IP Library › Granted Patent US 9,673,760
Granted Patent B2
US 9,673,760 · App. 14/914,327 · Granted Jun 6, 2017

Power amplification device and control method of power amplification device

Inventor: Sumitaka Otake (Tokyo, JP)
Assignee: NEC CORPORATION
H03F1/0288H03F1/52H03F3/19H03F3/211H03F2200/192H03F2200/231H03F2200/451H03F2200/78H03F2203/21139
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Quick Facts
Patent No.
US 9,673,760
App. No.
14/914,327
Granted
Jun 6, 2017
Kind
B2
Abstract

A power amplification device ( 1 ) according to an exemplary embodiment of the invention includes a Doherty amplifier ( 10 ) that is adjusted to operate at a set frequency, a frequency comparator ( 11 ) that compares a supplied frequency being a frequency of an input signal RF_IN to the Doherty amplifier ( 10 ) with the set frequency, and a protection circuit ( 12 ) that sets an operating state of the Doherty amplifier ( 10 ) to inactive when the supplied frequency and the set frequency are different. It is thereby possible to protect the Doherty amplifier ( 10 ) when the input signal RF_IN with a frequency different from the set frequency is supplied.

Claims (37)

1. A power amplification device comprising:

a Doherty amplifier that is adjusted to operate at a set first frequency;

a frequency comparator configured to receive the set first frequency and compare the set first frequency with a second frequency, which is a frequency of an input signal to the Doherty amplifier; and

a protection circuit configured to set an operating state of the Doherty amplifier to inactive in response to the set first frequency and the second frequency being different.

2. The power amplification device according to claim 1 , wherein the protection circuit is further configured to set the operating state of the Doherty amplifier to inactive by restricting power supply to the Doherty amplifier.

3. The power amplification device according to claim 1 , further comprising:

a variable attenuator that attenuates the input signal to the Doherty amplifier, wherein

the protection circuit is further configured to set the operating state of the Doherty amplifier to inactive by attenuating the input signal to the Doherty amplifier with use of the variable attenuator.

4. The power amplification device according to claim 1 , further comprising:

a preamplifier that is placed in a previous stage of the Doherty amplifier and amplifies the input signal to a specified level, wherein

the protection circuit is further configured to set the operating state of the Doherty amplifier to inactive by restricting power supply to the preamplifier.

5. The power amplification device according to claim 1 , further comprising:

a switch element that is placed in a previous stage of the Doherty amplifier, wherein

the protection circuit is further configured to set the operating state of the Doherty amplifier to inactive by shutting off the input signal to the Doherty amplifier with use of the switch element.

6. The power amplification device according to claim 1 , wherein

the Doherty amplifier includes a transmission line, and

the transmission line has a length corresponding to the set first frequency being a set frequency of the Doherty amplifier.

7. The power amplification device according to claim 6 , wherein the transmission line is configured to be exchangeable according to the set first frequency.

8. The power amplification device according to claim 1 , comprising:

an input unit that inputs the set first frequency being a set frequency of the Doherty amplifier; and

a display unit that displays the set first frequency input using the input unit.

9. The power amplification device according to claim 8 , wherein the input unit is configured using a plurality of rotary switches placed corresponding to respective significant digits of the set first frequency.

10. The power amplification device according to claim 8 , wherein

the display unit has a power supply in a different system from a main power supply of the power amplification device, and

the display unit displays the set first frequency even when the main power supply of the power amplification device is off.

11. The power amplification device according to claim 6 , comprising:

a transmission line module where the transmission line and a frequency information storage unit storing information related to the set first frequency corresponding to the transmission line module are integrated,

the transmission line module is configured to be exchangeable according to the set first frequency, and

the frequency comparator acquires the information related to the set first frequency from the frequency information storage unit.

12. A control method of a power amplification device, comprising:

acquiring information related to a first frequency, which is a set frequency of a Doherty amplifier;

acquiring information related to a second frequency, which is a frequency of an input signal to the Doherty amplifier; and

comparing the first frequency with the second frequency, and when in response to the first frequency and the second frequency being different, setting an operating state of the Doherty amplifier to inactive.

13. A non-transitory computer readable medium storing a program causing a computer to perform a process comprising:

acquiring information related to a first frequency, which is a set frequency of a Doherty amplifier;

acquiring information related to a second frequency, which is a frequency of an input signal to the Doherty amplifier; and

comparing the first frequency with the second frequency, and in response to the first frequency and the second frequency being different, setting an operating state of the Doherty amplifier to inactive.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 25, 2016
From: OTAKE, SUMITAKA
To: NEC CORPORATION
Reel/Frame 037826/0989 →
Continuity (1)
Related Publication 20160211805A1 · Jul 21, 2016