IP Library › Granted Patent US 12,556,153
Granted Patent B2
US 12,556,153 · App. 18/066,289 · Granted Feb 17, 2026

Switchable-reactor unit, variable reactor, high-frequency generator, and impedance adjustment assembly having a switchable-reactor unit

Inventor: Birger Nordmann (Alfter, DE)
Assignee: TRUMPF Huettinger GmbH + Co. KG
H03H7/1775H03H7/0115H03H7/383H03H19/004
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Quick Facts
Patent No.
US 12,556,153
App. No.
18/066,289
Granted
Feb 17, 2026
Kind
B2
Abstract

A switchable reactance unit includes an RF terminal configured to connect to a transmission line for transmitting a signal at a frequency in a range of 1-200 MHz, and a switching arrangement comprising a plurality of switching elements used in parallel. Each switching element has a control terminal, and is connected to the RF terminal via at least one individual reactance assigned to the switching element and connected in series with the switching element. The switching elements are controllable or controlled via their control terminals in such a way that they switch simultaneously.

Claims (29)

1 . A switchable reactance unit comprising:

a radio frequency (RF) terminal configured to connect to a transmission line for transmitting a signal at a frequency in a range of 1-200 MHz, and

a switching arrangement comprising a plurality of switching elements used in parallel, each switching element having a control terminal, and being connected to the RF terminal via at least one individual reactance assigned to the switching element and connected in series with the switching element, wherein the control terminals of the plurality of switching elements being are connected to one another and thereby are controllable in such a way that the plurality of switching elements are switched on or off simultaneously with switching differences less than or equal to 100 ns.

2 . The switchable reactance unit as claimed in claim 1 , wherein at least one individual reactance is embodied as a capacitance.

3 . The switchable reactance unit as claimed in claim 2 , wherein at least two individual reactances are embodied as capacitances having the same capacitance value.

4 . The switchable reactance unit as claimed in claim 1 , wherein each of the switching elements used in parallel has a source terminal connected to a common terminal point.

5 . The switchable reactance unit as claimed in claim 1 , wherein at least one individual reactance is embodied as an inductance.

6 . The switchable reactance unit as claimed in claim 1 , wherein the switching elements are embodied as transistors or comprise PIN diodes.

7 . The switchable reactance unit as claimed in claim 1 , wherein each of the switching elements has a drain terminal and the individual reactances are each connected to the drain terminals.

8 . The switchable reactance unit as claimed in claim 7 , wherein the drain terminals of the switching elements are connected to a drain bias terminal via a drain bias inductance.

9 . The switchable reactance unit as claimed in claim 7 , wherein the drain terminals of the plurality of switching elements are connected to one another via a respective drain connection resistance.

10 . The switchable reactance unit as claimed in claim 9 , wherein a resistance value of each of the drain connection resistances is greater than an impedance of one of the switching elements in a closed state.

11 . The switchable reactance unit as claimed in claim 9 , wherein a resistance value of the drain connection resistance is dimensioned in each case such that τ=R*C does not exceed a predefined value.

12 . A method for operating an impedance-matching arrangement as claimed in claim 7 , comprising one or more of the following method steps:

a) switching on at least one of the plurality of switching elements;

b) switching off at least one of the plurality of switching elements;

c) connecting a high voltage to the drain terminal of the one of the plurality of switching elements, the high voltage having an absolute value greater than that of the RF voltage having the greatest absolute value; and

d) disconnecting the high voltage from the drain terminal of the at least one of the plurality of switching elements.

13 . The method as claimed in claim 12 , wherein the aforementioned method steps b) and c) are carried out simultaneously.

14 . The method as claimed in claim 12 , wherein the aforementioned method steps a) and d) are carried out simultaneously.

15 . The switchable reactance unit as claimed in claim 1 , further comprising a further switching arrangement having a plurality of further switching elements used in parallel.

16 . The switchable reactance unit as claimed in claim 1 , further comprising a plurality of further switching elements, each disposed in series with a respective one of the plurality of switching elements.

17 . The switchable reactance unit as claimed in claim 16 , wherein each of the further switching elements has a control terminal, the switching elements and the further switching elements being controllable or controlled via a respective one of the control terminals in such a way that they switch simultaneously.

18 . The switchable reactance unit as claimed in claim 1 , further comprising a controller that is capable of impedance matching.

19 . A variable reactance comprising a switchable reactance unit that comprises:

an RF terminal configured to connect to a transmission line for transmitting a signal at a frequency in a range of 1-200 MHz, and

a switching arrangement comprising a plurality of switching elements used in parallel, each switching element having a control terminal, and being connected to the RF terminal via at least one individual reactance assigned to the switching element and connected in series with the switching element, wherein the control terminals of the plurality of switching elements are connected to one another and thereby are controllable in such a way that the plurality of switching elements are switched on or off simultaneously with switching differences less than or equal to 100 ns.

20 . The variable reactance as claimed in claim 19 , wherein the variable reactance has a plurality of switchable reactance units connected in parallel.

21 . The variable reactance as claimed in claim 20 , wherein the switchable reactance units are configured to switch different reactances.

Priority Claims (1)
DE 20 2020 103 539.8 · Jun 19, 2020 · national
Continuity (2)
Continuation PCTEP2021066633 · Jun 18, 2021
Related Publication 20230216467A1 · Jul 6, 2023
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