Method for calibrating a control system operating an electric heater - Patents.com

The calibration method for the control system of electric heaters addresses the challenge of temperature measurement inaccuracies by correlating initial and calibrated measurement characteristics, resulting in precise temperature control.

JP7676635B2Active Publication Date: 2025-05-14WATLOW ELECTRIC MANUFACTURING CO
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Patent Information

Application Number
JP2024095720
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-06-07
Filing Date
2024-06-13
Publication Date
2025-05-14
Estimated Expiration
2040-06-05

AI Technical Summary

Technical Problem

Existing control systems for electric heaters used in semiconductor processing face challenges in accurately measuring temperature due to manufacturing variations, material batch variability, age, and usage cycles, leading to errors in calculated temperatures.

Method used

A method for calibrating a control system that involves providing power to a load, generating initial measurement characteristics, and generating calibrated measurement characteristics using a controller calibration system. This process correlates initial and calibrated metrics to define a calibrated metric, which the control system uses for accurate temperature control.

Benefits of technology

The calibration method ensures accurate electrical characteristic measurements, leading to precise temperature control of the electric heater, mitigating errors caused by manufacturing and usage variations.

✦ Generated by Eureka AI based on patent content.

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Abstract

To address issues relating to errors occurring in calculated temperatures in two-wire resistive heaters.SOLUTION: A method for calibrating a control system configured to control a two-wire heater includes: controlling the two-wire heater to a temperature setpoint from among a plurality of temperature setpoints; concurrently acquiring voltage and current (V-I) characteristics of the two-wire heater from the control system and temperature dataset of the two-wire heater from a temperature sensor system, the V-I characteristics and the temperature dataset being acquired for each of the plurality of temperature setpoints; determining, for each of the plurality temperature setpoints, a resistance value of the two-wire heater based on the V-I characteristics acquired; calculating temperature metrology data based on the temperature dataset acquired; correlating the resistance value of the two-wire heater and the temperature metrology data for each of the plurality of temperature setpoints; and defining a resistance-temperature calibration reference for determining a working temperature of the two-wire heater based on a measured resistance value of the two-wire heater.SELECTED DRAWING: Figure 8
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Description

[Technical field]

[0001] This application claims priority to and the benefit of U.S. Provisional Application No. 62 / 858,587, filed June 7, 2019, the disclosure of which is incorporated herein by reference.

[0002] The present invention relates to the calibration of a control system which controls an electric heater. [Background technology]

[0003] The discussion herein is merely intended to provide background information related to the present invention and is not necessarily a statement of prior art.

[0004] Heaters for semiconductor processing typically include a heating plate having a substrate and a resistive heating element disposed within the substrate to define one or more heating zones. In some applications, only two leads are connected to the resistive heating element, rather than four (e.g., two for the heating element and two for a separate temperature sensor), and the resistive heating element functions as both a heater and a temperature sensor. In one form, such a resistive heating element is formed from a material with a relatively high temperature coefficient of resistance (TCR), such that the temperature of the resistive heating element can be determined based on its resistance value. Summary of the Invention [Problem to be solved by the invention]

[0005] In one application, the heater is controlled by a control system that measures the temperature of a resistive heating element based on the resistance of the resistive heating element. To control the heater, the control system calculates a resistance based on voltage and / or current measurements and determines the temperature of each zone based on the calculated resistance. Although standardized information such as tables relating the resistance of a particular resistive heating material to temperature can be used, heaters may operate differently from one another even if they are of the same type. This may be caused, for example, by manufacturing variations, variations between batches of material, age of the heater, number of cycles, and / or other factors that introduce errors into the calculated temperatures. These and other problems associated with the use of two-wire resistive heaters are addressed by the present invention. [Means for solving the problem]

[0006] This section provides a general summary of the invention and is not intended to provide an exhaustive disclosure of its entire scope or all of its features.

[0007] One embodiment of the present invention relates to a method for calibrating a control system configured to control a two-wire heater capable of generating heat and acting as a sensor to measure an electrical characteristic thereof. The method includes the steps of: providing power by the control system to a load electrically connected to the control system; generating by the control system an initial measurement characteristic of the load; and generating by a controller calibration system connected to the load a calibrated measurement characteristic of the load. The initial measurement characteristic and the calibrated measurement characteristic are indicative of an electrical characteristic of the load. The electrical characteristic of the load includes a voltage, a current, a resistance, or a combination thereof. The method further includes correlating the initial measurement characteristic with the calibrated measurement characteristic and defining a calibrated metric based on the correlation between the initial measurement characteristic and the calibrated measurement characteristic. The control system uses the calibrated metric to provide an accurate measurement for controlling the heater.

[0008] In another embodiment, generating an initial measurement characteristic by the control system further includes measuring an initial voltage and an initial current of the load by the control system. The initial measurement characteristic includes the initial voltage and the initial current. Generating a calibrated measurement characteristic by a controller calibration system connected to the load further includes measuring a calibrated voltage and a calibrated current of the load by the controller calibration system. The calibrated measurement characteristic includes the calibrated voltage and the calibrated current. The initial voltage and the calibrated voltage are measured simultaneously, and the initial current and the calibrated current are measured simultaneously.

[0009] In yet another embodiment, the method further includes calculating an initial resistance value of the load based on an initial voltage and an initial current of the load, and calculating a calibrated resistance value of the load based on a calibrated voltage and a calibrated current of the load, wherein the initial measured characteristic further includes the initial resistance value and the calibrated measured characteristic further includes the calibrated resistance.

[0010] In one embodiment, power is provided to a load at a plurality of power setpoints, for each of the plurality of power setpoints, an initial measurement characteristic is generated by the control system and a calibrated measurement characteristic is generated by the controller calibration system to provide a plurality of initial measurement characteristics and a plurality of calibrated measurement characteristics, the plurality of initial measurement characteristics are correlated with a plurality of calibrated measurement characteristics, and a calibrated metric is defined based on the correlation of the plurality of initial measurement characteristics with the plurality of calibrated measurement characteristics.

[0011] In another embodiment, the load is a controllable load having an adjustable resistance value, and the method further includes setting a resistance value of the load to a plurality of resistance settings, and for each of the plurality of resistance settings, an initial measurement characteristic is generated by the control system and a calibrated measurement characteristic is generated by the controller calibration system to provide the plurality of initial measurement characteristics and the plurality of calibrated measurement characteristics, the plurality of initial measurement characteristics are correlated with the plurality of calibrated measurement characteristics, and a calibrated measurement standard is defined based on the correlation of the plurality of initial measurement characteristics and the plurality of calibrated measurement characteristics.

