This application claims the benefit of Taiwan Patent Application Serial No. 109129513, filed Aug. 28, 2020, the subject matter of which is incorporated herein by reference.
The present invention provides a design of antenna structure, and more particularly, to an antenna structure and device that are capable of increasing bandwidth of operation frequency no matter the antenna structure and device is interrogated by the interrogator from the front surface of the metal object where the antenna structure and device is arranged or back surface of the metal object opposite to the front surface.
Conventionally, when the RFID device is operated under ultra high frequency (UHF) range, due to the characteristic of electromagnetic scattering and coupling, the RFID is sensitive to the liquid and metal environment where it is arranged. The metal or liquid environment could induce the problem that make the RFID device inoperative, if there has no proper design on the RFID device.
According to the electromagnetic theory, when the uniform electromagnetic wave is obliquely projected onto a flat antenna formed by a good conductor, a reflection phenomenon from the surface of the good conductor will be generated because there has no electromagnetic wave inside the good conductor thereby causing the RFID becoming inoperative. In addition, since the metal object to which the RFID device is attached will also reflect the electromagnetic wave, it will also cause destructive interference due to the phase variation between the incident electromagnetic wave and reflected electromagnetic wave.
In addition to the above-mentioned reasons, according to theory of current minor, when a dipole antenna is arranged onto the top of the metal object, e.g. on the top surface of the metal object, a reverse current is induced on the bottom surface opposite the top surface, whereby electromagnetic wave is eliminated. Since the RFID device is easily affected by the metal object, the RFID device can't be utilized on the metal object effectively.
According to the incident and reflective theory of wavelength, when the RFID tag is arranged at location having half wavelength away from the metal surface, the amplitude of incident wave and reflective wave are almost zero such that the energy of incident wave or reflective wave becomes weak. When the RFID tag is arranged at location having quarter wavelength away from the metal surface, a constructive interference will be generated between the incident wave and reflective wave. Although quarter wavelength has better signal effect, practically, the RFID tag will not be arranged at location having quarter wavelength away from the metal surface of metal object due to the volume limitation. In addition, when the distance is reduced between the RFID tag and metal surface, the energy storage will be increased whereby the radiating energy is difficult to be emitted. Therefore, when the UHF RFID tag is close to the metal object, how to improve the interrogating distance is an important issue that should be solved.
Please refer to
According to the conventional art, the method for overcoming the metal effect is to add a medium between the RFID tag and metal surface on which the RFID tag attached so as to increase the distance between the RFID tag and metal surface thereby reducing the metal effect. Nevertheless the conventional PIFA can be utilized in the metal environment, the accessing range of interrogation or the bandwidth is short. Therefore, there is a need for providing a RFID device having characteristics of being operated in the metal environment with broadened operation frequency range so as to solve the above-mentioned drawbacks of the conventional RFID devices.
The present invention provides an antenna structure having radiating conductor and ground conductor electrically coupled to the radiating conductor wherein an hollow structure is formed inside the radiating conductor for shortening wavelength resonating with the antenna structure thereby reducing the volume of the antenna structure
The present invention provides an antenna structure and device, wherein at least four surfaces of the substrate have antenna structure formed thereon. In one embodiment, antenna structure can be further formed on the five surfaces or six surfaces of the substrate. In one embodiment, in addition to covering the surfaces along the length direction of the substrate by the radiating conductor, the radiating conductor further has extended conductor part for covering lateral surfaces of substrate along the width direction such that the radiating surface area is increased whereby the gain of antenna structure is improved to increase the interrogating distance between the RFID reader and RFID tag.
In one embodiment, the present invention provides an antenna structure for metal environment comprising a radiating conductor comprising a first hollow structure and a second hollow structure, and a ground conductor electrically connected to the radiating conductor, wherein one end of the first hollow structure is connected to a first lateral side of the radiating conductor, and one end of the second hollow structure is connected to a second side of the radiating conductor, and the ground conductor.
In one embodiment, the present invention provides an antenna structure for metal environment comprising a radiating conductor comprising a first hollow structure and a second hollow structure, and a ground conductor having first ground conductor and a second ground conductor, wherein one end of the first hollow structure is opened a first lateral side of the radiating conductor, one end of the second hollow structure is opened at a second side of the radiating conductor, and the ground conductor, the first ground conductor is electrically connected to a third lateral side of the radiating conductor, and the second ground conductor is electrically connected to a fourth lateral side of the radiating conductor.
