The present application claims priority to Chinese Patent Application No. 201910595046.5, filed Jul. 3, 2019, the entire content of which is incorporated herein by reference as if set forth fully herein
The present invention relates to the field of communications, and more particularly to feed networks for antennas, antennas, a feed method for antennas, and a method of operating antennas.
Each cell in a cellular communication system has one or more antennas that are configured to provide two-way wireless radio frequency (RF) communication to mobile users geographically located within the cell. While a single antenna may be used to provide cellular service throughout the cell, multiple antennas are typically used and each antenna is configured to provide service to a respective sector of the cell. Typically, the multiple sector antennas are arranged on a tower and serve respective sectors by forming radiation beams (also referred to herein as “antenna beams”) that face outwardly in different directions in the horizontal or “azimuth” plane.
Typically, a base station antenna includes one or more phase-controlled arrays of radiating elements, with the radiating elements arranged in one or more vertical columns (a “column” herein, unless otherwise specified, refers to a column oriented in a vertical direction) when the antenna is mounted for use. Herein, “vertical” refers to a direction that is perpendicular relative to the plane defined by the horizon. Elements in the antenna that are referred to as being arranged, disposed or extending in a vertical direction means that when the antenna is mounted on a support structure for operation and there is no physical tilt, the elements are arranged, disposed or extending in a direction that is perpendicular relative to the plane defined by the horizon.
In a cellular base station having a conventional “3-sector” configuration, each sector antenna typically has a beamwidth of about 65° in the azimuth plane (a “beamwidth” herein, unless otherwise specified, refers to a half-power (−3 dB) beamwidth), as shown in
A first aspect of this invention is to provide a feed network for an antenna. The operating frequency band of the antenna comprises a first sub-band and a second sub-band that is at lower frequencies than the first sub-band, wherein the antenna comprises an array of radiating elements, the array of radiating elements including a first column of radiating elements that is located at a side portion of the array of radiating elements and a second column of radiating elements that is located at a middle portion of the array of radiating elements, the feed network comprises a first filter configured to at least partially filter out a signal within the first sub-band, and the feed network is configured to feed the first column of radiating elements via the first filter and to not feed the second column of radiating elements via the first filter, such that the signal strength of a first sub-component of the signal within the first sub-band that is fed to the first column of radiating elements is smaller than the signal strength of a second sub-component of the signal within the first sub-band that is fed to the second column of radiating elements, and the signal strength of a first sub-component of the signal within the second sub-band that is fed to the first column of radiating elements is not smaller than the signal strength of a second sub-component of the signal within the second sub-band that is fed to the second column of radiating elements.
A second aspect of this invention is to provide a feed network for an antenna. The operating frequency band of the antenna comprises a first sub-band and a second sub-band that is at lower frequencies than the first sub-band, wherein the antenna comprises an array of radiating elements, the array of radiating elements including a first column of radiating elements that is located at a side portion of the array of radiating elements and a second column of radiating elements that is located at a middle portion of the array of radiating elements, the feed network comprises a first attenuator that attenuates signals within the first sub-band, and the feed network is configured to feed the first column of radiating elements via the first attenuator and to not feed the second column of radiating elements via the first attenuator, such that the signal strength of a first sub-component of the signal within the first sub-band that is fed to the first column of radiating elements is smaller than the signal strength of a second sub-component of the signal within the first sub-band that is fed to the second column of radiating elements, and the signal strength of a first sub-component of the signal within the second sub-band that is fed to the first column of radiating elements is not smaller than the signal strength of a second sub-component of the signal within the second sub-band that is fed to the second column of radiating elements.
