1. Technical Field
Embodiments of the present disclosure generally relate to filters, and more particularly to a band-pass filter.
2. Description of Related Art
Many commonly used band-pass filters utilize low temperature co-fired ceramics (LTCC) technology to filter out noise. As shown in
What is needed, therefore, is an improved band-pass filter to overcome the limitations described.
The disclosure is illustrated by way of example and not by way of limitation in the figures of the accompanying drawings in which like references indicate similar elements. It should be noted that references to “an” or “one” embodiment in this disclosure are not necessarily to the same embodiment, and such references mean at least one.
In the embodiment, the T-type lumped high pass filter 1 includes a first capacitor “C1,” a second capacitor “C2,” a third capacitor “C3,” a fourth capacitor “C4,” a first inductor “L1,” and a second inductor “L2.” The first capacitor“C1,” the second capacitor“C2,” and the third capacitor “C3” are connected in series. One terminal of the inductor “L1” is electrically connected to a connection node of the first capacitor “C1” and the second capacitor“C2,” and the other terminal of the inductor “L1” is grounded. One terminal of the fourth capacitor “C4” is electrically connected to a connection node of the second capacitor “C2” and the third capacitor“C3,” and the other terminal of the fourth capacitor “C4” is grounded via the second inductor “L2.” In the embodiment, the T-type lumped high pass filter 1 and the hairpin-line resonator 2 are connected in series via the first capacitor “C1.”
Referring to
In one embodiment, the hairpin-line resonator 2 has two ports “P1” and “P2.” When the T-type lumped high pass filter 1 receives a series of radio frequency signals from an input port of BPF 10, the T-type lumped high pass filter 1 uses a first threshold frequency value to filter the radio frequency signals, so as to allow high frequency signals of the radio frequency signals to be transmitted to the first port “P1” of the hairpin-line resonator 2. In the embodiment, the first threshold frequency value may be predefined as a first frequency value “f1,” and the frequency value of each of the high frequency signals exceeds the first threshold frequency value “f1.” The hairpin-line resonator 2 receives the high frequency signals transmitted from the T-type lumped high pass filter 1 and uses a second threshold frequency value to filter the high frequency signals, to transmit low frequency signals through the port “P2.” In the embodiment, the second threshold frequency value may be predefined as a second frequency value “f2,” and the frequency value of each of the low frequency signals is less than the second threshold frequency “f2.” As such, the BPF 10 can obtain a series of band-pass signals by using the hairpin-line resonator 2. The band-pass signals may meet a pass band range “f2-f1.”
In one example with respect to
As described, the BPF 10 of the preferred embodiment can achieve 5 GHz BPF, which supports all IEEE 802.11a wireless LAN products, such as a card-bus card, a mini-PCI module, and a access point.
Although certain inventive embodiments of the present disclosure have been specifically described, the present disclosure is not to be construed as being limited thereto. Various changes or modifications may be made to the present disclosure without departing from the scope and spirit of the present disclosure.
Number | Date | Country | Kind |
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200910309758.2 | Nov 2009 | CN | national |