This application claims priority of Taiwan Patent Application No. 108104352 filed on Feb. 11, 2019, the entirety of which is incorporated by reference herein.
The disclosure generally relates to an antenna system, and more particularly, to an antenna system for generating different radiation patterns.
Antenna arrays have high directivity and high gain, and they are widely used in the fields of military technology, radar detection, life detection, and health monitoring. However, if a conventional antenna array has an adjustable radiation pattern, it should use many antenna arrays and may occupy a large design space. It has become a critical challenge for current engineers to design a small-size antenna system and an antenna array thereof.
In an exemplary embodiment, the invention is directed to an antenna system including a power divider, a first antenna array, a second antenna array, a third antenna array, a delay device, a first switch element, and a second switch element. The power divider has a first output port, a second output port, and a third output port. The first antenna array is coupled to the first output port. The second antenna array is coupled to the second output port. The third antenna array is coupled to the third output port. The first switch element determines whether to couple the first output port to the delay device according to a first control signal. The second switch element determines whether to couple the third output port to a ground voltage according to a second control signal.
In some embodiments, the delay phase of the delay device is substantially equal to 180 degrees.
In some embodiments, the first antenna array has a first feeding point. The first control signal includes a first control voltage, a second control voltage, and a third control voltage.
In some embodiments, the first switch element includes a first diode, a second diode, and a third diode. The first diode has an anode coupled to the first output port, and a cathode coupled to the first feeding point. The second diode has an anode coupled to the first node, and a cathode coupled to the first output port. The third diode has an anode coupled to a second node, and a cathode coupled to the first feeding point. The delay device is coupled between the first node and the second node.
In some embodiments, the first diode, the second diode, and the third diode are three PIN diodes controlled by the first control voltage, the second control voltage, and the third control voltage.
In some embodiments, the first switch element further includes a first inductor, a second inductor, and a third inductor. The first inductor is coupled between the first output port and the first control node. The first control node is arranged for receiving the first control voltage. The second inductor is coupled between the first node and a second control node. The second control node is arranged for receiving the second control voltage. The third inductor is coupled between the second node and a third control node. The third control node is arranged for receiving the third control voltage.
In some embodiments, the third antenna array has a third feeding point. The second control signal includes a fourth control voltage.
In some embodiments, the second switch element includes a fourth diode. The fourth diode has an anode coupled to the third output port and the third feeding point, and a cathode coupled to the ground voltage.
In some embodiments, the fourth diode is a PIN diode controlled by the fourth control voltage.
In some embodiments, the second switch element further includes a fourth inductor and a capacitor. The fourth inductor is coupled between the third output port and a fourth control node. The fourth control node is arranged for receiving the fourth control voltage. The capacitor is coupled between the fourth control node and the ground voltage.
In some embodiments, when the antenna system operates in a first mode, the first diode is turned on, and the second diode, the third diode, and the fourth diode are turned off, such that the antenna system generates a first radiation pattern including a single main beam.
In some embodiments, when the antenna system operates in a second mode, the first diode is turned off, and the second diode, the third diode, and the fourth diode are turned on, such that the antenna system generates a second radiation pattern including two different main beams.
In some embodiments, the central operation frequency of the antenna system is substantially equal to 24 GHz.
In some embodiments, each of the first antenna array, the second antenna array, and the third antenna array includes a first radiation element, a second radiation element, a third radiation element, a fourth radiation element, a fifth radiation element, a first connection element, a second connection element, a third connection element, and a fourth connection element. The first connection element is coupled between the first radiation element and the second radiation element. The second connection element is coupled between the second radiation element and the third radiation element. The third connection element is coupled between the third radiation element and the fourth radiation element. The fourth connection element is coupled between the fourth radiation element and the fifth radiation element.
In some embodiments, the first radiation element, the second radiation element, the third radiation element, the fourth radiation element, the fifth radiation element, the first connection element, the second connection element, the third connection element, and the fourth connection element are arranged in the same straight line.
In some embodiments, the length of each of the first radiation element, the second radiation element, the third radiation element, the fourth radiation element, and the fifth radiation element is substantially equal to 0.5 wavelength of the central operation frequency.
In some embodiments, the length of each of the first connection element, the second connection element, the third connection element, and the fourth connection element is substantially equal to 0.5 wavelength of the central operation frequency.
The invention can be more fully understood by reading the subsequent detailed description and examples with references made to the accompanying drawings, wherein:
In order to illustrate the foregoing and other purposes, features and advantages of the invention, the embodiments and figures of the invention will be described in detail as follows.
