Nova Patents
EP2932610A2

Low power clock source

Abstract

This record has no abstract on file.

Term

Projected expiry 6 September 2033.

  1. Priority
  2. Filed
  3. Published
  4. Today
  5. Projected expiry

54 claims: 29 independent, 25 dependent

  1. 1
    Claims of equivalent WO 2014039817 A2 What is claimed is:1. An apparatus, comprising: a first oscillator circuit including a first oscillator output;a second oscillator circuit including a configuration input and a second oscillator output;and a comparator circuit including first and second comparator inputs respectively controllably coupleable to the first and second oscillator outputs;wherein a first oscillator output signal from the first oscillator output deviates less from a specified output period as compared to a second oscillator output signal from the second oscillator output;and wherein the second oscillator circuit is configured to adjust, using the configuration input, the second oscillator output signal based on information obtained from the comparator circuit about a comparison between the first oscillator output signal and the second oscillator output signal.
  2. 5
    The apparatus of any one of claims 2 or 3, wherein one or more of the first oscillator circuit or the comparator circuit are configured to be enabled based on information about a temperature of at least a portion of the apparatus.
  3. 6
    The apparatus of any one of claims 1 through 5, wherein the first oscillator circuit comprises a temperature-compensated oscillator circuit having a first power consumption characteristic at a first operating frequency, and wherein the second oscillator circuit has a lesser second power consumption characteristic at the same operating frequency.
  4. 10
    The apparatus of any one of claims 7 through 9, wherein the first oscillator output signal of the current-controlled oscillator circuit is established at least in part using one or more of a PTAT current source or a CTAT current source.
  5. 12
    The apparatus of any one of claims 10 or 11, wherein the first oscillator output signal of the current-controlled oscillator circuit is established at least in part using a second order compensation circuit.
  6. 14
    The apparatus of any one of claims 1 through 13, wherein one or more of the first or second oscillator circuits comprises a ring topology.
  7. 18
    The apparatus of any one of claims 1 through 17, wherein the comparator circuit includes a frequency comparator configured to provide information indicative of a comparison between respective frequencies of signals provided to the first and second comparator inputs.
  8. 20
    The apparatus of any one of claims 1 through 19, wherein the comparator circuit includes a counter circuit configured to determine, during a duration established using information obtained using the first comparator input, a count of rising or falling edges of a signal provided to the second comparator input.
  9. 22
    The apparatus of any one of claims 1 through 21, wherein one of the first and second comparator inputs is controllably coupleable to a reference output of a reference circuit, and wherein the first oscillator circuit is configured to adjust the first oscillator output signal based on information obtained from the comparator circuit about a comparison between the first oscillator output signal and a reference output signal from the reference output.
  10. 24
    The apparatus of any one of claims 1 through 23, comprising a multiplexer circuit configured to controllably couple a selected one of the first and second oscillator outputs to a selected one of the first or second comparator inputs.
  11. 25
    The apparatus of any one of claims 1 through 24, wherein the first oscillator output signal deviates less from a specified output period as compared to the second oscillator output signal over a specified duration of time.
  12. 26
    The apparatus of any one of claims 1 through 25, wherein the first oscillator output signal deviates less from a specified output period as compared to the second oscillator output signal over a specified range of temperatures.
  13. 27
    A method, comprising:providing a first oscillator output signal using a first oscillator output of a first oscillator circuit;providing a second oscillator output signal using a second oscillator output of a second oscillator circuit, wherein the second oscillator output signal deviates more from a specified output period as compared to the first oscillator output signal from the first oscillator output;controllably coupling the first and second oscillator outputs to first and second comparator inputs of a comparator circuit;and adjusting a characteristic of the second oscillator circuit to update the second oscillator output signal, the adjusting the characteristic based on information from the comparator circuit about the first oscillator output signal relative to the second oscillator output signal.
  14. 30
    The method of any one of claims 28 or 29, wherein the enabling the first oscillator output to provide the first oscillator output signal includes enabling the first oscillator output in response to a detected temperature change of the second oscillator circuit.
  15. 31
    The method of any one of claims 27 through 30, wherein the providing the first oscillator output signal includes using a temperature-compensated oscillator circuit.
  16. 35
    The method of any one of claims 31 through 34, wherein the providing the first oscillator output signal includes using a second order compensation circuit.
