A transceiver used in a radio unit for wireless communication, comprises: a circuitry board including a transmitter and a receiver; a first connector on a first side of the circuitry board, wherein the first connector is configured to be connected to an interface card; a second connector on a second side of the circuitry board, wherein the second side is opposite the first side and the second connector is configured to be connected to a digital card via a flexible circuit; and a pair of transmit port and receive port located on the second side of the circuitry board, wherein the transmit port is coupled to the transmitter and the receive port coupled to the receiver, respectively. When the transceiver is part of a split-mount radio unit (SRU), the first connector is connected to the interface card and the second connector is not in use. When the transceiver is part of an all-outdoor radio unit (AOU), the second connector is connected to the digital card and the first connector is not in use.
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1. A transceiver used in a radio unit for wireless communication, comprising:
a circuitry board including a transmitter and a receiver;
a first connector on a first side of the circuitry board, wherein the first connector is configured to be connected to an interface card;
a second connector on a second side of the circuitry board, wherein the second side is opposite the first side and the second connector is configured to be connected to a digital card via a flexible circuit; and
a pair of transmit port and receive port located on the second side of the circuitry board, wherein the transmit port is coupled to the transmitter and the receive port is coupled to the receiver, respectively.
13. An all-outdoor radio unit, comprising:
an enclosure including a pair of first and second castings, wherein each of the pair of first and second castings includes a heat sink;
a transceiver mounted on an inside surface of the first casting, wherein the transceiver includes a first connector on a first side of the transceiver facing the inside surface of the first casting and a second connector and a pair of transmit port and receive port on a second side opposite the first side of the transceiver;
a diplexer including a pair of transmit port and receive port on a first side of the diplexer facing the inside surface of the first casting and a common port on an opposite side of the diplexer facing an inside surface of the second casting, wherein the pair of transmit port and receive port of the diplexer are connected to the corresponding pair of transmit port and receive port of the transceiver;
a digital card mounted on the inside surface of the second casting, wherein the digital card includes a hole near its center and a connector on a surface opposite the inside surface of the second casting for connecting to the second connector of the transceiver via a flexible circuit; and
an antenna outside the enclosure, wherein the antenna includes a port connected to the common port of the diplexer via a waveguide connection through a hole of the second casting and the hole near the center of the digital card, respectively.
8. A split-mount radio unit, comprising:
an indoor unit; and
an outdoor unit that is connected to the indoor unit via a cable, wherein the outdoor unit further includes:
an enclosure including a pair of first and second castings, wherein the first casting includes a heat sink;
an interface card mounted on an inside surface of the first casting, wherein the interface card includes a connector on a surface opposite the inside surface of the first casting;
a transceiver including a transmitter and a receiver mounted on the inside surface of the first casting, wherein the transceiver includes a first connector on a first side of the transceiver facing the inside surface of the first casting and a second connector and a pair of transmit port and receive port on a second side of the transceiver opposite the first side of the transceiver and the second connector is configured to be connected to a digital card via a flexible circuit, the first connector is connected to the connector of the interface card and the second connector is not in use and the transmit port is coupled to the transmitter and the receive port is coupled to the receiver, respectively;
a diplexer including a pair of transmit port and receive port on a surface facing the second side of the transceiver and a common port on an opposite surface facing an inside surface of the second casting, wherein the pair of transmit port and receive port of the diplexer are connected to the corresponding pair of transmit port and receive port of the transceiver; and
an antenna outside the enclosure, wherein the antenna includes a port connected to the common port of the diplexer through a hole of the second casting.
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9. The split-mount radio unit of
10. The split-mount radio unit of
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14. The all-outdoor radio unit of
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16. The all-outdoor radio unit of
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This Application is a U.S. National Stage Application filed under 35 U.S.C. §371 of PCT Patent Application Ser. No. PCT/US2013/037610 filed on Apr. 22, 2013, which claims the benefit of and priority to U.S. Provisional Patent Application No. 61/637,788 filed on Apr. 24, 2012, which is hereby incorporated by reference in its entirety.
The presented invention relates to wireless communications and, in particular, to a flexible unified architecture for point-to-point digital microwave radios.
The fourth-generation (4G) wireless networks represent the next wave of mobile multimedia networks currently in development and the 4G Long Term Evolution (LTE) mobile networks are becoming a reality. Among others, the backhaul point-to-point microwave radios is a key part of this whole 4G network and plays an important role to the network success.