A third aspect of this invention is to provide a feed network for an antenna. The operating frequency band of the antenna comprises a first sub-band and a second sub-band that is at higher frequencies than the first sub-band, wherein the antenna comprises an array of radiating elements, the array of radiating elements including a first column of radiating elements that is located at a middle portion of the array of radiating elements and a second column of radiating elements that is located at a side portion of the array of radiating elements, the feed network comprises a first filter that is configured to at least partially filter out a signal within the first sub-band, and the feed network is configured to feed the first column of radiating elements via the first filter and to not feed the second column of radiating elements via the first filter, such that the signal strength of a first sub-component of the signal within the first sub-band that is fed to the first column of radiating elements is smaller than the signal strength of a second sub-component of the signal within the first sub-band that is fed to the second column of radiating elements, and the signal strength of a first sub-component of the signal within the second sub-band that is fed to the first column of radiating elements is not smaller than the signal strength of a second sub-component of the signal within the second sub-band that is fed to the second column of radiating elements.
A fourth aspect of this invention is to provide a feed network for an antenna. The operating frequency band of the antenna comprises a first sub-band and a second sub-band that is at lower frequencies than the first sub-band, wherein the antenna comprises an array of radiating elements, the array of radiating elements including a plurality of rows of radiating elements that are oriented in a horizontal direction, respectively, wherein each row of radiating elements includes a first radiating element which is closer to a side portion of the array of radiating elements and a second radiating element which is closer to a middle portion of the array of radiating elements, the feed network comprises a plurality of power dividers that correspond to the respective plurality of rows of radiating elements, each power divider feeds the first and second radiating elements in each row of radiating elements, wherein the feed network further comprises a plurality of first filters, each of which is provided in a feed path of the corresponding power divider that feeds the first radiating element and is configured to at least partially filter out a signal within the first sub-band in the signals that pass on the feed path, and the plurality of first filters are configured such that a first sub-component of the signal that is fed to the first radiating element of each row of radiating elements has a first signal strength, and the strength of a second sub-component of the signal that is fed to the second radiating element of each row of radiating elements has a second signal strength, where the first signal strength is smaller than the second signal strength for the first sub-band, and the first signal strength is not smaller than the second signal strength for the second sub-band.
A fifth aspect of this invention is to provide an antenna. The antenna has an operating frequency band that comprises a first sub-band and a second sub-band that is at lower frequencies than the first sub-band, the antenna comprising: an array of radiating elements, the array of radiating elements comprising a first column of radiating elements that is located at a side portion of the array of radiating elements and a second column of radiating elements that is located at a middle portion of the array of radiating elements; and a feed network as described above.
A sixth aspect of this invention is to provide an antenna. The antenna has an operating frequency band that comprises a first sub-band and a second sub-band that is at lower frequencies than the first sub-band, the antenna comprising: a first array of radiating elements for generating a first antenna beam in an azimuth plane, the first array comprising a first column of radiating elements that is located at a side portion of the first array of radiating elements and a second column of radiating elements that is located at a middle portion of the first array of radiating elements; a second array of radiating elements for generating a second antenna beam in the azimuth plane, the second array comprising a third column of radiating elements that is located at a side portion of the second array of radiating elements and a fourth column of radiating elements that is located at a middle portion of the second array of radiating elements, wherein the first array of radiating elements and the second array of radiating elements are positioned to have a mechanical tilt relative to each other such that the first antenna beam and the second antenna beam have different pointing directions in the azimuth plane; a first feed network comprising a first filter, the first filter being configured to at least partially filter out a first signal within the first sub-band, the first feed network being configured to feed the first column of radiating elements via the first filter and to not feed the second column of radiating elements via the first filter, such that the signal strength of a first sub-component of the first signal within the first sub-band that is fed to the first column of radiating elements is smaller than the signal strength of a second sub-component of the first signal within the first sub-band that is fed to the second column of radiating elements, and the signal strength of a first sub-component of the first signal within the second sub-band that is fed to the first column of radiating elements is not smaller than the signal strength of a second sub-component of the first signal within the second sub-band that is fed to the second column of radiating elements; and a second feed network comprising a second filter, the second filter being configured to at least partially filter out a second signal within the first sub-band, the second feed network being configured to feed the third column of radiating elements via the second filter and to not feed the fourth column of radiating elements via the second filter, such that the signal strength of a third sub-component of the second signal within the first sub-band that is fed to the third column of radiating elements is smaller than the signal strength of a fourth sub-component of the second signal within the first sub-band that is fed to the fourth column of radiating elements, and the signal strength of a third sub-component of the second signal within the second sub-band that is fed to the third column of radiating elements is not smaller than the signal strength of a fourth sub-component of the second signal within the second sub-band that is fed to the fourth column of radiating elements.
