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Dual-mode amplifier with high efficiency and high linearity 원문보기

IPC분류정보
국가/구분 United States(US) Patent 등록
국제특허분류(IPC7판)
  • H03F-003/68
출원번호 US-0843904 (1997-04-17)
발명자 / 주소
  • Sevic John F.
  • Camarillo Richard J.
출원인 / 주소
  • Qualcomm Incorporated
대리인 / 주소
    Martin
인용정보 피인용 횟수 : 109  인용 특허 : 58

초록

An amplifier circuit having a high linearity mode of operation and a high efficiency mode of operation. The amplifier circuit comprises an amplifier having a variable active device periphery and a variable supply voltage; and a control circuit, coupled to the amplifier, for decreasing the variable a

대표청구항

[ We claim:] [1.] An amplifier circuit comprising:a first amplifier stage having a first supply voltage input for receiving a supply voltage and a first signal input for receiving a signal to be amplified and a bias signal;a second amplifier stage having a second supply voltage input for receiving s

이 특허에 인용된 특허 (58)

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이 특허를 인용한 특허 (109)

  1. Sorrells, David F.; Rawlins, Gregory, Antenna control.
  2. Sorrells, David F.; Rawlins, Gregory S., Antenna control.
  3. Jenkins,Alan Peter, Apparatus, methods and articles of manufacture for a dual mode amplifier.
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  5. Svechtarov, Jordan Konstantinov, Circuit with a power amplifier and amplification method.
  6. Rawlins, Gregory S.; Sorrells, David F., Combiner-less multiple input single output (MISO) amplification with blended control.
  7. Rawlins, Gregory S.; Sorrells, David F., Combiner-less multiple input single output (MISO) amplification with blended control.
  8. Sander, Wendell B.; Meck, Ronald A.; McCune, Jr., Earl W., Communications signal amplifiers having independent power control and amplitude modulation.
  9. Sander,Wendell B.; Meck,Ronald A.; McCune, Jr.,Earl W., Communications signal amplifiers having independent power control and amplitude modulation.
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  12. Bockelman, David E.; Srinivasan, Vishnu, Compensating for non-linear capacitance effects in a power amplifier.
  13. Bockelman, David E.; Srinivasan, Vishnu, Compensating for non-linear capacitance effects in a power amplifier.
  14. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., Control modules.
  15. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., Control modules.
  16. Rawlins, Gregory S.; Sorrells, David F., Control of MISO node.
  17. Rawlins, Gregory S.; Sorrells, David F., Control of MISO node.
  18. Leinonen, Marko E.; Leinonen, Anu; Rousu, Seppo; Valtanen, Juha, Control of radio process.
  19. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., Controlling a power amplifier to transition among amplifier operational classes according to at least an output signal waveform trajectory.
  20. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., Controlling output power of multiple-input single-output (MISO) device.
  21. Bockelman, David E.; Srinivasan, Vishnu, Controlling power with an output network.
  22. Sevic John F. ; Camarillo Richard J., Dual-mode amplifier with high efficiency and high linearity.
  23. Lin, Saihua, Dual-mode power amplifier.
  24. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., Generation and amplification of substantially constant envelope signals, including switching an output among a plurality of nodes.
  25. Yamaguchi, Keiichi, High frequency circuit using high output amplifier cell block and low output amplifier cell block.
  26. Yamaguchi, Keiichi, High frequency circuit using high output amplifier cell block and low output amplifier cell block.
  27. Sander, Wendell B.; Meck, Ronald A.; McCune, Earl, High-efficiency modulating RF amplifier.
  28. William P. Alberth, Jr. ; Armin Klomsdorf ; Luke Winkelmann, Load envelope following amplifier system.
  29. Kimball, Eric, Low voltage operation for a power amplifier.
  30. Brederlow,Ralf, Low-noise amplifier circuit and a method for amplifying low-power signals in a low-noise manner.
  31. Wright, Peter V., Matching network with switchable capacitor bank.
  32. Elia, Avner, Method and apparatus for optimizing current consumption of amplifiers with power control.
  33. Elia, Avner, Method and apparatus for optimizing current consumption of amplifiers with power control.
  34. Welch, Brian; Kucharski, Daniel, Method and system for split voltage domain transmitter circuits.
  35. Welch, Brian; Kucharski, Daniel, Method and system for split voltage domain transmitter circuits.
  36. Welch, Brian; Kucharski, Daniel, Method and system for split voltage domain transmitter circuits.
  37. Bhutta, Imran Ahmed, Method for controlling an RF generator.
  38. Bhutta, Imran Ahmed, Method for controlling an RF generator.
  39. Bhutta, Imran Ahmed; Lozic, Tomislav, Method for controlling an RF generator.
  40. Fan, Qinhuai, Method, RF module and test method for enabling power amplifier to support multiple powers.