Certain terms are used throughout the description and following claims to refer to particular components. As one skilled in the art will appreciate, manufacturers may refer to a component by different names. This document does not intend to distinguish between components that differ in name but not function. In the following description and in the claims, the terms “include” and “comprise” are used in an open-ended fashion, and thus should be interpreted to mean “include, but not limited to . . . ”. The term “substantially” means the value is within an acceptable error range. One skilled in the art can solve the technical problem within a predetermined error range and achieve the proposed technical performance. Also, the term “couple” is intended to mean either an indirect or direct electrical connection. Accordingly, if one device is coupled to another device, that connection may be through a direct electrical connection, or through an indirect electrical connection via other devices and connections.
The power divider 110 has a first output port P1, a second output port P2, and a third output port P3. The power divider 110 is configured to receive an input signal SIN and then divide the input signal SIN into a first output signal SOUT1, a second output signal SOUT2, and a third output signal SOUT3. Specifically, the first output port P1, the second output port P2, and the third output port P3 of the power divider 110 are arranged for outputting the first output signal SOUT1, the second output signal SOUT2, and the third output signal SOUT3, respectively. The first output signal SOUT1, the second output signal SOUT2, and the third output signal SOUT3 may have the same power, which may be substantially equal to ⅓ times the power of the input signal SIN.
The first antenna array 120, the second antenna array 130, and the third antenna array 140 are all excited by the power divider 110. Specifically, the first antenna array 120 has a first feeding point FP1 coupled to the first output port P1 of the power divider 110, the second antenna array 130 has a second feeding point FP2 coupled to the second output port P2 of the power divider 110, and the third antenna array 140 has a third feeding point FP3 coupled to the third output port P3 of the power divider 110. The total sizes of the first antenna array 120, the second antenna array 130, and the third antenna array 140 and the types of antenna elements are not limited in the invention. For example, each of first antenna array 120, the second antenna array 130, and the third antenna array 140 may be a 1×1, 1×2, 1×5, 1×7, or 1×9 antenna array, but it is not limited thereto.
The delay device 150 may be a phase delay line. The delay device 150 is configured to selectively adjust a feeding phase of the first antenna array 120. In some embodiments, a delay phase of the delay device 150 is substantially equal to 180 degrees. In alternative embodiments, the delay phase of the delay device 150 is substantially equal to 45, 90, 135, 225 or 270 degrees. The first switch element 160 determines whether to couple the first output port P1 and the first feeding point FP1 to the delay device 150 according to a first control signal SC1. The second switch element 170 determines whether to couple the second output port P2 and the second feeding point FP2 to a ground voltage VSS according to a second control signal SC2. For example, the first control signal SC1 and the second control signal SC2 may be generated by a processor of the antenna system 100 according to a user's input, environmental information or computer instructions (not shown).
In some embodiments, the antenna system 100 operates in a first mode and a second mode, which correspond to different radiation patterns. When the antenna system 100 operates in the first mode, the first output port P1 of the power divider 110 is directly coupled to the first feeding point FP1 of the first antenna array 120 (without communicating through the delay device 150) by using the first switch element 160, and the second output port P2 of the power divider 110 and the second feeding point FP2 of the second antenna array 130 are not coupled to the ground voltage VSS by using the second switch element 170, such that the antenna system 100 can generate a first radiation pattern. Conversely, when the antenna system 100 operates in the second mode, the first output port P1 of the power divider 110 is coupled through the delay device 150 to the first feeding point FP1 of the first antenna array 120 by using the first switch element 160, and the second output port P2 of the power divider 110 and the second feeding point FP2 of the second antenna array 130 are coupled to the ground voltage VSS by using the second switch element 170, such that the antenna system 100 can generate a second radiation pattern. The second radiation pattern may be different from the first radiation pattern. With such a design, the invention uses a single antenna system, which can generate an adjustable radiation pattern without increasing additional antenna area, so as to meet a variety of requirements of practical applications.
The following embodiments will introduce the circuitry and structure of the proposed switch element and antenna array. It should be understood that these figures and descriptions are merely exemplary, rather than limitations of the invention.
