Liquid level detection based on an adjustable inductive-capacitive tank circuit

A tunable LC circuit with adjustable frequencies addresses the challenge of detecting low-ion content liquids and calibrating probe movement, enhancing sensitivity and efficiency in liquid level detection and probe calibration.

JP7776592B2Active Publication Date: 2025-11-26INSTRUMENTATION LABORATORY COMPANY
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
JP2024135188
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-08-15
Filing Date
2024-08-14
Publication Date
2025-11-26
Estimated Expiration
2043-02-07

AI Technical Summary

Technical Problem

Existing liquid level detection systems struggle to accurately detect the surface of low-ion content liquids, such as deionized water, due to low parasitic capacitance, which results in low resonant frequencies and difficulty in detecting small changes in capacitance, and are also inefficient in calibrating probe movement in the presence of conductive objects.

Method used

A tunable inductive-capacitive (LC) circuit with adjustable resonant frequencies in the range of 3-30 MHz is used to enhance sensitivity, allowing detection of small parasitic capacitance changes and enabling fast, contactless calibration of probe movement.

Benefits of technology

The system achieves high sensitivity for detecting low-ion content liquids and conductive objects, facilitating rapid liquid level detection and probe calibration, reducing calibration time by enabling continuous movement with minimal risk of contact.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007776592000003
    Figure 0007776592000003
  • Figure 0007776592000004
    Figure 0007776592000004
  • Figure 0007776592000005
    Figure 0007776592000005
Patent Text Reader

Abstract

To provide liquid level detection based on a tunable inductive-capacitive tank circuit.SOLUTION: An apparatus includes a probe (108) configured to provide at least a portion of capacitance of an inductance-capacitance (LC) circuit (104) of a detection circuit, the capacitance of the LC circuit being dependent on a distance between the probe (108) and a surface (122) of liquid (118) in a biochemical analysis system (100). The apparatus includes a movement mechanism (110) configured to move the probe (108). The apparatus includes circuitry configured to perform operations that include: causing the movement mechanism (110) to move the probe (108) with respect to the liquid (118); measuring one or more characteristics of an output signal of the detection circuit (104), the one or more characteristics being dependent on the capacitance of the LC circuit; and detecting, on the basis of the one or more characteristics of the output signal, contact between the probe (108) and the surface (122) of the liquid (118).SELECTED DRAWING: Figure 1
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] Technical Field

[0001] The present disclosure relates generally to liquid level detection. [Background technology]

[0002] background

[0002] Scientific and medical sample analyzers, such as automated assay machines and coagulation analyzers, perform liquid mixing and transfer operations, and the accuracy of the resulting measurements depends on accurate knowledge of liquid volumes, such as the volume of sample, reagent, solvent, or other liquid. Summary of the Invention [Means for solving the problem]

[0003] overview Some aspects of the present disclosure describe an apparatus. The apparatus includes a probe configured to provide at least a portion of the capacitance of an inductance-capacitance (LC) circuit of a detection circuit, where the capacitance of the LC circuit is dependent on a distance between the probe and a surface of a liquid in a biochemical analysis system. The apparatus includes a movement mechanism configured to move the probe. The apparatus includes circuitry configured to perform operations including causing the movement mechanism to move the probe relative to the liquid, measuring one or more characteristics of an output signal of the detection circuit, the one or more characteristics being dependent on the capacitance of the LC circuit, and detecting contact between the probe and the surface of the liquid based on the one or more characteristics of the output signal.

[0004] This and other devices described herein may have at least any one or more of the following features:

[0005] In some implementations, the LC circuit includes an adjustable LC tank circuit.

[0006] In some implementations, the LC tank circuit includes an inductor and a capacitor in addition to the probe in the detection circuit.

[0007]

[0007] In some implementations, contact between the probe and the surface of the liquid includes contact between a distal end of the probe and the surface of the liquid.

[0008]

[0008] In some implementations, the detection circuit includes a bandpass filter circuit.

[0009]

[0009] In some implementations, the liquid has an ionic conductivity of less than 1 mS / cm.

[0010]

[0010] In some implementations, the liquid includes deionized water.

[0011] In some implementations, the operation includes determining whether the probe is in contact with the bubble based on one or more characteristics.

[0012]

[0012] In some implementations, measuring one or more characteristics of the output signal includes providing an input signal of a particular frequency to a detection circuit and measuring the amplitude of the output signal as at least a portion of the one or more characteristics of the output signal.

[0013] In some implementations, the specific frequency is between 1 MHz and 10 MHz.

[0014] In some implementations, the particular frequency is within 5% of the resonant frequency of the detection circuit.

[0015] In some implementations, measuring one or more characteristics of the output signal includes identifying a step in the one or more characteristics.

[0016]

[0016] In some implementations, the output signal includes a sinusoidal signal, and measuring one or more characteristics of the output signal includes rectifying the output signal and identifying one or more characteristics of the rectified output signal.

[0017] In some implementations, the operations include digitizing the output signal and measuring one or more characteristics based on a frequency domain representation of the digitized output signal.

[0018]

[0018] In some implementations, the operations include processing the frequency domain representation to remove the interfering signal.

[0019]

[0019] In some implementations, processing the frequency domain representation includes identifying components of the digitized output signal having frequencies that match the frequencies of the input signal provided to the detection circuit.

[0020] In some implementations, the one or more characteristics include an amplitude of the output signal.

