IP Library Granted Patent US 10,812,036
Granted Patent B2
US 10,812,036 · App. 15/736,793 · Granted Oct 20, 2020

Matching box and matching method

Inventors: Naoya Fujimoto (Tokyo, JP); Norikazu Kato (Tokyo, JP); Yoshiyuki Oshida (Tokyo, JP)
Assignee: HITACHI KOKUSAI ELECTRIC INC.
H03H7/40H01J37/32183H01P5/18H03H7/383H01J2237/332H01J2237/334H05H2001/4682
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Quick Facts
Patent No.
US 10,812,036
App. No.
15/736,793
Granted
Oct 20, 2020
Kind
B2
Abstract

A matching box comprises a directional coupler that detects forward waves and reflected waves; a matching circuit having a first variable capacitance capacitor, a second variable capacitance capacitor, and inductance; and a control unit that calculates a reflection coefficient on the basis of the forward waves and the reflected waves, and controls a capacitance value VC 1 of the first variable capacitance capacitor and a capacitance value VC 2 of the second variable capacitance capacitor, wherein the control unit changes VC 2 if the distance between a matching circle drawn by the trajectory of the reflection coefficient passing through a matching point on a Smith chart, and the calculated reflection coefficient is greater than a prescribed value, and changes VC 1 if such distance is set to be no greater than the prescribed value and when the value of such distance becomes no greater than the prescribed value, thereby reducing the reflection coefficient.

Claims (24)

1. A matching box comprising:

a directional coupler that detects a traveling wave and a reflected wave;

a matching circuit that includes an input terminal connected to the directional coupler, an output terminal, a first variable capacitance capacitor having one end connected to the input terminal through a first transmission line and the other end grounded, a second variable capacitance capacitor having one end connected to the output terminal through a second transmission line and the other end grounded, and an inductance having one end connected to the one end of the first variable capacitance capacitor and the other end connected to the one end of the second variable capacitance capacitor; and

a control unit that controls a capacitance value of the first variable capacitance capacitor and a capacitance value of the second variable capacitance capacitor on the basis of the traveling wave and the reflected wave detected by the directional coupler, wherein

the control unit calculates at least a first, second, and third reflection coefficient with at least three respective positions on a Smith chart, the first, second, and third reflection coefficients providing a predicted path to intersect a previously calculated and stored matching circle on the Smith chart, and acquiring a circumference passage predicted point which is an intersecting point between the predicted path and the matching circle;

the control unit calculates at least a first, second, and third reflection coefficient with at least three respective positions on a Smith chart, the first, second, and third reflection coefficients providing a predicted path to intersect a previously calculated and stored matching circle on the Smith chart, and acquiring a circumference passage predicted point which is an intersecting point between the predicted path and the matching circle;

the control unit performs a matching point approach control for fixing the capacitance value of the second variable capacitance capacitor and changing the capacitance value of the first variable capacitance capacitor to cause the the measured reflection coefficient to follow another path on the smith chart to approach zero when distances between the measured reflection coefficient and the matching circle fall within a predetermined first value, wherein the capacitance value of the first variable capacitance capacitor is increased when the imaginary part of the circumference passage predicted point is negative, and the capacitance value of the first variable capacitance capacitor is decreased when the imaginary part of the circumference passage predicted point is positive.

2. A matching box comprising:

a directional coupler that detects a traveling wave and a reflected wave; a matching circuit that includes an input terminal connected to the directional coupler, an output terminal, a first variable capacitance capacitor having one end connected to the input terminal through a first transmission line and the other end grounded, a second variable capacitance capacitor having one end connected to the output terminal through a second transmission line and the other end grounded, and an inductance having one end connected to the one end of the first variable capacitance capacitor and the other end connected to the one end of the second variable capacitance capacitor; and

a control unit that controls a capacitance value of the first variable capacitance capacitor and a capacitance value of the second variable capacitance capacitor on the basis of the traveling wave and the reflected wave detected by the directional coupler, wherein

the control unit calculates at least a first, second, and third reflection coefficient with at least three respective positions on a Smith chart, the first, second, and third reflection coefficients providing a predicted path to intersect a previously calculated and stored matching circle on the Smith chart, and acquiring a circumference passage predicted point which is an intersecting point between the predicted path and the matching circle;

