Solid state sensor
Described herein are solid state sensors for measuring various physical parameters. The solid state sensors may be used in systems, devices, and methods for controlling blood flow or for measuring (e.g., monitoring) blood pressure. In some instances, the method may include obtaining a first count number indicating a number of oscillations at a first ring oscillator circuit during a sample period. The first ring oscillator circuit may be associated with a sensor and oscillates at a first oscillation rate. The first oscillation rate may be based on a first set of physical parameters and a second physical parameter. The method may further include obtaining a second count number indicating a number of oscillations at a second ring oscillator circuit during the sample period. The second ring oscillator circuit may be associated with the sensor and oscillates at a second oscillation rate. The second oscillation rate may be based on the first of physical parameters but not the second physical parameter. The method may further include determining a value associated with the second physical parameter at the sensor based on the first count number and the second count number.
1 . A sensor, comprising:
a first circuit configured to receive an input clock signal and output a first output count signal at a predetermined sample rate;
a second, different circuit configured to receive the input clock signal and output a second output count signal at the predetermined sample rate; and
a third circuit coupled to the first circuit and the second circuit, the third circuit configured to generate a third signal based on the first output count signal and the second output count signal.
2 . The sensor of claim 1 , wherein the first output count signal varies based on a first set of parameters and the second output count signal varies based on a second set of parameters different from the first set of parameters.
3 . The sensor of claim 2 , wherein the first set of parameters comprise one or more of temperature and voltage.
4 . The sensor of claim 2 , wherein the second set of parameters comprise temperature, voltage, and one or more of force, pressure, light amplitude, audio amplitude, radiation, and a resistance or capacitance corresponding to a chemical or physical reaction.
5 . The sensor of claim 1 , wherein the third signal corresponds to one or more of temperature, voltage, force, pressure, light amplitude, and audio amplitude.
6 . The sensor of claim 1 , wherein a frequency of the predetermined sample rate is less than a frequency of the input clock signal.
7 . The sensor of claim 1 , wherein the first circuit comprises a first plurality of delay circuits arranged in a ring configuration, and the second circuit comprises a second plurality of delay circuits arranged in another ring configuration.
8 . The sensor of claim 7 , wherein the first plurality of delay circuits comprises a first plurality of inverter circuits, and the second plurality of delay circuits comprises a second plurality of inverter circuits, the second plurality of delay circuits different from the first plurality of delay circuits.
9 . The sensor of claim 8 , wherein the first circuit comprises a first counter and a first latch, and the second circuit comprises a second counter and a second latch.
10 . The sensor of claim 8 , wherein the first plurality of inverter circuits are coupled to a first multiplexer, and the second plurality of inverter circuits are coupled to a second multiplexer.
11 . The sensor of claim 8 , wherein the first plurality of inverter circuits and the second plurality of inverter circuits are configured in a closed loop with positive feedback.
12 . The sensor of claim 7 , wherein the first plurality of delay circuits comprises a first resistor-capacitor delay circuit.
13 . The sensor of claim 1 , wherein the second circuit comprises one or more of a resistor-capacitor delay circuit, a resistor-inductor delay circuit, and a capacitive delay circuit.
14 . The sensor of claim 1 , wherein the first circuit comprises a first oscillator circuit, and the second circuit comprises a second oscillator circuit.
15 . The sensor of claim 1 , further comprising a fourth circuit coupled to the third circuit, the fourth circuit configured to receive the input clock signal and output a fourth output count signal at the predetermined sample rate, wherein the third circuit is configured to generate a fifth signal based on a difference between the first output count signal and the fourth output count signal.
16 . The sensor of claim 15 , wherein the fifth signal corresponds to one or more of temperature, voltage, force, pressure, light amplitude, and audio amplitude.
17 . The sensor of claim 1 , further comprising a substrate comprising the first circuit, the second circuit, and the third circuit.
18 . The sensor of claim 1 , further comprising:
a first substrate comprising the first circuit and the second circuit; and
a second substrate comprising the third circuit.
19 . The sensor of claim 1 , further comprising a fourth circuit configured to output the third signal as a digital signal.
20 . The sensor of claim 1 , further comprising a fourth circuit configured to output the third signal as a set of binary encoded bits at a periodic rate.
21 . The sensor of claim 20 , wherein the fourth circuit comprises one or more of a wire and an antenna.
