joint
The slip ring system addresses the limitations of conventional slip rings and wireless solutions by using polarized RF antennas with helical elements and 60 GHz chipsets for reliable and cost-effective high-speed data transmission.
Patent Information
- Application Number
- JP2024005303
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2023-01-25
- Filing Date
- 2024-01-17
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2044-01-17
AI Technical Summary
Conventional slip rings for rotary joints face issues such as short lifespan, susceptibility to interference, complexity, high cost, and difficulty in maintenance, particularly when transmitting high-speed data, and existing wireless solutions have limitations in frequency range, installation complexity, and signal integrity.
A slip ring system utilizing polarized RF antennas with helical elements for bidirectional communication, supported by 60 GHz chipsets, enabling reliable and cost-effective high-speed data transmission through polarized signals.
The system provides sufficient bandwidth for large data transfer with improved reliability and reduced complexity, overcoming the limitations of conventional slip rings and wireless solutions.
Smart Images

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Abstract
Description
[Technical Field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This patent application claims the benefit of U.S. Provisional Patent Application No. 63 / 441,100, entitled Wireless Communication Rotary Joint, filed January 25, 2023, the disclosure of which is incorporated herein by reference in its entirety.
[0002] The present teachings relate generally to rotating electromechanical systems, and more particularly to rotary joints (such as slip rings) with wireless communication capabilities. [Background technology]
[0003] It would be beneficial to have alternative systems and methods for wireless communication rotary joints.
[0004]
[0004] A rotary joint (also called a slip ring) is an electromechanical device that allows for the transmission of electrical power and / or electronic signals from a stationary element to a rotating element. Slip rings can be used in any electromechanical system that requires rotation during power or signal transmission, thereby improving mechanical performance, simplifying system operation, and eliminating vulnerable wires dangling from the moving joint.
[0005] Slip rings / rotary joints, also known as rotary electrical interfaces, rotary electrical connectors, collectors, swivels, or electrical rotary joints, are commonly found in slip ring motors, generators for alternating current (AC) systems, cable reels, and wind turbines. They can be used in any rotating object to transfer electrical power, control circuits, or analog or digital signals (including data), such as those found in airfield lights, rotating tanks, power shovels, radio telescopes, telemetry systems, heliostats, and Ferris wheels, to name a few.
[0006]
[0006] In various technical contexts, machines need to collect information to make appropriate decisions based on corresponding control logic. For example, sensors such as temperature, speed, pressure, and other signal detectors can send information to the machine's control unit, and the control unit can respond to the received signals by making adjustments (e.g., by adjusting speed, adjusting pressure or pitch, etc.). Video information is also an example of data that can be collected and transmitted for decision-making processes based on character recognition, process changes, product status, and other video analytics.
[0007]
[0007] Complications arise when such signal transmission must occur between static and dynamic elements, particularly when rotational motion is associated with the dynamic components. Conventional systems typically use sliding contacts in slip rings to transmit signal information and power across rotary joints that include static or stationary components and rotating dynamic components. Conventional slip rings may have a short lifespan, may be susceptible to interference, and may be complex, expensive, and / or difficult to maintain.
[0008]
[0008] Conventional slip rings can be categorized into two types: contact slip rings and non-contact slip rings. Contact slip rings include conventional monofilament wire brush slip rings and conventional composite graphite-based brush slip rings. Both have several drawbacks, including a limited frequency range, short brush life due to frictional wear and arc wear, difficulty in assembly, and generation of brush dust that requires periodic cleaning. Less common contact methods include mercury, flexible rings, and conductive grease, but these have similar problems as conventional contact slip rings when transferring high-speed data.
[0009]
[0009] Non-contact slip rings include optical, capacitive, wireless, and inductive joints or bridges. While non-contact slip rings avoid some of the drawbacks associated with the use of brushes, such as wear, they have some inherent drawbacks.
[0010]
[0010] Optical rotary joints can be complex to install and repair due to the stringent requirements associated with optical cables, can have expensive light sources and electronic drivers for transmitting and receiving fiber signals, and can require application-specific cables (e.g., to match the wavelengths used to the cables used). Multi-channel optical rotary joints can have high losses, limiting their use to applications that can tolerate low light levels. Special installation methods, troubleshooting methods, and personnel, along with higher costs, can make optical rotary joints viable only for certain applications.
[0011]
[0011] Slip rings using capacitive and inductive coupling have a relatively narrow frequency band, require complex data formatting circuitry, require tight control of capacitive gap variations, and raise concerns about data loss. Because the circuit design on either side of the coupling capacitor in the capacitive coupling model can be complicated by resistor / capacitor (RC) time constants and resonant frequencies set between the signal path and the coupling capacitor, implementing rotary joints using capacitive and inductive coupling may be impractical for many applications.