the control unit performs a circumference approach control by fixing the capacitance value of the first variable capacitance capacitor and changing the capacitance value of the second variable capacitance capacitor to cause a measured reflection coefficient to approach the circumference passage predicted point along a length of a circular arc of the predicted path; and

the control unit performs a matching point approach control for fixing the capacitance value of the second variable capacitance capacitor and changing the capacitance value of the first variable capacitance capacitor to cause the measured reflection coefficient to follow another path to approach zero when distances between the measured reflection coefficient and the matching circle fall within a predetermined first value, wherein the capacitance value of the first variable capacitance capacitor is increased when the imaginary part of the circumference passage predicted point is negative, and the capacitance value of the first variable capacitance capacitor is decreased when the imaginary part of the circumference passage predicted point is positive,

wherein

once the circumference approach control causes the measured reflection coefficient to pass through a measured circumferential area defined by first and second circles concentric with the matching circle and separated to the outside and the inside, respectively, of the matching circle by a first value, the control unit restarts the process if the measured reflection coefficient is separated from the predicted path by a predetermined second value or more, and the control unit changes the capacitance value of the second variable capacitance capacitor to cause the reflection coefficient to move within the circumferential area and shifts to the matching point approach control if the position of the measured reflection coefficient is separated from the predicted path by less than the second value.

3. A matching box comprising:

a directional coupler that detects a traveling wave and a reflected wave;

a matching circuit that includes an input terminal connected to the directional coupler, an output terminal, a first variable capacitance capacitor having one end connected to the input terminal through a first transmission line and the other end grounded, a second variable capacitance capacitor having one end connected to the output terminal through a second transmission line and the other end grounded, and an inductance having one end connected to the one end of the first variable capacitance capacitor and the other end connected to the one end of the second variable capacitance capacitor; and

a control unit that controls a capacitance value of the first variable capacitance capacitor and a capacitance value of the second variable capacitance capacitor on the basis of the traveling wave and the reflected wave detected by the directional coupler, wherein

the control unit calculates at least a first, second, and third reflection coefficient with at least three respective positions on a Smith chart, the first, second, and third reflection coefficients providing a predicted path to intersect a previously calculated and stored matching circle on the Smith chart, and acquiring a circumference passage predicted point which is an intersecting point between the predicted path and the matching circle;

the control unit performs a circumference approach control by fixing the capacitance value of the first variable capacitance capacitor and changing the capacitance value of the second variable capacitance capacitor to cause a measured reflection coefficient to approach the circumference passage predicted point along a length of a circular arc of the predicted path; and

the control unit performs a matching point approach control for fixing the capacitance value of the second variable capacitance capacitor and changing the capacitance value of the first variable capacitance capacitor to cause the measured reflection coefficient to follow another path to approach zero when distances between the measured reflection coefficient and the matching circle fall within a predetermined first value, wherein the capacitance value of the first variable capacitance capacitor is increased when the imaginary part of the circumference passage predicted point is negative, and the capacitance value of the first variable capacitance capacitor is decreased when the imaginary part of the circumference passage predicted point is positive,

wherein

after the control unit has performed the circumference approach control and changed the capacitance value of the second variable capacitance capacitor, if the real part of a measured reflection coefficient is greater than a real part of the circumferential area and the reflection coefficient falls within a target area of the Smith chart including the matching point, the control unit performs the matching point approach control, and if the measured reflection coefficient is not in the target area, the control unit performs the circumference approach control.

Assignments (3)
CHANGE OF ADDRESS Recorded May 15, 2025
From: HITACHI KOKUSAI ELECTRIC INC.
To: HITACHI KOKUSAI ELECTRIC INC.
Reel/Frame 071275/0058 →
CHANGE OF NAME Recorded May 15, 2025
From: HITACHI KOKUSAI ELECTRIC INC.
To: KOKUSAI DENKI ELECTRIC INC.
Reel/Frame 071275/0236 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 15, 2017
From: FUJIMOTO, NAOYA; KATO, NORIKAZU; OSHIDA, YOSHIYUKI
To: HITACHI KOKUSAI ELECTRIC INC.
Reel/Frame 044403/0751 →
Continuity (1)
Related Publication 20180191324A1 · Jul 5, 2018