The present disclosure relates to antennas for portable devices, and more specifically to a gridded antenna and a method for manufacturing the same.
With the rapidly development of radio frequency identification technologies, radio frequency identification (RFID) tags are widely used in various fields such as distribution, logistic, material handling industries, and non-contact integrated circuits. A related radio frequency identification tag generally includes an antenna.
With the demands for low cost, reliable and flexible antenna for wireless communication, there is a growth in using conductive ink printed antenna. Conductive ink, being able to print on a variety of substrate materials such as polyester provides a promising alternative for printing antenna. However, the conductive ink, such as silver, is relatively expensive.
Therefore, it is desirable to provide a new antenna and a new method which can overcome the above-mentioned problems.
Many aspects of the embodiments can be better understood with reference to the following drawings. The components in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the present disclosure. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
Referring to
Referring to
The substrate 10 is made from FR-4. The antenna layer 11 is manufactured by printing conductive ink on the substrate 10.
The edge part 114 has a first width a, which is measured from an first side 1131 of the gridding part 113 to a first edge 1111 of the patch 111 opposite to the first side 1131. The edge part 114 has a second width b, which is measured from a second side 1132 of the gridding part 113 to a second edge 1112 of the patch 111 opposite to the second side 1132. A parameter of width_ratio is defined as follows for defining the width of the edge part 114:
Width_ratio=a/L, or Width_ratio=b/W
By simulation, different values of the width_ratio ranging from 0.1 has been studied and it is found that width_ratio has to be at least 0.32 in order to produce almost identical performance characteristics as the first conventional antenna without slots. These can be seen from the simulation results of return Loss and total efficiency shown in
Separate simulations were conducted for the gridded antenna 1 with different number of slots arranged in matrixes from 3 by 3, to 20 by 20. The simulation results suggested that with increasing number of slots in the gridded antenna, its antenna performance characteristics get closer to that of the first conventional antenna. Therefore, the gridded antenna 1 has a reduced conductive area while retaining substantial identical performance characteristics to the conventional antenna. In the embodiment, the patch 111 could be square and rectangular.
A method for manufacturing the gridded antenna comprises steps of: providing a substrate 10;
forming an antenna layer 11 on the substrate 10 by printing conductive ink, the antenna layer 11 including a patch 111 and a feed line 112, the patch 111 including a plurality of slots 1110 forming a gridding part 113 and an edge part 114 surrounding around the gridding part 113, a ratio of a width of the edge part and that of the gridding part being at least 0.32.
Referring to
Referring to
Referring to
It will be understood that the above-mentioned particular embodiments is shown and described by way of illustration only. The principles and the features of the present disclosure may be employed in various and numerous embodiments thereof without departing from the scope of the disclosure as claimed. The above-described embodiments illustrate the scope of the disclosure but do not restrict the scope of the disclosure.
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2012 1 0518079 | Dec 2012 | CN | national |
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Number | Date | Country | |
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20140159962 A1 | Jun 2014 | US |