[0012] In yet another embodiment, a control system is electrically connected to the two-wire heater, and the method includes controlling the two-wire heater to a temperature setpoint of a plurality of temperature setpoints by the control system, and obtaining a voltage and current (VI) characteristic of the two-wire heater from the control system and a temperature data set of the two-wire heater from a temperature sensor system. The VI characteristic and the temperature data set are obtained for each of the plurality of temperature setpoints. The method includes determining a resistance value of the two-wire heater for each of the plurality of temperature setpoints based on the obtained VI characteristic and a calibrated metric standard, calculating temperature measurement data for each of the plurality of temperature setpoints based on the obtained temperature data set, correlating the resistance value of the two-wire heater with the temperature measurement data for the plurality of temperature setpoints, and defining a resistance temperature calibration standard for determining an operating temperature of the two-wire heater based on the measured resistance value of the two-wire heater.

[0013] In one embodiment, obtaining a VI of the two-wire heater from the control system and a temperature data set of the two-wire heater from the temperature sensor system includes measuring a VI characteristic of the two-wire heater with a sensor circuit of the control system and measuring a plurality of temperature measurements of the two-wire heater at a temperature setpoint with the temperature sensor system, the plurality of temperature measurements being provided as a temperature data set for the temperature setpoint.

[0014] In another embodiment, the temperature measurement data includes a mean temperature, a median temperature, a temperature variance, a standard deviation, a maximum temperature, a minimum temperature, a temperature range, a 3 sigma value, or a combination thereof.

[0015] In yet another embodiment, the load is a collection of active resistors having adjustable resistance.

[0016] In one embodiment, the present invention relates to a method for calibrating a control system configured to operate a two-wire heater, the two-wire heater being operable to generate heat and act as a sensor to measure a temperature of the two-wire heater. The method includes controlling the two-wire heater to a temperature setpoint of a plurality of temperature setpoints by the control system, and simultaneously acquiring a voltage and current (VI) characteristic of the two-wire heater from the control system and a temperature data set of the two-wire heater from a temperature sensor system. The VI characteristic and the temperature data set are acquired for each of the plurality of temperature setpoints. The method further includes determining a resistance value of the two-wire heater based on the acquired VI characteristic for each of the plurality of temperature setpoints, calculating temperature measurement data based on the acquired temperature data set for each of the plurality of temperature setpoints, correlating the resistance value of the two-wire heater and the temperature measurement data for the plurality of temperature setpoints, and defining a resistance temperature calibration standard for determining an operating temperature of the two-wire heater based on the measured resistance value of the two-wire heater.

[0017] In another embodiment, obtaining the VI characteristic and temperature data set of the two-wire heater includes measuring, with a sensor circuit of the control system, the VI characteristic of the two-wire heater and measuring, with a temperature sensor system, a plurality of temperature measurements of the two-wire heater at a temperature setpoint, the plurality of temperature measurements being provided as a temperature data set for the temperature setpoint.

[0018] In yet another embodiment, the temperature measurement data includes a mean temperature, a median temperature, a temperature variance, a standard deviation, a maximum temperature, a minimum temperature, a temperature range, a 3 sigma value, or a combination thereof.

[0019] In one embodiment, the two-wire heater includes a plurality of resistive heating elements defining a plurality of zones, the control system is configured to control each zone individually, and the VI characteristics of the two-wire heater obtained from the control system include a VI characteristic for each of the plurality of zones. The VI characteristics of the zones of the plurality of zones are provided as zone characteristics. The temperature data set of the two-wire heater obtained from the temperature sensor system includes at least one temperature measurement for each of the plurality of zones.

[0020] In another embodiment, controlling the two-wire heater to the temperature setpoint by the control system further includes providing power to a plurality of zones of the two-wire heater, obtaining a temperature of each of the plurality of zones of the two-wire heater, and adjusting power to the plurality of zones in response to a temperature of one or more of the plurality of zones not equal to the temperature setpoint.

[0021] In yet another embodiment, the temperature sensor system includes a plurality of temperature sensors, and the method further includes, for each zone of the plurality of zones, associating one or more temperature sensors of the plurality of temperature sensors with the corresponding zone, the one or more temperature sensors being configured to provide a temperature measurement for the corresponding zone.

[0022] In one embodiment, each of the multiple zones is associated with two or more temperature sensors of the multiple temperature sensors, the two or more temperature sensors being provided as a sensing group, and the method further includes the steps of: for each sensing group, performing a sensor diagnostic to identify a faulty temperature sensor from among the temperature sensors of the sensing group based on temperature measurements from the sensing group; in response to the sensor diagnostic identifying a faulty temperature sensor, discarding the temperature measurements from the faulty temperature sensors if the number of identified faulty temperature sensors is less than a faulty sensor threshold; and in response to the sensor diagnostic identifying a faulty temperature sensor, cutting off power to the two-wire heater if the number of identified faulty temperature sensors is more than the faulty sensor threshold.

[0023] In another embodiment, each of the plurality of zones is associated with two or more temperature sensors of the plurality of temperature sensors, the two or more temperature sensors being provided as a sensing group, and the method further includes calculating, for each sensing group, temperature measurement data for the zone based on temperature measurements from the two or more temperature sensors of the respective sensing group.

[0024] In yet another embodiment, the temperature measurement data for the zone includes a mean temperature, a median temperature, a temperature variance, a standard deviation, a maximum temperature, a minimum temperature, a temperature range, a 3 sigma value, or a combination thereof.

[0025] In another embodiment, in response to the sensor diagnostics not identifying any faulty temperature sensors or the number of identified faulty temperature sensors being less than a faulty sensor threshold, the method further includes determining a resistance value of the two-wire heater for each of the plurality of temperature setpoints based on the acquired VI characteristic, calculating temperature measurement data for each of the plurality of temperature setpoints based on the temperature data set, correlating the resistance value of the two-wire heater for each of the plurality of temperature setpoints with the temperature measurement data for the plurality of temperature setpoints, and defining a resistance temperature calibration standard for determining an operating temperature of the two-wire heater based on the measured resistance of the two-wire heater.

