Technical field
[0002] This application relates to the technical field of wireless local area networks,
in particular to a dual-frequency antenna.
Background
[0003] The current antennas usually achieves dual-frequency resonance through multi-branch
wires. Wiring of the antenna with this structure occupies a larger space on a PCB
(Printed Circuit Board), which causes the overall size of antenna to be too large
to satisfy the miniaturization design. Further, it is difficult to adjust the resonance
frequency band of the antennas whose dual-frequency resonance is achieved through
the multi-branch wires.
[0004] Accordingly, it is highly desirable to optimize the design of the dual-frequency
antenna to provide a dual-frequency antenna with a small size and with a resonant
frequency band easy to adjust.
Summary
[0005] An object of an embodiment of the present application is to provide a dual-frequency
antenna, which can achieve dual-frequency resonance merely by means of one metal conduction
band on which capacitors are connected in series, and can solve the problems that
the space occupied by a multi-branch multi-path structure is large, its size is relatively
large and its resonant frequency band is difficult to adjust. The specific technical
solutions are as follows:
An embodiment of the present application provides a dual-frequency antenna, which
includes:
a PCB provided with a clearance area and a non-clearance area;
a single-path metal conduction band which is arranged within the clearance area and
a terminal end of which is electrically connected to a ground end of the PCB; and
a capacitor connected between an excitation end and the terminal end of the single-path
metal conduction band.
[0006] Optionally, the dual-frequency antenna includes a plurality of capacitors connected
in series on the single-path metal conduction band.
[0007] Optionally, the clearance area is arranged at an edge of the PCB, and the terminal
end and the excitation end of the single-path metal conduction band are located near
an opening side of the clearance area.
[0008] Optionally, the dual-frequency antenna further includes a microstrip line which is
disposed in the non-clearance area and to which the excitation end of the single-path
metal conduction band is electrically connected.
[0009] Optionally, the dual-frequency antenna further includes:
a test connector connected in series with the capacitor on the single-path metal conduction
band and arranged close to the excitation end of the single-path metal conduction
band.
[0010] Optionally, the test connector is a resistor which is connected in series on the
single-path metal conduction band and whose resistance value is zero.
[0011] Optionally, the single-path metal conduction band is arranged within the clearance
area in a stacked reciprocating manner.
[0012] It can be seen that, based on the above-mentioned embodiments, a dual-frequency antenna
includes a PCB, a single-path metal conduction band, and a capacitor. The PCB is provided
with a clearance area and a non-clearance area, wherein the clearance area is formed
in an area without metal or wires and the like on the PCB, and the non-clearance area
is located outside the clearance. The single-path metal conduction band refers to
one metal conduction band which only forms one path without branches. The single-path
metal conduction band is arranged within the clearance area, and a terminal end of
the single-path metal conduction band is electrically connected to a ground end of
the PCB to form a loop antenna, so that high-frequency resonance of the dual-frequency
antenna can be realized. The capacitor is connected between an excitation end and
the terminal end of the single-path metal conduction band, so that low-frequency resonance
of the dual-frequency antenna can be realized.
[0013] Compared with a dual-frequency antenna realized though a multi-branch metal conduction
band, the dual-frequency antenna can realize dual-frequency resonance through the
single-path metal conduction band and capacitors, which is simple in structure and
can adjust the high-frequency resonance by adjusting the length of the single-path
metal conduction band and the area of the clearance area, and can adjust the low-frequency
resonance by adjusting the capacitance value of the capacitor, which effectively simplifies
the resonance adjustment of the antenna.
Brief Description of the Drawings
[0014] In order to illustrate the embodiments of the present application and the technical
solutions of the prior art more clearly, the drawings used in the embodiments and
the prior art are briefly described below. It is obvious that the drawings in the
following description are merely some embodiments of the present application, and
other drawings can be obtained by those skilled in the art based on to the drawings
without creative efforts.
Fig. 1 is a schematic structural diagram of a dual-frequency antenna according to
a specific embodiment of the present application;
Fig 2 is a return loss curve of a dual-frequency antenna according to a specific embodiment
of the present application;
Fig. 3 is a schematic diagram illustrating the efficiency of a dual-frequency antenna
according to a specific embodiment of the present application.