In one embodiment, the present invention provides an antenna device for metal environment. The antenna device comprises a radio frequency chip, a radio frequency chip, a substrate and an antenna structure. The substrate is configured to have a first surface, a first lateral surface and a second lateral surface respectively connected to two lateral sides of the first surface along a first direction, and extended along a third direction, a third lateral surface and a fourth lateral surface respectively connected to two lateral sides of the first surface along a second direction, and extended along the third direction, and a second surface arranged opposite to the first surface along the third direction, and connected to the first lateral surface, the second lateral surface, the third lateral surface and the fourth lateral surface. The antenna structure is formed onto the substrate and electrically coupled to the radio frequency chip and further comprises a radiating conductor, a ground conductor, and a connecting conductor. The radiating conductor is formed on the first surface and comprises a first hollow structure and a second hollow structure, wherein one end of the first hollow structure is connected to a first lateral side of the radiating conductor, and one end of the second hollow structure is connected to a second side of the radiating conductor. The ground conductor is formed on the second surface, and is electrically connected to the radiating conductor. The connecting conductor is electrically coupled to the ground conductor and the radiating conductor.
In one embodiment, the present invention provides an antenna device for metal environment. The antenna device comprises a radio frequency chip, a radio frequency chip, a substrate and an antenna structure. The substrate is configured to have a first surface, a first lateral surface and a second lateral surface respectively connected to two lateral sides of the first surface along a first direction, and extended along a third direction, a third lateral surface and a fourth lateral surface respectively connected to two lateral sides of the first surface along a second direction, and extended along the third direction, and a second surface arranged opposite to the first surface along the third direction, and connected to the first lateral surface, the second lateral surface, the third lateral surface and the fourth lateral surface. The antenna structure comprises a radiating conductor comprising a first hollow structure and a second hollow structure, and a ground conductor having first ground conductor and a second ground conductor, wherein one end of the first hollow structure is opened a first lateral side of the radiating conductor, one end of the second hollow structure is opened at a second side of the radiating conductor, and the ground conductor, the first ground conductor is electrically connected to a third lateral side of the radiating conductor, and the second ground conductor is electrically connected to a fourth lateral side of the radiating conductor.
In one embodiment, the present invention provides an antenna device for metal environment. The antenna device comprises a radio frequency chip, a substrate having six surfaces, and an antenna structure. The antenna structure is formed onto the substrate and electrically coupled to the radio frequency chip, and the antenna structure further comprises a radiating conductor, a ground conductor and a connecting conductor, wherein the radiating conductor comprises a first hollow structure having one end opened at a first lateral side of the radiating conductor, and a second hollow structure having one end opened at a second side of the radiating conductor, and the connecting conductor is connected to the ground conductor and the radiating conductor, wherein the antenna structure is formed onto at least four surfaces of the substrate.
The present invention will now be specified with reference to its preferred embodiment illustrated in the drawings, in which:
The invention disclosed herein is directed to an antenna structure and device utilized in metal environment. In the following description, numerous details are set forth in order to provide a thorough understanding of the present invention. It will be appreciated by one skilled in the art that variations of these specific details are possible while still achieving the results of the present invention. In other instance, well-known components are not described in detail in order not to unnecessarily obscure the present invention.
Please refer to
The antenna structure 20 comprises a radiating conductor 200, a ground conductor having first ground conductor 203 and a second ground conductor 204. The radiating conductor 200 has a first hollow structure 201 and a second hollow structure 202 formed within the radiating conductor, wherein one end of the first hollow structure 201 extends to a first side A of the radiating conductor 200 such that an opening 201a corresponding to the first hollow structure 201 is formed at the first side A while one end of the second hollow structure 202 extends to a second side B of the radiating conductor 200 such that an opening 202a corresponding to the second hollow structure 202 is formed at the second side B.
In the present embodiment, the first hollow structure 201 and the second hollow structure 202 formed inside the radiating conductor 200 are void areas without the metal material and are symmetrically arranged at two separated side of a central axis 90 passing through the centers of third side C and fourth side D of the radiating conductor 200. It is noted that the shape of each first hollow structure 201 and second hollow structure 202 is not limited to the L-shaped structure shown in
By the layout arrangement of the first and second hollow structures 201 and 202 inside the radiating conductor 200, a first power supplying conductive element 207 representing positive electrode, for example, and a second power supplying conductive element 208 representing negative electrode, for example, can be formed such that the radio frequency chip 4 can be electrically coupled to the first power supplying conductive element 207 and the second power supplying conductive element 208 whereby the radio frequency chip 4 can be interrogated with the RFID reader through the antenna structure 20.
