The present disclosure generally relates to antenna technology field, and more particularly, to a patch antenna unit and an antenna array in package.
5G standards of 3GPP define five millimeter-wave frequency bands N257 to N261 of NR-FR 2, including both 24.25 GHz to 29.5 GHz and 37 GHz to 43.5 GHz. Supporting the above frequency 5 bands N257 to N261 in a same Antenna in Package (AiP) module will facilitate various requirements in practical applications. 5G mobile intelligent terminals are becoming more and more complex in functional structures, and thinner in industrial design. Therefore, chip packaging should follow miniaturization and low cost design as much as possible.
By integrating various technical requirements of millimeter wave mobile communication, an AiP form integrating Transceiver Radio Frequency Integrated Circuit (TRX RFIC) and antenna array is most conducive to realizing functions and performance of highly integrated millimeter wave front-end single chip or module, thereby facilitating application of mobile terminals and various miniaturized devices. AiP realizes the antenna array and a feed network through a substrate in package, thus, a Microstrip Antenna (MSA) is generally used as an antenna unit. A relative bandwidth of a traditional MSA is relatively narrow, and the relative bandwidth of an ordinary single-layer MSA is smaller than 5%, which cannot meet requirements of covering full frequency bands. In addition, a system also requires implementing two orthogonal polarization modes, and maintaining high inter-polarization isolation to meet system requirements such as Multi Input Multi Output (MIMO). Existing stacked wideband dual polarization MSA technology is illustrated in
An embodiment of the present disclosure provides a patch antenna unit including: a substrate; and two groups of stacked patches which respectively stack on the substrate, geometric axes of the two groups of stacked patches being perpendicular to each other, wherein a radiating edge of each patch in the stacked patches is shaped as a function curve, the radiating edges of the patches in different layers are shaped as integrally orthogonal function curves, and a function curve corresponding to a shape of a non-radiating edge of each patch includes a ripple function curve.
An embodiment of the present disclosure also provides an antenna array in package, including a plurality of the patch antenna units described above.
An embodiment of the present disclosure provides a patch antenna unit including: a substrate; and two groups of stacked patches which respectively stack on the substrate, geometric axes of the two groups of stacked patches being perpendicular to each other, wherein a radiating edge of each patch in the stacked patches is shaped as a function curve, the radiating edges of the patches in different layers are shaped as integrally orthogonal function curves, and a function curve corresponding to a shape of a non-radiating edge of each patch includes a ripple function curve. In the patch antenna unit, two groups of stacked patches are disposed in such a way that the geometric axes are perpendicular to each other, so as to implement two mutually orthogonal polarization directions to accomplish dual-polarization work. Additionally, the radiating edges of the patches are shaped as function curves, and the radiating edges in different layers are shaped as integrally orthogonal function curves, thereby generating a plurality of resonance modes, and increasing a work bandwidth. The non-radiating edges of the patches have a shape corresponding to a ripple function curve, thereby forming a slow wave transmission structure, so as to reduce an area of the patches. Under conventional substrate packaging processes, the structure of the patch antenna unit provided in the embodiments of the present disclosure may achieve performance indicators such as good impedance matching, high antenna gain, and high polarization isolation, thereby meeting technical requirements of AiP wideband units. Due to the usage of mutually independent polarization units and frequency band units, inter-polarization and inter-frequency band isolation may be better guaranteed.
In order to make the above objectives, features, and advantages of the disclosure more apparent and understandable, specific embodiments of the disclosure are described in detail below in conjunction with the accompanying drawings.
Referring to
In the embodiment, the patch antenna unit includes: a substrate 10; and two groups of stacked patches which respectively stack on the substrate 10, where one group of stacked patches includes a patch 111 and a patch 112, and the other group of stacked patches includes a patch 121 and a patch 122.
In some embodiments, each group of stacked patches may include more than two patches.
In some embodiments, the substrate 10 is a dielectric substrate or a printed circuit board.
As shown in
Still referring to
In some embodiments, the radiating edge of each patch in the stacked patches is shaped as a function curve. Specifically, the function curve is a triangular function curve, a parabolic function curve, a hyperbolic function curve, or an elliptic function curve, with a number of cycles being 1 or 2. That is, a shape of the radiating edge is a shape of a function curve with a small number of cycles.
In some embodiments, in each group of stacked patches, the radiating edges of the patches in different layers are shaped as integrally orthogonal function curves, which allows generating decoupling of a stacked-layer resonator coupling mode to support independent modes resonating at different frequencies, thereby widening an operating bandwidth.
In some embodiments, in each group of stacked patches, a function curve corresponding to a shape of the radiating edge of the patch in one of the two layers is:
y=A
1 cos(n·2π·x/W),
wherein W is a straight line distance from one end of the radiating edge of the patch to the other end of the radiating edge of the patch, A1 is an amplitude of extension of the function curve, and n is a number of cycles that the function curve varies with the radiating edge of the patch.
Accordingly, in the group of stacked patches, a function curve corresponding to the radiating edge of the patch in the other of the two layers is:
y=A
2 cos(n′·2π·x/W),
wherein W is a straight line distance from one end of the radiating edge of the patch to the other end of the radiating edge of the patch, A2 is an amplitude of extension of the function curve, and n′ is a number of cycles that the function curve varies with the radiating edge of the patch.
In some embodiments, n is 1 or 2, and accordingly n′ is 2 or 1, i.e., shapes of all the radiating edges are shapes of function curves with a small number of cycles.