A seventh aspect of this invention is to provide a method of feeding an antenna. The operating frequency band of the antenna comprises a first sub-band and a second sub-band that is at lower frequencies than the first sub-band, wherein the antenna comprises an array of radiating elements, and the array of radiating elements comprises a first column of radiating elements that is located at a side portion of the array of radiating elements and a second column of radiating elements that is located at a middle portion of the array of radiating elements, the method comprising: attenuating signals within the first sub-band in signals that are fed to the first column of radiating elements, such that the signal strength of a first sub-component of a first signal within the first sub-band that is fed to the first column of radiating elements is smaller than the signal strength of a second sub-component of a first signal within the first sub-band that is fed to the second column of radiating elements, and the signal strength of a first sub-component of a first signal within the second sub-band that is fed to the first column of radiating elements is not smaller than the signal strength of a second sub-component of a first signal within the second sub-band that is fed to the second column of radiating elements.
An eighth aspect of this invention is to provide a method of operating an antenna. The operating frequency band of the antenna comprises a first sub-band and a second sub-band that is at lower frequencies than the first sub-band, wherein the antenna comprises an array of radiating elements, and the array of radiating elements comprises a first column of radiating elements that is located at a side portion of the array of radiating elements and a second column of radiating elements that is located at a middle portion of the array of radiating elements, the method comprising: transmitting, by the first column of radiating elements, a filtered signal, and transmitting, by the second column of radiating elements, a signal that is not filtered, wherein the signal strength of a first sub-component of a signal within the first sub-band that is transmitted by the first column of radiating elements is smaller than the signal strength of a second sub-component of the signal within the first sub-band that is transmitted by the second column of radiating elements, and the signal strength of a first sub-component of the signal within the second sub-band that is transmitted by the first column of radiating elements is not smaller than the signal strength of a second sub-component of the signal within the second sub-band that is transmitted by the second column of radiating elements.
Further features of the present invention and advantages thereof will become apparent from the following detailed description of exemplary embodiments with reference to the attached drawings.
Note that, in some cases the same elements or elements having similar functions are denoted by the same reference numerals in different drawings, and description of such elements is not repeated. In some cases, similar reference numerals and letters are used to refer to similar elements, and thus once an element is defined with reference to one figure, it need not be further discussed with reference to subsequent figures.
The position, size, range, or the like of each structure illustrated in the drawings may not be drawn to scale. Thus, the invention is not necessarily limited to the position, size, range, or the like as disclosed in the drawings.
The azimuth beamwidth of antenna 100 will vary with frequency. When the operating frequency band of the antenna is wide (for example, when the antenna 100 operates in the 1695-2690 MHz band), the amount of variation in the azimuth beamwidth may become unacceptably large.
Pursuant to embodiments of the present invention, feed networks for base station antennas are provided that may exhibit reduced variation in azimuth beamwidth across the operating frequency band of the antennas. The feed networks according to embodiments of the present invention include one or more filters that may at least partially filter out signals within a specific frequency range that are fed to at least some of the columns of radiating elements in the array of radiating elements. For example, a filter may be disposed on a feed path to at least one column of radiating elements that is located at a side portion of the array of radiating elements and may at least partially filter out signals within a higher portion of the operating frequency band in the feed signals. Thus, for a signal within the higher portion of the operating frequency band, due to filtering by the filter, the signal strength of the sub-components of the signal that are fed to the radiating elements in at least one column of the radiating elements that is located at the side portion of the array of radiating elements may be smaller than the signal strength of the sub-components of the signal that are fed to the radiating elements in at least one column of the radiating elements that is located at a middle portion of the array of radiating elements; and for a signal within a lower portion of the operating frequency band, as it is not processed by the filter, the signal strength of the sub-components of the signal that are fed to the radiating elements in at least one column of radiating elements that is located at the side portion of the array of radiating elements is not smaller than the signal strength of the sub-components of the signal that are fed to the radiating elements in at least one column of radiating elements that is located at a middle portion of the array of radiating elements. This filtering of the signal within the higher portion of the operating frequency band broadens the azimuth beamwidth of the antenna beam within the higher portion of the operating frequency band, such that the difference between the azimuth beamwidths of the antenna beams within the higher and lower portions of the operating frequency bands may be reduced.
