DIVIDER AND SIGNAL GENERATION SYSTEM USING THE SAME
20170373366 · 2017-12-28
Inventors
Cpc classification
H01P5/16
ELECTRICITY
International classification
Abstract
Provided is a divider capable of accurately evaluating an object to be measured without being affected by impedance of a terminal to be measured of the object to be measured, and a signal generation system. There is provided a divider including an input terminal, a plurality of output terminals, a distribution unit that distributes a high frequency signal input to the input terminal and outputs signals obtained by the distribution, and a plurality of reflected wave blocking units that are respectively connected to a plurality of distribution unit outputs and attenuate reflected waves reflected by sides of the plurality of output terminals. The distribution unit includes the plurality of distribution unit outputs and outputs the high frequency signal distributed from the plurality of distribution unit outputs. Outputs from the plurality of reflected wave blocking units are output from the plurality of output terminals.
Claims
1. A divider comprising: an input terminal; a plurality of output terminals; a divide unit that divides a high frequency signal input to the input terminal and outputs the divided signals; and a plurality of reflected wave blocking units that are respectively connected to a plurality of divide unit outputs and attenuate reflected waves reflected outside of the plurality of output terminals, wherein the divide unit includes the plurality of divide unit outputs and outputs the divided signals from the plurality of divide unit outputs, and wherein outputs from the plurality of reflected wave blocking units are output from the plurality of output terminals.
2. The divider according to claim 1, the plurality of reflected wave blocking units respectively include attenuation units that attenuate a reflected signal.
3. The divider according to claim 1, wherein each of the plurality of reflected wave blocking units includes an isolator that transmits only a unidirectional signal directed toward the plurality of output terminals from the divide unit.
4. The divider according to claim 2, further comprising: attenuation amount adjustment units that are disposed between the plurality of divider unit outputs and the plurality of output terminals and adjust amounts of attenuation of the attenuation units.
5. A signal generation system comprising: the divider according to claim 1; and a signal generator that generates the high frequency signal, wherein the high frequency signal generated by the signal generator is input to the input terminal.
6. A signal generation system comprising: the divider according to claim 2; and a signal generator that generates the high frequency signal, wherein the high frequency signal generated by the signal generator is input to the input terminal.
7. A signal generation system comprising: the divider according to claim 3; and a signal generator that generates the high frequency signal, wherein the high frequency signal generated by the signal generator is input to the input terminal.
8. A signal generation system comprising: the divider according to claim 4; and a signal generator that generates the high frequency signal, wherein the high frequency signal generated by the signal generator is input to the input terminal.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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BEST MODE FOR CARRYING OUT THE INVENTION
[0029] Hereinafter, embodiments for implementing the invention will be described in detail with reference to the accompanying drawings. Meanwhile, the invention is not limited by these embodiments, and all of other embodiments, examples, operation techniques, and the like which can be implemented by those skilled in the art on the basis of these embodiments are included in the scope of the invention.
First Embodiment
[0030] First, a configuration of a divider 100 according to the invention will be described with reference to
[0031] As illustrated in
[0032] A high frequency signal is input to the input terminal 10 from an external signal source. Here, a high frequency signal of, for example, several MHz to several tens of GHz is dealt with. The signal source is a signal generator that generates, for example, a high frequency signal at any frequency and any signal level of any modulation system. A connector having excellent high frequency characteristics is preferably used as the input terminal 10, and is a known high frequency coaxial connector such as an N-type or SMA-type connector. Meanwhile, in this example, a description is given on the assumption that internal characteristic impedance of the divider 100 is standardized to, for example, 50Ω.
[0033] The high frequency signal from the input terminal 10 is input to the distribution unit 20, and the distribution unit performs distribution so that the level of the high frequency signal is divided into substantially equal parts and outputs the high frequency signal of the divided level to the plurality of distribution unit outputs 30-1, 30-2, . . . , and 30-n. The distribution unit 20 is constituted by known high frequency signal distribution means such as a 2-resistor type, a 3-resistor type, or a Wilkinson divider. Meanwhile, in general, isolation of a plurality of outputs obtained by the distribution is approximately 20 dB.