In the embodiment shown in
Please refer to
In another embodiment, such as the antenna structure shown in
Alternatively, please refer to
Please refer to the Friis free-space formula (1) related the broadcast of electromagnetic wave in the free space illustrated blow, wherein the Pth is referred to the lowest start power of IC chip, λ is referred to the wavelength of the center frequency, Gr is gain of the antenna structure, tis power transmission coefficient, Pt is accessing power strength of the reader, and Gt is the maximum gain of the antenna of reader. It is noted that Gr and τ are vital parameters for designing the antenna structure.
In addition, the equation (2) shown below represents gain Gr of the antenna structure. According to the equation, the gain Gr is positive correlation to antenna area Ae. If the antenna area is larger, the gain Gr can be strengthened to increase the interrogation distance.
According to the equation shown above, it is noted that the antenna area shown in
Regarding to the dimension of the antenna structure, it is explained by utilizing the antenna structure shown in
Please refer to
The substrate 30 has a first surface 300, a first lateral surface 301 and a second lateral surface 302 respectively connected to two lateral sides of the first surface 300 which are spaced apart along a first direction (X), and extending along a third direction (Z), a third lateral surface 303 and a fourth lateral surface 304 respectively connected to two lateral sides of the first surface 300 which are spaced apart along a second direction (Y), and extending along the third direction (Z), and a second surface 305 arranged opposite to the first surface 300 along the third direction (Z), and connected to the first lateral surface 301, the second lateral surface 302, the third lateral surface 303 and the fourth lateral surface 304. The size of the substrate 30 is determined according to user's need. In one embodiment, the length Ls of the substrate 30 is ranged between 25˜75 mm, the width Ws is ranged between 8˜40 mm, and the height Hs is ranged between 1˜15 mm. It is noted that the dimension described above is only the exemplary embodiment, and it is not the limitation of the present invention.
The antenna structure 20 is formed onto at least four surfaces, at least five surfaces or six surfaces of the substrate 30. In one embodiment, the metal conductors are formed onto the flexible substrate 5 to form the antenna structure 20, and the antenna structure 20 is formed onto the substrate 30 by sticking the flexible substrate 5 onto the substrate. In the embodiment shown in
The first ground conductor 203 and the second ground conductor 204 is formed onto the second surface 305. The first connecting conductor 209a and the second connecting conductor 209b are formed onto the first lateral surface 301 and the second lateral surface 302, respectively. The two sides of the first connecting conductor 209a are electrically connected to the first ground conductor 203 and the third side C of the radiating conductor 200, and the two sides of the second connecting conductor 209b is electrically connected to the second ground conductor 204 and the fourth side D of the radiating conductor 200. The features of the antenna structure 20 are the same as the embodiment shown in
In one embodiment of making the antenna structure 20 shown in
Please refer to
The effect of the antenna device of the present invention is described hereinafter. Please refer to
According to the testing result, the peak of the accessing distance of the antenna device 1 is 10 meter and the accessing frequency corresponding to the peak of the accessing distance of the antenna device 1 is corresponding to the specification of American accessing frequency ranged between 902˜928 MHz. The peak of the accessing distance of the antenna device 3 is 12.2 meter and the accessing frequency corresponding to the peak of the accessing distance of the antenna device 3 is corresponding to the specification of American accessing frequency ranged between 902˜928 MHz. The peak of the accessing distance of the antenna device 3b is 14.3 meter and the accessing frequency corresponding to the peak of the accessing distance of the antenna device 3b is corresponding to the specification of American accessing frequency ranged between 902˜928 MHz. According to the testing result, whether the farthest distance of interrogation or accessing frequency range, it is clear that results of the antenna device 3 and 3b are superior to the antenna device 1 shown in
Please refer to
According to the testing result, the peak of the accessing distance of the antenna device 1 is 10 meter and the accessing frequency corresponding to the peak of the accessing distance of the antenna device 1 is corresponding to the specification of American accessing frequency ranged between 902˜928 MHz. The peak of the accessing distance of the antenna device 3 is 12.2 meter and the accessing frequency corresponding to the peak of the accessing distance of the antenna device 3 is corresponding to the specification of American accessing frequency ranged between 902˜928 MHz. The peak of the accessing distance of the antenna device 3b is 14.3 meter and the accessing frequency corresponding to the peak of the accessing distance of the antenna device 3b is corresponding to the specification of American accessing frequency ranged between 902˜928 MHz. According to the testing result, whether the farthest distance of interrogation or accessing frequency range, it is clear that results of the antenna device 3 and 3b are superior to the antenna device 1 shown in