Point-to-Point Microwave Radios have a very wide range of frequency bands, typical licensed bands include 6 GHz, 7 GHz, 8 GHz, 10 GHz, 11 GHz, 13 GHz, 15 GHz, 18 GHz, 23 GHz, 26 GHz, 28 GHz, 32 GHz, 38 GHz and 42 GHz, plus unlicensed bands at sub 6 GHz, 60 GHz and the latest light license band of E-band (71-86 GHz). The covered modulations include QPSK, 16 QAM, 32 QAM, 64 QAM, 128 QAM, 256 QAM and extends to latest 512 QAM and 1024 QAM, and future even higher modulation such as 2048 QAM and 4096 QAM. The covered bandwidth includes popular international bandwidth of 3.5 MHz/7 MHz/14 MHz/28 MHz/56 MHz and North America's FCC bands of 5 MHz/10 MHz/20 MHz/30 MHz/40 MHz/50 MHz and coming new 112 MHz, 250 MHz and 500 MHz channel bandwidths.
In order to support these different radio configurations, frequency bands, modulations, capacity offerings, it is becoming more and more important to develop a point-to-point microwave radio with common mechanics, common interface to antenna, common software, and common automatic test equipment (ATE) for achieving such goals as low cost of deployment and maintenance and short time to market, etc. Moreover, both the operators and equipment vendors/manufacturers also prefer that their microwave equipment complies with a flexible unified architecture that supports various platforms, which is scalable, interchangeable, and shares common elements for all capacities and frequency bands.
According to some implementations, a transceiver used in a radio unit for wireless communication comprises: a circuitry board including a transmitter and a receiver; a first connector on a first side of the circuitry board, wherein the first connector is configured to be connected to an interface card; a second connector on a second side of the circuitry board, wherein the second side is opposite the first side and the second connector is configured to be connected to a digital card via a flexible circuit; and a pair of transmit port and receive port located on the second side of the circuitry board, wherein the transmit port is coupled to the transmitter and the receive port coupled to the receiver, respectively.
According to some implementations, a split-mount radio unit comprises an indoor unit and an outdoor unit that is connected to the indoor unit via a cable. The outdoor unit further includes: an enclosure including a pair of first and second castings, wherein the first casting includes a heat sink; an interface card mounted on an inside surface of the first casting, wherein the interface card includes a connector on a surface opposite the inside surface of the first casting; a transceiver mounted on the inside surface of the first casting, wherein the transceiver includes a first connector on a first side of the transceiver facing the inside surface of the first casting and a second connector and a pair of transmit port and receive port on a second side opposite the first side of the transceiver, the first connector is connected to the connector of the interface card and the second connector is not in use; a diplexer including a pair of transmit port and receive port on a surface facing the second side of the transceiver and a common port on an opposite surface facing an inside surface of the second casting, wherein the pair of transmit port and receive port of the diplexer are connected to the corresponding pair of transmit port and receive port of the transceiver; and an antenna outside the enclosure, wherein the antenna includes a port connected to the common port of the diplexer through a hole of the second casting.
According to some implementations, an all-outdoor radio unit comprises: an enclosure including a pair of first and second castings, wherein each of the pair of first and second castings includes a heat sink; a transceiver mounted on an inside surface of the first casting, wherein the transceiver includes a first connector on a first side of the transceiver facing the inside surface of the first casting and a second connector and a pair of transmit port and receive port on a second side opposite the first side of the transceiver; a diplexer including a pair of transmit port and receive port on a first side of the diplexer facing the inside surface of the first casting and a common port on an opposite side of the diplexer facing an inside surface of the second casting, wherein the pair of transmit port and receive port of the diplexer are connected to the corresponding pair of transmit port and receive port of the transceiver; a digital card mounted on the inside surface of the second casting, wherein the digital card includes a hole near its center and a connector on a surface opposite the inside surface of the second casting for connecting to the second connector of the transceiver via a flexible circuit; and an antenna outside the enclosure, wherein the antenna includes a port connected to the common port of the diplexer via a waveguide connection through a hole of the second casting and the hole near the center of the digital card, respectively.
Different aspects of the present invention as well as features and advantages thereof will be more clearly understood hereinafter as a result of a detailed description of implementations of the present invention when taken in conjunction with the accompanying drawings, which are not necessarily drawn to scale. Like reference numerals refer to corresponding parts throughout the several views of the drawings.
Reference will now be made in detail to implementations, examples of which are illustrated in the accompanying drawings. In the following detailed description, numerous non-limiting specific details are set forth in order to assist in understanding the subject matter presented herein. It will be apparent, however, to one of ordinary skill in the art that various alternatives may be used without departing from the scope of the present invention and the subject matter may be practiced without these specific details.
The point-to-point microwave radios in its path transition from all indoor radios, to split mount radios and now to all outdoor radios. In the past, most radios used in Point to Point microwave wireless were comprised of radio units that were mounted indoors. These radios hardware platforms required radios that were rack mounted indoors and had to use large coax or Elliptical Waveguide running out from the indoor radio unit up the tower (or to the roof top), connecting the antenna. The industry later came out with a split-mount design radio system consisting of an indoor modem unit “IDU” and an outdoor RF Unit “ODU” that mounts the actual radio RF component hardware directly onto the back of the antenna. Today the industry has migrated to All Outdoor radio Unit systems “AOU” comprised of a single outdoor unit mounted to the back of the antenna. These AOU's contain the RF components, modems, and network interface. The connection between the AOU and the network switch is typically outdoor shielded twisted pair (CAT-5e) or fiber. The AOU design has far greater advantages over the indoor radio or IDU+ODU spit mount designs.