  41. Hadjichristos, Aristotle; See, Puay Hoe; Nejati, Babak; Klemens, Guy; Frederick, Jr., Norman L; Sahota, Gurkanwal S; Cassia, Marco; Pletcher, Nathan M; Zhao, Yu; Myers, Thomas A, Multi-mode multi-band power amplifier module.
  42. Tran,Hieu Van; Ly,Anh; Nguyen,Sang Thanh; Sarin,Vishal, Multi-operational amplifier system.
  43. Tran,Hieu Van; Ly,Anh; Nguyen,Sang Thanh; Sarin,Vishal, Multi-operational amplifier system.
  44. Tran,Hieu Van; Ly,Anh; Nguyen,Sang Thanh; Sarin,Vishal, Multi-operational amplifier system.
  45. Pearce, Daniel Scott, Multichannel power amplifying.
  46. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., Multiple input single output (MISO) amplifier having multiple transistors whose output voltages substantially equal the amplifier output voltage.
  47. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., Multiple input single output (MISO) amplifier with circuit branch output tracking.
  48. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., Multiple input single output device with vector signal and bias signal inputs.
  49. Samavedam, Anil; Bockelman, David E.; Srinivasan, Vishnu; Kimball, Eric, Non-linear capacitance compensation.
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  51. Srinivasan, Vishnu; Bockelman, David E., Output gain stage for a power amplifier.
  52. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., Power amplification based on frequency control signal.
  53. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., Power amplification based on phase angle controlled reference signal and amplitude control signal.
  54. Friedel,Bernd; Ritter,Kai Uwe, Power amplification by using different fixed power supply signals for the amplifier.
  55. Lin, Yo-Sheng; Lin, Sin-Chen; Li, Tsung-Hua, Power amplifier.
  56. Fenk, Josef, Power amplifier arrangement having two or more antenna coupling respective amplifiers to a supply potential.
  57. Bockelman, David E.; Srinivasan, Vishnu, Providing pre-distortion to an input signal.
  58. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., RF power transmission, modulation, and amplification embodiments.
  59. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., RF power transmission, modulation, and amplification embodiments.
  60. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., RF power transmission, modulation, and amplification embodiments, including control circuitry for controlling power amplifier output stages.
  61. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., RF power transmission, modulation, and amplification using multiple input single output (MISO) amplifiers to process phase angle and magnitude information.
  62. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., RF power transmission, modulation, and amplification, including cartesian 4-branch embodiments.
  63. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., RF power transmission, modulation, and amplification, including direct cartesian 2-branch embodiments.
  64. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., RF power transmission, modulation, and amplification, including direct cartesian 2-branch embodiments.
  65. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., RF power transmission, modulation, and amplification, including direct cartesian 2-branch embodiments.
  66. Sorrells, David F; Rawlins, Gregory S; Rawlins, Michael W, RF power transmission, modulation, and amplification, including embodiments for generating vector modulation control signals.
  67. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., RF power transmission, modulation, and amplification, including harmonic control embodiments.
  68. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., RF power transmission, modulation, and amplification, including power control of multiple input single output (MISO) amplifiers.
  69. Watanabe,Hideki, Radio receiver and signal amplifying method in radio receiver.
  70. Kimball, Eric, Reducing common mode effects in an output stage.
  71. Apel, Thomas R., Saturated power amplifier with selectable and variable output power levels.
  72. Steel, Victor E.; Jorgenson, Jon D.; Vu, Khoi Tam, Segmented power amplifier and method of control.
  73. Groe,John, Smart transmitter system.
  74. Srinivasan, Vishnu; Bockelman, David E., Supply control for multiple power modes of a power amplifier.
  75. Yuan, Zhongjian, Switchable power amplifier.
  76. Loke, Aravind; Abdelgany, Mohy F.; Kamke, James F., System and method for selecting amplifiers in a communications device.
  77. Sorrells,David F.; Rawlins,Gregory S.; Rawlins,Michael W., Systems and methods for vector power amplification.
  78. Sorrells,David F.; Rawlins,Gregory S.; Rawlins,Michael W., Systems and methods for vector power amplification.
  79. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., Systems and methods of RF power transmission, modulation and amplification.
  80. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., Systems and methods of RF power transmission, modulation and amplification, including embodiments for compensating for waveform distortion.
  81. Rawlins, Gregory S.; Sorrells, David F., Systems and methods of RF power transmission, modulation, and amplification.