[0021]

[0021] In some implementations, causing the movement mechanism to move the probe relative to the liquid includes causing the movement mechanism to move the probe in a first direction parallel to the plane of the surface of the liquid, and causing the movement mechanism to move the probe toward the liquid in a second direction perpendicular to the plane of the surface of the liquid.

[0022] Some aspects of the present disclosure describe other devices. The devices can have at least some or all of the features described above. The device includes a probe configured to provide at least a portion of the capacitance of a detection circuit including an inductance-capacitance (LC) circuit, where the capacitance of the LC circuit depends on the distance between the probe and a reference structure. The device includes the reference structure. The device includes a movement mechanism configured to move the probe. The device includes circuitry configured to perform operations including causing the movement mechanism to move the probe relative to the reference structure; measuring one or more features of an output signal of the detection circuit, the one or more features depending on the capacitance of the LC circuit; and determining the distance between the probe and the reference structure based on the one or more features of the output signal.

[0023] Some aspects of the present disclosure describe other devices. The devices can have at least some or all of the features described above. The device includes a probe configured to provide at least a portion of a capacitance of a detection circuit, the capacitance of the detection circuit being dependent on a distance between the probe and a surface of a liquid in a biochemical analysis system. The device includes a movement mechanism configured to move the probe. The device includes circuitry configured to perform operations including causing the movement mechanism to move the probe relative to the liquid; providing an input signal into the detection circuit having a frequency within 5% of a resonant frequency of the detection circuit; measuring one or more characteristics of an output signal of the detection circuit, the one or more characteristics being dependent on the capacitance of the detection circuit; and detecting contact between the probe and the surface of the liquid based on the one or more characteristics of the output signal.

[0024]

[0024] Some aspects of the present disclosure describe a method for detecting contact between a probe and a surface of a liquid in a liquid sample analysis system, the method including providing an apparatus as described herein, causing a movement mechanism to move the probe relative to the liquid, optionally providing an input signal into the detection circuit having a frequency within 5% of the resonant frequency of the detection circuit, measuring one or more features of an output signal of the detection circuit, the one or more features being dependent on the capacitance of the detection circuit or the LC circuit, and detecting contact between the probe and the surface of the liquid based on the one or more features of the output signal.

[0025]

[0025] Some aspects of the present disclosure describe a method for detecting the presence of a reference structure and / or the distance between a probe and the reference structure in a liquid sample analysis system, the method including providing an apparatus as described herein, causing a moving mechanism to move the probe relative to the reference structure, measuring one or more features of an output signal of the detection circuit, the one or more features being dependent on the capacitance of the LC circuit, and determining the presence of the reference structure and / or the distance between the probe and the reference structure based on the one or more features of the output signal.

[0026]

[0026] In some implementations, the method includes detecting contact between the distal end of the probe and the surface of the liquid.

[0027] In some implementations, the method includes determining whether the probe is in contact with the bubble based on one or more characteristics of the output signal.

[0028] In some implementations, the method includes providing an input signal of a particular frequency to a detection circuit and measuring the amplitude of the output signal as at least a portion of one or more characteristics of the output signal.

[0029] In some implementations, the method includes providing an input signal to the detection circuit that is between 1 MHz and 10 MHz, or within 5% of the resonant frequency of the detection circuit.

[0030] In some implementations, the method includes identifying a step in one or more characteristics of the output signal.

[0031]

[0031] In some implementations, the output signal includes a sine wave, and measuring one or more characteristics of the output signal includes rectifying the output signal and identifying one or more characteristics of the rectified output signal.

[0032]

[0032] In some implementations, the method includes measuring one or more characteristics of the output signal based on a frequency domain representation of the digitized output signal, and optionally processing the frequency domain representation to reject interfering signals, optionally wherein processing the frequency domain representation includes identifying components of the digitized output signal having frequencies that match the frequencies of the input signal provided to the detection circuit.

[0033]

[0033] In some implementations, the method includes measuring the amplitude of the output signal.

[0034]

[0034] In some implementations, the method includes causing the movement mechanism to move the probe in a first direction parallel to the plane of the surface of the liquid, and causing the movement mechanism to move the probe toward the liquid in a second direction perpendicular to the plane of the surface of the liquid.

[0035] The implementations described herein can provide various advantages. For example, in some implementations, using a tunable LC circuit with a probe in a liquid detection system can tune the resonant frequency of the system to a high frequency (e.g., 3-30 MHz), thereby making the system more sensitive to detecting liquid at the tip of the probe. High sensitivity can facilitate detection of liquids with low ion content (e.g., deionized water), which are often used in liquid analysis systems for cleaning, pump flow calibration, and the like. The high sensitivity of systems according to the present disclosure can also facilitate fast processing of the system's output, allowing the probe to be moved quickly toward the liquid surface. The tunability of the circuit can accommodate time-varying resonant frequencies, which can change with environmental parameters, such as temperature, humidity, proximity to other objects, and the like, facilitating selection of an optimal frequency that can maintain high system sensitivity. Digitizing the output of an LC circuit according to the present disclosure can enable the implementation of advanced signal processing techniques, such as using a bandpass filter to isolate signals of interest expected at known frequencies. This, in turn, can facilitate effective interference mitigation, enabling the system to operate reliably, possibly even in the presence of multiple interference sources. In some implementations, a system according to the present disclosure can be used to detect whether a probe is in proximity to a particular object, such as a metal calibration post of a liquid analysis system. By providing such functionality, a system according to the present disclosure can facilitate rapid calibration of the probe's movement within a coordinate system defined by the calibration post, while potentially eliminating the opportunity for the probe to come into contact with the object.