[0026] Areas of applicability of the present invention will become apparent from the description provided herein. It should be understood that the description and specific examples herein are intended for purposes of illustration only and are not intended to limit the scope of the present invention. [Brief description of the drawings]

[0027] For a fuller understanding of the present invention, various embodiments will now be described, by way of example only, with reference to the accompanying drawings, in which:

[0028] [Figure 1] FIG. 1 is a block diagram of a thermal system having a multi-zone heater and control system according to the present invention.

[0029] [Diagram 2] FIG. 2 is a block diagram of the control system of FIG. 1.

[0030] [Diagram 3] 2 is a block diagram of a calibration system according to the present invention for calibrating the control system of FIG. 1;

[0031] [Figure 4] FIG. 2 is a block diagram of a calibration system configuration according to the present invention for calibrating the multi-zone heater of FIG. 1.

[0032] [Diagram 5] 1 illustrates a group of multiple thermocouples for a thermocouple wafer according to the present invention.

[0033] [Figure 6] 1 shows a configuration of a control system and a calibration system for calibrating a multi-zone heater according to the present invention.

[0034] [Figure 7] 4 is a flow chart of an exemplary control system calibration routine.

[0035] [Figure 8] 4 is a flow chart of an exemplary heater calibration control routine.

[0036] The drawings described herein are for illustrative purposes only and are not intended to limit the scope of the invention. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0037] The following description is illustrative of the present invention, and is not intended to limit the invention, its application, or uses. It should be understood that throughout the drawings, corresponding reference numerals indicate like or corresponding parts and features.

[0038] A control system for a multi-zone heater having resistive heating elements operating as heaters and temperature sensors incorporates customizable feedback control for selectively adjusting the thermal profile of the heater based on measured electrical characteristics of the heater. To perform feedback control of a particular multi-zone heater, the control system is calibrated to accurately measure the electrical characteristics (e.g., voltage, current, and / or resistance) of the heater over a wide voltage range (e.g., 1-240V) and a wide current range (10mA-30A).

[0039] More specifically, in one embodiment, the control system measures the voltage and current simultaneously (e.g., measures the voltage and current within ±140 μs) and calculates the resistance value based on the measurements. Because the power waveform changes over time, the current and voltage measurements are taken close together to obtain an accurate resistance value (e.g., to within ±0.005 ohms, ±0.010 ohms, or other tolerance). Additionally, due to differences between similar heater types, the control system performs a calibration process to obtain resistance temperature calibration data specific to the heater being controlled by the control system and accurately calculates the temperature of that heater based on the resistance value.

[0040] The present invention is directed to calibration processes for calibrating the measurement capabilities of a control system and for generating resistance-temperature calibration data. In the following, these calibration processes are identified as follows: (i) control system measurement calibration, (ii) heater resistance-temperature calibration. In the drawings, power lines are shown as dashed lines and data signal lines are shown as solid lines.

[0041] To better understand the application of the two calibration processes, we first present an exemplary configuration of a thermal system having a heater, such as a multi-zone heater as an embodiment, and a control system. As shown in FIG. 1 and FIG. 2, the thermal system 100 includes a multi-zone pedestal heater 102 and a control system 104 having a heater controller 106 and a power conversion system 108. In one embodiment, the heater 102 includes a heating plate 110 and a support shaft 112 disposed on a bottom surface of the heating plate 110. The heating plate 110 includes a substrate 111 and a plurality of resistive heating elements (not shown) embedded in or disposed along a surface of the substrate 111. The substrate 111 can be made of ceramic or aluminum. The plurality of resistive heating elements are independently controlled by the controller 106 and define a plurality of heating zones 114, as indicated by dashed lines in the figures. The heating zones 114 are merely exemplary and may be of any configuration within the scope of the present invention.

[0042] In one embodiment, the heater 102 is a "two-wire" heater, where the resistive heating element functions as both a heater and a temperature sensor with only two leads operatively connected to the resistive heating element, instead of four. Such two-wires are disclosed, for example, in U.S. Patent No. 7,196,295, which is generally assigned to this application and incorporated by reference in its entirety. Typically, in a two-wire system, the resistive heating element is made of a material that exhibits a resistance that changes with temperature, such that the average temperature of the resistive heating element can be determined based on the change in resistance of the resistive heating element. In one embodiment, the resistance of the resistive heating element is determined by first measuring the voltage across the heating element and the current through the heating element, and then calculating using Ohm's law. The resistive heating element can be made of a relatively high temperature coefficient of resistance (TCR) material, a negative TCR material, or a material with a non-linear TCR.

[0043] The control system 104 is configured to control the operation of the heater 102, and more specifically, to independently control the power to each of the zones 114. In one embodiment, the control system 104 is electrically connected to multiple zones 114 via multiple channels 115, with each zone 114 electrically connected to a channel 115 having two terminals (not shown) for providing power and sensing temperature.

[0044] In one embodiment, the control system 104 is electrically connected to a computing device 117 (e.g., a computer having one or more human interface devices, such as a display, keyboard, mouse, speakers, touch screen, etc.). In one embodiment, the control system 104 is connected to a power source 118 that provides an input voltage (e.g., 240V, 208V) to the power conversion system 108 through an interlock 120. The interlock 120 controls the power flowing between the power source 118 and the power conversion system 108 and is operable by the heater controller 106 as a safety mechanism to shut off power from the power source 118. Although shown in FIG. 1, the control system 104 does not have to include the interlock 120.

[0045] The power conversion system 108 is operable to adjust the input voltage to apply a desired power output (e.g., a desired output voltage (Vout)) to the heater 102. In one embodiment, the power conversion system 108 includes a plurality of power converters 122 (illustrated as 122-1 through 122-N) operable to apply an adjustable power output to resistive heating elements of a given zone 114 (illustrated as 114-1 through 114-N). One example of such a power conversion system is described in co-pending U.S. application Ser. No. 15 / 624,060, filed Jun. 15, 2017, entitled “POWER CONVERTER FOR A THERMAL SYSTEM,” which is owned together with this application and the contents of which are incorporated herein by reference in their entirety. In this example, each power converter includes a step-down converter operable by the heater controller to generate a desired output voltage, which is equal to or less than the input voltage, to one or more heating elements of a given zone 114. Thus, the power conversion system is operable to provide a customizable amount of power (ie, a desired power output) to each zone of the heater.

