1. Field of the Invention
The present invention relates to an embedded antenna, and more specifically, to an embedded antenna of a wireless device embedded in the wireless device by pattern printing, and a method of manufacturing thereof.
2. Background of the Related Art
In general, a wireless device is a general term for devices capable of transmitting and receiving information through wireless communications anywhere without being restricted by space, and it includes a cellular phone, a palm personal computer (PC), a personal digital assistant (PDA), a handheld PC (HPC), and the like. An antenna for wirelessly transmitting and receiving electronic information is installed in such a wireless device.
In an advanced society of today, distribution of wireless devices tends to abruptly increase due to rapid advancement of wireless communications. Accordingly, portability of such wireless devices is recognized as an important feature of the wireless devices.
The most typical method for improving portability of a wireless device is to provide a small-sized wireless device implemented by minimizing the volume of parts constructing the wireless device. Accordingly, the size of an antenna installed in the wireless device also tends to be reduced. Particularly, compact wireless devices provided with an embedded antenna installed in a wireless device are spread recently.
On the other hand, the embedded antenna comprises a radiator, an insulator, and a substrate for sending and receiving electrical signals on support of the radiator and the insulator and is installed in the wireless device. That is, the embedded antenna is manufactured outside of the wireless device and installed in the wireless device. Therefore, a separate process for assembling the embedded antenna within the wireless device is required.
In addition, thickness of the radiator, the insulator, and the substrate constructing the embedded antenna is a factor that hinders miniaturization of the embedded antenna, and as the thickness of the antenna decreases, the manufacturing cost is increased, and radiation performance is degraded.
Therefore, continuous studies on small-sized embedded antennas having a simple manufacturing process, a low manufacturing cost, and superior radiation performance are required.
Accordingly, the present invention has been made in view of the above-mentioned problems occurring in the prior art, and it is an object of the present invention to provide an embedded antenna of a wireless device, which can be directly formed in a mobile communication terminal.
It is another object of the present invention to provide an embedded antenna of a wireless device, which has a low manufacturing cost and superior radiation performance.
It is still another object of the present invention to provide a method of manufacturing an embedded antenna of a wireless device, which has achieved the above objects.
To accomplish the above objects, according to an aspect of the present invention, there is provided an embedded antenna of a wireless device comprising: a substrate accommodated in the wireless device; a radiation unit printed on an inner surface of a housing of the wireless device and connected to the substrate, for transmitting and receiving electrical signals; and an insulation unit printed on the radiation unit, for insulating the radiation unit.
According to a preferred embodiment of the present invention, the radiation unit includes: a first radiator printed as a pattern on the inner surface of the housing; and a second radiator printed as a pattern on the insulation unit partially intervened to cover the first radiator, to be electrically connected to the first radiator. That is, the first and second radiators are printed with intervention of a portion of the insulation unit between the first and second radiators, and thus a double-side antenna is formed.
The insulation unit includes: a first insulator formed by printing an insulation material to cover the first radiator, and having a conductive hole for electrically connecting the first and second radiators to each other; and a second insulator formed by printing the insulation material to cover the second radiator.
The radiation unit and the insulation unit configured as described above can be sequentially printed in multiple layers in a modified embodiment.
According to another aspect of the present invention, there is provided an embedded antenna of a wireless device embedded in the wireless device to wirelessly transmit and receive electrical signals, and the embedded antenna comprises: a substrate provided in the wireless device; and a radiation section printed as a pattern on an inner surface of the wireless device to be connected to the substrate, for transmitting and receiving the electrical signals. Here, the radiation section includes: a radiator printed as a pattern on the inner surface of the wireless device; and an insulator printed to cover the radiator, for insulating the radiator.
To accomplish the above objects, according to another aspect of the present invention, there is provided a method of manufacturing an embedded antenna of a wireless device, the method comprising the steps of: providing a substrate in the wireless device; printing first and second radiators on an inner surface of a housing of the wireless device to be connected to the substrate and electrically connected to each other; and printing first and second insulators for insulating the first and second radiators respectively.
Specifically, the step of printing the first and second radiators includes the steps of: printing a pattern on the inner surface of the housing with a metallic paste; and metalizing the printed pattern by plating the printed pattern. At this point, it is preferable that the embedded antenna is implemented as a double-side antenna by printing the first and second radiators as a stack with intervention of the first insulator between the first and second radiators. To this end, a non-printed conductive hole is formed in the first insulator so that the first and second radiators can be electrically connected to each other.
The steps of printing the first and second radiators and printing the first and second insulators may be repeated sequentially multiple times.
According to another aspect of the present invention, there is provided a method of manufacturing an embedded antenna of a wireless device, the method comprising the steps of: providing a substrate in the wireless device; printing a first radiator as a pattern on an inner surface of the wireless device to be connected to the substrate; printing a first insulator to cover the first radiator; printing a second radiator as a pattern on the first insulator to be electrically connected to the first radiator and connected to the substrate; and printing a second insulator to cover the second radiator. At this point, a conductive hole is formed in the first insulator so that the first and second radiators can be electrically connected to each other.
The steps of printing the first radiator, printing the first insulator, printing the second radiator, and printing the second insulator may be repeated sequentially multiple times to implement a double-side antenna of multiple layers.
Hereinafter, a preferred embodiment of the present invention will be described in detail with reference to the attached drawings.
Referring to
As shown in
Here, the radiation unit 50 is electrically connected to the substrate 40 and transmits and receives electrical signals. Here, the radiation unit 50 is printed on the inner surface of the wireless device 1, and more specifically, includes first and second radiators 51 and 54 printed on the inner surface 21 of the housing 20 of the wireless device 1.