[0036]

[0036] The methods described in this disclosure can be implemented as and using at least a system, an apparatus, and a non-transitory computer-readable storage medium. Details of implementations according to the present disclosure are set forth in the accompanying drawings and the following description. Other features, objects, and advantages will be apparent from the description, drawings, and claims. [Brief explanation of the drawings]

[0037] [Figure 1]

[0037] FIG. 1 is a schematic diagram illustrating an example of a sample analysis system according to some implementations of the present disclosure. [Figure 2]

[0038] FIG. 1 is a schematic diagram illustrating an example of a detection circuit according to some implementations of the present disclosure. [Figure 3A]

[0039] FIG. 1 is a schematic diagram illustrating an example of a detection circuit according to some implementations of the present disclosure. [Figure 3B]

[0040] 1 is a plot illustrating example input and output signals according to some implementations of the present disclosure. [Figure 4A]

[0041] FIG. 1 is a schematic diagram illustrating an example of a signal measurement system according to some implementations of the present disclosure. [Figure 4B]

[0041] FIG. 1 is a schematic diagram illustrating an example of a signal measurement system according to some implementations of the present disclosure. [Figure 5]

[0042] 10 is a plot illustrating an example of the amplitude of an output signal as a function of input signal frequency according to some implementations of the present disclosure. [Figure 6]

[0043] 10 is a plot illustrating the detection of an air bubble based on the amplitude of an output signal as a function of time according to the techniques described herein. [Figure 7A]

[0044] 1 is a schematic diagram illustrating the calibration of a space in which a probe moves, according to some implementations of the present disclosure. FIG. [Figure 7B]

[0044] A schematic diagram illustrating calibration of the space in which the probe moves, according to some implementations of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0038]

[0045] The same reference symbols used in the various drawings indicate like elements.

[0039] Detailed Description

[0046] This specification describes technology in which a tunable inductive-capacitive (LC) circuit is incorporated into a system for detecting the surface (or height) of a liquid in a container such as a cuvette used in a liquid or biochemical analytical system, e.g., a system for analyzing whole blood or components of whole blood. This allows the resonant frequency of the circuit to be tuned to a higher value (e.g., in the 2-10 MHz range or higher, e.g., 3 MHz to 30 MHz) to operate the system at such higher frequencies, making the system more sensitive to detecting the presence of a liquid (or other object) at or near the tip of a probe associated with the system. This high sensitivity of systems according to the present disclosure enables the detection of liquids with low ionic content (e.g., deionized water) often used in the calibration, cleaning, etc. of blood or other liquid analytical systems. The tunability of systems according to the present disclosure can accommodate time variations in the resonant frequency, which can be a function of various environmental parameters such as temperature, humidity, proximity to other objects, etc., thereby enabling the selection of an operating frequency that ensures the system maintains high sensitivity regardless of the time variation. In some cases, tunable LC circuits for liquid level detection can also be adapted to detect the surface of solid objects. For example, small changes in the output of a system according to the present disclosure can be detected as the probe approaches a particular object (e.g., a metallic object), allowing the probe to identify the location of the object without contacting it. This can therefore enable fast calibration of systems that depend on accurately identifying the location of a particular object (e.g., a metallic calibration post). For example, in some analytical systems, use of techniques according to the present disclosure can make calibration of the coordinate space in which the probe travels more than five times faster than using circuits that rely on vibration signals or relaxation oscillator count cycles at frequencies in the sub-1 MHz range.

[0040]

[0047] Sample analysis systems, such as liquid analyzers, blood analysis systems, and other biochemical analysis systems, transport liquids, such as blood components or whole blood, reagents, cleaning fluids, or other liquids, from and into containers, such as cuvettes, to prepare samples for analysis and / or perform sample tests. In one example of a sample preparation and analysis operation, a robotically controlled probe accesses a container (e.g., a cuvette or vial) and aspirates and / or dispenses liquid from or into the container.

[0041]

[0048] For various operations of such sample analysis systems, it may be useful to know the surface height of the liquid in the container. For example, in some sample analysis systems, a test may be performed at system startup to ensure that the liquid dispensing mechanism functions as expected and calibrated. To do so, a probe may be positioned above the container to dispense liquid into the container. By detecting the position of the liquid's surface (relative to the probe or the bottom of the container), the height of the liquid column (and therefore the volume of liquid in the container) may be determined and compared to the volume to be dispensed (e.g., based on a calibrated flow rate through the liquid dispensing mechanism). If the measured volume matches the expected volume, the system is deemed to be functioning correctly. In some cases, it may be important to accurately determine the location at which the probe breaks through the surface of the liquid, for example, to prevent the probe tip from penetrating too deeply into the liquid. Furthermore, in some cases, because the container used in the sample analysis system has a known geometry, the volume of liquid in the container may be determined based on information about the depth at which the probe detects the liquid in the container (which also represents the height of the liquid column in the container, which may be referred to herein as the liquid level).