[0046] The control system 104 includes sensor circuits 124 (i.e., 124-1 through 124-N in FIG. 2) for measuring the voltage and / or current of the resistive heating elements using a two-wire heater, which is used to determine performance characteristics of the zone, such as resistance, temperature, and other suitable information. In one embodiment, a given sensor circuit 124 is configured to measure the current flowing through and the voltage applied to the heating element in a given zone 114, as indicated by ammeter 126 and voltmeter 128 in the figure.

[0047] 2, with each sensor circuit 124 connected in an electrical circuit between a given power converter 122 and a given zone 114 to measure an electrical characteristic of the heating element in the given zone. In one embodiment, each ammeter 126 includes a shunt 130 for measuring the current, and each voltmeter 128 includes a voltage divider 132 represented by resistors 132-1 and 132-2. Alternatively, the ammeters 126 can use a Hall effect sensor or a current transformer instead of the shunt 130 to measure the current.

[0048] In one embodiment, the ammeter 126 and voltmeter 128 are provided as power measurement chips to simultaneously measure current and voltage regardless of the power applied to the heating element. In another embodiment, voltage and / or current measurements can be made at the zero crossings as described in U.S. Patent No. 7,196,295.

[0049] Based on the current and voltage measurements, the heater controller 106 determines the resistance and therefore the average temperature of the resistive heating elements that define the zone 114. The heater controller 106 includes a microprocessor and one or more memories for storing computer readable instructions executed by the microprocessor. The controller 106 is configured to execute one or more control processes in which the controller 106 determines the desired power to be applied to the zone, such as 100% of the input voltage, 90% of the input voltage, etc. Exemplary control processes are disclosed in co-pending U.S. Application No. 15 / 624,060, entitled "SYSTEM AND METHOD FOR CONTROLLING POWER TO A HEATER," filed on August 10, 2018, and co-pending U.S. Application No. 16 / 100,585, the contents of which are incorporated herein by reference in their entireties.

[0050] Although specific components are shown and described, it will be readily understood that the thermal system may include other components within the scope of the present invention. For example, in one embodiment, the control system 104 may include electronic components that allow low voltage components to exchange signals while isolating the high voltage components.

[0051] (I) Calibration of control system measurements

[0052] As shown in FIG. 3, the controller calibration system 200 is configured to calibrate the current and voltage measurements obtained by the control system 104. For ease of illustrating the calibration process, in FIG. 3, the channels 115 are not shown and the sensor circuit 124 is broadly represented as having an ammeter 126 and a voltmeter 128. The controller calibration system 200 includes a precision power supply 204, a controllable load 206, a high-precision ammeter 208, a high-precision voltmeter 210, and a calibration controller 212. The precision power supply 204 is electrically connected to the control system 104 via a power input interface (not shown) and provides stable and accurate power to the control system 104 during the calibration process to suppress or reduce power fluctuations (e.g., ±0.01V). In one embodiment, the precision power supply 204 is operable to provide a wide range of voltages and a wide range of currents to the control system 104 and can be one or more DC power supplies. For example, the precision power supply 204 may include a bank of DC power supplies, such as a CHROMA 62012 type DC power supply. The precision power supply 204 may also be one or more AC power supplies. It will be readily appreciated that the precision power supply 204 may be other suitable power supplies and should not be limited to a CHROMA 62012 type DC power supply.

[0053] The controllable load 206 is electrically connected to the control system 104 via a cable interface (not shown) to provide a stable current load that exhibits minimal variation during measurement. In an exemplary application, the controllable load 206 is a bank of active loads (e.g., a bank of electronic loads) for generating known loads with zero to minimal error, such as a CHROMA 63600 type load device. In one embodiment, the controllable load 206 is controllable by a calibration controller 212, which sets the resistance of the load 206. In another embodiment, the controllable load 206 can be a fixed resistive load and is therefore not controlled by the calibration controller 212. In such a configuration, the calibration controller 212 is not connected to the controllable load 206. It will be readily understood that the controllable load 206 can be other suitable controllable loads and should not be limited to a CHROMA 63600 type load device.

[0054] The high precision (HP) ammeter 208 and the high precision (HP) voltmeter 210 are configured to measure the current through and the voltage applied to the controllable load 206, respectively. In one embodiment, the HP ammeter 208 measures the current through the shunt 210 based on the voltage across the shunt 210 and the known resistance of the shunt 210, although other types of ammeters 208 may also be used within the scope of the present invention. In one embodiment, the HP ammeter 208 and the HP voltmeter 210 are provided as multimeters with 7.5 digit meters. For example, the HP ammeter 208 and the HP voltmeter 210 may be PXI-7 ½ digit type multimeters. In one embodiment, the current measurements made by HP ammeter 208 are made simultaneously with the current measurements made by ammeter 126 of sensor circuit 124, and the voltage measurements made by HP voltmeter 210 are made simultaneously with the voltage measurements made by voltmeter 128 of sensor circuit 124, and the control system current and voltage measurements are calibrated with the measurements of HP ammeter 208 and HP voltmeter 210. HP ammeter 208 and HP voltmeter 210 are collectively referred to herein as precision voltage-current (VI) sensors 208 and 210.

[0055] In one embodiment, the calibration controller 212 is a computer having one or more microprocessors and a memory for storing computer readable instructions executed by the microprocessors. The calibration controller 212 is communicatively connected to one or more human interfaces (not shown), such as a monitor, mouse, keyboard, speakers, etc., for communicating with a user performing the calibration.

[0056] The calibration controller 212 is communicatively connected to the precision power supply 204 to set the input voltage applied to the control system 104, and is communicatively connected to the precision VI sensors 208 and 210 to obtain current and voltage measurements (i.e., precision current-voltage data or calibrated measurement characteristics). In one embodiment, the calibration controller 212 is communicatively connected to the control system 104 to exchange data therewith, such as measurements obtained by the sensor circuit 124. In one embodiment, the calibration controller 212 obtains voltage and current measurements from the precision VI sensors 208 and 210 and the sensor circuit 124 at approximately the same measurement time (i.e., simultaneously). In another embodiment, the calibration controller 212 obtains voltage measurements from the HP voltmeter 210 and the sensor circuit 124 simultaneously, and obtains current measurements from the HP ammeter 208 and the sensor circuit 124 simultaneously (at times that may be different from the times of the voltage measurements).