[0012]
[0012] Coaxial radio frequency (RF) rotary joints (often a special case of capacitively coupled rotary joints) can have stringent requirements for dimensional characteristics to maintain signal integrity and can have high material costs, high assembly costs, and difficult assembly processes due to tight tolerances. Due to their high cost and specialized assembly, coaxial and RF rotary joints may only be viable for certain applications. The use of infrared (IR) technology for transmission across rotary joints has similar issues, including line-of-sight or other interference problems that require specialized configurations to address.
[0013]
[0013] One example of a previously proposed wireless rotary joint using RF signals can be found in U.S. Patent Application Publication No. 2014 / 0099890 to Lichter et al., entitled "Wireless Platform For Rotary Joint." This document discusses a rotary joint having a first wireless communication device associated with a stator including an emitter antenna for providing a data signal to a receiver antenna associated with a rotor having a second wireless communication device. While the device described in this document is effective for transmitting wireless signals, it requires specific placement of the antenna and may introduce radial asymmetry within the joint, which may limit the speed and reliability of the device's operation and signal transmission in certain applications.
[0014] Another example is Canadian Patent No. 3011715 (Roseband) to Roseband et al., entitled "Devices And Methods For A Rotary Joint With Multiple Wireless Links." This discusses a signal conditioner coupled to multiple probes that selects one of the probes based on orientation and uses the selected probe for wireless communication, at least temporarily, until another probe comes into view. While this can be at least partially effective in achieving wireless communication between a rotating platform and a stationary platform, the signal may not be continuous and may require constant switching of probes, which increases the complexity of the system. Summary of the Invention [Means for solving the problem]
[0015]
[0015] The needs described herein, as well as further and other needs and advantages, are addressed by the present embodiments, the solutions and advantages of which are described below.
[0016] One embodiment of a system according to the present teachings includes, but is not limited to, a slip ring having a stator and a rotor configured to rotate relative to the stator about a rotation axis, the rotor having a first radio module with a first antenna. The stator has a second radio module with a second antenna. The first and second antennas are positioned along the rotation axis. The first and second antennas are adapted to communicate with each other at least in part using polarized signals.
[0017] In one embodiment, the first antenna is mounted to an end of the rotor that is disposed within the stator during operation, and the second antenna is mounted to the stator such that the first and second antennas face each other during rotation of the rotor.
[0018] In one embodiment, the first and second antennas have generally helical shaped elements for polarizing the respective signals.
[0019] In an embodiment, the first and second antennas are arranged for circular polarization.
[0020] In an embodiment, each of the first and second antennas includes two antenna elements, one of which is used for transmission and the other of which is used for reception.
[0021] In some embodiments, the first and second antennas transmit and receive signals bidirectionally with polarization, frequency modulation, and / or amplitude modulation.
[0022] In one embodiment, each of the first and second radio modules includes a 60 GHz chipset that performs at least some signal conditioning.
[0023] In some embodiments, the first and second antennas are configured to communicate with each other according to the Wi-Fi, ZigBee, Bluetooth, wireless HDMI, USB, or IEEE 802.11 standard.
[0024]
[0024] In one embodiment, an optical module is disposed on each of the rotor and stator, and an optical fiber extends to each of the first and second antennas to facilitate communication between the rotor and stator using optical signals.
[0025] In an embodiment, the first and second antennas extend parallel to each other and parallel to the axis of rotation.
[0026] In an embodiment, the first and second antennas extend at an angle to each other and are disposed at an angle to the axis of rotation.
[0027] In some embodiments, the shield at least partially contains the signals exchanged by the first and second antennas within the slip ring.
[0028] In an embodiment, the first and second antennas communicate with each other using one or more Ethernet channels.
[0029] In one embodiment, one or more Ethernet channels are time-multiplexed to create multiple data channels.
[0030] One embodiment of a system according to the present teachings includes, but is not limited to, a communication system for a slip ring having a first radio module with a first antenna adapted to be attached to a rotor that rotates relative to a stator about a rotation axis, and a second radio module with a second antenna adapted to be attached to the stator, wherein the first and second antennas are adapted to communicate with each other at least in part using polarized signals.
[0031] In one embodiment, a rotary joint includes such a communication system, the rotor having a first radio module and the stator having a second radio module, the first and second antennas being positioned opposite each other along the axis of rotation.
[0032]
[0032] In one embodiment, the first antenna is mounted to the end of the rotor which is positioned within the stator during operation, and the first and second antennas have generally helical shaped elements which polarize their respective signals.
[0033]
[0033] In one embodiment, each of the first and second wireless modules includes a 60 GHz chipset that performs at least some signal conditioning, and the first and second antennas are configured to communicate with each other according to Wi-Fi, ZigBee, Bluetooth, wireless HDMI, USB, or IEEE 802.11 standards.
