This disclosure describes an antenna system, and more particularly to a loop type ground radiating antenna.
The explosion of network connected devices has led to an increased use of certain wireless protocols. For example, simple wireless network devices are being implemented as temperature sensors, humidity sensors, pressure sensors, motion sensors, cameras, light sensors, dimmers, light sources, and other functions. Additionally, these wireless network devices have become smaller and smaller.
These wireless network devices are typically equipped with an embedded antenna. In a typical product design, the antenna is matched and designed for that particular printed circuit board (PCB) and mechanics.
However, with modules, the installation with the end product cannot be controlled by the module manufacturer. By nature, the antenna characteristics and impedance depend on various factors, such as the PCB size and shape. Consequently, this creates a challenge for the antennas used in the modules. If the antenna is detuned and the impedance of the antenna is not within the specification required for that particular RF front end design, it can result to increased spurious emissions or degraded EVM performance.
For example, traditional ground antennas utilize a rectangular ground clearance and a single capacitor. The current path around the ground clearance forms the antenna radiator loop. In other words, the strong current loop allows the spread of loop-type current distributions on the ground layer to radiate outward. In this configuration, the value of the capacitor and the dimensions of the ground plane controls both the input impedance and the resonant frequency of the antenna.
Therefore, it would be advantageous if there were an antenna design that may be operated over a wide range of tolerances and PCB designs.
A loop type ground radiating antenna having dual resonance is disclosed. The antenna including a feeding path that traverses the ground clearance, creating a first portion and a second portion. One or more first capacitors are disposed along a first conductive path between the ground clearance and the edge of the ground layer, proximate the first portion, while one or more second capacitors are disposed along a second conductive path between the ground clearance and the edge of the ground layer, proximate the second portion. An input capacitor is used to feed the feeding path. The values of the input capacitor and the first capacitors determine a resonant frequency of the first feeding loop, while the values of the input capacitor and the second capacitors determine a resonant frequency of the second feeding loop. By proper selection of the capacitor values, a wide bandwidth may be created.
According to one embodiment, a loop type ground radiation antenna is disclosed. The loop type ground radiation antenna comprises two resonance frequencies. In certain embodiments, the antenna comprising one or more first capacitors and one or more second capacitors, wherein values of the one or more first capacitors and the one or more second capacitors are used to determine the two resonance frequencies. In some embodiments, a ground clearance is divided into a first portion and a second portion by a feeding path, and wherein an area of the first portion and an area of the second portion is also used to determine the two resonance frequencies. In certain embodiments, the operating frequency is 2.45 GHz. In some embodiments, a first resonant frequency is between 2.1 GHz and the 2.45 GHz and a second resonant frequency is between 2.45 GHz and 2.8 GHz. In some embodiments, a return loss is less than −10 dB over a range of more than 800 MHz.
According to another embodiment, a loop type ground radiation antenna is disclosed. The loop type ground radiation antenna comprises a conductive ground layer; a ground clearance disposed in the ground layer, wherein the ground clearance is not electrically conductive, and wherein the ground clearance is disposed near an edge of the ground layer such that a conductive pathway exists between the ground clearance and the edge of the ground layer; a feeding path traversing the ground clearance to create a first portion and a second portion, wherein a first end of the feeding path contacts the conductive pathway, dividing the conductive pathway into a first conductive pathway and a second conductive pathway; an input capacitor in communication with a second end of the feeding path; one or more first capacitors arranged in series along the first conductive pathway; and one or more second capacitors arranged in series along the second conductive pathway. In some embodiments, an area of the first portion, and a total capacitance of the one or more first capacitors determine a first resonant frequency. In certain embodiments, an area of the second portion, and a total capacitance of the one or more second capacitors determine a second resonant frequency. In certain embodiments, the first resonant frequency is different from the second resonant frequency. In certain embodiments, the operating frequency is 2.45 GHz. In some embodiments, a first resonant frequency is between 2.1 GHz and the 2.45 GHz and a second resonant frequency is between 2.45 GHz and 2.8 GHz. In some embodiments, a return loss is less than −10 dB over a range of more than 800 MHz.