  82. Sorrells, David F.; Rawlins, Gregory S., Systems and methods of RF power transmission, modulation, and amplification.
  83. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., Systems and methods of RF power transmission, modulation, and amplification.
  84. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., Systems and methods of RF power transmission, modulation, and amplification, including Cartesian-Polar-Cartesian-Polar (CPCP) embodiments.
  85. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., Systems and methods of RF power transmission, modulation, and amplification, including a Cartesian-Polar-Cartesian-Polar (CPCP) embodiment.
  86. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., Systems and methods of RF power transmission, modulation, and amplification, including a switching stage embodiment.
  87. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., Systems and methods of RF power transmission, modulation, and amplification, including architectural embodiments of same.
  88. Sorrells, David F.; Rawlins, Gregory S., Systems and methods of RF power transmission, modulation, and amplification, including blended control embodiments.
  89. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., Systems and methods of RF power transmission, modulation, and amplification, including cartesian 4-branch embodiments.
  90. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., Systems and methods of RF power transmission, modulation, and amplification, including cartesian 4-branch embodiments.
  91. Sorrells, David F.; Rawlins, Gregory S., Systems and methods of RF power transmission, modulation, and amplification, including control functions to transition an output of a MISO device.
  92. Sorrells,David F.; Rawlins,Gregory S.; Rawlins,Michael W., Systems and methods of RF power transmission, modulation, and amplification, including embodiments for amplifier class transitioning.
  93. Sorrells,David F.; Rawlins,Gregory S.; Rawlins,Michael W., Systems and methods of RF power transmission, modulation, and amplification, including embodiments for amplifier class transitioning.
  94. Sorrells,David F; Rawlins,Gregory S.; Rawlins,Michael W., Systems and methods of RF power transmission, modulation, and amplification, including embodiments for amplifier class transitioning.
  95. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., Systems and methods of RF power transmission, modulation, and amplification, including embodiments for compensating for waveform distortion.
  96. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., Systems and methods of RF power transmission, modulation, and amplification, including embodiments for compensating for waveform distortion.
  97. Rawlins, Gregory S.; Sorrells, David F., Systems and methods of RF power transmission, modulation, and amplification, including embodiments for controlling a transimpedance node.
  98. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., Systems and methods of RF power transmission, modulation, and amplification, including embodiments for error correction.
  99. Sorrells, David F; Rawlins, Gregory S; Rawlins, Michael W, Systems and methods of RF power transmission, modulation, and amplification, including embodiments for extending RF transmission bandwidth.
  100. Sorrells,David F; Rawlins,Gregory S.; Rawlins,Michael W., Systems and methods of RF power transmission, modulation, and amplification, including embodiments for gain and phase control.
  101. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., Systems and methods of RF power transmission, modulation, and amplification, including multiple input single output (MISO) amplifier embodiments comprising harmonic control circuitry.
  102. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., Systems and methods of RF power transmission, modulation, and amplification, including output stage protection circuitry.
  103. Sorrells,David F.; Rawlins,Gregory S.; Rawlins,Michael W., Systems and methods of RF power transmission, modulation, and amplification, including transfer function embodiments.
  104. Sorrells,David F.; Rawlins,Gregory S.; Rawlins,Michael W., Systems and methods of RF power transmission, modulation, and amplification, including transfer function embodiments.
  105. Sorrells, David F.; Rawlins, Gregory S., Systems and methods of RF power transmission, modulation, and amplification, including varying weights of control signals.
  106. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., Systems and methods of RF tower transmission, modulation, and amplification, including embodiments for compensating for waveform distortion.
  107. Sorrells, David F.; Rawlins, Gregory S.; Rawlins, Michael W., Systems, and methods of RF power transmission, modulation, and amplification, including embodiments for output stage protection.
  108. Kimball, Eric, Transformer structures for a power amplifier (PA).
  109. Kaehs, Bernhard; Stempfl, Sebastian, Transmitter system with reconfigurable amplifiers.
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