A feed network according to another embodiment of the present invention may include a first filter and a second filter, where the first filter is configured to at least partially filter out a signal within a higher portion of the operating frequency band that is fed to at least one column of radiating elements that is located at a side portion of the array of radiating elements, and the second filter is configured to at least partially filter out a signal within a lower portion of the operating frequency band that is fed to at least one column of radiating elements that is located at a middle portion of the array of radiating elements. Thus, for signals within the higher portion of the operating frequency band, the signal strength of the sub-components of the signal that are fed to the radiating elements in at least one column of radiating elements that is located at the side portion of the array of radiating elements is less than the signal strength of the sub-components of the signal that are fed to the radiating elements in at least one column of radiating elements that is located at the middle portion of the array of radiating elements; while for the signals within the lower portion of the operating frequency band, the signal strength of the sub-components of the signal that are fed to the radiating elements in at least one column of radiating elements that is located at the side portion of the array of radiating elements is greater than the signal strength of the sub-components of the signal that are fed to the radiating elements in at least one column of the radiating elements that is located at the middle portion of the array of radiating elements. This filtering of signals within the higher and lower portions of the operating frequency band allows the azimuth beamwidth of the antenna beam within the higher portion of the operating frequency band to be broadened and the azimuth beamwidth of the antenna beam within the lower portion of the operating frequency band to be narrowed, so that the difference between the azimuth beamwidths of the antenna beams generated in the higher and lower portions of the operating frequency band is reduced.
The phase shifted signals are fed to the rows of radiating elements 225 to 228 of the array of radiating elements 220 via filtering-dividing modules 212-1 to 212-4, respectively. Each of the filtering-dividing modules 212-1 to 212-4 is configured to divide the signals from the corresponding outputs 214-1 to 214-4 of the phase shifter 211 into three smaller sub-components and to filter (at least partially filter out) signals within a specific portion of the operating frequency band. The three sub-components output by each of the filtering-dividing modules 212-1 to 212-4 are respectively fed to three radiating elements in each row of radiating elements 225 to 228. Each of the columns of radiating elements 221 to 223 includes a plurality of radiating elements arranged in a vertical direction. In the illustrated embodiment, the plurality of radiating elements are arranged in lines. However, it will be appreciated that the plurality of radiating elements may be arranged in any known pattern, for example the plurality of radiating elements oriented in a vertical direction may be staggered in the horizontal direction. In the antenna 200 shown in
In some embodiments, each of the filtering-dividing modules 212-1 to 212-4 in
In the depicted embodiments, the configuration of the filters in each of the filtering-dividing modules 212-1 to 212-4 in the feed paths feeding the same column of radiating elements are the same, such that the strengths of signals that are fed to the same column of radiating elements are the same. Referring to
It will be appreciated that it is also possible to include a filter only on the feed path for a column of radiating elements that is located at one side of the array of radiating elements while still achieving the beneficial effects of the present invention as long as the strength (e.g., S21 or S23) of the signal within the higher portion of the operating frequency band that is fed to at least one column of radiating elements that is located at the one side of the array of radiating elements is less than the strength of the signal that is fed to at least one column of radiating elements that is located in the middle portion of the array. For example, a filter may be disposed only on the feed path for the column of radiating elements 221 to partially filter out signals within the higher portion of the operating frequency band, such that the ratio of strengths S21:S22:S23 of signals within the higher portion of the operating frequency band that are fed respectively to the three columns of radiating elements 221, 222, 223 may be, for example, 0.3:1:1 and the ratio of the strengths S21:S22:S23 of the signals within the lower portion of the operating frequency band may be, for example, 1:1:1. This may also cause the azimuth beamwidth within the higher portion of the operating frequency band of the array of radiating elements to be broadened such that the difference in azimuth beamwidth within the higher portion of the operating frequency band and within the lower portion of the operating frequency band is reduced.