In some embodiments, a function curve corresponding to a shape of a non-radiating edge of each patch includes a ripple function curve. Specifically, the ripple function curve is a triangular function curve, a parabolic function curve, a hyperbolic function curve, or an elliptic function curve, with a number of cycles being an integer greater than 3. In practical applications, considering feasibility of processes, the number of cycles of the ripple function curve may be any integer between 4 and 8. By configuring the non-radiating edges of the patches to have a shape of a ripple function, a slow wave transmission structure is formed, thereby reducing an area of the patches.
In some embodiments, the ripple function curve is:
y=A
0 cos(n·2π·x/L),
wherein L is a straight line distance from one end of the non-radiating edge of the patch to the other end of the non-radiating edge of the patch, A0 is an amplitude of extension of the ripple function curve, n is a number of cycles that the ripple function curve varies with the non-radiating edge of the patch, and n is greater than 3.
In some embodiments, the function curve corresponding to the shape of the non-radiating edge of each patch is a superposition of the ripple function curve and a concave function curve, and the concave function curve is a triangular function curve, a parabolic function curve, a hyperbolic function curve or an elliptic function curve, with a number of cycles being 1 or 2, i.e., a concave function with a small number of cycles. By superposing a concave function with a small number of cycles on the basis of the slow wave structure, an area of the patch is reduced, and a distance between two groups of polarization units is increased.
In some embodiments, the concave function curve is:
y=A
1 cos(n′·2π·x/L),
wherein L is a straight line distance from one end of the non-radiating edge of the patch to the other end of the non-radiating edge of the patch, A1 is an amplitude of extension of the concave function curve, n′ is a number of cycles that the concave function curve varies with the non-radiating edge of the patch, and n′ is 1 or 2.
Accordingly, the function curve corresponding to the shape of the non-radiating edge of each patch may be a superposition of the ripple function curve and a concave function curve, namely:
y=A
0 cos(n·2π·x/L)+A1,
As shown in
In the prior art, it is generally to increase impedance bandwidth of antennas by thickening a substrate. However, a thick substrate in a millimeter wave frequency band may bring significant surface wave losses. In order to avoid this problem and meet various requirements for chip packaging in AiP, in embodiments of the present disclosure, a thickness of the substrate 10 and a wavelength corresponding to an operating frequency of the patch antenna unit satisfy a following relationship:
h/λ
0<1/10,
wherein h is the thickness of the substrate 10, and λ0 is the wavelength corresponding to the operating frequency of the patch antenna unit.
Still referring to
The ground plane 17 is disposed between the patch antenna and Radio Frequency Integrated Circuits (RFIC, not shown in
In some embodiments, the RFIC may be set at any position on the substrate, such as a center of the substrate, or at some other location relative to the center of the substrate, which is not limited in embodiments of the present disclosure.
Referring to
Specifically,
Referring to
Referring to
Specifically,
Therefore, the patch antenna unit provided by the embodiments of the present disclosure possesses good wideband impedance and gain characteristics as well as high inter-polarization isolation in high frequency bands, thereby increasing operating bandwidth to satisfy communication requirements of user terminals in the high frequency bands (including frequency bands from N259 to N260).
Referring to
Referring to
In summary, in the patch antenna unit provided by the embodiments of the present disclosure, two groups of stacked patches are disposed in such a way that the geometric axes are perpendicular to each other, so as to implement two mutually orthogonal polarization directions to accomplish dual-polarization work. Additionally, the radiating edges of the patches are shaped as function curves, and the radiating edges in different layers are shaped as integrally orthogonal function curves, thereby generating a plurality of resonance modes, and increasing a work bandwidth. The non-radiating edges of the patches have a shape corresponding to a ripple function curve, thereby forming a slow wave transmission structure, so as to reduce an area of the patches. Under conventional substrate packaging processes, the structure of the patch antenna unit provided in the embodiments of the present disclosure may achieve performance indicators such as good impedance matching, high antenna gain, and high polarization isolation, thereby meeting technical requirements of AiP wideband units. Due to the usage of mutually independent polarization units and frequency band units, inter-polarization and inter-frequency band isolation may be better guaranteed.
Further, the non-radiating edges of the patches have a ripple shape by using a function with a large number of cycles, which leads to slow wave effect in a transmission of electromagnetic waves along the patches to reduce a transmission distance.
Further, a function with a small number of cycles may be superimposed on the function with the large number of cycles to generate an inward concave of the non-radiating edges of the latches, thereby further reducing the area, and increasing a distance between two polarization units to improve the polarization isolation.
Accordingly, the patch antenna units provided by the embodiments of the present disclosure are prone to form a full-band antenna array in package with at least one low-frequency antenna unit to cover a full frequency band of NR-FR2.
Although the present disclosure has been disclosed above with reference to preferred embodiments thereof, it should be understood that the disclosure is presented by way of example only, and not limitation. Those skilled in the art can modify and vary the embodiments without departing from the spirit and scope of the present disclosure.
Number | Date | Country | Kind |
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202011140354.8 | Oct 2020 | CN | national |
This is the U.S. national stage of application No. PCT/CN2021/092247, filed on May 8, 2021. Priority under 35 U.S.C. § 119(a) and 35 U.S.C. § 365(b) is claimed from Chinese Application No. 202011140354.8, filed Oct. 22, 2020, the disclosure of which is also incorporated herein by reference.
Filing Document | Filing Date | Country | Kind |
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PCT/CN2021/092247 | 5/8/2021 | WO |