[0034] One embodiment of a method according to the present teachings includes, but is not limited to, a method for communicating signals through a slip ring, including: providing a stator; and providing a rotor configured to rotate relative to the stator about an axis of rotation, the rotor having a first radio module with a first antenna. The stator has a second radio module with a second antenna. The first and second antennas are disposed along the axis of rotation. It includes transmitting and receiving polarized radio frequency (RF) signals via the first and second antennas.
[0035]
[0035] In one embodiment, the first antenna is mounted on an end of the rotor which is positioned within the stator during operation, and the second antenna is mounted on the stator so that the first and second antennas face each other during rotation of the rotor, and the first and second antennas have generally helical shaped elements for polarizing their respective signals.
[0036]
[0036] Other embodiments of the system and method are described in detail below and are also part of the present teachings.
[0037]
[0037] The present teachings include a contactless slip ring that uses RF antenna technology to provide sufficient bandwidth to enable the reliable and cost-effective transmission of large amounts of data over a rotary interface using high-speed wireless network protocols.
[0038] In one embodiment, a slip ring includes a stator, a rotor rotatably associated with the stator about an axis of rotation, a first wireless transducer module including a first antenna, the first wireless transducer module and the first antenna associated with the rotor, and a second wireless transducer module including a second antenna, the second wireless transducer module and the second antenna associated with the stator. Each of the first and second antennas includes first and second antenna elements, each configured to transmit or receive a respective polarized radio frequency (RF) signal. The first and second antennas are closely spaced and aligned about the axis of rotation of the rotor such that first polarized RF signals are exchanged between respective first elements and second polarized RF signals are exchanged between respective second elements. A first polarized RF signal is emitted from a first antenna and received by a second antenna, and a second polarized RF signal is emitted from the second antenna and received by the first antenna.
[0039] In another embodiment, a method for communicating signals through a slip ring includes providing a stator, providing a rotor rotatably associated with the stator about an axis of rotation, providing a first wireless transducer module including a first antenna, wherein the first wireless transducer module and the first antenna are associated with the rotor, and providing a second wireless transducer module including a second antenna, wherein the second wireless transducer module and the second antenna are associated with the stator. Each of the first and second antennas includes first and second antenna elements. The method further includes transmitting or receiving respective polarized radio frequency (RF) signals via each of the first and second antenna elements.
[0040]
[0040] For a better understanding of the present embodiments, together with other and further aspects thereof, reference is made to the accompanying drawings and detailed description, the scope of which is set forth in the appended claims. [Brief explanation of the drawings]
[0041] [Figure 1]
[0041] FIG. 1 is a block diagram illustrating the connections and components of an embodiment of a wireless platform for use in a rotary joint according to the present teachings. [Figure 2]
[0041] FIG. 1 is a block diagram illustrating the connections and components of an embodiment of a wireless platform for use in a rotary joint according to the present teachings. [Figure 3]
[0042] FIG. 1 is a block diagram of a rotary joint in accordance with the present teachings. [Figure 4]
[0043] FIG. 1 is a cross-sectional view of an embodiment of a rotary joint in accordance with the present teachings. [Figure 5]
[0044] FIG. 10 is a cross-sectional view of another embodiment of a rotary joint in accordance with the present teachings. [Figure 6]
[0045] FIG. 1 is a plan view of a polarized antenna assembly in accordance with the present teachings. [Figure 7]
[0045] A cross-sectional view of a polarized antenna assembly according to the present teachings. [Figure 8]
[0046] 5 is a cross-sectional view through a partially enlarged view of a portion of the rotary joint shown in FIG. 4. [Figure 9]
[0047] 5 is a cross-sectional view through a partial enlargement of a portion of another embodiment of the rotary joint shown in FIG. 4. DETAILED DESCRIPTION OF THE INVENTION
[0042]
[0048] The present teachings are more fully described below with reference to the accompanying drawings, in which the present embodiments are shown. The following description is provided for illustrative purposes only, and the present teachings are not limited to these embodiments. Any computer configuration and architecture that meets the speed and interface requirements described herein may be suitable for implementing the systems and methods of the present embodiments.
[0043]
[0049] In accordance with the statute, the present teachings have been described in more or less specific language as to structural and methodological features, but it should be understood that the present teachings are not limited to the particular features shown and described, since the systems and methods disclosed herein include preferred forms for carrying out the present teachings.
[0044]
[0050] For purposes of explanation and not limitation, specific details are set forth such as particular architectures, interfaces, techniques, etc. in order to provide a thorough understanding. In other instances, detailed descriptions of well-known devices, circuits, and methods are omitted so as not to obscure the description with unnecessary detail.
[0045]
[0051] A "computing system" can provide the functionality of the present teachings. A computing system can include software executing on a computer-readable medium that can be logically (but not necessarily physically) identified with specific functions (e.g., functional modules). A computing system can include any number of computers / processors, which can communicate with each other over a network. A computing system can also be in electronic communication with a data store (e.g., a database) that stores control and data information. Forms of computer-readable media include, but are not limited to, disks, hard drives, random access memory, programmable read-only memory, or any other medium from which a computer can read.