According to another embodiment, a module comprising the loop type ground radiation antenna described above is disclosed. In some embodiments, the ground layer of the loop type ground radiation antenna is adapted to be electrically connected to a ground layer of a printed circuit board. In certain embodiments, the operating frequency is 2.45 GHz. In some embodiments, a return loss is less than −10 dB over a frequency range from 2.4 GHz to 2.48 GHz for ground layers having a width between 40 mm and 80 mm and a length between 40 mm and 80 mm.
According to another embodiment, an assembly is disclosed. The assembly comprises the module described above and a printed circuit board, wherein a ground layer of the printed circuit board is in communication with the ground layer of the loop type ground radiation antenna. In certain embodiments, the operating frequency is 2.45 GHz. In some embodiments, a return loss is less than −10 dB over a frequency range from 2.4 GHz to 2.48 GHz for ground layers having a width between 40 mm and 80 mm and a length between 40 mm and 80 mm.
For a better understanding of the present disclosure, reference is made to the accompanying drawings, in which like elements are referenced with like numerals, and in which:
The ground layer 10 comprises a ground clearance 15 that is separated into two portions. The ground clearance 15 is a region of the ground layer 10, which is not electrically conductive. In certain embodiments, the metal that typically resides in this region is removed. The ground clearance 15 may be rectangular in shape. The dimensions of the ground clearance 15 may be selected based on the desired performance of the antenna. For example, the width of the ground clearance 15 affects the resonant frequency while the other dimension affects the bandwidth of the antenna. To achieve frequencies around 2.4 GHz, the ground clearance may be about 6.5 mm×8.5 mm, although other dimensions may be used for different frequency bands.
An antenna radiator loop 90 is created around the outside of the ground clearance 15. This antenna radiator loop 90 allows the spread of loop-type current distributions on the ground layer 10 to be radiated outward.
A feeding path 40 is disposed through the ground clearance 15, thereby dividing the ground clearance 15 into two portions; a first portion 20 and second portion 30. The feeding path 40 may be configured so that the first portion 20 and the second portion 30 having different areas.
The feeding path 40, like the rest of the ground layer 10, is a conductive material, such as copper. The width of the feeding path 40, labelled d2, may be about 0.5 to 1.0 mm.
While
The ground clearance 15 may be formed near the edge of the ground layer 10, such that the distance, d1, between the edge of the ground layer 10 and the ground clearance 15 proximate that edge is about 0.5 mm. In certain embodiments, d1 may equal d2. Thus, a conductive pathway exists between the ground clearance 15 and the edge of the ground layer 10.
Further, this conductive pathway comprises two parts, which are defined as being on either side of the feeding path 40. There is a first conductive pathway 21 that is disposed between the first portion 20 and the edge of the ground layer 10; and a second conductive pathway 31 that is disposed between the second portion 30 and the edge of the ground layer 10.
One or more first capacitors 50a, 50b, 50c are disposed in series along the first conductive pathway 21, such that current passing along the first conductive pathway 21 must pass through the one or more first capacitors 50a, 50b, 50c. The one or more first capacitors 50a, 50b, 50c may have the same value or different values.
Similarly, one or more second capacitors 60a, 60b, 60c are disposed in series along the second conductive pathway 31, such that current passing along the second conductive pathway 31 must pass through the one or more second capacitors 60a, 60b, 60c.
Additionally, an input capacitor 70 is disposed between the feeding path 40 and the input source 80. The input source 80 may comprise an impedance matching circuit 82, which, in turn, is in communication with the power amplifier 81 of the radio circuitry.
Thus, the input capacitor 70, the first capacitors 50a,50b,50c, and the feeding path 40 for one resonator, while the input capacitor 70, the second capacitors 60a, 60b,60c, and the feeding path 40 form a second resonator. Additionally, the ground layer 10 forms the radiator.
The values for each of the input capacitor 70, the first capacitors 50a,50b,50c and the second capacitors 60a,60b,60c may be determined via simulation or empirical testing. In certain embodiments, these values are all less than 10 pF.
