This application claims the benefit of Korean Patent Application No. 10-2014-0136912 filed on Oct. 10, 2014 and Korean Patent Application No. 10-2015-0015597 filed on Jan. 30, 2015, in the Korean Intellectual Property Office, the entire disclosures of which are incorporated herein by reference for all purposes.
1. Field
The following description relates to an antenna, an antenna package, and a communications module.
2. Description of Related Art
To date, communications systems have mainly used signals within the ultra high frequency (UHF) band. However, in future, new communications systems for high speed data transmissions will use signals within an extremely high frequency (EHF) band, such as the 60 GHz band used for communications using the 802.11 ad standard.
Such a communications system using the EHF band uses signals within a wide bandwidth, about 10 to 100 times wider than a bandwidth used in communications systems using signals within the UHF band for high speed data transmissions. However, unlike general communications systems using signals within the UHF band, communications systems using signals within an EHF band, such as the 60 GHz band, may have problems such as large transfer loss caused by a high frequency, such that a plurality of antennas may be required. Therefore, in communications systems using signals within the EHF band, the plurality of antennas are packaged to be embedded in a printed circuit board.
However, a printed circuit board having a multilayer structure has a degree of EHF band loss which may be relatively greater than that of other types of board, such as a low temperature co-fired ceramic (LTCC) board. A printed circuit board also has a relatively low number of layers, causing limitations on an antenna structure. Accordingly, antenna performance such as wideband characteristics, or the like, required for high speed data transmissions, may be deteriorated with antennas embedded in a printed circuit board.
This Summary is provided to introduce a selection of concepts in a simplified form that are further described below in the Detailed Description. This Summary is not intended to identify key features or essential features of the claimed subject matter, nor is it intended to be used as an aid in determining the scope of the claimed subject matter.
According to one general aspect, an antenna includes: a board including layers; an antenna pattern formed on a layer among the layers and including two patterns spaced apart from each other; and dummy patterns formed in the board and insulated from the antenna pattern.
Virtual extension lines of the two main patterns, which extend in a length direction of the two main patterns, may coincide with each other.
Neighboring patterns among the dummy patterns may be spaced apart from each other by a predetermined distance.
Each of the dummy patterns may include two sides forming a predetermined angle with respect to each other. One of the two sides of a first dummy pattern among the dummy patterns and one of the two sides of a second dummy pattern adjacent to the first dummy pattern face each other in parallel with each other.
The antenna may further include at least one auxiliary antenna pattern formed on another layer among the layers that is higher than the layer on which the main antenna pattern is formed.
The auxiliary antenna pattern may include two auxiliary patterns spaced apart from each other.
The two auxiliary patterns and the two main patterns may be overlapped with each other in a stacking direction of the layers.
The antenna may further include a reflecting pattern formed on a layer among the layers that is lower than the layer on which the main antenna pattern is formed.
The antenna may further include signal input pattern to which a control signal from a radio frequency integrated circuit is input.
The antenna may further include vias forming a power supply path from the signal input pattern to the main antenna pattern.
The two main patterns may include first and second patterns, and the main antenna pattern may further include third and fourth patterns positioned on virtual lines intersecting an intersection point of virtual extension lines of the first and second patterns.
The antenna may further include an auxiliary antenna pattern formed on a layer that is higher than the layer on which the main antenna pattern is formed and including four auxiliary patterns overlapped with the first through fourth patterns in a stacking direction.
According to another general aspect, an antenna package includes antennas, wherein each antenna among the antennas includes: a board including layers; an antenna pattern formed on a layer among the layers and including two patterns spaced apart from each other; and dummy patterns insulated from the antenna pattern.
The antennas may be arrayed such that virtual extension lines of the two patterns of respective neighboring antennas, among the antennas, coincide with each other.
The antennas may be arrayed such that the antennas are positioned on diagonal lines, and virtual extension lines of the two patterns of respective neighboring antennas, among the antennas, coincide with each other.
According to another general aspect, a method of manufacturing an antenna includes: disposing a main antenna pattern on a layer among layers of a board, the main antenna pattern including two main patterns spaced apart from each other; and disposing dummy patterns in the board, the dummy patterns being insulated from the main antenna pattern.
The method may further include: disposing an auxiliary antenna pattern on another layer among the layers, the auxiliary antenna pattern including two auxiliary patterns spaced apart from each other; and arranging the two auxiliary patterns and the two main patterns to be overlapped with each other in a stacking direction of the layers.