[0042]

[0049] Various sample analysis systems use low-ion content liquids, such as deionized water, for the aforementioned calibration purposes. Deionized water may also be used to clean samples / reagents from containers such as cuvettes. Liquid detection can be difficult with such low-ion content liquids because they provide only a low-conductivity electrical path, resulting in low parasitic capacitance within the probe. For example, low-ion content liquids may have an ionic conductivity of less than 1 mS / cm. Detecting changes in output from circuits whose oscillation frequency depends primarily on parasitic capacitance can be difficult. For example, low parasitic capacitance can result in a low resonant frequency of the circuit (e.g., in the range of 5-10 kHz), which may not produce a discernible change in the circuit's output (e.g., output voltage) when the probe tip approaches and / or contacts the surface of a low-ion content liquid. The technology described herein attempts to address the above-mentioned challenges by providing a tunable LC circuit in which the resonant frequency can be tuned to a substantially higher value (e.g., in the range of 5-10 MHz), thereby increasing the circuit's sensitivity to small changes in parasitic capacitance. The disclosed technology also includes operating the system at a frequency near the high resonant frequency to further optimize detection of small changes in parasitic capacitance. Thus, the technology described herein provides a highly sensitive detection circuit that produces a discernible change in output (e.g., an output voltage induced by a high-frequency sinusoidal input signal) in response to small changes in parasitic capacitance resulting from changes in distance between the probe tip and the probe tip in contact with a surface or a liquid with a low ion content, such as deionized water.

[0043]

[0050] Additionally, digitizing the high frequency output signal allows for a large number of samples per unit time, thereby enabling fast processing and immediate decision making, making the liquid detection system of the present disclosure very efficient. This can be used, for example, to move the probe at a first speed until it approaches the liquid, and then move it at a second speed, slower than the first speed, to contact the liquid.

[0044]

[0051] In some implementations, the high sensitivity of systems according to the present disclosure in detecting small changes in capacitance can be utilized to detect proximity to various objects, particularly conductive objects such as metal objects. Such conductive objects, even at a distance, can cause large changes in parasitic capacitance on the probe, resulting in a change in the system's output. In some cases, the amount of change in output can be a function of the distance of the probe from a particular object, and this characteristic can therefore be used to detect the presence of an object (and / or the distance of the probe from the object) without the probe coming into contact with the object. For example, in systems where the movement mechanism for a probe must be calibrated based on a particular reference structure (e.g., a metal post positioned at a known location), techniques according to the present disclosure can be used to efficiently perform such calibration. For example, the output of a circuit according to the present disclosure can indicate the distance from the reference structure, and the output can be rapidly processed via digital processing, allowing the probe to be moved rapidly within space where such a reference structure is present, with movement slowing down only when the probe is within a threshold distance from the reference structure. This therefore allows for shorter calibration times compared to less sensitive circuits where the reference structure can only be detected when the probe is in contact with the structure or at a very short distance from the structure. With such less sensitive circuits, the probe must be moved slowly and in small increments during the calibration process to avoid high-impact contact between the probe and the reference structure, and the probe may need to contact the reference structure to perform the calibration. In contrast, the high sensitivity achievable by the techniques disclosed herein allows the probe to move continuously, slowing down only within a threshold proximity to the reference structure. This therefore allows for fast, contactless calibration of the coordinate system for probe movement with substantially less risk of damaging the probe.

[0045]

[0052] As shown in FIG. 1 , the sample analysis system 100 includes a controller 102, a movement mechanism 110, and a detection circuit 104. In some implementations, the sample analysis system 100 includes a container 106 configured to hold a liquid 118. The movement mechanism 110 is configured to move a probe 108 of the sample analysis system 100 to perform liquid level detection, probe position calibration, and / or other operations using the detection circuit 104. The probe 108 may be formed of a material that is wholly or partially conductive and resistant to corrosion by the liquid to which the probe 108 will be exposed. For example, the probe 108 may be formed of stainless steel. In some implementations, the probe 108 may be integrated with a pipette element. For example, the probe 108 may include a channel used to transfer liquid into or out of the container.

[0046]

[0053] The movement mechanism 110 is mechanically coupled to the probe by one or more suitable attachments 112, such as a movable arm, a tracked mount, or other components. In this example, the movement mechanism 110 and attachment 112 are configured to move the probe 108 into contact with the liquid 118 in the container 106. In some implementations, the movement mechanism 110 and attachment 112 are alternatively or additionally configured to move the probe 108 into contact with or proximity to one or more other elements of the sample analysis system 100. In some implementations, the movement mechanism 110 and attachment 112 are configured to move the probe 108 in three dimensions, for example, along multiple axes simultaneously and / or along one of multiple axes at a time. The movement mechanism 110 can include one or more suitable motors, such as servo motors or stepper motors, to control the movement of the attachments 112.

[0047]

[0054] In some implementations, the lateral movement plane 116 is parallel to the surface 122 of the liquid 118, and the vertical movement axis 114 is perpendicular to the lateral movement plane 116. In some implementations, in the process of detecting (or determining the liquid level of) the liquid in the container 106, the movement mechanism 110 moves the probe 108 along the lateral movement plane 116 until the probe 108 is positioned directly above the container 106. The movement mechanism 110 then moves the probe 108 along the vertical movement axis 114 toward the liquid 118, for example, until the probe 108 is determined to be in contact with the liquid 118. In some implementations, the sample analysis system includes one container, for example, as shown for the sample analysis system 100. In some implementations, the sample analysis system includes multiple containers, arranged, for example, in a row, such that the surface of the liquid in one or more containers in the row is parallel to the lateral movement plane 116. The probe 108 can be moved in a lateral movement plane 116 so that it is over a selected vessel in the row, and then moved along a vertical movement axis 114 towards the liquid in the selected vessel.

