Low-pass filtering system having phase-locked loop
11469763 · 2022-10-11
Assignee
Inventors
Cpc classification
H03L7/107
ELECTRICITY
H03L7/093
ELECTRICITY
Y02E40/40
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
H03L7/085
ELECTRICITY
H03L7/093
ELECTRICITY
Abstract
Disclosed is a low-pass filtering system having a phase-lock loop comprising a Park transform circuit, a first low-pass filter, a second low-pass filter, an inverse Park transform circuit, a phase-locked loop filter, and a voltage-controlled oscillator. The Park transform circuit, the first low-pass filter, the second low-pass filter, and the inverse Park transform circuit form a phase detector of a phase-locked loop, since the low-pass filter system of the present invention has the phase-locked loop mechanism, the phase and amplitude of a output signal remain the same with those of the original AC input signal.
Claims
1. A low-pass filtering system having a phase-locked loop, comprising: a Park transform circuit, which receives an external AC input signal, and transforms the AC input signal into a d-axis component signal and a q-axis component signal by Park transformation; a first low-pass filter, which is connected to the Park transform circuit, the first low-pass filter being provided to perform low-pass filtering on the d-axis component signal; a second low-pass filter, which is connected to the Park transform circuit, the second low-pass filter being provided to perform low-pass filtering on the q-axis component signal; an inverse Park transform circuit, which is connected to the first low-pass filter and the second low-pass filter, the inverse Park transform circuit being provided to transform the low-pass filtered d-axis component signal and the low-pass filtered q-axis component signal into an output signal by inverse Park transformation; a phase-locked loop filter, which is connected to the Park transform circuit, the phase-locked loop filter being provided to perform low-pass filtering on the q-axis component signal; and a voltage-controlled oscillator, which is connected to the phase-locked loop filter, the Park transform circuit and the inverse Park transform circuit, the voltage-controlled oscillator being provided to receive the q-axis component signal filtered by the phase-locked loop filter and generate a phase angle signal, the generated phase angle signal is sent back to the Park transform circuit and the inverse Park transform circuit such that a phase angle of a dq-reference frame is controlled by the Park transform circuit and the inverse Park transform circuit in response to the phase angle signal, wherein the Park transform circuit, the first low-pass filter, the second low-pass filter and the inverse Park transform circuit form a phase detector of the phase-locked loop.
2. The low-pass filtering system of claim 1, wherein the phase-locked loop filter is a proportional integral controller.
3. The low-pass filtering system of claim 1, wherein a β-input end of the Park transform circuit is connected to a β-output end of the inverse Park transform circuit.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(6) The preferred embodiments of the present invention are described in detail below with reference to
(7) As shown in
(8) The Park transformation circuit 1, the first low-pass filter 2, the second low-pass filter 3 and the inverse Park transformation circuit 4 forms a phase detector 7 of the phase-locked loop. The phase detector 7 is connected to the phase-locked loop filter 5 and the voltage-controlled oscillator 6, so that the low-pass filtering system 100 has a phase-locked loop mechanism. Accordingly, when the low-pass filtering system 100 of the present invention is in a steady state, the phase and amplitude of the output signal v.sub.out remain the same as those of the original AC input signal v.sub.s.
(9) In detail, the Park transform circuit 1 is a circuit that operates based on the principle of Park transformation. As shown in
(10) The components of the AC signal v.sub.syn on the α-axis and β-axis of the αβ-reference frame are indicated as the following mathematical formula (1):
(11)
(12) The components of AC signal v.sub.syn on the d-axis and q-axis of the dq-reference frame are indicated as the following mathematical formula (2):
(13)
(14) In the present embodiment, the Park transformation is performed in digital. The Park transform circuit 1 has an analog-to-digital convertor, so as to convert the AC input signal v.sub.s with high-frequency noise to a digital signal. As shown in
v.sub.s=V.sub.m cos ωt=V.sub.m cos θ=v.sub.α (3)
(15) By substituting the mathematical formula (2) with the mathematical formula (1) and the mathematical formula (3), the following mathematical formulae can be obtained:
v.sub.d=V.sub.m cos θ cos θ.sub.e+v.sub.m sin θ sin θ.sub.e=V.sub.m cos(θ−θ.sub.e) (4)
v.sub.q=−V.sub.m cos θ sin θ.sub.e+v.sub.m sin θ cos θ.sub.e=V.sub.m sin(θ−θ.sub.e) (5)
(16) If θ.sub.e≈θ is given, the mathematical formula (4) and mathematical formula (5) can be rewritten as the following mathematical formulae:
v.sub.d=V.sub.m (6)
v.sub.q=V.sub.m(θ−θ.sub.e) (7)
(17) The magnitude of the q-axis component signal v.sub.q is related to a phase angle difference between the AC input signal and a dq-reference frame, so that the Park transform circuit 1, the first low-pass filter 2, the second low-pass filter 3, and the inverse Park transform circuit 4 form a phase detector 7 of the phase-locked loop. From the mathematical formula (7), when θ.sub.e=θ, v.sub.q=0 can be obtained. In other words, the d-axis of the dq-reference frame is locked at the AC signal v.sub.syn at this moment.
(18) As shown in
(19) As shown in
(20) As shown in
(21)
(22) As shown in
(23) As shown in
(24) As shown in
(25) The above description should be considered as only the discussion of the preferred embodiments of the present invention. However, a person having ordinary skill in the art may make various modifications without deviating from the present invention. Those modifications still fall within the scope of the present invention.