[0057] In one embodiment, four measurements are taken simultaneously and the calibration controller 212 is configured to determine the resistance of the control system based on measurements from the sensor circuit 124 and the calibrated resistance based on measurements from the precision VI sensors 208 and 210. In one embodiment, the control system 104 may include a true RMS converter that calculates the resistance based on the root mean square (RMS) of the current and voltage measurements and thus simultaneously measures the RMS current and RMS voltage using a high sample rate (e.g., 140 μs or 7 kHz to allow accurate observation of the power waveform). In another embodiment, the control system 104 is configured to simultaneously measure the peak current and peak voltage, respectively, using the precision VI sensors 208 and 210, which can be sampled, for example, every 10 ms for 50 Hz and every 8.3 ms for 60 Hz. The voltage-to-current ratio provides a resistance reading over a range of voltages and irregular waveforms. This method provides measurements that are substantially consistent with pure DC signals and AC signals of various shapes as well as hybrid AC / DC systems.

[0058] The control system 104 uses multiple sensor circuits 124 to measure resistance values ​​of multiple zones 114 so that voltage and current measurements from each sensor circuit 124 are calibrated. The measurements from the sensor circuits 124 can be taken all at once, one at a time, or in groups. For example, in one configuration, each channel 115 is connected to a controllable load 206, and one set of precision VI sensors 208 and 210 is configured to measure the current and voltage at each load 206. The control system 104 can apply power to each load 206 via the power conversion system 108 and take measurements from each sensor circuit 124. Additionally, the calibration controller 212 takes measurements from each set of precision VI sensors 208 and 210. Thus, measurements from all sensor circuits 124 can be taken at once. In another configuration, measurements from the sensor circuits 124 are taken one at a time or in groups based on the number of controllable loads 206 and the available precision VI sensors 208 and 210. For example, when using one controllable load 206 and a pair of precision VI sensors 208 and 210, the controllable load 206 is connected to a selected channel 115 and the control system 104 sends power to the selected channel 115 and obtains measurements from the sensor circuit 124 associated with the selected channel 115.

[0059] To distinguish between the electrical characteristics measured by the control system 104 and the controller calibration system 200, the measurements made by the control system 104 may be referred to as the load and initial measured characteristics of the load and may include an initial voltage, an initial current, and / or an initial resistance value. The initial measured characteristics are indicative of the electrical characteristics of the load. Additionally, the measurements made by the controller calibration system 200 may be referred to as the calibrated measured characteristics of the load and may include a calibrated voltage, a calibrated current, and / or a calibrated resistance value. The calibrated measured characteristics are indicative of the electrical characteristics of the load.

[0060] Since the control system 104 is configured to calculate the resistance value over a wide range of power levels, the calibration controller 212 calibrates the control system 104 at different power levels (i.e., power set points). For example, the calibration controller 212 is configured to apply at least one low amount of power (e.g., 10V) and at least one high amount of power (e.g., 130V) through the precision power supply 204. In one embodiment, the current is calibrated by changing the programmable load to different resistive loads (i.e., resistive set points) while keeping the voltage constant to provide at least one low current value, such as 5A, and at least one high current calibration value, such as 15A. In yet another embodiment, the calibration controller 212 can cause the control system 104 to apply a full amount of power (e.g., 100% of the input voltage) or a reduced amount of power (e.g., 90% or 75% of the input voltage) to the load 206 through the power conversion system 108.

[0061] In one embodiment, the calibration controller 212 correlates measurements from the control system 104 with measurements from the precision VI sensors 208 and 210 to calibrate measurements by the control system 104. Specifically, the calibration controller 212 defines correlation data, in other words, calibrated metrics, and maps measurements from the control system 104 (i.e., initial measurement characteristics) with measurements from the precision VI sensors 208 and 210 (i.e., calibrated measurement characteristics) to improve heater accuracy and control. The correlation data may also include resistance values ​​calculated based on the measurements (i.e., control system resistance values ​​and / or calibrated resistance values). In one embodiment, the correlation data may be provided as a statistical relationship (e.g., a linear model), an algorithm, or other suitable correlation stored by the heater controller 106. In another embodiment, the correlation data may be a table that associates measurements from the precision VI sensors 208 and 210 with measurements obtained by the sensor circuitry 124. The table may also include resistance values ​​calculated by the calibration controller 212. Thus, in one embodiment, the calibrated metrics are based on a correlation between the initial measurement characteristics from the control system 104 and the calibrated measurement characteristics from the controller calibration system 200. Instead of the calibration controller 212 generating the correlation data, in another embodiment, the control system 104 is configured to generate the correlation data. For example, the calibration controller 212 provides data to the control system 104, such as measurements from the precision VI sensors 208 and 210, and the heater controller 106 of the control system 104 uses these measurements and measurements from the sensor circuit 124 to generate the correlation data.

[0062] The calibration system may include an AC power source instead of a DC power source. In such a configuration, AC power is supplied to a low temperature coefficient resistor capable of operating at high current (e.g., 20 amps) and that is actively cooled. The control system 104 and calibration controller 212 measure known resistance values ​​over the AC voltage range (e.g., 1-208V) and power modulation range (e.g., 0-100%) of the control system 104.

[0063] The control system 104 of the multi-zone heater 102 acts as a power supply and a precision ohmmeter. An ohmmeter typically supplies a small amount of power to the resistance being measured that does not disturb the system but is enough to get a good signal. Now, the control system 104 is providing significant power and also sensing the resistance of the resistive heating element being driven with the same accuracy as a precision ohmmeter while providing power in the form of high current and high voltage. Calibration and sensing under these conditions are significant challenges. The calibration system of the present invention (1) provides a controllable electrical stimulus at low and high voltage to a known load via the control system 104, (2) for each power setting, obtains the electrical characteristics of the load from the control system 104 and measures the electrical characteristics of the load using a precision ammeter and a precision voltmeter, and (4) correlates the measurements obtained by the precision ammeter with the measurements of the control system 104 to calibrate the measurements of the control system 104. Thus, the current and voltage measurements, and therefore resistance values, measured by the control system 104 are calibrated to achieve high accuracy resistance measurements (eg, ±0.005 ohms or better).