The values of the one or more first capacitors 50a, 50b, 50c and the area of the first portion 20 establish the resonant frequency of the first feeding loop 22. Similarly, the values of the one or more second capacitors 60a, 60b, 60c and the area of the second portion 30 establish the resonant frequency of the second feeding loop 32.
The bandwidth of the antenna may be related to the difference between the two resonant frequencies. In other words, if the resonant peaks are separated from one another, the frequency range between these two peaks may have the desired characteristics. Thus, the ratio of the total capacitance of the first capacitors 50a,50b,50b to the total capacitance of the second capacitors 60a,60b,60c may define the bandwidth of the antenna.
Further, the center frequency of the antenna and the impedance are also affected by the input capacitor 70, and more specifically, the ratio of the capacitance of the input capacitor 70 to the total capacitance of first capacitors 50a,50b,50c and second capacitors 60a,60b,60c.
Specifically, in one test, the area of the first feeding loop 22 and the values of the input capacitor 70 and the one or more first capacitors 50a, 50b, 50c were selected so as to achieve a resonant frequency of 2.7 GHz. Additionally, the area of the second feeding loop 32 and the values of the input capacitor 70 and the one or more second capacitors 60a, 60b, 60c were selected so as to achieve a resonant frequency of 2.2 GHz.
Thus, first feeding loop 22 and the second feeding loop 32 may be configured so as to have frequencies that are close to one another. These feeding loops 22, 32 couple with the antenna radiator loop 90, which enables high efficiency radiation and uniform radiation patterns for the whole frequency band.
Thus, to achieve acceptable performance at an operating frequency of 2.45 GHz, the first resonant frequency may be between 2.1 GHz and 2.45 GHz, while the second resonant frequency may be between 2.45 GHz and 2.8 GHz.
ER=PRAD/PINPUT.
Note that the total efficiency is greater than −1.5 dB over a range of over 800 MHz.
The bandwidth achieved by this antenna is important, especially when the antenna is a part of a module that is attached to an end product printed circuit board.
Because of regulatory issues, it is common to utilize an antenna module that has been approved by the regulatory agencies in conjunction with the end product printed circuit board.
The module 600 is then attached to an end product printed circuit board, such as by soldering. When the module 600 is attached to the end product printed circuit, the ground planes are connected. Thus, the overall dimensions of the ground plane, which is important to determining the resonant frequency and the impedance, changes.
By utilizing an antenna which has a dual resonance, the antenna may achieve acceptable performance over a wide range of ground plane dimensions. For example,
Note that in all of the curves, the return loss is at least −10 dB over the frequency range from 2.4 GHz to 2.48 GHz.
This system and method have many advantages. By introducing different capacitance values along the first conductive pathway 21 and the second conductive pathway 31, it is possible to create two resonant frequencies, which are closely spaced. In this way, the return loss may be less than −10 dB over a range of 800 MHz. This allows a high degree of tolerance with respect to the PCB design and capacitor values. Further, this approach does not require the use of inductors.
Additionally, as described above, the antenna may be part of a module that is later mounted to an end product printed circuit board. The dimensions of this end product printed circuit board are unknown and may vary. Thus, by creating an antenna with a dual resonance, the antenna may exhibit acceptable performance over a wide range of ground plane dimensions.
The present disclosure is not to be limited in scope by the specific embodiments described herein. Indeed, other various embodiments of and modifications to the present disclosure, in addition to those described herein, will be apparent to those of ordinary skill in the art from the foregoing description and accompanying drawings. Thus, such other embodiments and modifications are intended to fall within the scope of the present disclosure. Further, although the present disclosure has been described herein in the context of a particular implementation in a particular environment for a particular purpose, those of ordinary skill in the art will recognize that its usefulness is not limited thereto and that the present disclosure may be beneficially implemented in any number of environments for any number of purposes. Accordingly, the claims set forth below should be construed in view of the full breadth and spirit of the present disclosure as described herein.
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Number | Date | Country | |
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20220376395 A1 | Nov 2022 | US |