MULTI-RESONATOR BANDPASS FILTER
20190103646 ยท 2019-04-04
Inventors
Cpc classification
H01P1/2056
ELECTRICITY
International classification
Abstract
Provided is a multi-resonator bandpass filter, which comprises a block, an input electrode, and an output electrode. The block comprises an open surface, a short-circuited surface, and a top surface. Multiple of resonant holes are penetrated through the block. The open surface is provided with a first hollowed-out region; the top surface is provided with two second hollowed-out region; the input electrode and the output electrode are disposed on the two second hollowed-out region, respectively. The block flintier comprises a ground metal layer and a resonant coating layer. Each of the resonant holes is coaxially provided with a first groove and a second groove in the direction from the open surface to the short-circuited surface. The first groove is a rectangular shape in the cross-section parallel to the open surface, and the second groove is substantially a round shape in the cross-section parallel to the open surface.
Claims
1. A multi-resonator bandpass filter, comprising: a block, that is a substantially rectangular solid shape, comprising an open surface, a short-circuited surface opposite to the open surface, a top surface connected between the open surface and the short-circuited surface, and a plurality of resonant holes; wherein the plurality of resonant holes are defined by the'block and extend in parallel from the open surface to the short-circuited surface; the open surface is provided with a first hollowed-out region which is disposed around each resonant holes; the top surface is provided with two second hollowed-out regions, each of the two second hollowed-out regions is extended to the open surface and in communication with the first hollowed-out region; an input electrode is disposed on one of the two second hollowed-out regions, and an output electrode is disposed on the other one of the two second hollowed-out regions; the block further comprises a ground metal layer and a resonant coating layer; the ground metal layer is coated on the outer surfaces of the block, but the first hollowed-out region and the second hollowed-out region; the resonant coating layer is coated inside the resonant holes and is coupled with the ground metal layer at the short-circuited surface to form a short-circuited end: each of the resonant holes is coaxially provided with a first groove and a second groove in a direction from the open surface to the short-circuited surface; a cross-section of the first in core viewed from the open surface is substantially rectangular, and a cross-section of the second groove viewed from the open surface is substantially round.
2. The multi-resonator bandpass filter according to claim 1, wherein a common side between the open surface and the top surface is defined as a first line; and the first grooves are symmetrical with respect to a perpendicular bisector of the first line on the open surface.
3. The multi-resonator bandpass filter according to claim 2, wherein the second grooves have a common diameter; and a minimum side length of the first groove is larger than a diameter of the second groove.
4. The multi-resonator bandpass filter according to claim 1, wherein a depth ratio of the first groove and the second groove in the direction from the open surface to the short-circuited surface is in a range of to .
5. The multi-resonator bandpass filter according to claim 3, wherein the number of the resonant holes is five.
6. The multi-resonator bandpass filter according to claim 5, wherein the first hollowed-out region is symmetrical about the perpendicular bisector of the first line on the open surface, and the two second hollowed-out regions are symmetrical to each other about a perpendicular bisector of the first line on the top surface.
7. The multi-resonator bandpass filter according to claim 6, wherein the first hollowed-out region includes a first subregion, a second subregion, a third subregion, wherein the second subregion is disposed around three resonant holes in the middle of the five resonant holes, and the first subregion and the third subregion are respectively disposed around the resonant holes on both sides.
8. The multi-resonator bandpass filter according to claim 7, wherein the two second hollowed-out regions are separately in communication with the first subregion and the third subregion.
9. The multi-resonator bandpass filter according to claim 2, wherein the first line is defined as the long side of the open surface, and the top surface, wherein a length of the long side is 6.2 mm to 5.4 mm; a length of the short side of the open surface is 2.5 mm to 1.7 mm; and a length of the short side of the top surface is 3.4 mm to 2.6 mm.
10. The multi-resonator bandpass filter according to claim 1, wherein the input electrode is disposed on one of the two second hollowed-out regions and the output electrode is disposed on the other of the two second hollowed-out regions by screen printing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
NUMERICAL REFERENCES
[0029] Block 1 [0030] Open surface 11 [0031] Short-circuited surface 12 [0032] Top surface 13 [0033] Input electrode 2 [0034] Output electrode 3 [0035] Resonant hole 4 [0036] First groove 41 [0037] Second groove 42 [0038] First hollowed-out region 5 [0039] First subregion 51 [0040] Second subregion 52 [0041] Third subregion 53 [0042] Second hollowed out region 6
DETAILED DESCRIPTION OF THE INVENTION
[0043] Hereinafter, this disclosure will be described in detail in combination with the embodiments and drawings for better understanding the objective, technical solutions and advantages of the present disclosure.