[0048]

[0055] In some implementations, the movement along the longitudinal movement axis 114 includes at least two phases. In a first phase, the movement mechanism 110 moves the probe 108 toward the liquid 118 at a first speed. Once the probe is inserted into the container and moved within a threshold distance of a predetermined position, the movement mechanism 110 can be configured to slow the descent of the probe 108 to a second speed slower than the first speed. For example, the threshold distance can be a predetermined distance (e.g., 5 mm) above the last known liquid level in the container. Using a slower speed of movement when the probe 108 is near the liquid 118 can reduce splashing of the liquid 118 when the probe 108 contacts the liquid 118 (thereby possibly preventing or minimizing bubble formation or probe contamination) and / or prevent the probe 108 from being inserted too deeply into the liquid (e.g., to minimize the amount of liquid required to subsequently rinse the probe tip). For example, a faster speed can be greater than 250 mm / sec (eg, 300 to 600 mm / sec), and a slower speed can be less than 250 mm / sec (eg, 50 to 200 mm / sec).

[0049]

[0056] In some implementations, instead of or in addition to adjusting the probe speed at the threshold distance, liquid level detection may be initiated in response to the probe being moved within the threshold distance from a predetermined position. For example, in response to the probe being moved within the threshold distance, an input signal (e.g., input signal 203) can be provided to a detection circuit, a data signal (e.g., data signal 410 or 430) can be provided to or read by a controller, and / or the controller can begin analyzing the data to identify the liquid level.

[0050]

[0057] The controller 102 includes circuitry including one or more computing devices, such as one or more processors, one or more memory devices, and one or more storage devices. In some implementations, the circuitry also includes one or more rectifiers, analog-to-digital converters, filters, and / or digital signal processors. In some implementations, the controller 102 includes interface and / or network components, for example, to receive input from a user and / or receive data (e.g., instructions) from one or more computing systems communicatively coupled to the controller 102.

[0051]

[0058] 1 , the signal measurement system 120 is electrically and / or communicatively coupled to the controller 102 and the detection circuit 104 (e.g., for transmitting and / or detecting signals). The signal measurement system 120 is configured to process the output signal from the detection circuit 104 and provide a modulated output signal and / or a characteristic of the output signal to the controller 102. The controller 102 can determine whether the probe 108 is in contact with a surface 122 of the liquid 118 based on the modulated output signal and / or the characteristic of the output signal. For example, as the probe 108 is lowered toward the liquid 118, the controller 102 can monitor the output signal (e.g., the output voltage or output current of the detection circuit) in response to the input signal and determine contact with the liquid surface when, for example, a change in the amplitude (or other characteristic) of the output signal satisfies a threshold condition.

[0052]

[0059] The detection circuit 104 may be housed within a common enclosure with the signal measurement system 120 and / or the controller 102. For example, the detection circuit 104 may include circuit elements within an integrated circuit and / or a printed circuit board (PCB), which is electrically coupled to the signal measurement system 120 and / or the controller 102 within the enclosure of the sample analysis system 100. In some implementations, the integrated circuit and / or PCB may include both the detection circuit 104 and the signal measurement system 120 and / or the controller 102. In some implementations, at least a portion of the detection circuit 104 and / or the signal measurement system 120 may be attached to the probe 108, for example, for movement with the probe 108. For example, a PCB may be provided within a waterproof enclosure attached to the probe 108, the PCB hosting the detection circuit 104 and / or the signal measurement system 120.

[0053]

[0060] FIG. 2 is a schematic diagram illustrating an example of a detection circuit according to some implementations of the present disclosure. As shown in FIG. 2, the example detection circuit 104 includes an excitation power generation module 202 electrically coupled to the controller 102. One or more circuit components 204 (e.g., one or more resistors, capacitors, inductors, and / or other circuit components such as switches, diodes, transistors, etc.) are electrically coupled to the excitation power generation module 202 and a probe 206 (e.g., the probe 108 of FIG. 1 ). At least some of the circuit components 204 and the probe 206 collectively form an inductance-capacitance (LC) circuit. In some implementations, at least some of the circuit components 204 and the probe 206 collectively form an adjustable LC tank circuit 210. In this example of the detection circuit 104, the circuit component 204 is associated with an inductance L1, a capacitance C1, and a resistance R1. The controller 102 or the signal measurement system 120 is electrically coupled between the circuit component 204 and the probe 206.

[0054]

[0061] The capacitance of the LC tank circuit 210 depends on the environment of the probe 206. For example, the probe 206 may be connected to ground 214 through the environment 208 of the probe 206. The environment 208 of the probe 206 may include one or more objects in proximity to the probe 206. Exemplary objects include a liquid (e.g., a liquid whose level is to be determined), a container holding the liquid, a reference structure, and other parts of the sample analysis system 100 that may create parasitic capacitance that affects the overall capacitance of the LC tank circuit 210. The physical properties of these objects (e.g., their composition and temperature) and the distance between the object and the probe 206 may affect the capacitance C2 associated with this parasitic capacitance, for example, as a function of the effective capacitance between the probe 206 and ground 214.