Other features and aspects will be apparent from the following detailed description, the drawings, and the claims.
Throughout the drawings and the detailed description, the same reference numerals refer to the same elements. The drawings may not be to scale, and the relative size, proportions, and depiction of elements in the drawings may be exaggerated for clarity, illustration, and convenience.
The following detailed description is provided to assist the reader in gaining a comprehensive understanding of the methods, apparatuses, and/or systems described herein. However, various changes, modifications, and equivalents of the methods, apparatuses, and/or systems described herein will be apparent to one of ordinary skill in the art. The sequences of operations described herein are merely examples, and are not limited to those set forth herein, but may be changed as will be apparent to one of ordinary skill in the art, with the exception of operations necessarily occurring in a certain order. Also, descriptions of functions and constructions that are well known to one of ordinary skill in the art may be omitted for increased clarity and conciseness.
The features described herein may be embodied in different forms, and are not to be construed as being limited to the examples described herein. Rather, the examples described herein have been provided so that this disclosure will be thorough and complete, and will convey the full scope of the disclosure to one of ordinary skill in the art.
Referring to
The board 110 is a multilayer board including a plurality of layers, and may be at least one of a ceramic board, a printed circuit board, and a flexible board.
For convenience of explanation, in the board 110, a layer on which the signal input pattern 120 is formed will be referred to as a first layer, a layer on which the power supply pattern 130 is formed will be referred to as a second layer, and a layer on which the main antenna pattern 140 is formed will be referred to as a third layer.
The signal input pattern 120 is formed on the first layer of the board 110, which is the lowest layer of the board 110, and receives a predetermined control signal provided externally. Although not illustrated in
The vias 160 electrically connect respective layers. For example, a first via 161 and a second via (not illustrated) connect the signal input pattern 120 and the power supply pattern 130 to each other, and, as illustrated in
Referring to
Referring to
Lengths of the first and second main patterns 141 and 142 may determine a resonance frequency. For example, each of the two main patterns 141 and 142 may have a length equal to a half of a wavelength of a signal used with a communications frequency of the antenna 100.
Referring to
The third and fourth main patterns 143 and 144 may be spaced apart from each other by a predetermined distance. In a case in which the third and fourth main patterns 143 and 144 are extended in the length direction, virtual extension lines of the third and fourth main patterns 143 and 144 may coincide with each other.
The virtual extension lines of the first and second main patterns 141 and 142 intersect virtual extension lines of the third and fourth main patterns 143 and 144. For instance, the first to fourth main patterns 141 to 144 may be spaced apart from an intersection point of two virtual lines intersecting each other by a predetermined distance.
Lengths of the third and fourth main patterns 143 and 144 may determine a resonance frequency. For example, each of the two main patterns 143 and 144 may have a length equal to a half of a wavelength of a signal used with a communications frequency of the antenna 100. In a case of forming the main antenna pattern 140 illustrated in
Referring to
Referring to
Although
The dummy patterns 151 to 154 may be spaced apart from sides of the main patterns 141 to 144 by predetermined distances in length directions of the main patterns 141 to 144, respectively. For example, the dummy patterns 151 to 154 may be disposed to be spaced apart from sides of the main patterns 141 to 144 by a distance equal to 1/10 of the wavelength of the signal used with the communications frequency of the antenna 100, in the length directions of the main patterns 141 to 144, respectively. As described above, each of the dummy patterns 151 to 154 may have two sides forming a predetermined angle with respect to each other. A length of each of the two sides may be a length equal to 90 to 95% of a length of each of sides of the main patterns 141 and 142 in the length direction of the main pattern.
The power supply pattern 130 illustrated in
First, referring to
The first via 161 (
Referring to
The second via (not shown) may be connected to one of fourth to sixth power supply line patterns 134 to 136, the fourth power supply line pattern 134 is connected to the fifth via 165, and the fifth power supply line pattern 135 is connected to the sixth via 166.