[0034] The plurality of reflected wave blocking units 40-1, 40-2, . . . , and 40-n are connected to the plurality of distribution unit outputs 30-1, 30-2, . . . , and 30-n, respectively. The plurality of reflected wave blocking units 40-1, 40-2, . . . , and 40-n are constituted by the attenuation units 60-1, 60-2, . . . , and 60-n, that is, pads using a known resistor such as a n-type attenuator or a T-type attenuator. It is preferable that the amount of attenuation is, for example, approximately 3 dB to 10 dB. Meanwhile, the plurality of distribution unit outputs 30-1, 30-2, . . . , and 30-n and the plurality of reflected wave blocking units 40-1, 40-2, . . . , and 40-n may be connected to each other, for example, by a connector having excellent high frequency characteristics. In addition, the connection may be performed by a transmission line having excellent high frequency characteristics, for example, a microstrip line or a grounded coplanar line without using the connector. In addition, the attenuation units 60-1, 60-2, . . . , and 60-n may be constituted by resistors by manufacturing a thin film resistor in the middle of the microstrip line or the grounded coplanar line, and may operate as reflected wave blocking units. Meanwhile, in a case where the attenuation units are formed of the thin film resistor, transmission characteristics from the input terminal 10 of the divider 100 to each of the output terminals 50-1, 50-2, . . . , and 50-n may be measured, and the thin film resistor may be trimmed through, for example, laser trimming, thereby further suppressing a difference in signal level between outputs from the respective output terminals. In addition, in a case of fixed attenuators, sorted products may be combined with each other, thereby further suppressing a difference in signal level between outputs from the respective output terminals.
[0035] Further, the plurality of attenuation units 60-1, 60-2, . . . , and 60-n may be configured not only as fixed attenuators but also as the attenuation amount adjustment units 70-1, 70-2, . . . , and 70-n which are capable of changing the amount of attenuation by the changeover of a combination of a plurality of variable attenuators each of which is illustrated in
[0036] In addition, the plurality of reflected wave blocking units 40-1, 40-2, . . . , and 40-n to be used may be isolators that transmit only a unidirectional signal directed toward the plurality of output terminals 50-1, 50-2, . . . , and 50-n from the distribution unit 20. An isolator illustrated in
[0037] The output terminals 50-1, 50-2, . . . , and 50-n are connected to the plurality of reflected wave blocking units 40-1, 40-2, . . . , and 40-n, respectively. A connector having excellent high frequency characteristics is preferably used as each of the output terminals 50-1, 50-2, . . . , and 50-n, and is a known high frequency coaxial connector such as an N-type or SMA-type connector.
[0038] An example of the operation of the divider 100 of this example will be described with reference to
[0039] Next, reference will be made to
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[0041] In addition, as described above, the distribution operation by the divider 100 is performed in a conformity state by the reflected waves being attenuated by a total of 6 dB, thereby reducing a difference in signal level between a plurality of outputs by the divider 100.
[0042] Next, reference will be made to
[0043] Further, according to the invention, impedance conformity seen from an output side of a signal generator provided at a front stage of a signal generation system is sufficiently secured, and a problem caused by reflected waves is solved.
[0044] In addition, in a case where the plurality of attenuation units 60-1, 60-2, . . . , and 60-n are configured to be capable of changing the amount of attenuation by the changeover of a combination of a plurality of variable attenuators or a plurality of fixed attenuators and setting the amount of attenuation to any value, the amount of attenuation can be set to any value when a high frequency signal from the signal generator 200 is applied to an object to be measured, not shown in the drawing, through the divider 100. For example, the amount of attenuation is set to any value so as to set a signal level at which the object to be measured, not shown in the drawing, can receive a signal. For this reason, it is possible to set the amount of attenuation for performing trade-off between influence on measurement due to excessive attenuation of the high frequency signal and an effect of reducing reflected waves and to optimize measurement conditions.
Second Embodiment
[0045] Next, another configuration of the divider 100 according to the invention will be described with reference to
[0046] As illustrated in
Third Embodiment
[0047] Next, the operation of a signal generation system 500 using the divider 100 described above will be described with reference to
[0048] In the signal generation system 500 of this example, the signal generator 200 generating, for example, a high frequency signal at any frequency and any signal level of any modulation system is connected to the input terminal 10 of the divider 100.
[0049] The operation of the divider 100 is the same as that in the first embodiment, and thus a description thereof will be omitted. Meanwhile, in the signal generation system 500, the number of ports constituting the output terminals is not limited to two as illustrated in
DESCRIPTION OF REFERENCE NUMERALS AND SIGNS
[0050] 10 Input Terminal [0051] 20 Distribution Unit [0052] 30-1, 30-2, . . . , and 30-n Distribution Unit Output [0053] 40-1, 40-2, . . . , and 40-n Reflected Wave Blocking Unit [0054] 50-1, 50-2, . . . , and 50-n Output Terminal [0055] 60-1, 60-2, . . . , and 60-n Attenuation Unit [0056] 70-1, 70-2, . . . , and 70-n Attenuation Amount Adjustment Unit [0057] 100 Divider [0058] 200 Signal Generator [0059] 500 Signal Generation System