[0046]
[0052] In general, all terms used in the claims are to be interpreted according to their ordinary meaning in the art unless expressly defined otherwise herein. All references to elements, apparatus, components, means, steps, etc. are to be openly interpreted as referring to at least one instance of that element, apparatus, component, step, etc. unless expressly stated otherwise. The steps of methods disclosed herein do not have to be performed in the exact order disclosed, unless explicitly stated otherwise. The use of "first," "second," etc., with respect to different features / components of the present disclosure is intended only to distinguish those features / components from other similar features / components, and is not intended to impose any order or hierarchy on those features / components.
[0047]
[0053] To assist the Patent Office and readers of any patent that may issue on this application in interpreting the claims appended hereto, please note that unless the words "means for" or "step for" are expressly used in a particular claim, none of the appended claims or claim elements are intended to invoke 35 U.S.C. 112(f).
[0048]
[0054] The description of numerical ranges with endpoints includes all numbers within that range (e.g., 1 to 5 includes 1, 1.5, 2, 2.75, 3, 3.80, 4, 5, etc.). When a range of values is stated to be "greater than," "less than," etc., a particular value, then that value is included within that range.
[0049]
[0055] Directions such as "top," "bottom," "left," "right," "upper," "lower," "above," "below," and other directions and orientations referred to herein are described herein with reference to the figures for clarity and are not intended to limit the actual device or system or the use of the device or system. Many of the devices, articles, or systems described herein can be used in several directions and orientations.
[0050]
[0056] Citation of documents in or during the performance of this disclosure is done with due caution, and no citation (whether in an Information Disclosure Statement or otherwise) should be construed as an admission that the cited document qualifies as prior art or is from a field similar to or directly applicable to the present teachings.
[0051]
[0057] 1 and 2, block diagrams illustrating the connections and components of two embodiments of a wireless platform for use in a rotary joint according to the present teachings are shown. In FIG. 1, a single communication channel (e.g., an Ethernet channel) is utilized, while in FIG. 2, multiple channels are utilized. The static and dynamic sections of the rotary joint each include a wireless converter module 101 (which includes, among other components, a signal converter module 102) and an antenna 103. The signal converter module 102 functions as a signal conditioner and converter, as well as a networking interface, but is not limited to such functions. As will be appreciated by those skilled in the art, it may include a variety of functions, such as multiplexing, filtering, conversion, computation, etc.
[0052]
[0058] A pair of wireless transducer modules 101 are used in a rotary joint to provide communication between a stationary mechanical component or stator 106 and a rotating mechanical component or rotor 104. In the illustrated embodiment, each communication channel is represented by a connector 108 communicatively and physically associated with a respective wireless transducer module 101. For example, the connectors 108 may include Ethernet connectors or any other form of connector that enables the desired communication, as will be appreciated by those skilled in the art.
[0053]
[0059] 3, a block diagram of a rotary joint according to the present teachings is shown. As shown, one or more connectors 108 may be disposed in association with a wireless transducer module 101 on a rotor 104 (shown in dashed lines), and one or more corresponding connectors 108 may be disposed in association with a second wireless transducer module 101 on a stator 106 of a rotary joint 110.
[0054]
[0060] 3, rotary joint 110 includes stator 106 having a generally hollow cylindrical shape that defines an internal cavity 112 within which at least a portion of rotor 104 is disposed. While a cylindrical cavity 112 is shown in this embodiment, it is understood that any shaped stator having any shaped cavity may be used. Antenna 103 of rotor 104 and antenna 103 of stator 106 are in opposing relationship, and are coaxially disposed along axis of rotation A of rotor 104 and in opposing relationship within cavity 112.
[0055]
[0061] An optional absorber or shield 114 (e.g., radio frequency, etc.) is positioned within the cavity adjacent to the antenna 103 to reduce signal leakage. The shield 114 can prevent transmission of signals emanating from one of the antennas 103 in a one-way communication mode, or from both antennas 103 in a two-way communication mode. The shield 114 can also, but is not limited to, reflect signals back to the antenna 103 to improve signal transmission.
[0056]
[0062] In operation, one or more data signals are provided to connector 108. The signals are then conditioned (e.g., in known manner), provided to a signal conversion and multiplexer module (in this case, signal converter module 102), and then transmitted by antenna 103 in any suitable format.
[0057]
[0063] In the illustrated embodiment, signals transmitted by antenna 103 are processed by, but not limited to, a 60 GHz chipset and time-shared by signal converter module 102 (e.g., wireless converter module 101) for multiple data channels, which can achieve aggregate data rates of up to 6.25 Gbps or more. The wireless transmission path is transmitted at frequencies that can far exceed typical EMI / EMC interference bandwidths, allowing for use in high-interference environments. Furthermore, shielding and other types of external structures can be used to prevent external transmission of wireless signals, such as to avoid interference with adjacent machinery and to ensure signal integrity from a security perspective. Additionally or alternatively, signal encryption may be used on wirelessly transmitted signals to maintain signal security and integrity.