[0064] (II) Calibration of resistance temperature for two-wire heaters

[0065] Using a two-wire heater, the control system 104 determines the temperature of a given zone 114 based on the resistance value of the resistive heating element in the given zone 114. To determine the temperature, the control system 104 includes resistance temperature calibration data (i.e., resistance temperature calibration standards) that associates multiple resistance values ​​with corresponding temperature measurements. As described herein, the control system 104 is configured to perform heater calibration control to generate and store calibration data that is used to measure the temperature of the zone and control power to the resistive heating element during normal operation. The heater calibration control of the present invention can be performed for a two-wire heater having one or more zones, but should not be limited to multi-zone heaters.

[0066] As shown in FIG. 4, the thermal system 100, including the control system 104 and the heater 102, is calibrated using a temperature sensor system 300 that measures the temperature of the zone 114 of the heater 102 and outputs the measurements to the control system 104.

[0067] In one embodiment, the temperature sensor system 300 is a thermocouple (TC) wafer 302 having a wafer 304 and a number of TCs 308 disposed along the wafer 304. During calibration, the TC wafer 302 is placed on the multi-zone heater 102 and secured to the surface of the heater using various methods such as creating a negative pressure in a chamber housing the heater 102 and the TC wafer 302, bonding the TC wafer 302 to the heater 102, or using gravity. The temperature sensor system 300 can be other suitable sensors and should not be limited to a thermocouple wafer. For example, the temperature sensor system 300 can be provided as a TC fixture that interrogates the surface of the heater 102 with an array of TC spring-loaded sensors. In another example, the temperature sensor system 300 is an infrared camera that captures a thermal image of the surface of the heater 102.

[0068] In one embodiment, the TCs of the TC wafer are arranged in groups that correspond to the zones 114 of the thermal control of the heater 102. For example, in FIG. 5, the TC wafer 350 includes 26 TCs (represented by arrows) distributed about the TC wafer 350. The TCs are arranged in six groups, with group 1 having six TCs, and groups 2, 3, 4, 5, and 6 having four TCs each. Group 1 is associated with zones provided in a central region of the heater 102, and groups 2-6 are associated with one or more zones provided along the outer ring of the heater 102. The TCs of the TC wafer can be grouped in various suitable ways to associate with the zones of the heater 102 and should not be limited to the configuration shown in FIG. 5.

[0069] The control system 104 includes an input / output interface (not shown) for connecting to the TC wafer 302. For example, FIG. 6 illustrates an exemplary configuration in which the pedestal heater 400 is adapted to receive the TC wafer 402. The TC wafer includes multiple TC sensors with multiple wires extending from the multiple TC sensors. In one embodiment, the TC sensors are connected to the control system 404 via a TC scanner system 406 that is used to monitor measurements from the TC sensors. The TC sensors can be connected to the control system 404 in other suitable manners and are not limited to the TC scanner system 406. A heater controller in the control system 404 receives temperature measurements via the wired connection, such as the average temperature of the zones, individual temperature measurements from each TC, and standard deviation from the TC of the TC wafer 402, among others. The heater 400 and the control system 404 are similar to the heater 102 and the control system 104, respectively.

[0070] 4, the control system 104 is configured to include a heater calibration control 310 disposed within the heater controller 106 to generate resistance temperature calibration data for various zones and the overall heater 102. In one embodiment, based on a wired connection between the TC wafer 302 and the control system 104, the heater calibration control 310 maps the TC sensors 308 to corresponding temperature measurements and maps the temperature measurements to their physical locations on the TC wafer 302. Thus, the temperature measurements are further associated with defined groups corresponding to zones of thermal control of the heater 102, thereby identifying the group of sensors for a given zone of the heater 102.

[0071] In one embodiment, the heater calibration control 310 heats the heater 102 to multiple temperature setpoints such that the heater 102 has a uniform thermal profile. For each temperature setpoint, the heater calibration control 310 receives temperature measurements from the TC sensor 308 and electrical property (e.g., voltage and / or current) measurements from the sensor circuit 124. Based on the temperature measurements (i.e., the temperature data set), the heater calibration control 310 generates temperature measurement data for each group for a given setpoint, which may include at least one of the following: mean temperature corresponding to the average temperature of each heater zone associated with the group; median temperature; temperature variation corresponding to the variation of each heater zone; temperature standard deviation corresponding to the standard deviation of each heater zone; maximum temperature; minimum temperature; temperature range; 3 sigma value, and index of the minimum, maximum, and median sensor in the group. Although specific measurement data is listed, the heater calibration control 310 may calculate other measurement data based on the temperature measurements.

[0072] In addition to determining metrology data for each group, the heater calibration control 310 calculates metrology data for the entire TC wafer 302, and therefore the entire heater 102. For example, average temperature, median temperature, maximum temperature, minimum temperature, and other metrology data are calculated based on all temperature measurements. These measurements are used to monitor and control the heater 102 to provide uniform heat distribution across the entire surface of the heater 102, not just in a single zone.

[0073] In one embodiment, the heater calibration control 310 correlates the average temperature of a given group as the average temperature of the corresponding zone. The heater calibration control 310 determines the resistance of the resistive heating element of the zone based on the voltage and / or current measured for the zone during temperature measurement and correlates the resistance of the zone to the average temperature of the corresponding group. In one embodiment, the heater calibration control 310 uses a calibrated metric when determining the electrical properties (i.e., voltage, current, and / or resistance). The resistance of the resistive heating element is stored for each zone as part of the resistance temperature calibration data. Having the resistance temperature calibration data allows the control system 104 to accurately control the zone using the temperature sensed using the resistor as a direct proxy for the true temperature. Other measurement sources such as ranges, medians, minimums, maximums, etc. can be used as control sources instead of or in addition to the average temperature.

[0074] The heater calibration control 310 can diagnose the temperature sensor system 300 to identify potentially failed sensors using one or more metrology data. That is, sensors can fail for a variety of reasons, such as normal wear, excessive use, environmental conditions, etc., and abnormal readings from the sensor can distort the temperature calibration and reduce uniformity. In one embodiment, to detect a failed sensor within a given group, the heater calibration control 310 compares the temperature measurement from the sensor to the median temperature of the given group. If the temperature measurement deviates from the median by a predefined amount (i.e., ±10° C.), the heater calibration control 310 identifies the sensor outputting the erroneous temperature measurement as failed. The temperature variation tolerance can be predefined and determined based on empirical testing of a model heater and control system. The heater calibration control 310 identifies the failed sensor and excludes it from the calculation of one or more metrology data, such as the average temperature.