[0055]

[0062] If the probe environment 208 is sufficiently conductive (e.g., if the probe is in proximity to a metal object or in contact with a conductive liquid such as saline), the parasitic capacitance C2 will be high, causing a large change in the output signal 205 even though the input signal 203 remains unchanged. On the other hand, if the probe environment 208 is less conductive (e.g., if the probe is in proximity to a liquid with a low ion content, such as deionized water), the parasitic capacitance C2 will be low. Without the techniques described herein (e.g., for fixed LC circuits with resonant frequencies below 1 MHz), it would be difficult to detect changes in the output signal for such low parasitic capacitance. Furthermore, alternative methods that rely on changes in parasitic capacitance to affect the relaxation oscillator frequency may not be scalable to higher frequencies because the operation of the relaxation oscillator at higher frequencies therefore relies on a higher frequency reference clock for measurement. A reference clock high enough in frequency to maintain a high ratio of the reference clock frequency to the relaxation oscillator frequency may be unavailable, unstable, or otherwise unsuitable for liquid level sensing operation.

[0056]

[0063] However, the tank circuit 210 can be tuned so that the resonant frequency of the tank circuit 210 is in a higher range (e.g., 3-10 MHz). By exciting the tank circuit 210 at a frequency close to this higher resonant frequency, even small parasitic capacitances (e.g., in the 1 pF range or less) can produce a measurable change in the output signal 205. This allows the detection circuit 104 to provide a highly sensitive system that can detect small parasitic capacitances that would otherwise be difficult to detect. This allows the detection circuit to detect liquids with low ion content, such as deionized water.

[0057]

[0064] The excitation power generation module 202 is configured to provide an input signal 203 to the LC tank circuit 210. The input signal 203 can have different shapes depending on the implementation. For example, the input signal 203 can be a periodic signal (e.g., a sinusoidal signal), and its amplitude and frequency can vary depending on the implementation. In some implementations, the frequency of the input signal 203 is between 1 MHz and 10 MHz, e.g., between 2 MHz and 6 MHz, or between 3 MHz and 4 MHz. In some implementations, the input signal 203 is a composite signal, such as a square wave signal, a triangular wave signal, a sawtooth wave signal, a pulse signal, or the like, or a combination of these or other signal types.

[0058]

[0065] In some implementations, the frequency of the input signal 203 can be selected based on the resonant frequency of the tank circuit 210. The selection of the input signal frequency is illustrated with reference to FIG. 5, which is a plot illustrating an example change in the amplitude of a simulated output signal as a function of the input signal frequency. Specifically, curves 502, 504, and 506 represent the change in the amplitude of the output signal as a function of the input signal frequency for LC tank circuit capacitances of 130 pF, 132 pF, and 134 pF, respectively. In each case, the resonant frequency of the corresponding circuit is indicated by the peak of curves 502, 504, and 506. In some implementations, the frequency of the input signal can be selected so that the change in output voltage due to capacitance variation is sufficiently detectable. In the example of FIG. 5, for a 3.24 MHz input signal, as indicated by vertical line 508, the output voltage amplitude for 130 pF is close to 0.8 V, which drops to approximately 0.64 V at 134 pF. Therefore, a small change of 4 pF will change the output voltage by about 0.16 V, which will be easily detectable. In general, high system sensitivity can be achieved by selecting an input signal frequency at which the voltage difference between the curves corresponding to the capacitance difference is relatively large.

[0059]

[0066] In some implementations, the input signal frequency is predetermined and set into the system. In some implementations, the input frequency can be selected to correspond to, for example, a time variation of the resonant frequency, and can be optimized before a particular run, e.g., due to changes in environmental parameters such as temperature, humidity, or proximity to other objects. For example, during a system calibration run, the input signal frequency can be swept over a range to identify a frequency at which the amplitude of the output signal meets one or more conditions, such as the output signal amplitude having a maximum slope with respect to the input signal frequency. Using the corresponding frequency of the input signal can ensure large amplitude differences for small changes in the circuit's capacitance, thereby maintaining high system sensitivity. In some implementations, the detection circuits described herein can reliably detect capacitance changes of 500 fF, 1 pF, or 2 pF (e.g., can detect changes in the output signal characteristics due to capacitance changes larger than the amplitude of noise in the output signal characteristics), thereby enabling sensitive detection of liquids, even those with low ion content, such as deionized water. In some implementations, the frequency of the input signal is instead or additionally determined based on the type of liquid whose level is to be detected. For example, a user can provide user input to the controller 102 indicating the type of liquid, or the type of liquid can be automatically determined by the controller 102 based, for example, on stored data indicating the status of each container.

[0060]

[0067] Referring again to FIG. 2 , the excitation power generation module 202 can include one or more of various combinations of digital and / or analog circuits. In some implementations, the excitation power generation module 202 includes a digital or analog function generator. In some implementations, the excitation power generation module 202 includes a crystal oscillator configured to generate a periodic signal. In some implementations, the excitation power generation module 202 includes a clock signal generator configured to generate a periodic signal. In some implementations, the excitation power generation module 202 includes a digital circuit (e.g., a processor or FPGA) configured to directly synthesize a periodic signal through digital-to-analog conversion. Various other signal generation methods and devices can alternatively or additionally be used to obtain desired characteristics of the input signal 203. The excitation power generation module 202 can be controlled by the controller 102 (e.g., by signals and / or data provided by the controller 102) to turn excitation on / off and / or vary characteristics of the input signal (e.g., frequency, amplitude, and / or signal waveform).