In some embodiments, the first switch element 160 further includes a first inductor L1, a second inductor L2, and a third inductor L3. The first inductor L1 is coupled between the first output port P1 and the first control node NC1. The first control node NC1 is arranged for receiving the first control voltage VC1. The second inductor L2 is coupled between the first node N1 and a second control node NC2. The second control node NC2 is arranged for receiving the second control voltage VC2. The third inductor L3 is coupled between the second node N2 and a third control node NC3. The third control node NC3 is arranged for receiving the third control voltage VC3. The first inductor L1, the second inductor L2, and the third inductor L3 are configured to filter out high-frequency noise. For example, the inductance of each of the first inductor L1, the second inductor L2, and the third inductor L3 may be greater than 10 nH. In some embodiments, any of the first inductor L1, the second inductor L2, and the third inductor L3 is implemented with a microstrip line, such as a fan-shape transmission line, whose length may be substantially equal to 0.25 wavelength (λ/4) of a central operation frequency of the antenna system 100 (or 180).
On the other hand, if it is applied to the antenna system 180 of
In some embodiments, the second switch element 170 further includes a fourth inductor L4 and a capacitor C1. If it is applied to the antenna system 100 of
It should be understood that the first inductor L1, the second inductor L2, the third inductor L3, the fourth inductor L4, and the capacitor C1 are optional elements, and they are omitted in other embodiments. The omitted inductor or capacitor may be replaced with a transmission line or a short-circuited path.
In some embodiments, the relative settings of the first mode and the second mode of the antenna system 100 (or 180) are described in Table I and Table II.
Specifically, when the antenna system 100 (or 180) operates in the first mode, the first diode D1 is turned on, but the second diode D2, the third diode D3 and the fourth diode D4 are turned off. In the first mode, the first antenna array 120, the second antenna array 130, and the third antenna array 140 are all enabled (the feeding phase of the first antenna array 120 is not delayed), and therefore the antenna system 100 (or 180) can generate a first radiation pattern including relatively centralized main beams. Conversely, when the antenna system operates in the second mode, the first diode D1 is turned off, but the second diode D2, the third diode D3, and the fourth diode D4 are turned on. In the second mode, if it is applied to the antenna system 100 of
In some embodiments, a central operation frequency of the first antenna array 120, the second antenna array 130, and the third antenna array 140 of the antenna system 100 (or 180) is substantially equal to 24 GHz. The element sizes of the antenna system 100 (or 180) may be as follows. The length E1 of the first radiation element 121, the length E2 of the second radiation element 122, the length E3 of the third radiation element 123, the length E4 of the fourth radiation element 124, and the length E5 of the fifth radiation element 125 may be the same, and they may all be substantially equal to 0.5 wavelength (λ/2) of the central operation frequency of the antenna system 100 (or 180). The length E6 of the first connection element 126, the length E7 of the second connection element 127, the length E8 of the third connection element 128, and the length E9 of the fourth connection element 129 may be the same, and they may all be substantially equal to 0.5 wavelength (λ/2) of the central operation frequency of the antenna system 100 (or 180). The width W3 of the third radiation element 123 may be greater than the width W2 of the second radiation element 122 and the width W4 of the fourth radiation element 124. The width W2 of the second radiation element 122 and the width W4 of the fourth radiation element 124 are both greater than the width W1 of the first radiation element 121 and the width W5 of the fifth radiation element 125 (i.e., W3>W2=W4>W1=W5). The above ranges of element sizes are calculated and obtained according to many experiment results, and they help to optimize the operation bandwidth and impedance matching of the first antenna array 120, the second antenna array 130, and the third antenna array 140.
The invention proposes a novel antenna system including a plurality of antenna arrays and a plurality of switch elements, which are integrated with each other so as to save the design space of the antenna system. Generally, the invention has at least the advantages of adjustable radiation pattern, small size, high gain, low complexity, and low manufacturing cost, and therefore it is suitable for application in a variety of communication devices.
Note that the above element sizes, element shapes, and frequency ranges are not limitations of the invention. An antenna designer can fine-tune these settings or values to meet different requirements. It should be understood that the antenna system of the invention is not limited to the configurations of
Use of ordinal terms such as “first”, “second”, “third”, etc., in the claims to modify a claim element does not by itself connote any priority, precedence, or order of one claim element over another or the temporal order in which acts of a method are performed, but are used merely as labels to distinguish one claim element having a certain name from another element having the same name (but for use of the ordinal term) to distinguish the claim elements.
It will be apparent to those skilled in the art that various modifications and variations can be made in the invention. It is intended that the standard and examples be considered as exemplary only, with the true scope of the disclosed embodiments being indicated by the following claims and their equivalents.
Number | Date | Country | Kind |
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108104352 | Feb 2019 | TW | national |