Embodiment 1
[0044] Please referring to
[0045] The block 1 is a substantially rectangular solid shape. The block 1 is made of dielectric ceramic materials or other organic dielectric materials. The block 1 comprises an open surface (open-circuited surface) 11, a short-circuited surface 12 opposite to the open surface 11 and a top surface 13 connected between the open surface and the short-circuited surface in the embodiment, a common side between the open surface 11 and the top surface 13 is defined as a first line. The length of the first line is 6.2 mm to 5.4 mm. The length of the other sides of the open surface 11 but the first line is 2.5 mm to 1.7 mm. The length of the other sides of the top surface 13 but the first lime is 3.4 mm to 2.6 mm. The filter provided in this disclosure can reduce the overall size by than the existing dielectric filter. Moreover, the provided size for the filter helps the filter to be more suited for the frequency band of 4 GHz7 GHz.
[0046] A plurality of resonant holes 4 is penetrated through the block 1, extending in parallel from the open surface 11 to the short-circuited surface 12. The multi-resonant holes 4 are all perpendicular to the open surface 11, and therefore form as resonators of the filter. In the embodiment, there are five resonant holes 4.
[0047] The open surface 11 is provided with a first hollowed-out region 5. The hollowed-out region is the region left uncoated, making the body of the block 1 be exposure. At the same time, the first hollowed-out region 5 is provided around each of the resonant holes 4.
[0048] The top surface 13 is provided with two second hollowed-out regions 6. A space is created between the two second hollowed-out regions 6, so that the two second hollowed-out regions 6 does not contact one another. Each of the two second hollowed-out regions 6 is extended to the open surface 11 and connected to the first hollowed-out-region 5, respectively
[0049] The input electrode 2 and the output electrode 3 are disposed on the two se and hollowed-out regions 6 respectively, and are further extended to the open surface 11 at least partially. The input electrode 2 and the output electrode 3 are covered on the block 1 by screen printing. Alternatively, the input and out electrodes may be formed by high-temperature metallization silver electrode which is connected to the block 1. In another embodiment, the input and out electrodes may be a conductive metal layer coated on the outer surface of the block 1 by laser etching.
[0050] The block 1 further comprises a ground metal layer and a resonant coating layer. The ground metal layer is coated on all the outer surfaces of the block 1 but the hollowed-out regions. The resonant coating layer is located inside the resonant holes, and is connected with the ground metal layer at the short-circuited surface 12 to form a short-circuited end. In this embodiment, the thickness of the ground metal layer may be ranged from 6 m to 20 m, and the thickness of the resonant coating layer may be ranged from 0.8 m to 3.0 m.
[0051] Referring to
[0052] The first grooves 41 within the plurality of resonant holes 4 may be not identical to one another. One of ordinary skill in the art may adjust the size of the first groove 41 according to the need. However, the first grooves 41 should remain symmetrical. That being said, the multiple rectangular shapes should be symmetrical with respect to the perpendicular bisector of the first line on the open surface. Similarly, the size of the second grooves 42 may be modified as needed. However, the diameter of each of the second grooves 42 should remain identical. That being said, the round shapes are identical to one another in diameter.
[0053] In this embodiment, the depth ratio of the first groove 41 and the second groove 42 in the direction from the open surface to the short-circuited surface is ranged from to . Preferably, the depth ratio of the first groove 41 and the second groove 42 in the direction from the open surface to the short-circuited surface is ranged from .
[0054] At the same time, the first groove and the second groove are coaxially arranged, facilitating the manufacturing process and increasing the manufacturing efficiency.
[0055] Some of these embodiments provide an ability to decrease the overall size of the filter by arranging resonant holes on the filter. Because, under the condition that the frequency of the wave is kept unchanged, the overall size of the filter can be reduced while the wave transmission distance is increased.
[0056] In the embodiment, in order to improve the electrical characteristics of the filter, the hollow-out regions should be symmetrical. That being said, the first hollowed-out region 5 is symmetrical with respect to the perpendicular bisector of the first line on the open surface 11, and the two second hollowed-out regions 6 are symmetrical to each other with respect to the perpendicular bisector of the first line on the top surface 13.
[0057] Please refer to
Embodiment 2
[0058] Please referring to
[0059] Furthermore, the two second hollowed-out regions 6 are separately connected to the first subregion 51 and the third subregion 53.
[0060] Please referring to
[0061] The above description is merely some specific embodiments of the present invention. However, the protection scope of the present invention is not limited thereto. Any variation or substitution derived from the present invention without creative efforts falls within the protection scope of the present invention.