It will be appreciated that the filters 213-1 and 213-3 of
Although all the filters described in the above description are configured to partially filter out signals within the higher portion of the operating frequency band, it will be appreciated that the filters in each of the filtering-dividing modules 212-1 to 212-4 (e.g., filters 213-1 and/or 213-3) may be configured to filter out signals within the higher portion of the operating frequency band completely. For example, a filter (e.g., filter 213-1) in each of the filtering-dividing modules 212-1 to 212-4 for the column 221 is configured to filter out signals within the higher portion of the operating frequency band completely, so that the ratio of the strengths S21:S22:S23 of the signals within the higher frequency band that are fed to three columns 221, 222, 223 respectively may be, for example, 0:1:1, 0:1:0.7, etc., which is equivalent to having only two columns of radiating elements operating within the higher portion of the operating frequency band, so that the effect of broadening the azimuth beamwidth within the higher portion of the operating frequency band may be achieved.
In some embodiments, each of the filtering-dividing modules 212-1 to 212-4 in
In these embodiments, the configuration of the filters on the feed paths feeding the same column of radiating elements in each of the filtering-dividing modules 212-1 to 212-4 are the same, such that the strengths of the signals that are fed to the same column of radiating elements are the same. Referring to
In some embodiments, by configuring the filters (e.g., filter 213-2) in each filtering-dividing modules 212-1 to 212-4 that are respectively for radiating elements in at least one column of radiating elements (e.g., the column 222) that is located at the middle portion, signals within the lower portion of the operating frequency band may be completely filtered out by these filters. Thus, within the lower portion of the operating frequency band, for example, the array of radiating element 220 may be equivalent to an array that has only two columns of radiating elements 221 and 223 with a significant wider distance between the two neighboring columns, such that the azimuth beamwidth within the lower portion of the operating frequency band may be narrowed such that the difference between azimuth beamwidths of the antenna beam within the higher and lower portions of the operating frequency band is reduced.
In the example embodiments described above, specific values of the ratio of the strengths are described as an example. It will be appreciated that embodiments of the present invention are not limited thereto, as long as the filter is configured such that the strength of signals within the higher portion of the operating frequency band for at least one column of radiating elements that is located at a side of the array is less than that for at least one column of radiating elements that is located in a middle portion of the array, and the strength of signals within the lower portion of the operating frequency band for at least one column of radiating elements that is located at the middle portion of the array is less than that for at least one column of radiating elements that is located at the side portion of the array. The inventors of the present invention have found that, for the higher portion of the operating frequency band, as long as the ratio of the strength of signals that are fed to at least one column of radiating elements that is located at a side of the array to the strength of signals that are fed to at least one column of radiating elements that is located in the middle portion of the array falls within the range of 0.2:1 to 0.7:1, it may be possible to achieve a relatively significant effect of broadening the azimuth beamwidth within the higher portion of the operating frequency band; and for the lower portion of the operating frequency band, as long as the ratio of the strength of signals that are fed to at least one column of radiating elements that is located at the middle portion of the array to the strength of signals that are fed to at least one column of radiating elements that is located at a side portion of the array falls within the range of 0.5:1 to 0.9:1, it may be possible to achieve a relatively significant effect of narrowing the azimuth beamwidth within the lower portion of the operating frequency band.
In a specific example, the operating frequency band of the array of radiating elements 220 in the antenna 200 is 1695˜2690 MHz band, the higher portion of the operating frequency band may refer to 2200˜2690 MHz band, and the lower portion of the operating frequency band may refer to 1695˜2200 MHz band. Filters 213-1 and 213-3 are configured to at least partially filter out signals within the 2200˜2690 MHz band, and filter 213-2 is configured to at least partially filter out signals within the 1695˜2200 MHz band. It will be appreciated that the operating frequency band of the antenna may be divided into more than two sub-bands, i.e., the operating frequency band of the antenna may include other bands in addition to the above-described higher portion of the operating frequency band and lower portion of the operating frequency band. For example, the higher portion of the operating frequency band may refer to 2310˜2690 MHz band, and the lower portion of the operating frequency band may refer to 1695˜2050 MHz band. Filters 213-1 and 213-3 may be configured to at least partially filter out signals within the 2310˜2690 MHz band, and filter 213-2 may be configured to at least partially filter out signals within the 1695˜2050 MHz band, and all of the filters in each filtering-dividing module 212-1 to 212-4 (for example, filters 213-1 to 213-3) do not perform the above described filtering processing on signals within the 2050˜2310 MHz band.
