In applications where a differential flash converter is part of a larger system, it may be necessary to adjust the scale factor of a reference ladder to compensate for other components in the system.
In a preferred embodiment, an arrangement of amplifiers and current sources are connected to a resistive ladder, to provide an adjustment range to a differential reference ladder with minimal disturbance of its common mode voltage. The reference ladder can be used in a differential flash converter or in other end uses.
The ladder relies solely on the ratio of resistances to establish the nominal reference steps and a common mode voltage for the flash comparators.
An “H” arrangement of current sources is used to inject current at a first node, VH, and to sink at a second node, VL. The voltage difference between these two nodes controls the scale applied to the reference ladder. Alternatively, the current source may inject current at VL and sink current at VH to decrease the reference for each comparator.
A differential amplifier controls the direction and magnitude of the adjustment current. The invention therefore provides a relatively wide reference wide ladder adjustment range (of +/−30%) while protecting downstream circuit elements from errors due to common mode voltage sensitivity.
The foregoing will be apparent from the following more particular description of example embodiments of the invention, as illustrated in the accompanying drawings in which like reference characters refer to the same parts throughout the different views. The drawings are not necessarily to scale, emphasis instead being placed upon illustrating embodiments of the present invention.
A description of example embodiments of the invention follows.
In some applications, a flash converter can be a component of a larger system. One such application, such as an N-bit pipelined Analog to Digital (A-D) converter, uses several flash converter stages. The flash converter stages use resistive ladders to provide reference voltages to an array of comparators. In this application it may be necessary to match parts of the system that are upstream of a particular stage, e.g., the N-M bit flash converter.
Thus, it becomes desirable to allow for adjustment of the scale factor of a resistive ladder under control of upstream components, for several reasons. Controlled variance of the scale factor may be used to match the scale of a flash converter to the scale of the other components, such as previous stages in a pipeline A/D converter. Furthermore, in some applications, it may be desirable to adjust the ladder scale factor without affecting the common mode voltage of the ladder.
A simplified version of a ladder circuit that can be used in a preferred embodiment is shown in
An array of voltage controlled current sources 102-1, 102-02, 102-3, 102-4 is used to scale the output range, either by forcing more current (sinking less current) into resistor ladder Rp3 . . . Rm3, thus increasing the differential voltage of (Vp3-Vm3), or sinking more current (sourcing less current) through resistor ladder Rm3 . . . Rp3, thus decreasing the differential voltage (Vp3-Vm3). The sign and magnitude of this adjustment is determined by an adjustable control voltage input Vcont. Note that the adjustable control voltage Vcont may be provided as a differential voltage by a differential input buffer 104.
In one specific embodiment, the common mode voltage Vcm at the output may be specified to change over a range limited to +/−5 millivolts (mV) while allowing an adjustment of a least significant bit (LSB) value over a range of plus or minus 30%. In the example of
A circuit which may be used to implement the adjustments to the resistive ladder scale is shown in more detail in
Acting with respective FETs PM3 and PM2, FETs NM0 and NM1 provide controllable current sinks that can be altered to vary the desired output at nodes VH and VL. PM4 and PM5 provide constant current sources to each respective side—PM4 and PM5 are active all the time, sourcing a given current.
The differential voltage between VADJ_P and VADJ_M thus controls the amount of current flowing through either NM2 or NM 3.
Other transistors, such as PM25 and PM17, can be used to control power applied to this circuit.
Thus it is now understood how a scale factor of a flash converter reference ladder may be changed. Furthermore, it is possible to adjust the ladder scale factor without adversely affecting the value of a common low voltage Vcm of the reference ladder.
More particularly, a differential input voltage sampler 303 provides differential charge signals to the successive-type A/D portion 301 which includes a number of successive charge transfer stages 304-1, . . . 304-s (Qt) arranged in a pipeline to provide the operations needed to carry out charge-domain Analog to Digital conversion: namely charge storage and transfer, charge comparison, and conditional and constant charge addition. These operations can be combined in various ways to carry out a variety of A/D algorithms, which may for example, carry out 1-bit, 1½ bit, 2 bits per stage or in other configurations as described in a co-pending U.S. Patent Publication No. 2008/0246646 entitled “Charge Domain Pipeline Analog to Digital Converter”, U.S. patent Publication filed Jan. 18, 2008, which is incorporated by reference herein. What is important to note here is that the flash-type A/D portion 302 can make use of adjustment of the scale factor applied to a voltage ladder according to the principals of
One particular use of the corresponding charge domain pipeline A/D is to implement a digital radio receiver, as generally shown in
While this invention has been particularly shown and described with references to example embodiments thereof, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the scope of the invention encompassed by the appended claims.
This application claims the benefit of U.S. Provisional Application No. 61/005,732 filed on Dec. 7, 2007. The entire teachings of the above application(s) are incorporated herein by reference.
Number | Date | Country | |
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61005732 | Dec 2007 | US |