[0058]
[0064] Generally, wireless communication module 101 includes wireless communication hardware (e.g., a printed circuit board) used to generate short-range wireless communication signals according to protocols such as, but not limited to, Wi-Fi, ZigBee, Bluetooth, wireless HDMI, and / or IEEE 802.11 standards. Such short-range wireless communication signals are transmitted and received by antenna 103 to and from each of the stationary and rotating portions of rotary joint 110 via wireless connection 116.
[0059]
[0065] Module 101 may also include other functionality, including sensor information, data storage (memory), and processing capabilities. As such, it can act as a computing system for local processing of information, beyond signal conversion and manipulation.
[0060]
[0066] Signal connections from a system connected to the rotary joint, such as, but not limited to, Ethernet, EtherCAT, Profinet, and Profibus connections, can enter directly into the wireless communication module 101. Other signal connections, such as Can Bus, RS-232, RS-422, RS-485, video, optical, and analog signal connections, can enter into the signal converter module 102, which adapts the signal to a format compatible with the wireless converter module 101 (e.g., Ethernet format) and transmits the converted signal to the wireless converter module 101. It is understood that signal communications can not only be transmitted via the antenna, but can also be received via the antenna and processed by the wireless platform, i.e., Ethernet signals received via the antenna 103 and wireless converter module 101 can be converted by the signal converter module 102 to an appropriate non-Ethernet format and sent to the system along Can Bus, RS-232, RS-422, RS-485, video, optical, and / or analog signal connections, or can be unconverted and sent to the system along an Ethernet, EtherCAT, Profinet, and / or Profibus connection, but are not limited to this.
[0061]
[0067] It is understood that the above-mentioned types of signal connections—Ethernet, EtherCAT, Profinet, Profibus, Can Bus, RS-232, RS-422, RS-485, video, optical, and analog—are merely examples of common types of signal connections, and one skilled in the art would understand that other types of signal connections could also be used (with or without the signal converter module 102). Furthermore, one skilled in the art could implement variations of the exemplary configuration shown without departing from the principles of the present teachings. For example, the signal converter module 102 could be split into separate signal converter modules for each signal type, or the signal converter modules and associated connecting lines could be integrated with the Ethernet, EtherCAT, Profinet, and / or Profibus connecting lines via a multiplexer circuit to multiplex all signals sent to and from the wireless converter module 101. In another exemplary embodiment, multiple wireless converter modules could be used, or separate circuit boards could be stacked to form the wireless converter module to accommodate various bandwidth requirements. Due to the symmetry of the circuit, one portion could be stationary while the other portion could be rotatable.
[0062]
[0068] In various examples, the wireless converter module 101 includes a WiFi transceiver, a wireless Ethernet bridge, or a custom designed radio module, and the signal converter module 102 is a digital parallel to serial converter, an RS422 to Ethernet converter, or a more custom approach to conversion.
[0063]
[0069] The illustrated exemplary wireless platforms (e.g., FIGS. 1-3 and 9) further show a respective antenna 103 that is part of each wireless transducer module 101 to facilitate communication between each pair of modules 101.
[0064]
[0070] 4, a cross-sectional view of one embodiment of a rotary joint according to the present teachings is shown, which uses RF communication in a rotary joint 110. For simplicity, the following description uses the same reference numerals used above to refer to features and elements that are the same or similar to elements described above. The rotary joint includes a rotor 104 and a stator 106 rotatably connected to one another using a rotation-enabling device, such as one or more bearings 202 (only one is shown here, but any number, such as 2, 3, 4, 5, 10, 15, 20, etc., can be used).
[0065]
[0071] The rotor 104 in the illustrated embodiment is a rotating assembly including a rotating shaft 204 forming a hollow interior cavity 206 extending along a rotational axis A. At an outer end, the rotor shaft 204 is connected to a hub 208 via a neck extension 210. The hub includes a cover 212 having a hollow cup shape that defines a rotor housing 214. The rotor housing 214 is disposed around the signal converter module 102, which is connected to the antenna 103 and one or more connectors 108 (only one shown) via signal conductors 216.
[0066]
[0072] The stator 106 is a stationary assembly that includes a shell 218 having a generally hollow cylindrical shape that may be closed at one end or may be open and closed with a cap. The open end of the shell 218 includes an axle mount 220 that supports the bearing 202 and, therefore, the rotor shaft 204. The axle mount 220 further includes a shelf 222 on which the second signal converter module 102 is mounted.
[0067]
[0073] The second signal converter module 102 is communicatively connected to a second antenna 103 via conductors 216. The second antenna 103 is disposed within the shell 218 and is in aligned relationship with the antenna 103 of the rotor 104 along the axis of rotation A. The shell 218 and / or the axle mount 220 include one or more connectors 108 that are also communicatively connected to the second signal converter 102 via conductors 216. As explained below, both antennas 103 are advantageously polarized antennas.
