Power switch comprising a switching circuit serially connected between input and output lines each having parallel branches therein
12113258 ยท 2024-10-08
Assignee
Inventors
Cpc classification
International classification
Abstract
A power switch including input and output lines of characteristic impedance Z0, and a switching area connected serially between the input and output lines, the switching area being formed by N (integer?2) parallel conducting branches and i belonging to {1, . . . , N}, each conducting branch having, from input to output lines of the switch, an input line portion with characteristic impedance Zbei in series with a switching circuit in series with an output line portion with characteristic impedance Zbsi, the switching circuit configured, in a first state, to block passage of a signal between the input and output line portions of the conducting branch and, in a second state, to transmit a signal between the input line portion and the output line portion of the conducting branch with a maximum reflection coefficient of 0.316, each of the characteristic impedances Zbei and Zbsi ranging from 0.75*N*Z0 to 1.35*N*Z0.
Claims
1. A power switch comprising: an input line of characteristic impedance Z0, an output line of characteristic impedance Z0, and a switching zone connected in series between the input line and the output line, the switching zone being constituted by N conducting branches bi in parallel, with N being an integer greater than or equal to 2 and i belonging to {1, . . . N}, each conducting branch bi having, from the input line to the output line of the switch, an input line portion of characteristic impedance Zbei in series with a switching circuit ci in series with an output line portion of characteristic impedance Zbsi, wherein the switching circuit ci is configured, in a first state, to block the passage of a signal between the input line portion and the output line portion of the conducting branch bi and, in a second state, to transmit a signal between the input line portion and the output line portion of the conducting branch bi with a reflection coefficient less than or equal to 0.316, and wherein each of the input line portion of characteristic impedance Zbei and the output line portion of characteristic impedance Zbsi are between 0.75*N*Z0 and 1.35*N*Z0.
2. The power switch according to claim 1, wherein each switching circuit ci of the conducting branch bi has a characteristic impedance Zci between 0.5*N*Z0 and 1.5*N*Z0.
3. The power switch according to claim 2, wherein each switching circuit ci has an electrical length of less than one tenth of the wavelength guided by the switch.
4. The power switch according to claim 2, wherein the switching circuits are identical in type on each of the conducting branches bi.
5. The power switch according to claim 2, wherein the switching circuits are different in type on at least two conducting branches bi.
6. The power switch according to claim 1, wherein each switching circuit ci has an electrical length of less than one tenth of the wavelength guided by the switch.
7. The power switch according to claim 6, wherein the switching circuits are identical in type on each of the conducting branches bi.
8. The power switch according to claim 6, wherein the switching circuits are different in type on at least two conducting branches bi.
9. The power switch according to claim 1, wherein each of the input line, the output line and the input line portion and the output line portion of each branch bi is constituted by one of a 3D waveguide, a coplanar line, a microstrip line, a triplate line and a coaxial guide.
10. The power switch according to claim 1, wherein the switching circuits are identical in type on each of the conducting branches bi.
11. The power switch according to claim 1, wherein the switching circuits are different in type on at least two conducting branches bi.
12. The power switch according to claim 6, wherein each switching circuit is a configuration constituted by one of a single switch, a set of switches arranged in parallel, a set of switches arranged in series, a set of switches arranged in shunt to ground, and a combination of the preceding configurations.
13. The power switch according to claim 12, wherein each switch is one of a microelectromechanical switch (MEMS), a phase change material, a diode, a transistor, a relay, a ferroelectric switch, a ferromagnetic switch, an electromechanical switch, a waveguide switch and a ferrite-based switch.
14. The power switch according to claim 12, wherein the switching circuits are identical in type on each of the conducting branches bi.
15. The power switch according to claim 12, wherein the switching circuits are different in type on at least two conducting branches bi.
16. A power switching device comprising a further input line of characteristic impedance Z1, a further output line of characteristic impedance Z1, and a further switching zone connected in series between the further input line and the further output line, the further switching zone being constituted by N further conducting branches Bi in parallel, with N being an integer greater than or equal to 2 and i belonging to {1, . . . N}, each further conducting branch Bi having, from the further input line to the further output line of the switching device, a further input line portion of characteristic impedance ZAei in series with the power switch (Ci) according to claim 1 in series with a further output line portion of characteristic impedance ZAsi, wherein each of the further input line portion of characteristic impedance ZAei and the further output line portion of characteristic impedance ZAsi are between 0.75*N*Z1 and 1.35*N*Z1.
Description
A BRIEF DESCRIPTION OF THE DRAWINGS
(1) In order to better illustrate the object of the present invention, embodiments will now be described hereafter, by way of illustration and in a non-limiting manner, in connection with the appended drawings.
(2) In these drawings:
(3)
(4)
(5)
(6)
(7)
DETAIL DESCRIPTION OF THE PREFERRED EMBODIMENTS
(8) Referring to
(9) The power switch C comprises an input line 1, an output line 2, and a switching zone 3 in series between the input line 1 and the output line 2.