It will be appreciated that filters may also be disposed only on the feed paths for one column of radiating elements that is located at one side portion of the array of radiating elements to at least partially filter out signals within the higher portion of the operating frequency band. It will be appreciated that the filtering effects (degree of attenuation) of the two filters on the feed paths for the two columns of radiating elements that are respectively located at both side portions of the array may be different. It will be appreciated that in the case where the signal filtering effects for the two columns that are located at both side portions of the array are the same, a common filter may be used to perform the filtering for both columns. It will be appreciated that each filter may be configured to partially or completely filter out signals within a specific frequency band. Examples for these cases may be referred to above descriptions, and duplicated explanations is omitted here.
In the embodiment described above, the array of radiating elements 220 includes three columns of radiating elements 221, 222, 223. It will be appreciated that the array of radiating elements may include more or less columns of radiating elements. For example, the array of radiating elements may include four columns of radiating elements and the four columns of radiating elements may be fed by filtering-dividing modules that are each capable of providing four outputs. In some embodiments, a filter may be disposed only on the feed path which feeds at least one column of radiating elements that is located at a side portion of the array of radiating elements to at least partially filter out signals within the higher portion of the operating frequency band, such that for the higher portion of the operating frequency band, the ratio of the strengths of the signals that are fed to the four columns of radiating elements is, for example, 0.3:1:1:0.3, 0.5:1:1:0.5, etc., and for the lower portion of the operating frequency band, the ratio of strengths of the signals that are fed to the four columns of radiating elements is 1:1:1:1. In some embodiments, a filter may be disposed on the feed path which feeds at least one column of radiating elements that is located at a side portion of the array of radiating elements to at least partially filter out signals within the higher portion of the operating frequency band, and a filter is disposed in the feed path feeding at least one column of radiating element that is located within the middle portion of the array of radiating elements to at least partially filter out signals within the lower portion of the operating frequency band, such that for higher portion of the operating frequency band, the ratio of the strengths of the signals that are fed to the four columns of radiating elements is, for example, 0.3:1:1:0.3, 0.5:1:1:0.5, etc., and for the lower portion of the operating frequency band, the ratio of the strengths of the signals that are fed to the four columns of radiating elements is, for example, 1:0.5:0.5:1, 1:0.9:0.9:1 and so on.
In some embodiments, the invention may be used in dual-beam antennas as well as multiple beam antennas. For example, an antenna according to embodiments of the present invention may include two arrays of radiating elements having a particular mechanical tilt in the azimuth plane with respect to each other, wherein the feed network for at least one of the two arrays of radiating elements may be as described in any of the embodiments above. In some embodiments, an attenuator may be used to replace any of the filters in the above embodiments. In some embodiments, the functionality of the filters in the above embodiments may be implemented in a multiplexer with filtering function.
It will be appreciated that the antenna may also include other conventional components not shown in the drawings, such as a radome, a reflector assembly and a plurality of circuit components and other structures mounted therein.
Embodiments are described herein primarily with respect to operations of base station antennas in a transmitting mode in which an array of radiating elements emits signals. It will be appreciated that base station antennas according to embodiments of the present invention may operate in a transmitting mode and/or a receiving mode in which an array of radiating elements receives signals. The filters described herein may at least partially filter out signals within a specific portion of the operating frequency band for such received signals in order to reduce the difference between the beamwidths of the antenna beams generated in response to signals within the higher and lower portion of the operating frequency bands for the received signals.