In the discussion of antennas 200 and 200a of
Referring to
For example, when a radio frequency signal generated in a radiation part formed by the main antenna pattern 140 is output upwardly based on
Referring to
In the antennas of
Referring to
The auxiliary antenna pattern 180 is formed on at least one layer. More specifically, the auxiliary antenna pattern 180 may be formed on a layer that is higher than a layer on which the main antenna pattern 140 is formed. The auxiliary antenna pattern 180 may be formed on a fourth layer that is higher than the third layer, as illustrated in the antenna 300 of
Referring to
For example, the two vias 163 and 164 may be connected to the auxiliary antenna pattern 180 formed on the fourth layer, as illustrated in the antenna 300b of
The auxiliary pattern 180 illustrated in
First, referring to
A length of each of the first and second auxiliary patterns 181 and 182 may be the shorter than that of each of the first and second main patterns 141 and 142. For example, a length of each of the first and second auxiliary patterns 181 and 182 may be a length equal to 85% of a length of each of the first and second main patterns 141 and 142. The main antenna pattern 140 and the auxiliary antenna pattern 180 may coincide with each other in a stacking direction of each layer of the board 110. For instance, in a case in which the main antenna pattern 140 and the auxiliary antenna pattern 180 are directed in an upward direction, they may be overlapped with each other on the same line.
Referring to
In this case, the virtual extension lines of the first and second auxiliary patterns 181 and 182 may intersect virtual extension lines of the third and fourth auxiliary patterns 183 and 184. For instance, the first to fourth auxiliary patterns 141 to 144 may be spaced apart from an intersection point of two virtual lines intersecting each other, by a predetermined distance. Lengths of the third and fourth auxiliary patterns 183 and 184 may be the same as those of the first and second auxiliary patterns 181 and 182.
The dummy patterns 151 to 154 may be disposed such that sides thereof correspond to sides of the auxiliary patterns 181 to 184, respectively, and may be spaced apart from the sides of the auxiliary patterns 181 to 184 by predetermined distances, respectively, in the length directions of the main patterns. For example, the plurality of dummy patterns 151 to 154 may be disposed to be spaced apart from the sides of the auxiliary patterns 181 to 184 by a distance equal to 1/10 of the wavelength of the signal used with the communications frequency of the antenna 100, in the length directions of the auxiliary patterns 181 to 184, respectively.
Referring to
In addition, referring to
Although not illustrated in
Further, although antennas including a particular combination of layers having a specific form have been illustrated in
Referring to
According to the disclosed example, a bandwidth may be about 14% (in relation to return loss of 10 dB) of a frequency at which the antenna is resonated, and in a case in which return loss is about 6 dB defined in a general antenna, a bandwidth of about 20% may be obtained. For instance, when considering that a bandwidth of about 5% may be secured in an antenna according to the related art, in the antenna according to the example disclosed herein, characteristics of return loss may be improved and a bandwidth may be increased.
In the antenna 400a, in a case in which electricity is fed to one port, for instance, one of a combination of the first and second main patterns 141 and 142 and a combination of the third and fourth main patterns 143 and 144, a beam pattern is formed in the same direction as that of the main patterns to which electricity is fed, similar to
However, in the antenna as illustrated in
According to the examples of
Referring to
An array of the antennas 400a-1 to 400a-8 of the antenna package 10 illustrated in
In addition, an array of the antennas 400a-1 to 400a-8 of the antenna package 10a as illustrated in
Referring to
According to examples disclosed herein, return loss of an antenna for an extremely high frequency (EHF) band may be decreased, and a bandwidth thereof may be increased. Two independent antennas may be disposed in a space in which one antenna is present, thereby increasing space utilization. Therefore, an array antenna based beam forming system of the next-generation communications system using signals within the EHF band may be further miniaturized. In addition, characteristics of individual antennas may be improved, such that a communications distance may be increased.
Further, a change in antennas depending on characteristics of the beam forming system may be significantly decreased, and system performance may be optimized through only a change in disposition of the antenna.
As set forth above, according to examples disclosed herein, the return loss of the antenna and the antenna package may be decreased, and wideband characteristics of the antenna and the antenna package may be improved.
While this disclosure includes specific examples, it will be apparent to one of ordinary skill in the art that various changes in form and details may be made in these examples without departing from the spirit and scope of the claims and their equivalents. The examples described herein are to be considered in a descriptive sense only, and not for purposes of limitation. Descriptions of features or aspects in each example are to be considered as being applicable to similar features or aspects in other examples. Suitable results may be achieved if the described techniques are performed in a different order, and/or if components in a described system, architecture, device, or circuit are combined in a different manner, and/or replaced or supplemented by other components or their equivalents. Therefore, the scope of the disclosure is defined not by the detailed description, but by the claims and their equivalents, and all variations within the scope of the claims and their equivalents are to be construed as being included in the disclosure.
Number | Date | Country | Kind |
---|---|---|---|
10-2014-0136912 | Oct 2014 | KR | national |
10-2015-0015597 | Jan 2015 | KR | national |