[0068]
[0074] 5, a cross-sectional view of another embodiment of a rotary joint in accordance with the present teachings is shown. A variation of the rotary joint, rotary joint 510, utilizes optical fiber and optical energy to transmit information. While a wireless antenna is not shown in this embodiment for simplicity, it is understood that transmission of information using optical energy, e.g., a laser, can be used instead of, or preferably in addition to, the wireless communication provided by a wireless antenna.
[0069]
[0075] In this embodiment, the optical module 503 is used separately from the antenna 103 (not shown), and the optical module 503 can replace or function in conjunction with the antenna 103. The optical module 503 uses a lens 505 connected to an optical fiber 507. The optical fiber 507 is then connected to a light conduit 516 to transmit information to and receive information from the respective signal converter modules 102 in the rotor 104 and stator 106. As can be appreciated, the signal converter modules 102 in this embodiment are configured to convert light energy into data signals and vice versa.
[0070]
[0076] Returning to the embodiment of Figure 4, one exemplary embodiment is shown for antenna 103. The antennas of the present disclosure may be polarized antennas used in pairs, allowing uninterrupted reception of RF signals from a rotating antenna in a pair associated with the rotor to a stationary antenna in a pair associated with the stator.
[0071]
[0077] As used herein for some embodiments, polarization of the antenna 103 refers to the transmission and reception of a signal provided by one antenna element along a polarization direction and its reception by another antenna element having the same polarization direction. One reason for polarization is to ensure bidirectional signal transmission and reception between the rotating and stationary portions of the slip ring assembly. While a polarized antenna is shown, other bidirectional signal transmission and reception structures and techniques can also be used. For example, frequency and / or amplitude modulation techniques based on the angle of rotation can also be used. Polarization (and other differentiation techniques) can also be used to transmit both signals in the same direction, theoretically doubling the processing power of the device.
[0072]
[0078] Each antenna 103 may include, but is not limited to, two antenna elements, one used for transmitting and the other used for receiving. It may be preferable to have a single antenna pair used on each side of the wireless platform that can transmit signals to / from each side uninterrupted during rotation.
[0073]
[0079] Previous solutions have used multiple probes depending on the rotational positions of both sides of a wireless bridge. For example, as described in Canadian Patent No. 3011715 to Roseband et al. (Roseband), a device is provided that includes a first platform having a first side and a second platform having a second side positioned within a predetermined distance of the first side. A probe is attached to the first platform, and multiple probes are attached to the second platform. In operation, Roseband describes a signal conditioner coupled to the multiple probes, selecting one of the multiple probes based on the orientation of the first platform relative to the second platform, and then using the selected probe for wireless communication with the probe on the first platform, at least temporarily, until another probe comes into view of the single probe on the first platform. While Roseband's system can be at least partially effective in achieving wireless communication between a rotating platform and a stationary platform, the transmitted signal may not be continuous and may require constant switching of the probe on the second platform. Furthermore, it can be appreciated that probe switching may increase with the relative rotational speed of one platform and the other. Such complications may be advantageously avoided in embodiments according to the present disclosure.
[0074]
[0080] Referring now to Figure 6, a plan view and Figure 7, a cross-sectional view of a polarized antenna assembly in accordance with the present teachings are shown. Antenna 103 includes a housing 601 including a mounting flange 602, a cylindrical wall 604, and a cover 606 (not shown in Figure 6 to expose the internal components). Mounting flange 602 includes a mounting surface 608 formed within wall 604. As best shown in Figure 7, two antenna elements 610 and 612 are disposed on mounting surface 608 and extend along respective axes B and C.
[0075]
[0081] Each of the elements 610 and 612 has a generally helical shape that polarizes the signals emitted by each, or additionally or alternatively creates a polarization structure that receives polarized signals arriving at the element. In the illustrated embodiment, the antenna elements 610 and 612 are structurally arranged for circular polarization based on their helical coil configuration, which, as is known, depends on several different factors, including the pitch and spacing of the helical elements, the diameter of the helical configuration, the winding direction, the number of turns, the overall length of the antenna, etc.
[0076]
[0082] Referring now to Figure 8, there is shown a cross-sectional view through a close-up of a portion of the rotary joint shown in Figure 4. Two elements 610 and 612 in the pair of antennas 103 have corresponding elements 610' and 612' in the matching pair antenna 103' when the pair of antennas 103 is installed in the rotary joint 110 (shown in Figure 4).
[0077]
[0083] Because the same polarization is used, a first signal R1 (e.g., radio frequency (RF)) having a first polarization can be emitted by element 610 and received by element 610'. Similarly, a second signal R2 having a second polarization can be emitted by element 612' and received by element 612. Together, antennas 103 form a transceiver pair that can transmit and receive information bidirectionally. Note that first signal R1 and second signal R2 can also be transmitted in one direction, which doubles the data throughput in one direction at a time.