Please refer to
According to the testing result, the peak of the accessing distance of the antenna device 1 is 7.5 meter and the accessing frequency corresponding to the peak of the accessing distance of the antenna device 1 is corresponding to the specification of American accessing frequency ranged between 902˜928 MHz. The peak of the accessing distance of the antenna device 3 is 5.2 meter and the accessing frequency corresponding to the peak of the accessing distance of the antenna device 3 is corresponding to the specification of American accessing frequency ranged between 902˜928 MHz. The peak of the accessing distance of the antenna device 3b is 7.5 meter and the accessing frequency corresponding to the peak of the accessing distance of the antenna device 3b is corresponding to the specification of American accessing frequency ranged between 902˜928 MHz. According to the testing result, whether the farthest distance of interrogation or accessing frequency range, it is clear that results of the antenna device 3b are superior to the antenna device 1 shown in
Please refer to
According to the testing result, the peak of the accessing distance of the antenna device 1 is 2.6 meter and the accessing frequency corresponding to the peak of the accessing distance of the antenna device 1 is corresponding to the specification of American accessing frequency ranged between 902˜928 MHz. The peak of the accessing distance of the antenna device 3 is 4.8 meter and the accessing frequency corresponding to the peak of the accessing distance of the antenna device 3 is corresponding to the specification of American accessing frequency ranged between 902˜928 MHz. The peak of the accessing distance of the antenna device 3b is 5.2 meter and the accessing frequency corresponding to the peak of the accessing distance of the antenna device 3b is corresponding to the specification of American accessing frequency ranged between 902˜928 MHz. According to the testing result, whether the farthest distance of interrogation or accessing frequency range, it is clear that results of the antenna device 3b are superior to the antenna device 1 shown in
It is noted that although the radiating conductor, ground conductor and the connecting conductor is formed on the flexible substrate 5 and the flexible substrate 5 is stuck onto the substrate 30 in the previous embodiment, it will not be a limitation of the present invention. For example, alternatively, please refer to
Alternatively, in the embodiment shown in
Alternatively, in the embodiment shown in
According to the embodiments shown above, the antenna structure and device of the preset invention have opened structures formed on the radiating conductor whereby wavelength resonating with the antenna structure can be shortened thereby reducing the volume of the antenna structure. Besides, in addition to covering the surfaces of the substrate by the conductor part of the radiating conductor along the length direction, the radiating conductor further has conductor part along the width direction for covering the substrate thereby increasing radiating surface area such that the gain of antenna structure is strengthened to increase the interrogating distance between the RFID reader and RFID tag.
While the present invention has been particularly shown and described with reference to a preferred embodiment, it will be understood by those skilled in the art that various changes in form and detail may be without departing from the spirit and scope of the present invention.
Number | Date | Country | Kind |
---|---|---|---|
109129513 | Aug 2020 | TW | national |
Number | Name | Date | Kind |
---|---|---|---|
6218990 | Grangeat et al. | Apr 2001 | B1 |
8576124 | Popugaev et al. | Nov 2013 | B2 |
8950683 | Liu et al. | Feb 2015 | B2 |
10176422 | Ennabli et al. | Jan 2019 | B2 |
10248904 | Akamatsu | Apr 2019 | B2 |
10289945 | Ramirez | May 2019 | B1 |
10339437 | Sugimura et al. | Jul 2019 | B2 |
10755161 | Zhu et al. | Aug 2020 | B2 |
11087198 | Zhou | Aug 2021 | B2 |
20070229276 | Yamagajo et al. | Oct 2007 | A1 |
20090160653 | Yeh et al. | Jun 2009 | A1 |
20110315774 | Baba et al. | Dec 2011 | A1 |
20140284388 | Liu | Sep 2014 | A1 |
20160140368 | Kai | May 2016 | A1 |
Number | Date | Country |
---|---|---|
103679247 | Mar 2014 | CN |
203644063 | Jun 2014 | CN |
104751223 | Jul 2015 | CN |
104751223 | Jun 2018 | CN |
2012253700 | Dec 2012 | JP |
2011141860 | Nov 2011 | WO |
Entry |
---|
Extended European search report, dated Feb. 4, 2022, in corresponding application EP 21187817 8. |
Taiwanese Office Action, dated Dec. 24, 2021, in a counterpart Taiwanese patent application, No. TW 109129513. |
Number | Date | Country | |
---|---|---|---|
20220069435 A1 | Mar 2022 | US |