The present invention has been described with reference to the accompanying drawings, which show a number of example embodiments thereof. It should be understood, however, that the present invention can be embodied in many different ways, and is not limited to the embodiments described below. Rather, the embodiments described below are intended to make the disclosure of the present invention more complete and fully convey the scope of the present invention to those skilled in the art. It should also be understood that the embodiments disclosed herein can be combined in any way to provide many additional embodiments.
The terminology used herein is for the purpose of describing particular embodiments, but is not intended to limit the scope of the present invention. All terms (including technical terms and scientific terms) used herein have meanings commonly understood by those skilled in the art unless otherwise defined. For the sake of brevity and/or clarity, well-known functions or structures may be not described in detail.
Herein, when an element is described as located “on” “attached” to, “connected” to, “coupled” to or “in contact with” another element, etc., the element can be directly located on, attached to, connected to, coupled to or in contact with the other element, or there may be one or more intervening elements present. In contrast, when an element is described as “directly” located “on”, “directly attached” to, “directly connected” to, “directly coupled” to or “in direct contact with” another element, there are no intervening elements present. In the description, references that a first element is arranged “adjacent” a second element can mean that the first element has a part that overlaps the second element or a part that is located above or below the second element.
Herein, the foregoing description may refer to elements or nodes or features being “connected” or “coupled” together. As used herein, unless expressly stated otherwise, “connected” means that one element/node/feature is electrically, mechanically, logically or otherwise directly joined to (or directly communicates with) another element/node/feature. Likewise, unless expressly stated otherwise, “coupled” means that one element/node/feature may be mechanically, electrically, logically or otherwise joined to another element/node/feature in either a direct or indirect manner to permit interaction even though the two features may not be directly connected. That is, “coupled” is intended to encompass both direct and indirect joining of elements or other features, including connection with one or more intervening elements.
Herein, terms such as “upper”, “lower”, “left”, “right”, “front”, “rear”, “high”, “low” may be used to describe the spatial relationship between different elements as they are shown in the drawings. It should be understood that in addition to orientations shown in the drawings, the above terms may also encompass different orientations of the device during use or operation. For example, when the device in the drawings is inverted, a first feature that was described as being “below” a second feature can be then described as being “above” the second feature. The device may be oriented otherwise (rotated 90 degrees or at other orientation), and the relative spatial relationship between the features will be correspondingly interpreted.
Herein, the term “A or B” used through the specification refers to “A and B” and “A or B” rather than meaning that A and B are exclusive, unless otherwise specified.
The term “exemplary”, as used herein, means “serving as an example, instance, or illustration”, rather than as a “model” that would be exactly duplicated. Any implementation described herein as exemplary is not necessarily to be construed as preferred or advantageous over other implementations. Furthermore, there is no intention to be bound by any expressed or implied theory presented in the detailed description.
Herein, the term “substantially”, is intended to encompass any slight variations due to design or manufacturing imperfections, device or component tolerances, environmental effects and/or other factors. The term “substantially” also allows for variation from a perfect or ideal case due to parasitic effects, noise, and other practical considerations that may be present in an actual implementation.
Herein, certain terminology, such as the terms “first”, “second” and the like, may also be used in the following description for the purpose of reference only, and thus are not intended to be limiting. For example, the terms “first”, “second” and other such numerical terms referring to structures or elements do not imply a sequence or order unless clearly indicated by the context.
Further, it should be noted that, the terms “comprise”, “include”, “have” and any other variants, as used herein, specify the presence of stated features, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, steps, operations, elements, components, and/or groups thereof.
Although some specific embodiments of the present invention have been described in detail with examples, it should be understood by a person skilled in the art that the above examples are only intended to be illustrative but not to limit the scope of the present invention. The embodiments disclosed herein can be combined arbitrarily with each other, without departing from the scope and spirit of the present invention. It should be understood by a person skilled in the art that the above embodiments can be modified without departing from the scope and spirit of the present invention. The scope of the present invention is defined by the attached claims.
Number | Date | Country | Kind |
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201910595046.5 | Jul 2019 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/US2020/038655 | 6/19/2020 | WO |