[0061]

[0068] In some implementations, the controller 102 is configured to obtain and determine one or more characteristics of the output signal 205. In some implementations, the signal measurement system 120 is configured to perform one or more operations on the output signal 205 and provide the modulated output signal 205 or one or more characteristics thereof to the controller 102. In some implementations, the controller 102 can be configured to detect contact of the probe tip with a liquid based on one or more characteristics of the output signal.

[0062]

[0069] FIG. 3A shows an example of a detection circuit 300 including an effective capacitance between a probe and an instrument ground. An input signal 308, in this example a periodic sinusoidal signal, is provided as an input to the detection circuit 300. In this example, the circuit components 204 include one or more resistors (represented as a resistive element 306 having a resistance R1), one or more capacitors (represented as a capacitive element 302 having a capacitance C1), and one or more inductors (represented as an inductive element 304 having an inductance L1). The detection circuit 300 also includes a parasitic capacitance (represented using a capacitive element 307 with a value C2) contributed by the probe based on the composition of the probe's surrounding environment. The detection circuit 300 is an inductance-capacitance (LC) circuit. Collectively, the capacitive element 302, the inductive element 304, and the capacitive element 307 form an LC tank circuit 305. In some implementations, the portion 312 that does not include the capacitive element 307 may be adjustable so that the resonant frequency of the tank circuit 305 is in a range high enough to detect small changes in the capacitive element 307. In accordance with the techniques described herein, an appropriate input signal having a frequency close to this high resonant frequency can be provided into the detection circuit 300 to measure corresponding changes in the output signal with high sensitivity.

[0063]

[0070] In the example of FIG. 3A, the resonant frequency of LC tank circuit 305 is

number

[0064]

[0071] C2 is typically small compared to C1, except when the probe is in close proximity to an object that contributes high parasitic capacitance on the probe. Therefore, the resonant frequency is

number

[0065]

[0072] In some implementations, the inductance L1 is between 1 μH and 100 μH, e.g., between 5 μH and 40 μH. In some implementations, the capacitance C1 is between 1 pF and 100 pF, e.g., between 10 pF and 50 pF. In some implementations, the inductance and capacitance are configured such that the corresponding resonant frequency is between 1 MHz and 30 MHz, e.g., between 1 MHz and 10 MHz, e.g., between 2 MHz and 6 MHz, or between 3 MHz and 4 MHz.

[0066]

[0073] Detection circuit 300 is one example of how a detection circuit consistent with the present disclosure can be implemented. The scope of the present disclosure can also include other circuit configurations that can be tuned to provide a high resonant frequency as described above. In some implementations, at least a portion of signal measurement system 120 is incorporated into controller 102. Operations performed by the controller and / or operations of signal measurement system 120 can be performed by discrete circuitry, a general-purpose computer, or a combination thereof. For example, digital-to-analog conversion can be performed by a dedicated digital-to-analog conversion module represented by separate hardware (e.g., a dedicated integrated circuit chip within signal measurement system 120).

[0067]

[0074] 4A , in some implementations, the signal measurement system performs at least some analog processing on the output signal 310. In the signal measurement system 400, a rectifier 402 converts the oscillating output signal 404 into a rectified (DC) output signal 406. For example, the rectifier 402 may include a half-wave or full-wave rectification section combined with a smoothing circuit or filter, such as an RC shunt filter. In some implementations, the rectified output signal 406 is provided as an input to the controller 102. In some implementations, an amplitude detector 408 of the signal measurement system 400 measures the magnitude of the rectified output signal 406 and outputs a data signal 410 (e.g., a digital data signal) to the controller 102, the data signal 410 indicating the magnitude of the rectified output signal 406 and, correspondingly, the amplitude of the output signal 404.

[0068]

[0075] As shown in FIG. 4B , in some implementations, the output signal 404 is digitized for further analysis. In the signal measurement system 421, an analog-to-digital converter (ADC) 420 generates a digitized output signal 422. In some implementations, the digitized output signal 422 is provided to the controller 102. In some implementations, the digitized output signal 422 is further processed by the signal measurement system 421, for example, by spectral analysis. As shown in FIG. 4B , the digitized output signal 422 is decomposed into frequency components 426, for example, by a fast Fourier transform (FFT) module 424 of the signal measurement system 421. This decomposition separates the target component corresponding to the actual output signal (e.g., a component having a frequency matching the frequency of the sinusoidal input signal) from components corresponding to other signal contributions, such as internal and external noise and / or interference sources. For example, a signal emitted from a wireless device used near the sample analysis system 100 can be picked up by a detection circuit and detected as part of the output signal 404. The amplitude detector 408 is configured to analyze the frequency components and output to the controller 102 a data signal 430 indicative of the magnitude of the target component and correspondingly the amplitude of the output signal 404, which has low or no contribution from noise and other interference.