An effective design for both SRU and AOU becomes a challenge for all radio equipment vendors. This invention discloses many ideas for both product families, SRU and AOU, so as to share design, hardware, software, calibration, test flow, test stations, antenna interface, and mounting mechanics etc., and reduce the design, manufacturing and time to market cycles.
Note that the transceiver, as a key module for both product families (SRU and AOU), has the following features:
In some implementations, a common transceiver is used for SRU and AOU.
The common diplexer 25/45 can be seen in
In some implementations, the present invention proposes a common antenna interface and a common mounting mechanics for the SRU and AOU.
The common antenna 30 can be seen in
In some implementations, the present invention proposes common software and common control for SRU and AOU
In some implementations, the present invention proposes a common calibration routine, common Automatic Test Equipment (ATE) and common test flow for both SRU and AOU.
ATE flow chart includes the following key ideas:
Compared with traditional SRU and AOU architecture, the flexible and unified radio architecture design of the present application has the following key advantages:
Overall, the architecture of the SRU and AOU is to enable the use of components and circuitry on the transceiver for both the SRU and AOU. This design conserves valuable area on the transceiver and allows the transceiver size to be minimized. Cost savings are also realized by reducing mechanical component sizes. The use of a common transceiver, diplexer, and antenna greatly reduces the number of unique components that must be designed, tested, and stocked. This reduction significantly reduces the time to market and design resources required. Economies of scale are realized in manufacturing since the volume of the common assemblies is increased.
In some implementations, the above-described methods and their variations may be implemented as computer software instructions or firmware instructions. Such instructions may be stored in an article with one or more machine-readable storage devices connected to one or more computers or integrated circuits or digital processors such as digital signal processors, microprocessors, or micro-control units (MCU), and the instructions may perform the transmission method for transmitting machine type communication (MTC) data. In addition, the method may be applied to any MTC capable mobile communications device supporting the wideband code division multiple access (WCDMA) technology and/or the LTE technology. Other variations and enhancements are possible based on what is mentioned here.
Although the terms first, second, etc. may be used herein to describe various elements, these elements should not be limited by these terms. These terms are only used to distinguish one element from another. The terminology used in the description of the invention herein is for the purpose of describing particular implementations only and is not intended to be limiting of the invention. As used in the description of the invention and the appended claims, the singular forms “a,” “an,” and “the” are intended to include the plural forms as well, unless the context clearly indicates otherwise. It will also be understood that the term “and/or” as used herein refers to and encompasses any and all possible combinations of one or more of the associated listed items. It will be further understood that the terms “includes,” “including,” “comprises,” and/or “comprising,” when used in this specification, specify the presence of stated features, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, operations, elements, components, and/or groups thereof.
As used herein, the term “if” may be construed to mean “when” or “upon” or “in response to determining” or “in accordance with a determination” or “in response to detecting,” that a stated condition precedent is true, depending on the context. Similarly, the phrase “if it is determined [that a stated condition precedent is true]” or “if [a stated condition precedent is true]” or “when [a stated condition precedent is true]” may be construed to mean “upon determining” or “in response to determining” or “in accordance with a determination” or “upon detecting” or “in response to detecting” that the stated condition precedent is true, depending on the context.
Although some of the various drawings illustrate a number of logical stages in a particular order, stages that are not order dependent may be reordered and other stages may be combined or broken out. While some reordering or other groupings are specifically mentioned, others will be obvious to those of ordinary skill in the art and so do not present an exhaustive list of alternatives. Moreover, it should be recognized that the stages could be implemented in hardware, firmware, software or any combination thereof.
The foregoing description, for purpose of explanation, has been described with reference to specific implementations. However, the illustrative discussions above are not intended to be exhaustive or to limit the invention to the precise forms disclosed. Many modifications and variations are possible in view of the above teachings. The implementations were chosen and described in order to best explain principles of the invention and its practical applications, to thereby enable others skilled in the art to best utilize the invention and various implementations with various modifications as are suited to the particular use contemplated. Implementations include alternatives, modifications and equivalents that are within the spirit and scope of the appended claims. Numerous specific details are set forth in order to provide a thorough understanding of the subject matter presented herein. But it will be apparent to one of ordinary skill in the art that the subject matter may be practiced without these specific details. In other instances, well-known methods, procedures, components, and circuits have not been described in detail so as not to unnecessarily obscure aspects of the implementations.
Nguyen, Thanh, Shen, Ying, Schmid, William, Nealis, Edwin, Walsh, Shawn, Semenyshev, Aleksandr, Kochetkov, Andrey, Yom, Dong Hong
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