IP Library Granted Patent US 10,367,486
Granted Patent B2
US 10,367,486 · App. 15/795,181 · Granted Jul 30, 2019

High speed on-chip precision buffer with switched-load rejection

Inventors: Stephen Todd Van Duyne (Calhan, CO); Kalin Valeriev Lazarov (Colorado Springs, CO); Zhiming Xiao (Colorado Springs, CO)
Assignee: Linear Technology Holding LLC
H03K5/08H03K21/40H03K2005/0011
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 10,367,486
App. No.
15/795,181
Granted
Jul 30, 2019
Kind
B2
Abstract

A buffer system may have an output for driving a switched load that changes during periods indicated by a switching signal. The buffer system may operate in a closed loop when the switching signal indicates that a load change is not taking place by comparing a signal indicative of the output of the buffer system with a reference voltage. The buffer system may operate in an open loop when the switching signal indicates that a load change is taking place by not comparing signal indicative of the output of the buffer system with the reference voltage. Both the buffer system and the switched load may be on the same chip.

Claims (42)

1. A buffer system having an output for driving a switched load and an input for receiving a switching signal that represents a presence or an absence of the switched load, wherein the switching signal is generated by the switched load or another circuit driving or monitoring the switched load, the buffer system comprising:

an error amplifier configured to generate an error signal output responsive to a difference between a reference voltage and a voltage at the output; and

a main buffer configured to receive and buffer the error signal output from the error amplifier and deliver the buffered error signal output to the output of the buffer system,

wherein, in a closed loop configuration, the output of the main buffer is switchably coupled to the error amplifier in response to the switching signal indicating the absence of a load change, and

wherein, in an open loop configuration, the output of the main buffer is switchably decoupled from the error amplifier in response to the switching signal indicating the presence of the load change.

2. The buffer system of claim 1 , further comprising:

a replica buffer configured to receive and buffer the error signal output from the error amplifier.

3. The buffer system of claim 2 , further comprising:

a capacitance connected between an output of the replica buffer and an input to the error amplifier; and

a controllable electronic switch configured to:

connect the input of the error amplifier to the output of the buffer system when the switching signal indicates the absence of the load change; and

disconnect the input of the error amplifier from the output of the buffer system when the switching signal indicates the presence of the load change.

4. The buffer system of claim 2 wherein the main buffer and the replica buffer are auto-zeroing buffers.

5. The buffer system of claim 2 wherein the main buffer and the replica buffer include chopper stabilization.

6. The buffer system of claim 2 further comprising a backend calibration circuit.

7. An electronic circuit on a single chip comprising:

a switched load;

a buffer system having an output for driving the switched load and an input for receiving a switching signal that represents a presence or an absence of the switched load, wherein the switching signal is generated by the switched load or another circuit driving or monitoring the switched load, the buffer system comprising:

an error amplifier configured to generate an error signal output responsive to a difference between a reference voltage and a voltage at the output; and

a main buffer configured to receive and buffer the error signal output from the error amplifier and deliver the buffered error signal output to the output of the buffer system,

wherein, in a closed loop configuration, the output of the main buffer is switchably coupled to the error amplifier in response to the switching signal indicating the absence of a load change, and

wherein, in an open loop configuration the output of the main buffer is switchably decoupled from the error amplifier in response to the switching signal indicating the presence of the load change.

8. The electronic circuit of claim 7 , further comprising:

a replica buffer configured to receive and buffer the error signal output from the error amplifier.

9. The electronic circuit of claim 8 , further comprising:

a capacitance connected between an output of the replica buffer and an, input to the error amplifier; and

a controllable electronic switch configured to:

connect the input of the error amplifier to the output of the buffer system when the switching signal indicates the absence of the load change; and

disconnect the input of the error amplifier from the output of the buffer system when the switching signal indicates the presence of the load change.

10. The electronic circuit of claim 8 wherein the main buffer and the replica buffer are auto-zeroing buffers.

11. The electronic circuit of claim 8 wherein the main buffer and the replica buffer include chopper stabilization.

12. The electronic circuit of claim 8 further comprising a backend calibration circuit.

13. A buffer system having an output for driving a switched load and an input for receiving a switching signal that represents a presence or an absence of the switched load, wherein the switching signal is generated by the switched load or another circuit driving or monitoring the switched load, the buffer system comprising:

means for generating an error signal output responsive to a difference between a reference voltage and a voltage at the output;

first means for receiving and buffering the error signal output from the error amplifier and delivering the buffered error signal output to the output of the buffer system,

wherein, in a closed loop configuration, the output of the first means for receiving and buffering is switchably coupled to the means for generating the error signal output in response to the switching signal indicating the absence of a load change, and

wherein, in an open loop configuration, the output of first means for receiving and buffering is switchably decoupled from the means for generating the error signal output in response to the switching signal indicating the presence of the load change.

14. The buffer system of claim 13 further comprising:

second means for receiving and buffering the error signal output from the means for generating the error signal, the second means for receiving and buffering different from the first means for receiving and buffering.

15. The buffer system of claim 14 wherein first means for receiving and buffering and the second means for receiving and buffering are auto-zeroing.

16. The buffer system of claim 14 wherein the first means for receiving and buffering and the second means for receiving and buffering include chopper stabilization.

17. The buffer system of claim 14 further comprising backend calibration means for measuring a difference between an output of the first means for receiving and buffering and the second means for receiving and buffering and for adjusting the second means for receiving and buffering to match the output of the first means for receiving and buffering.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 5, 2021
From: LINEAR TECHNOLOGY HOLDING LLC
To: ANALOG DEVICES INTERNATIONAL UNLIMITED COMPANY
Reel/Frame 057419/0279 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 23, 2018
From: VAN DUYNE, STEPHEN TODD; LAZAROV, KALIN VALERIEV; XIAO, ZHIMING
To: LINEAR TECHNOLOGY HOLDING LLC
Reel/Frame 045336/0325 →
Continuity (1)
Related Publication 20190131959A1 · May 2, 2019