(10) In the example shown, the switching zone 3 consists of four conducting branches, respectively b1, b2, b3 and b4. However, the invention is not limited in this respect and the switching zone may have any number of conducting branches. In the following, in order to give an example, a number of conducting branches equal to four will be given for illustration purposes only.
(11) Each conducting branch comprises an input line portion, respectively be1, be2, be3 and be4, an output line portion, respectively bs1, bs2, bs3 and bs4, and a switching circuit, respectively c1, c2, c3 and c4, between the input line portion and the respective output line portion, represented here by a switch arranged in series.
(12) The switching circuits may be all the same or different, and may be selected from microelectromechanical switch (MEMS), phase change material, diode, transistor, relay, ferroelectric switch and ferromagnetic switch, electromechanical switch, waveguide switch and ferrite-based switch, the invention not being limited in this respect.
(13) According to the invention, the characteristic impedance is Z0 at the input line 1, the characteristic impedance is Z0 at the output line 2, the characteristic impedance is Zbei at the input line portion bei of each conducting branch bi (i belonging to the set {1, . . . , 4} in the case of
(14) According to an embodiment, the characteristic impedances Zbsi, i belonging to the set {1, . . . , 4} in the case of
(15) According to another embodiment, the characteristic impedances Zbei, i belonging to the set {1, . . . , 4} in the case of
(16) According to yet another embodiment, when the characteristic impedances Zbei, i belonging to the set {1, . . . , 4} in the case of
(17) According to yet another embodiment, when the characteristic impedances Zbei, i belonging to the set {1, . . . , 4} in the case of
(18) With all the embodiments, a relatively uniform high-frequency current distribution is achieved in each of the conducting branches bi, allowing the power switch C to operate at high frequencies and high power, with minimal parasitic capacitances between each of the conducting branches bi.
(19) According to a first variant of the invention shown in
(20) According to a second variant of the invention shown in
(21) According to a third variant of the invention shown in
(22) According to a fourth variant of the invention shown in
(23) These different configurations allow the current to divide equally over a wide frequency band across all the switching circuits to enable the power switch to provide power withstanding at very high frequencies, provided that the conditions above are met, namely a characteristic impedance of each input line portion and characteristic impedance of each output line portion of each conducting branch between 0.75*N*Z0 and 1.35*N*Z0, where Z0 represents the characteristic impedance of the input line of the switch and of the output line of the switch, and each switching circuit is configured, in a first state, to block the passage of a signal between the input line portion and the output line portion of the conducting branch bi and, in a second state, to transmit a signal between the input line portion and the output line portion of the conducting branch with a reflection coefficient of 0.316 or less.
(24) Depending on these different configurations, each switching circuit can either have a characteristic impedance between 0.5*Z0 and 1.5*Z0, or have an electrical length of less than one tenth of the wavelength guided by the switch.
(25) It is understood that each of the input line and the output line are understood to be in the direction of current flow in the switch, and some switches according to the invention can be used in both directions of current flow in them.
(26) In each conducting branch bi in the switching area, the branches (input portion and/or output portion) can have any length, identical or different from each other.
(27) In case the switches are MEMS, the conducting branches can be integrated into the MEMS, following the configuration described in PCT International Application WO2016/062956, the contents of which are incorporated by reference to the present description.
(28) In
(29) On the first conducting branch B61, the switching circuit C61 consists of a single switch.
(30) On the second conducting branch B62, the switching circuit C62 consists of a switch similar to that shown in
(31) On the third conducting branch B63, the switching circuit C63 consists of a switch similar to that shown in
(32) Each of the switches C62 and C63 of
(33) Similarly for branch B63, taking Za3 as the characteristic impedance of the input line Be63 and output line Bs63, each characteristic impedance of the conducting branches of the switch B63, of input line portion Zae3 and output line portion Zas3, are between 0.75*N*Za3 and 1.35*N*Za3 and the switches c631, c632, are configured to have a reflection coefficient of 0.316 or less between each respective input line portion and output line portion.
(34) The input line Be61 and output line Bs61 each have respectively a characteristic impedance of input line portion Zae1 and output line portion Zas1, as shown in
(35) Overall, taking Z1 as the characteristic impedance of the input line and output line of the switching device C6, there is also each characteristic impedance of input line portion (Zae1, Zae2, Zae3) and output line portion (Zas1, Zas2, Zas3) comprised between 0.75*N*Z1 and 1.35*N*Z1, and the switches C61, C62 and C63 are configured to have a reflection coefficient less than or equal to 0.316 between each respective input line portion and output line portion.
(36) The present invention therefore allows a great deal of design freedom for an individual switch, and also for switching devices comprising several individual switches according to the present invention, in order to adapt the design to the maximum powers and frequencies at which the switch or device incorporating switches can operate.