[0075] As part of the diagnostics, the heater calibration control 310 defines the maximum number of failed sensors allowed for each zone before the temperature sensor system 300 is deemed faulty. For example, for a group with four TC sensors, the group is allowed one failed sensor before being deemed faulty, and for a group with five TC sensors, the group is allowed two failed sensors. Thus, if any group of sensors exceeds the number of allowed failed sensors, the heater calibration control 310 will stop the calibration process (e.g., turn off power to the heater 102) and notify the user of a failed temperature sensor system 300. The number of allowed failed sensors is pre-determined and may be based on the number of sensors in the group and the level of accuracy provided to the heater 102.

[0076] Using temperature measurements from the TC sensor and voltage and current measurements from the sensor circuitry, the heater controller is configured to self-calibrate using an algorithm such as direct control temperature via the sensor array. That is, in one form, the heater is controlled to an average temperature determined by the heater controller based on measurements from the TC sensor. The heater can also be controlled to a nominal temperature as measured by the resistive heating element of the heater under test based on data from previous heaters of the same class as the heater under test. Such data is an approximation of each individual pedestal, but does not truly correspond to it.

[0077] In operation, the heater calibration control performed by the control system can begin when the temperature sensor system is configured (e.g., by being placed and secured to the heater, communicatively connected to the controller, etc.). In one embodiment, the heater calibration control controls the heater at multiple set points, such as temperature set points. For each set point, the heater is maintained at the set point until the heater and / or TC wafer is in equilibrium, and the control system measures and records the resistance of each zone based on data from the sensor circuitry and obtains temperature measurements from the temperature sensor system. The control system then calculates metrology data, such as an average temperature for each zone and across the heater. The defined set points, measured resistance values, and / or one or more metrology data can be stored as resistance temperature calibration data and can be provided in a variety of suitable ways, such as a table. During calibration, the control system can perform sensor diagnostics, as described herein, to ensure that the temperature sensor system is operating within the configured parameters.

[0078] In one embodiment, the control system can display one or more graphical user interfaces for displaying information to and receiving commands from a user. For example, in one embodiment, the control system can display calibration data curves, heater heat patterns, and / or metrology data for each zone and the heater as a whole. This information can enable optimization of zones to match a desired temperature profile and coordination of the heaters and control system to achieve optimal uniformity.

[0079] Using the resistor temperature calibration data, the control system measures the temperature of each zone of the multi-zone heater with precise accuracy and provides closed loop / servo control of all zones without the use of separate temperature sensors in the zones. As described herein, the calibration process is automated so that an operator does not need to understand calibration in detail other than how to install the temperature sensor system and how to initiate a calibration stored in the control system. In one embodiment, the thermal system can implement one or both of the calibration processes of the present disclosure.

[0080] An example of a control system calibration routine 500 is shown in FIG. 7. The control system calibration routine is performed by a controller calibration system of the present disclosure. The control system provides power to a load through the control system in step 502 and generates an initial measurement characteristic of the load from the control system in step 504 and generates a calibrated measurement characteristic of the load from the controller calibration. In one embodiment, once generated, power to the load is turned off. The initial measurement characteristic and the calibrated measurement characteristic are indicative of electrical characteristics of the load including voltage, current, and / or resistance. More specifically, in one embodiment, an initial voltage and an initial current of the load are measured by the control system to generate the initial measurement characteristic of the load, and a calibrated voltage and a calibrated current of the load are measured by the controller calibration system to generate the calibrated measurement characteristic. In one embodiment, the initial voltage and the calibrated voltage are measured simultaneously, and the initial current and the calibrated current are measured simultaneously. In another embodiment, the initial voltage, the initial current, the calibrated voltage, and the calibrated current are measured simultaneously. In one embodiment, an initial resistance value of the load is calculated based on an initial voltage and an initial current and is also provided as an initial measurement characteristic. A calibrated resistance value of the load is calculated based on a calibrated voltage and a calibrated current of the load and is also provided as a calibrated measurement characteristic.

[0081] In step 506, the system correlates the initial measurement characteristic with the calibrated measurement characteristic to calibrate the measurement by the control system. In step 508, the system defines a calibrated measurement standard based on the correlation between the initial measurement characteristic and the calibrated measurement characteristic.

[0082] Routine 500 is merely an example routine for performing heater control calibration and may be in a variety of suitable configurations. For example, in one embodiment, a calibrated metric may be defined for a number of power settings and / or a number of known resistance values ​​of the load (i.e., load resistance values). For each power and / or load resistance value, an initial measurement characteristic and a calibrated measurement characteristic are generated and correlated to define the calibration metric.

[0083] FIG. 8 illustrates an exemplary heater calibration control routine 600 executed by the control system. The routine 600 can be executed by having a temperature sensor system connected to the control system to provide a heater temperature measurement. In step 602, the heater is controlled to a temperature setpoint of a plurality of temperature setpoints. In step 604, heater voltage and current (VI) characteristics and a heater temperature data set are obtained. The VI characteristics and the temperature data set are obtained for each temperature setpoint. In step 606, for each temperature setpoint, a heater resistance value is determined based on the VI characteristics obtained for that temperature setpoint. In step 608, the control system determines temperature measurement data for that temperature setpoint based on the temperature data set obtained for that temperature setpoint. In one embodiment, the temperature measurement data includes a mean temperature, a median temperature, a temperature variance, a standard deviation, a maximum temperature, a minimum temperature, a temperature range, and / or a 3 sigma value. In step 610, the plurality of heater resistance values ​​are correlated with the temperature measurement data for the temperature setpoint. At step 612, a resistance temperature calibration standard is defined for determining the operating temperature of the heater based on the measured resistance of the heater.

[0084] If the heater is a multi-zone heater, power is supplied to each zone and controlled to cause the temperature of the zone to be substantially equal to a temperature setpoint. Additionally, VI characteristics and temperature measurements are obtained for each zone. A heater temperature data set from the temperature sensor system includes at least one temperature measurement for each of the zones.

