1. Field of the Invention
The present invention relates to a ring millimeter-wave filter and, more particularly, to a ring millimeter-wave filter making use of an embedded microstrip line to realize a three-dimension architecture.
2. Description of Related art
Filters play an important role in the wireless communication area. The function of a filter is to pass signals in its pass band and to attenuate signals in its stop band. In other words, filters control the responses near a certain frequency of communication systems.
After the low-temperature cofired ceramic (LTCC) process has been presented to the public, it has been used to fabricate multi-layer substrates to reduce the whole circuit area. For instance, Taiwan Pat. App. No. 562250 “multi-layer ceramic lowpass filter” and U.S. Pat. App. No. 2005/0012567 A1 “lowpass filter formed in multi-layer ceramic” have disclosed this kind of technology to facilitate integration with more circuits. Moreover, because filters made of inductors and capacitors have a serious high-frequency parasitic effect, they are only suitable to applications in lower microwave bands. Because ring filters use a wavelength transmission line to select the frequency, they can apply to high-frequency or millimeter-wave bands. Moreover, because ring filters have two transmission zero points near their central frequency, they can completely filter out noise of nearby channels and thus are suitable for bandpass filtering applications.
Conventional planar ring filters use a planar edge coupled method for energy coupling, e.g., U.S. Pat. App. No. 2004/0257173 A1 “apparatus and methods for split feed coupled-ring resonator-pair elliptic-function filters” and U.S. Pat. No. 6,720,848 B2 “dual mode bandpass filter having coupled modes.” For multi-layer package design, however, this planar architecture will occupy most of the surface area and thus is not suitable to small-area designs.
In the present invention, energy coupling of a multi-layer package three-dimensional structure is used to design a small-area ring filter. The present invention proposes a ring millimeter-wave filter making use of an embedded microstrip line to realize a three-dimensional architecture so as to solve the above problems in the prior art.
An object of the present invention is to propose a ring millimeter-wave filter, which makes use of a three-dimensional energy coupling method and an embedded microstrip line to reduce the whole filter circuit area so as to facilitate integration with other active and passive circuits.
Another object of the present invention is to provide a ring millimeter-wave filter, which makes use of the low-temperature cofired ceramic technology to fabricate multi-layer three-dimensional coupling capacitors so as to reduce the ring filter area, hence accomplishing the effect of system packaging.
To achieve the above objects, a ring millimeter-wave filter of the present invention is made by the low-temperature cofired ceramic (LTCC) multi-layer process. The ring millimeter-wave filter comprises a signal input electrode, a signal output electrode, at least two coupling capacitors, an embedded microstrip line ring, and a perturbation source. The signal input electrode is used for receiving an external signal to be processed. The signal output electrode is used for outputting the processed signal. The magnitudes of coupling capacitance of the coupling capacitors are determined according to the overlap area of an upper metal microstrip line and a lower metal layer electrically connected with the signal input electrode and the signal output electrode, respectively. The embedded microstrip line ring is connected to the lower metal layer. The signal is coupled from the signal input electrode to the embedded microstrip line ring or from the embedded microstrip line ring to the signal output electrode via the coupling capacitors. The perturbation source is located intermediately between the signal input electrode and the signal out electrode and connected to the embedded microstrip line ring. The perturbation source is used to make two orthogonal modes produce coupling so as to excite the required frequency band and bandwidth.
The various objects and advantages of the present invention will be more readily understood from the following detailed description when read in conjunction with the appended drawing, in which:
In the present invention, a ring filter conventionally realized in a mono-layer substrate is fabricated by means of the low-temperature cofired ceramic (LTCC) multi-layer substrate process to simplify the whole design flow and also reduce the whole circuit area, hence facilitating integration with other active and passive components. The present invention accomplishes area reduction by means of three dimensional coupling. The present invention uses an embedded microstrip line ring whose effective wavelength, due to its larger dielectric constant, is smaller than that of a microstrip line ring. The whole circuit area can therefore be reduced.
A ring millimeter-wave filter of the present invention is mainly divided into three parts: an electrode part, a ring part, and a perturbation part. As shown in
The signal input electrode 12 and the signal output electrode 14 are orthogonal to each other. The conductive layer immediately below the ring structure, i.e., layer 5 (of the layers 1,2,3,4,5,6, and 7, illustrated in
An important aspect of the design of the three dimensional ring filter is the coupling between the input terminal and the output terminal. The magnitude of coupling is determined by the overlap between the upper and lower metal layers (layer 6 and layer 7). In order to increase the coupling, the upper metal microstrip lines 16 and 18 at layer 7 and the lower metal layers 20 and 22 at layer 6 have a certain overlap area. As shown in
In practical designs, the required effective wavelength of the embedded microstrip line ring 10 is first designed according to the desired working frequency. Next, the required coupling capacitors 24 and 26 are designed and calculated out by means of three dimensional coupling. The perturbation source 28 is also added to excite the required pass band. The signal input electrode 12 and the signal output electrode 14 are then placed with a spacing of a quarter wavelength, and the perturbation source 28 is placed intermediately between the signal input electrode 12 and the signal output electrode 14. The direction of energy transfer is from the signal input electrode 12 via the coupling capacitor 24 to the embedded microstrip line ring 10, and then via the coupling capacitor 26 to the signal output electrode 14.
As shown in
To exemplify the effect of the present invention, a 3-D LTCC ring filter is made by Formosa Teletek Corporation. The LTCC process has a line-width limit of 3 mils. The thickness of each layer is 3.5 mils as shown in
Although the present invention has been described with reference to the preferred embodiment thereof, it will be understood that the invention is not limited to the details thereof. Various substitutions and modifications have been suggested in the foregoing description, and other will occur to those of ordinary skill in the art. Therefore, all such substitutions and modifications are intended to be embraced within the scope of the invention as defined in the appended claims.
Number | Name | Date | Kind |
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5172084 | Fiedziuszko et al. | Dec 1992 | A |
6121861 | Yabuki et al. | Sep 2000 | A |
6958667 | Mizoguchi et al. | Oct 2005 | B2 |
Number | Date | Country | |
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20070052501 A1 | Mar 2007 | US |