[0078]
[0084] Due to the relatively short distance separating antennas 103 and 103', polarized signals are transmitted to and received from each pair of elements 610 / 610' or 612 / 612', which are helical antennas in axial mode. Signals R1 and R2 have wide bandwidth, are easy to construct, have real input impedance, and can generate circularly polarized fields, all of which contribute to reliable reception of signals R1 and R2 when the elements are aligned in opposing relationship (positioned 180 degrees opposite) during rotation of stator antenna 103 relative to its stator pair antenna 103', as shown in FIG.
[0079]
[0085] Referring now to Figure 9, there is shown a cross-sectional view through a partial enlargement of a portion of another embodiment of the rotary joint shown in Figure 4. A variation of the embodiment shown in Figure 8 is presented. In this embodiment, a pair of antennas 903 / 903' is shown, each including a housing 901 including a mounting flange 902, a cylindrical wall 904, and a cover 906. The mounting flange 902 includes a mounting surface 908 formed in the wall 904.
[0080]
[0086] Unlike the embodiment shown in Figure 7, in the embodiment of Figure 9, mounting surface 908 has an angled mounting surface that is angled relative to the axis of rotation A such that antenna elements 910 and 912 extend at an angle relative to each other and are angled relative to the axis of rotation A. The same structural configuration exists for antenna elements 910' and 912'. Each antenna element in the illustrated embodiment is connected to an electrical circuit 914 (e.g., a printed circuit board (PCB)). In this configuration, when antenna elements 910 and 912 are mounted, their respective axes are angled relative to each other in a direction away from mounting surface 908, rather than being generally parallel as in the previously described embodiments.
[0081]
[0087] Similar to the previously described embodiment, each of the elements 910 and 912 has a generally helical shape that polarizes the signals emitted by each, or additionally or alternatively, creates a polarization structure for receiving polarized signals arriving at the element. In the illustrated embodiment, the antenna elements 910 and 912 are structurally arranged for circular polarization based on their helical coil configuration, which depends on several different factors, including the pitch and spacing of the helical elements, the diameter of the helical configuration, the winding direction, the number of turns, the overall length of the antenna, etc. The two elements 910 and 912 in the pair of antennas 903 have corresponding elements 910' and 912' in a matching pair antenna 903' when the pair of antennas 903 is installed in a slip ring, as shown in FIG.
[0082]
[0088] When elements 910 and 912 are tilted relative to each other, the signal beams emanating from each element 910 and 912 are also tilted, and as shown in FIG. 9 , the beams can be selected to have a conical included angle that covers both opposing antennas for each antenna. More specifically, beam B1 emanating from element 910, shown in the figure using wavy rays, has a spread angle that covers both antenna elements 910′ and 912′, regardless of the angular position of antenna 903 relative to antenna 903′ relative to rotation axis A. Similarly, beam B2 belonging to element 912, beam B3 belonging to element 912′, and beam B4 belonging to element 910′ sweep an area that always allows a direct line of influence between any two transmitting and receiving antenna elements. Beam overlap is not detrimental to signal reception or transmission and does not cause signal interference due to signal polarization.
[0083]
[0089] Antennas 903 and 903′ are spaced a distance d from one another. This distance d, which represents the distance between the two housings, indicates the distance of elements 910 and 912 relative to elements 910′ and 912′ and defines the distance of elements 910 and 912 relative to elements 910′ and 912′. It may be desirable to minimize distance d as much as possible, thereby trying to position antenna elements 910 and 912 as close as possible to their corresponding antenna elements 910′ and 912′. Having these elements as close together, or in close spacing, may be desirable because it helps reduce the overall size of the slip ring assembly or rotary joint 110 and may improve signal transmission for signals exchanged between the antenna elements. Because signals (e.g., RF) are transmitted and received at high frequencies, a close spacing between the antenna elements may help improve communication.
[0084]
[0090] In a general aspect, this disclosure describes a contactless slip ring that can utilize a standard chipset that uses a high-frequency signal as a carrier to transfer data between a rotor and a stator. The high-frequency chipset provides sufficient bandwidth to transfer a single high-speed data channel or multiple channels multiplexed onto a single data line. This data transfer can be achieved using near-field coupling antennas, embodied in one exemplary implementation as antenna elements 910, 912, 910', and 912', that are rotatable relative to one another. To transmit and receive signals bidirectionally, signals can be provided directionally by polarization, frequency modulation, or amplitude modulation, among other techniques.
[0085]
[0091] A preferred aspect of the present teachings is the use of low-cost, commercially available chipsets in combination with specialized near-field coupling antennas to transmit high-speed data bidirectionally over a high-frequency carrier, the design of which is determined in part by the high-frequency signal and its transmission distance limitations.
