RF transceiver with test capability

US10284248B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10284248-B2
Application numberUS-201715836022-A
CountryUS
Kind codeB2
Filing dateDec 8, 2017
Priority dateDec 20, 2016
Publication dateMay 7, 2019
Grant dateMay 7, 2019

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

An RF front-end circuit of an RF transceiver is described herein. In accordance with one exemplary embodiment, the fronted circuit includes a local oscillator (LO) configured to generate an RF transmit signal, an RF output port coupled to the local oscillator, wherein the RF transmit signal is output at the RF output port, and a monitoring circuit receiving an input signal and configured to determine the phase of the input signal or the power of the input signal or both. A directional coupler is coupled to the RF output port and configured to direct a reflected signal incoming at the RF output port as input signal to the monitoring circuit, and a controller is configured to detect, based on the determined phase or power or both, a defect in a signal path operably connected to the RF output port.

First claim

Opening claim text (preview).

What is claimed is: 1. A radio frequency (RF) front-end circuit of an RF transceiver, the circuit comprising: a local oscillator (LO) configured to generate an RF transmit signal; an RF output port coupled to the local oscillator, the RF transmit signal being output at the RF output port; a monitoring circuit configured to receive an input signal and configured to determine at least one of a phase of the input signal or a power of the input signal; a directional coupler coupled to the RF output port and configured to direct a reflected signal incoming at the RF output port as the input signal to the monitoring circuit; and a controller configured to detect, based on the at least one determined phase or determined power of the input signal, a defect in a signal path operably connected to the RF output port, wherein the controller is further configured to localize the detected defect based on the determined phase of the reflected signal such that the controller determines a position of the defect on the signal path external to the RF output port. 2. The RF front-end circuit of claim 1 , wherein the monitoring circuit includes a mixer. 3. The RF front-end circuit of claim 1 , wherein the monitoring circuit includes an IQ-modulator configured to determine a magnitude and the phase of the input signal. 4. The RF front-end circuit of claim 1 , further comprising: an RF amplifier configured to receive the RF transmit signal and configured to amplify the RF transmit signal, wherein the directional coupler is coupled between an output of the RF amplifier and the RF output port and configured to direct the amplified RF transmit signal to the RF output port. 5. The RF front-end circuit of claim 4 , wherein: the directional coupler is configured to receive the amplified RF transmit signal at a first coupler port and is configured to direct the amplified RF transmit signal to a second coupler port, which is connected to the RF output port, as well as to a third coupler port, and the directional coupler is configured to direct the reflected signal from the second coupler port to a fourth coupler port. 6. The RF front-end circuit of claim 5 , further comprising: an RF switch coupled to the directional coupler and configured to connect, dependent on a switch position, either the third coupler port or the fourth coupler port to the monitoring circuit. 7. The RF front-end circuit of claim 1 , further comprising: an RF switch coupled to the directional coupler, wherein the RF switch is configured to forward, dependent on a switch position, either the reflected signal or the RF transmit signal from the directional coupler to the monitoring circuit. 8. The RF front-end circuit of claim 1 , further comprising: a modulator coupled upstream to the directional coupler and configured to impose an adjustable phase shift onto the RF transmit signal. 9. The RF front-end circuit of claim 1 , wherein the controller is configured to detect the defect in the signal path operably connected to the RF output port upon detection that at least one of the determined power or determined phase of the reflected signal has changed. 10. The RF front-end circuit of claim 1 , wherein the controller is configured to detect the defect in the signal path operably connected to the RF output port by calculating a reflection coefficient of the reflected signal and detecting whether the reflection coefficient has changed. 11. The RF front-end circuit of claim 1 , wherein the signal path operably connected to the RF output port comprises a transmission line. 12. The RF front-end circuit of claim 11 , wherein the transmission line connects the RF output port with at least one antenna. 13. A radio frequency (RF) front-end circuit of an RF transceiver, the circuit comprising: an RF output port configured to output an RF transmit signal; a modulator configured to impose an adjustable phase shift on the RF transmit signal; a monitoring circuit configured to receive an input signal and configured to determine a phase of the input signal or the phase and a power of the input signal; a directional coupler coupled to the RF output port and configured to direct a reflected signal incoming at the RF output port as the input signal to the monitoring circuit; and a controller configured to tune the adjustable phase shift imposed by the modulator such that the phase determined by the monitoring circuit matches a defined desired phase. 14. The RF front-end circuit of claim 13 , wherein the controller is configured to detect, based on at least one of the determined phase or the determined power of the input signal, a defect in a signal path operably connected to the RF output port. 15. The RF front-end circuit of claim 14 , wherein the controller is further configured to localize the detected defect based on the determined phase of the reflected signal such that the controller determines a position of the defect on the signal path external to the RF output port. 16. A self-test method for a radio frequency (RF) front-end integrated in a monolithic microwave integrated circuit (MMIC), the method comprises: generating an RF transmit signal; imposing an adjustable phase shift on the RF transmit signal; feeding the RF transmit signal to a signal path, which is operably connected to an RF output port of the MMIC; analyzing a reflected signal, which is reflected back to the RF output port of the MMIC to determine a phase of the reflected signal or the phase and a power of the reflected signal; tuning the adjustable phase shift imposed by the modulator such that the phase determined by the monitoring circuit matches a defined desired phase. 17. The method of claim 16 , wherein analyzing the reflected signal comprises: detecting a defect in the signal path operably connected to the RF output port based on at least one of the determined power or the determined phase of the reflected signal. 18. The method claim 17 , wherein the defect is determined based on a detected change of at least one of the determined power or the determined phase of the reflected signal. 19. The method claim 16 , wherein analyzing the reflected signal comprises: detecting a defect in the signal path operably connected to the RF output port by calculating a reflection coefficient of the reflected signal and detecting a change of the reflection coefficient. 20. The method of claim 17 , wherein analyzing the reflected signal comprises: localizing the detected defect based on the determined phase of the reflected signal.

Assignees

Inventors

Classifications

  • between a chip and a stacked insulating package substrate, interposer or RDL · CPC title

  • at high-frequency [HF] or radio frequency [RF] · CPC title

  • comprising solid metals or solid metalloids, e.g. PbSn, Ag or Cu · CPC title

  • H04B1/3822Primary

    specially adapted for use in vehicles (H04B1/3827 takes precedence) · CPC title

  • specially adapted to FMCW · CPC title

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What does patent US10284248B2 cover?
An RF front-end circuit of an RF transceiver is described herein. In accordance with one exemplary embodiment, the fronted circuit includes a local oscillator (LO) configured to generate an RF transmit signal, an RF output port coupled to the local oscillator, wherein the RF transmit signal is output at the RF output port, and a monitoring circuit receiving an input signal and configured to det…
Who is the assignee on this patent?
Infineon Technologies Ag
What technology area does this patent fall under?
Primary CPC classification H04B1/3822. Mapped technology areas include Electricity.
When was this patent published?
Publication date Tue May 07 2019 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).