[0015] Reference signs: 10- PCB, 20- a single-path metal conduction band, 21- terminal end,
22- an excitation end, 30- a capacitor, 40- a microstrip line, 1a- a clearance area,
2a- a non-clearance area.
Detailed Description
[0016] In order to make the objects, technical solutions and advantages of the present application
more apparent, the present application will be described in more details with reference
to the accompanying drawings and embodiments below. It should be apparent that the
described embodiments are only some of the embodiments of the present application
instead of all of them. All other embodiments obtained by those skilled in the art
based on the embodiments herein without creative efforts shall fall within the protection
scope of this application.
[0017] In order to describe a dual-frequency antenna provided in the present application
in detail, the structure and operation principle of the dual-frequency antenna will
be described in detail below with reference to the accompanying drawings.
[0018] As shown in Fig. 1, which is a schematic structural diagram of a dual-frequency antenna
according to a specific embodiment of the present application.
[0019] In a specific embodiment, the present application provides a dual-frequency antenna
comprising a PCB 10, a single-path metal conduction band 20 and a capacitor 30. As
shown in Fig. 1, the PCB 10 is provided with a clearance area 1a and a non-clearance
area 2a, wherein the clearance area 1a is formed in an area without metal or wires
and the like on the PCB 10, and the non-clearance area 2a is outside the clearance
area. The single-path metal conduction band 20 refers to one metal conduction band
which only forms one path without branches. The single-path metal conduction band
20 is arranged within the clearance area 1a, and a terminal end of the single-path
metal conduction band 20 is electrically connected to a ground end of the PCB 10 to
form a loop antenna, so that high-frequency resonance of the dual-frequency antenna
can be realized. The capacitor 30 is connected between an excitation end and the terminal
end of the single-path metal conduction band 20, so that low-frequency resonance of
the dual-frequency antenna can be realized.
[0020] Compared with a dual-frequency antenna realized though a multi-branch metal conduction
band, the dual-frequency antenna can realize dual-frequency resonance through the
single-path metal conduction band 20 and the capacitor 30, which is simple in structure.
[0021] The high-frequency resonance can be adjusted by adjusting the length of the single-path
metal conduction band 20 and the area of the clearance area 1a. Specifically, the
high-frequency resonance can be adjusted by increasing the length of the single-path
metal conduction band 20 with the area of the clearance area 1a unchanged. For example,
in the case that the terminal end 21 and the excitation end 22 of the single-path
metal conduction band 20 are kept unchanged, the high-frequency resonance can be adjusted
by increasing the length of the single-path metal conduction band 20, in which the
single-path metal conduction band 20 is disposed within the clearance area 1a in a
wave shape or in a stacked reciprocating manner.
[0022] The low-frequency resonance can be adjusted by adjusting the capacitance value of
the capacitor 30, and the capacitance value of the capacitor 30 is set according to
the required low-frequency resonance point in order to meet the requirements of different
low-frequency resonance points, which effectively simplifies the resonance adjustment
of the antenna.
[0023] Further, the dual-frequency antenna includes a plurality of capacitors 30, which
are connected in series on the single-path metal conduction band 20.
[0024] In a specific embodiment, three capacitors 30 are connected in series on the single-path
metal conduction band 20, as shown in Fig. 1. Preferably, a plurality of capacitors
30 are connected in series, so that the low-frequency resonance can be accurately
adjusted, fine adjustments can be reliably realized, and the requirements on a low-frequency
resonance point can be fully met.
[0025] As shown in Fig. 1, the clearance area 1a is arranged at an edge of the PCB 10, and
the terminal end and the excitation end of the single-path metal conduction band 20
are located near an opening side of the clearance area 1a, so that a distance between
the single-path metal conduction band 20 and the non-clearance area 2a in a direction
perpendicular to the opening side can be increased, thereby the single-path metal
conduction band 20 is located far away from the metal, further optimizing the operating
performance of the antenna.
[0026] Fig. 1 only shows one specific shape of the clearance area 1a, and the shape of the
clearance area 1a is not limited to the square shape in the figure, and can also be
a semicircular shape, an irregular shape, etc., as long as the PCB 10 can be fully
utilized and the utilization rate of the clearance area 1a can be optimized.