[0086]
[0092] While the present teachings have been described above in terms of specific embodiments, it should be understood that the present teachings are not limited to these disclosed embodiments. Numerous modifications and other embodiments will occur to those skilled in the art to which this relates, and are intended to be and are encompassed by both this disclosure and the appended claims. It is intended that the scope of the present teachings should be determined by the proper interpretation and construction of the appended claims and their legal equivalents, as understood by those skilled in the art relying on the disclosures in this specification and the accompanying drawings. [Explanation of symbols]
[0087] 106 Stator 104 rotor A rotation axis 101 Wireless Converter Module 103, 103', 903, 903' antennas R1 First signal R2 Second signal 610, 612, 610', 612', 910, 912, 910', 912' antenna elements 503 Optical Module 507 Optical Fiber 114 Shield 110, 510 rotary joint
Claims
1. a stator; a rotor configured to rotate relative to the stator about a rotation axis, the rotor having a first radio module with a first antenna; A slip ring comprising: the stator has a second radio module with a second antenna; the first and second antennas are disposed along the axis of rotation; the first and second antennas are adapted to communicate with each other at least in part using polarized signals; the first antenna is attached to an end of the rotor that is disposed within the stator during operation; the second antenna is attached to the stator such that the first and second antennas face each other during rotation of the rotor; the first and second antennas having generally helical shaped elements for polarizing respective signals; Slip ring.
2. 10. The slip ring of claim 1, wherein the first and second antennas are arranged for circular polarization.
3. 2. The slip ring of claim 1, wherein each of the first and second antennas includes two antenna elements, one of which is used for transmitting and the other of which is used for receiving.
4. 4. The slip ring of claim 3, wherein the first and second antennas transmit and receive signals bidirectionally with polarization, frequency modulation, and / or amplitude modulation.
5. 10. The slip ring of claim 1, wherein the first and second radio modules each include a 60 GHz chipset that performs at least some signal conditioning.
6. 10. The slip ring of claim 1, wherein the first and second antennas are configured to communicate with each other according to a Wi-Fi, ZigBee, Bluetooth, wireless HDMI, USB, or IEEE 802.11 standard.
7. 10. The slip ring of claim 1, further comprising: an optical module disposed on each of the rotor and the stator; and an optical fiber extending to each of the first and second antennas to facilitate communication between the rotor and the stator using optical signals.
8. 2. The slip ring of claim 1, wherein the first and second antennas extend parallel to each other and parallel to the axis of rotation.
9. 2. The slip ring of claim 1, wherein the first and second antennas extend at an angle relative to each other and are disposed at an angle relative to the axis of rotation.
10. 10. The slip ring of claim 1, further comprising a shield that at least partially contains signals exchanged by the first and second antennas within the slip ring.
11. The slip ring of claim 1 , wherein the first and second antennas communicate with each other using one or more Ethernet channels.
12. 12. The slip ring of claim 11, wherein the one or more Ethernet channels are time-multiplexed to create multiple data channels.
13. a first radio module including a first antenna, the first radio module adapted to be attached to a rotor that rotates relative to the stator about an axis of rotation; a second radio module including a second antenna, the second radio module adapted to be attached to the stator; 1. A communication system for a slip ring, comprising: the first and second antennas are adapted to communicate with each other at least in part using polarized signals; the first antenna is adapted to be attached to an end of the rotor that is disposed within the stator during operation; the first and second antennas having generally helically shaped elements that polarize respective signals; Communication system for slip rings.
14. A communication system according to claim 13; a rotor having the first wireless module; a stator having the second wireless module; A rotary joint comprising: The rotary joint, wherein the first and second antennas are positioned opposite each other along the axis of rotation.
15. each of the first and second radio modules includes a 60 GHz chipset that performs at least some signal conditioning; 15. The rotary joint of claim 14, wherein the first and second antennas are configured to communicate with each other according to a Wi-Fi, ZigBee, Bluetooth, wireless HDMI, USB, or IEEE 802.11 standard.
16. providing a stator; providing a rotor configured to rotate relative to the stator about an axis of rotation, the rotor having a first radio module with a first antenna; the stator has a second radio module with a second antenna; the first and second antennas are disposed along the axis of rotation; transmitting and receiving polarized radio frequency (RF) signals via the first and second antennas; Including, the first antenna is attached to an end of the rotor that is disposed within the stator during operation; the second antenna is attached to the stator such that the first and second antennas face each other during rotation of the rotor; the first and second antennas having generally helical shaped elements for polarizing respective signals; A method of communicating signals through slip rings.
Citation Information
Patent Citations
Single-antenna pilot frequency signal processing module, multi-channel signal transmission device and application
CN111327341A
Combined antenna
JP1998013148A
Light slip ring
JP2003123178A
Wireless platform for rotary joint
US20140099890A1
Full-duplex wireless data transfer for rotary joints
US20210351901A1