  17. 37
    The method of any one of claims 27 through 36, comprising comparing the first and second oscillator output signals using the comparator circuit, including comparing respective frequencies of the first and second oscillator output signals.
  18. 39
    The method of any one of claims 27 through 38, comprising comparing the first and second oscillator output signals using the comparator circuit, including counting rising or falling edges of the second oscillator output signal during a duration established using information from the first oscillator output signal.
  19. 40
    The method of any one of claims 27 through 39, comprising:controllably coupling a reference output of a reference circuit to one of the first and second comparator inputs of the comparator circuit;and adjusting a reference characteristic of the first oscillator circuit to update the first oscillator output signal, the adjusting the reference characteristic based on information from the comparator circuit about the first oscillator output signal relative to a reference signal received from the reference output.
  20. 41
    The method of any one of claims 27 through 40, wherein the providing the second oscillator output signal using the second oscillator output includes providing a second oscillator output signal that deviates more from a specified output period as compared to the first oscillator output signal over a specified duration of time.
  21. 42
    The method of any one of claims 27 through 41, wherein the providing the second oscillator output signal using the second oscillator output includes providing a second oscillator output signal that deviates more from a specified output period as compared to the first oscillator output signal over a specified range of temperatures.
  22. 43
    The method of any one of claims 27 through 42, wherein at least one of the providing the first or second oscillator output signals includes operating an oscillator circuit having a ring topology, and adjusting a characteristic of a delay circuit in the ring topology.
  23. 44
    A method, comprising:periodically enabling a first oscillator circuit to provide a first signal having a first frequency;providing a second signal having a second frequency using a second oscillator output, the second signal deviates more, over a specified duration of time or over a specified range of temperatures, from a specified output period as compared to the first signal;determining a relative frequency difference between the first and second signals using a comparator circuit;and updating a second oscillator output circuit component characteristic, using information about the determined relative frequency difference between the first and second signals, to adjust the second signal frequency.
  24. 46
    The method of any one of claims 44 or 45, comprising receiving an indication of a temperature change that exceeds a threshold change, and wherein the determining the relative frequency difference and updating the second oscillator output circuit component characteristic includes in response to the received indication of the temperature change that exceeds the threshold change.
  25. 47
    The method of any one of claims 44 through 46, wherein the updating the second oscillator output circuit component characteristic includes periodically updating the second oscillator output circuit component characteristic correspondingly to the periodically enabling the first oscillator circuit.
  26. 48
    The method of any one of claims 44 through 47, wherein the determining the relative frequency difference between the first and second signals using the comparator circuit includes determining a count of rising or falling edges of the second signal during a duration established using information from the first signal, the count indicative of a frequency of the second signal, and wherein the updating the second oscillator output circuit component characteristic includes using information about the determined count to adjust the second signal frequency.
  27. 49
    An apparatus, comprising:a temperature-compensated current-controlled oscillator circuit including: a first oscillator output;and an adjustable current source configured to provide a specified output current at least in part using an adjustable resistance;wherein an oscillator output signal from the first oscillator output is established at least in part using a first compensation circuit that includes one or more of a PTAT current source or a CTAT current source, and a second compensation circuit that includes a field effect transistor biased in an off-state;and wherein the oscillator output signal from the first oscillator output is established at least in part using a leakage of the field effect transistor biased in the off-state.
  28. 51
    An apparatus, comprising:a comparator circuit including: first and second comparator circuit inputs;a frequency comparator configured to provide information indicative of a comparison between respective frequencies of signals provided to the first and second comparator inputs;and a successive approximation register (SAR) logic circuit configured to provide a digital adjustment signal based on the information indicative of the comparison between the respective frequencies of signals provided to the first and second comparator inputs.
  29. 53
    The apparatus of any one of claims 51 or 52, wherein the first and second comparator circuit inputs are respectively controllably coupleable to outputs of first and second oscillator circuits.
Independent claims29