[0027] Further, as shown in Fig. 1, the dual-frequency antenna further includes a microstrip
line 40 disposed in the non-clearance area 2a. The excitation end of the single-path
metal conduction band 20 is electrically connected to the microstrip line 40, so as
to be connected to a radio frequency chip or other devices through the microstrip
line 40.
[0028] Based on the above embodiments, the dual-frequency antenna further includes a test
connector, which is connected in series with the capacitor 30 on the single-path metal
conduction band 20 and is arranged close to the excitation end of the single-path
metal conduction band 20.
[0029] In a specific embodiment, the test connector is a resistor with a resistance value
of zero. The resistor is used to form the connection end for testing the dual-frequency
antenna.
[0030] Based on the above structure, the dual-frequency antenna can achieve dual-frequency
resonance merely by means of a metal conduction band on which capacitors 30 are connected
in series, and can solve the problems in the prior art that the space occupied by
a multi-branch multi-path structure is large, its size is relatively large, and its
resonant frequency band is difficult to adjust.
[0031] The performance of the dual-frequency antenna in the specific embodiment of the present
invention is described below with reference to Figs. 2 and 3. Fig. 2 is a return loss
curve of the dual-frequency antenna in the specific embodiment of the present invention,
and Fig. 3 is a schematic diagram illustrating the efficiency of a dual-frequency
antenna in an specific embodiment of the present application.
[0032] As shown in Fig. 2, the dual-frequency antenna with the above structure can achieve
good electrical performance in a frequency band of 2.4 GHz-2.5 GHz and a frequency
band of 5 GHz-5.8 GHz. As shown in Fig. 3, the efficiency of the dual-frequency antenna
according to the present application can reach more than 80% in the frequency band
of 2.4 GHz-2.5 GHz, and more than 40% in the frequency band of 5 GHz-5.8 GHz.
[0033] It should be noted that, in this application, relational terms such as first and
second, and the like are merely used to distinguish one entity or operation from another
entity or operation without necessarily requiring or implying any such actual relationship
or order between such entities or operations. Also, the terms "comprise", "include,"
or any other variation thereof, are intended to cover a non-exclusive inclusion, such
that a process, method, article, or apparatus that comprises a list of elements does
not include only those elements but can include other elements not expressly listed
or include elements inherent to inherent to such process, method, article, or apparatus.
Without further limitation, an element defined by the phrase "comprising a ..." does
not exclude the presence of other identical elements in the process, method, article,
or apparatus that comprises said element.
[0034] The above description is only preferred embodiments of the present application and
should not intended to limit the present application, and any modifications, equivalents,
improvements and the like made within the spirit and principle of the present application
should be included in the scope of the present application.
1. A dual-frequency antenna, comprising:
a PCB provided with a clearance area and a non-clearance area;
a single-path metal conduction band which is arranged within the clearance area and
a terminal end of which is electrically connected to a ground end of the PCB; and
a capacitor connected between an excitation end and the terminal end of the single-path
metal conduction band.
2. The dual-frequency antenna of claim 1, wherein the dual-frequency antenna comprises
a plurality of capacitors connected in series on the single-path metal conduction
band.
3. The dual-frequency antenna of claim 1, wherein the clearance area is arranged at an
edge of the PCB, and the terminal end and the excitation end of the single-path metal
conduction band are located near an opening side of the clearance area.
4. The dual-frequency antenna of claim 1, wherein the dual-frequency antenna further
comprises a microstrip line which is disposed in the non-clearance area and to which
the excitation end of the single-path metal conduction band is electrically connected.
5. The dual-frequency antenna of any one of claims 1 to 4, wherein the dual-frequency
antenna further comprises:
a test connector connected in series with the capacitor on the single-path metal conduction
band and arranged close to the excitation end of the single-path metal conduction
band.
6. The dual-frequency antenna of claim 5, wherein the test connector is a resistor which
is connected in series on the single-path metal conduction band and whose resistance
value is zero.
7. The dual-frequency antenna of claim 1, wherein the single-path metal conduction band
is arranged within the clearance area in a stacked reciprocating manner.