For reference, the housing 20 forms the external appearance of the wireless device 1 and includes an external case or cover. In the embodiment, as shown in
As shown in
On the other hand, although the first radiator 51 has a certain length, it is formed as a pattern that is bent a plurality of times like a whirlpool. Here, one end of the first radiator 51 is connected to the substrate 40, and the other end of the first radiator 51 is electrically connected to the second radiator 54 described below. Hereinafter, for the convenience of explanation, one end and the other end of the first radiator 51 are respectively referred to as a first connecting terminal 52 and a first conductive terminal 53.
As shown in
The second radiator 54 is formed as a straight line having a certain length. At this point, one end of the second radiator 54 is a second connecting terminal 55 connected to the substrate 40, and the other end of the second radiator 54 is a second conductive terminal 56 electrically connected to the first radiator 54. Here, the first and second connecting terminals 52 and 55 are formed to be parallel to each other, and the first and second conductive terminals 53 and 56 are formed to be overlapped or contact with each other.
For reference, although it is described in the embodiment that the radiation patterns of the first and second radiators 51 and 54 are printed as a line bent a plurality of times and a straight line respectively, it is not limited thereto, and it is apparent that they can be printed in a variety of patterns depending on radiation characteristics.
The insulation unit 60 is printed to cover the radiation unit 50 and insulates the radiation unit 50. The insulation unit 60 includes first and second insulators 61 and 63 respectively corresponding to the first and second radiators 51 and 54.
As described above, the first insulator 61 is formed between the first and second radiators 51 and 54 and insulates the first radiator 51 from the second radiator 54. Specifically, as shown in
At this point, although the first insulator 61 is printed to have an area that covers the entire area of the first radiator 51, it is formed to expose the first connecting terminal 52 and the first conductive terminal 53. To this end, although the first insulator 61 roughly has a rectangular area covering the first radiator 51 other than the first connecting terminal 52, a portion of the first insulator is open to form a conductive hole 62 for electrically connecting the first and second insulators 61 and 63 to each other.
A certain portion of the first insulator 61 is not printed when the first insulator 61 is printed, in order to form the conductive hole 62. Here, as shown in
As shown in
Here, since the second insulator 63 is formed to cover the second radiator 54 and has an area enough to cover the first insulator 61 as well, insulation efficiency of the first and second radiators 51 and 54 is greatly improved. At this point, a connecting groove 64 for exposing the first and second connecting terminals 52 and 55 of the first and second radiators 51 and 54 is formed in the second insulator 63. Like the conductive hole 62 formed in the first insulator 61, the connecting groove 64 is formed by non-printing of the insulation material. As shown in
Based on the configuration described above, it is possible to implement a double-side antenna, in which the first and second radiators 51 and 54 are respectively formed on either side of the first insulator 61 intervening between the first and second radiators 51 and 54. Here, it is preferable that the total thickness of the first and second radiators 51 and 54 and the first and second insulators 61 and 63 is approximately less than 0.1 mm. The radiation unit 50 and the insulation unit 60 can be classified as a radiation section that transmits and receives electrical signals through electrical connection to the substrate 40.
A method of manufacturing an embedded antenna 30 of a wireless device 1 according to the present invention configured as described above will be described with reference to
First, as shown in
As shown in
If the second radiator 54 completes to be printed in this manner, a second insulator 63 is formed by printing an insulation material to cover the second radiator 54. At this point, the second insulator 63 is formed to include a connecting groove 64 for exposing the first and second connecting terminals 52 and 55 of the first and second radiators 51 and 54.
If the radiation unit 50 including the first and second radiators 51 and 54 and the insulation unit 60 including the first and second insulators 61 and 63 complete to be printed on the inner surface 21 of the housing 20, the housing 20 is combined with the main body 10 of the wireless device 1 as shown in
On the other hand, although it is described in the embodiment that the first radiator 51, the first insulator 61, the second radiator 54, and the second insulator 63 are sequentially printed as a stack just one time, it is not limited thereto. That is, it is apparent that a series of the above steps can be repeated a plurality of times to implement an embedded antenna 30 of multiple layers.
Although it is described in the embodiment that the first and second radiators 51 and 54 are respectively formed on either side of the first insulator 61 intervening between the first and second radiators 51 and 54, it is apparent that the first and second radiators 51 and 54 can be printed on the same surface of the housing 20 in a modified embodiment.
According to the present invention described above, first, an antenna can be directly formed in a wireless device by printing the antenna on the inner surface of the wireless device. Accordingly, a manufacturing process for embedding a separate antenna assembly in the wireless device is unnecessary, and thus the manufacturing process is simplified.
Second, since the radiation unit and the insulation unit constructing the antenna are formed by printing a pattern on the inner surface of the wireless device, thickness of the radiation unit and the insulation unit can be minimized. Accordingly, the wireless device can be miniaturized, and manufacturing cost can be reduced. Furthermore, although the radiation unit is formed to have a minimum thickness, reliability of radiation performance can be secured by the printed pattern.
Third, since the radiation unit and the insulation unit are formed in a housing detachable from the main body of the wireless device and connected to the substrate provided in the main body of the wireless device, the radiation unit and the substrate can be easily connected to each other when the housing is combined with the main body.
While the present invention has been described with reference to the particular illustrative embodiments, it is not to be restricted by the embodiments but only by the appended claims. It is to be appreciated that those skilled in the art can change or modify the embodiments without departing from the scope and spirit of the present invention.
Number | Date | Country | Kind |
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10-2008-0077068 | Aug 2008 | KR | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/KR09/04364 | 8/5/2009 | WO | 00 | 2/4/2011 |