22 . A device configured to monitor blood pressure, the device comprising:
an elongate body; and
the sensor of claim 1 disposed within a tubular sensor housing, wherein the tubular sensor housing is coupled to the elongate body.
23 . A method of measuring a parameter, comprising:
receiving an input clock signal;
generating a first output count signal at a predetermined rate based on a first circuit receiving the input clock signal;
generating a second output count signal at the predetermined rate based on a second circuit different from the first circuit receiving the input clock signal; and
generating a third signal based on the first output count signal and the second output count signal.
24 . The method of claim 23 , wherein the third signal represents a sensor value indicative of the parameter.
25 . The method of claim 23 , wherein the first output count signal varies based on a first set of parameters and the second output count signal varies based on a second set of parameters different from the first set of parameters.
26 . The method of claim 25 , wherein the first set of parameters comprise temperature and voltage, the second set of parameters comprise temperature, voltage, and pressure, and the parameter is pressure.
27 . A sensor for measuring a parameter of an environment surrounding the sensor, comprising:
a first circuit configured to receive an input clock signal and output a first output count signal at a predetermined sample rate;
a second circuit configured to receive the input clock signal and output a second output count signal at the predetermined sample rate; and
a third circuit coupled to the first circuit and the second circuit, the third circuit configured to generate a third signal based on the first output count signal and the second output count signal, the third signal representing a sensor value indicative of the parameter.
28 . The sensor of claim 27 , wherein the first output count signal varies based on a first set of parameters and the second output count signal varies based on a second set of parameters different from the first set of parameters.
29 . The sensor of claim 28 , wherein the first set of parameters comprise one or more of temperature and voltage, and the second set of parameters comprise temperature, voltage, and one or more of force, pressure, light amplitude, audio amplitude, radiation, and a resistance or capacitance corresponding to a chemical or physical reaction.
30 . The sensor of claim 27 , wherein the first circuit comprises a first plurality of delay circuits arranged in a ring configuration, and the second circuit comprises a second plurality of delay circuits arranged in another ring configuration.
31 . The sensor of claim 30 , wherein the first plurality of delay circuits comprises a first plurality of inverter circuits, and the second plurality of delay circuits comprises a second plurality of inverter circuits, the second plurality of delay circuits different from the first plurality of delay circuits.
32 . The sensor of claim 31 , wherein the first plurality of inverter circuits are coupled to a first multiplexer, and the second plurality of inverter circuits are coupled to a second multiplexer.
33 . The sensor of claim 31 , wherein the first plurality of inverter circuits and the second plurality of inverter circuits are configured in a closed loop with positive feedback.
34 . The sensor of claim 27 , wherein the first circuit comprises a first counter and a first latch, and the second circuit comprises a second counter and a second latch.
35 . The sensor of claim 27 , further comprising:
a fourth circuit coupled to the third circuit, the fourth circuit configured to receive the input clock signal and output a fourth output count signal at the predetermined sample rate, wherein the third circuit is configured to generate a fifth signal based on a difference between the first output count signal and the fourth output count signal.
36 . The sensor of claim 27 , further comprising:
a first substrate comprising the first circuit and the second circuit; and
a second substrate comprising the third circuit.
37 . A method of measuring a parameter of an environment surrounding a sensor, comprising:
receiving an input clock signal;
generating a first output count signal at a predetermined rate based on the input clock signal using a first circuit;
generating a second output count signal at the predetermined rate using a second circuit; and
generating a third signal based on the first output count signal and the second output count signal, the third signal representing a sensor value indicative of the parameter.
38 . The method of claim 37 , wherein the parameter corresponds to one or more of temperature, voltage, force, pressure, light amplitude, and audio amplitude.
39 . The method of claim 37 , wherein the first output count signal varies based on a first set of parameters and the second output count signal varies based on a second set of parameters different from the first set of parameters.
40 . The method of claim 39 , wherein the first set of parameters comprise temperature and voltage, the second set of parameters comprise temperature, voltage, and pressure, and the parameter is pressure.
41 . The method of claim 37 , wherein a frequency of the predetermined rate is less than a frequency of the input clock signal.
42 . The method of claim 37 , further comprising:
outputting the third signal as a set of binary encoded bits at a periodic rate using a fourth circuit.