[0085] Routine 600 is merely an example routine for performing heater control calibration and may be in a variety of suitable configurations. For example, in one embodiment, the routine may perform diagnostics of the temperature sensor system to identify potentially failed sensors. More specifically, in one embodiment, each zone of a multi-zone heater is associated with two or more temperature sensors (i.e., sensing groups) of a plurality of temperature sensors of a temperature sensor system. Sensor diagnostics are performed for each sensing group to identify failed temperature sensors among the temperature sensors of the sensing group based on temperature measurements from the sensing group. If the sensor diagnostics identify failed temperature sensors and the number of identified failed temperature sensors is less than a failed sensor threshold, the temperature measurements from the failed temperature sensors are discarded before determining the temperature measurement data. If the number of identified failed temperature sensors is more than a failed sensor threshold, power to the heater is turned off. Additionally, unless otherwise specified, all numerical values ​​representing tolerances, temperatures, voltages, currents, or other characteristics are provided as examples. Thus, it will be readily understood that other numerical values ​​may be used while remaining within the scope of the present disclosure.

[0086] Unless otherwise expressly indicated herein, all numerical values ​​expressing mechanical / thermal properties, composition percentages, dimensions and / or tolerances, or other properties, in the description of the scope of this disclosure, should be understood to be modified by the words "about" or "approximately." This modification may be desirable for a variety of reasons, including industry practices, tolerances in materials, manufacturing, and assembly, and testing capabilities.

[0087] As used herein, the phrase "at least one of A, B, and C" should be interpreted to mean a logic (A or B or C) using a non-exclusive logical OR, and not to mean "at least one A, at least one B, and at least one C."

[0088] In this application, the term "controller" may be replaced with the term "circuitry." The term "controller" may include, or be part of, an application specific integrated circuit (ASIC); digital, analog, or mixed analog / digital discrete circuitry; digital, analog, or mixed analog / digital integrated circuitry; combinatorial logic circuitry; field programmable gate arrays (FPGAs); processor circuitry (shared, dedicated, or group) that executes code; memory circuitry (shared, dedicated, or group) that stores code executed by the processor circuitry; other suitable hardware components that provide the described functionality; or a combination of some or all of the above, such as a system on a chip.

[0089] The term code may include software, firmware, and / or microcode, and may refer to programs, routines, functions, classes, data structures, and / or objects. The term memory circuitry is a subset of the term computer-readable medium. As used herein, the term computer-readable medium does not include transitory electrical or electromagnetic signals (such as on a carrier wave) propagating through a medium. Thus, the term computer-readable medium may be considered tangible and non-transitory.

[0090] The present disclosure is merely exemplary in nature and, thus, variations that do not depart from the invention are intended to be within the scope of the invention. Such variations are not to be regarded as a departure from the spirit and scope of the invention.

Claims

1. 1. A method for calibrating a control system configured to control a two-wire heater, the two-wire heater operable to generate heat and function as a sensor to measure an electrical characteristic of the two-wire heater, the method comprising: controlling, by the control system, the two-wire heater to a temperature setpoint among a plurality of temperature setpoints; simultaneously acquiring a voltage and current (VI) characteristic of the two-wire heater from the control system and a temperature data set of the two-wire heater from a temperature sensor system, the VI characteristic and the temperature data set being acquired for each of the plurality of temperature setpoints; determining a resistance value of the two-wire heater based on the acquired VI characteristics for each of the plurality of temperature setting values; calculating temperature measurement data for each of the plurality of temperature setpoints based on the acquired temperature data set; correlating the resistance value of the two-wire heater for each of the plurality of temperature setpoints with the temperature measurement data; defining a resistance temperature calibration standard for determining an operating temperature of the two-wire heater based on the measured resistance of the two-wire heater; The method includes:

2. obtaining the VI characteristic and the temperature data set of the two-wire heater; measuring the VI characteristic of the two-wire heater by a sensor circuit of the control system; measuring a plurality of temperature measurements of the two-wire heater at the temperature setpoint with the temperature sensor system, the plurality of temperature measurements being provided as the temperature data set for the temperature setpoint; The method of claim 1 further comprising:

3. The method of claim 1 , wherein the temperature measurement data comprises a mean temperature, a median temperature, a temperature variance, a standard deviation, a maximum temperature, a minimum temperature, a temperature range, a 3 sigma value, or a combination thereof.

4. the two-wire heater includes a plurality of resistive heating elements defining a plurality of zones; the control system is configured to control each zone individually; the VI characteristics of the two-wire heater obtained from the control system include the VI characteristics of each of the plurality of zones, the VI characteristics of a zone of the plurality of zones being provided as a zone characteristic; The method of claim 1 , wherein the temperature data set of the two-wire heater obtained from the temperature sensor system includes at least one temperature measurement for each of the plurality of zones.

5. controlling the two-wire heater to the temperature setpoint by the control system; providing power to the plurality of zones of the two-wire heater; obtaining a temperature for each of the plurality of zones of the two-wire heater; adjusting power to the plurality of zones in response to a temperature of one or more zones of the plurality of zones not equal to the temperature setpoint; The method of claim 4 further comprising:

6. the temperature sensor system includes a plurality of temperature sensors; The method further includes, for each zone of the plurality of zones, associating one or more temperature sensors of the plurality of temperature sensors with a corresponding zone; The method of claim 4 , wherein the one or more temperature sensors are adapted to provide a temperature measurement of the corresponding zone.

7. each of the plurality of zones is associated with two or more temperature sensors of the plurality of temperature sensors, the two or more temperature sensors being provided as a sensing group; performing, for each sensing group, sensor diagnostics based on the temperature measurements from the sensing group to identify a failed temperature sensor among the temperature sensors of the sensing group; responsive to the sensor diagnostics identifying failed temperature sensors, if a number of identified failed temperature sensors is less than a failed sensor threshold, discarding temperature measurements from the failed temperature sensors; responsive to the sensor diagnostics identifying faulty temperature sensors, if a number of identified faulty temperature sensors is greater than the faulty sensor threshold, removing power to the two wire heater; The method of claim 6 further comprising:

8. In response to the sensor diagnostics not identifying a failed temperature sensor or if the number of identified failed temperature sensors is less than the failed sensor threshold. determining a resistance value of the two-wire heater based on the acquired VI characteristics for each of the plurality of temperature setting values; calculating temperature measurement data based on the temperature data set for each of the plurality of temperature setpoints; correlating the resistance values ​​of the two-wire heater for the plurality of temperature setpoints with the temperature measurement data; defining a resistance temperature calibration standard for determining an operating temperature of the two-wire heater based on the measured resistance of the two-wire heater; The method of claim 7 further comprising:

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