[0069]

[0076] Based on the data signal 410 or 430, the controller 102 identifies a probe position where the probe contacts the liquid. For example, the controller 102 may be configured to identify rapid changes in the amplitude of the output signal 404 (or components, e.g., frequency components, of the output signal 404) as a function of time or probe position. For example, the controller 102 may be configured to identify a change in amplitude greater than a threshold value over a predetermined length of time or a predetermined position change. In some implementations, the controller 102 is configured to execute an algorithm, such as a cumulative sum control or derivative-based scheme, to detect steps in real time during probe movement; when a step in amplitude or a step that meets one or more conditions (e.g., step height) is detected, the controller determines that the probe is in contact with the liquid. In some implementations, the controller 102 may analyze the data signal 410 or 430 at a rate of 10 kHz (10,000 amplitude samples per second) to make such a determination. The position of the probe when the controller determines that the probe is in contact with the liquid may correspond to the position of the surface of the liquid, and the level of the liquid may be determined based thereon.

[0070]

[0077] In some implementations, an air bubble may be present at the liquid surface, and the probe may contact the air bubble instead of the liquid surface. Failure to detect air bubbles can disadvantageously result in air being aspirated into the probe instead of the liquid, or the liquid level being incorrectly determined, leading to inaccurate analytical results. Identifying that the tip of the probe is in proximity to or in contact with an air bubble instead of the liquid surface can trigger one or more actions in response, such as generating a warning message, preventing aspiration through the probe, or moving the probe deeper into the container so that the tip of the probe contacts the liquid rather than an air bubble on the surface of the liquid.

[0071]

[0078] FIG. 6 is a plot illustrating liquid contact detection and bubble detection based on the amplitude of the output signal as a function of time. Because the speed of the probe movement is known by the controller 102, data showing signal amplitude as a function of time corresponds to data showing signal amplitude as a function of probe position. Specifically, curve 600 represents a situation where a probe being gradually approached to the liquid surface makes contact with gas / bubbles on the surface of the liquid and stops before contacting the liquid below the bubble. Curve 602 represents a situation where the probe is gradually approached to a bubble-free liquid surface. During time 604, the rate of parasitic capacitance generation is slow as the probe is gradually approached to the liquid surface, and the signal amplitude shows only a slight, gradual decrease. For example, the change in signal amplitude during the time before the probe contacts the surface may be less than 1% or less than 0.5%. Curves 600 and 602 show a sudden, large decrease in amplitude during time within region 606, indicating contact with a bubble or the liquid surface, respectively. For example, in some implementations, the controller 102 determines that contact has occurred based on a change in amplitude of at least 1%, at least 1.5%, at least 2%, or at least another predetermined value over a predetermined period or a predetermined change in probe position. However, in this example, the change in amplitude is greater for contact with a liquid than for contact with an air bubble. Based on the change in amplitude, in some implementations, the controller 102 can determine whether the probe is in contact with a liquid or an air bubble. For example, a change in amplitude less than a threshold value can indicate contact with an air bubble, while a change in amplitude greater than a threshold air / liquid value can indicate contact with a liquid. Other or additional methods for distinguishing between air bubbles and liquid based on changes in one or more output signal characteristics are within the scope of the present disclosure. For example, the rate of change in the amplitude of the output signal as a function of the distance between the tip of the probe and the surface of the liquid can indicate whether an air bubble is present at the surface of the liquid. In some implementations, the threshold value for distinguishing between contact with a liquid and contact with a gas (e.g., a threshold change in the amplitude of the signal) can be based on the type of liquid.

[0072]

[0079] In some implementations, the disclosed system's high sensitivity in detecting small changes in capacitance can be utilized to detect proximity to various objects / targets, such as highly conductive objects (e.g., metallic objects) or liquids with high ionic content, such as saline. Such conductive objects can induce large parasitic capacitance on the probe even at a distance, thereby altering the system's output. For example, in some implementations, the controller 102, signal measurement system 120, and / or detection circuitry 104 are collectively configured to detect a measurable change in the output signal 404 (e.g., a measurable change in the amplitude of the output signal 404) when the probe is in proximity to a conductive object between 1 mm and 20 mm, e.g., between 1 mm and 10 mm, between 2 mm and 5 mm, or between 5 mm and 10 mm. A measurable change may be, for example, a change that is detectable by being larger than noise in the output signal 404. In some cases, the amount of change in output may be a function of the probe's distance from a particular object, and this characteristic may therefore be used to detect the presence of an object (and / or the probe's distance from that object) without the probe coming into contact with the object.

[0073]

[0080] 7A-7B are schematic diagrams illustrating the calibration of a space through which a probe moves, according to some implementations of the present disclosure. As shown in FIGS. 7A-7B, in some implementations, the sample analysis system includes a reference structure 702, e.g., a metallic calibration post, that serves as a reference location for defining / calibrating a spatial coordinate system through which the probe moves. In some implementations, the reference structure 702 extends perpendicular to a plane 708 that is parallel to the surface of the liquid in one or more containers. The plane 708 may be substantially the same as the lateral movement plane 116 described with respect to FIG. 1 . For example, the reference structure 702 may be a post attached to a base, support, or other part of the sample analysis system. In some implementations, the reference structure 702 is at least partially conductive and formed of a metal, such as stainless steel, which creates a large amount of parasitic capacitance on the probe when the probe is sufficiently close to the reference structure. For example, in some implementations, the capacitance between the probe 700 and the reference structure 702 is between 50 and 250 pF when the probe 700 is between 1 mm and 5 mm from the reference structure 702 .

[0074]

[0081] 7A , the probe 700 can be moved along a first direction 704, e.g., laterally parallel to a plane 708, to approach the reference structure 702. During movement of the probe 700, one or more characteristics of the output signal of the detection circuit are monitored to determine the distance between the probe 700 and the reference structure 702, e.g., the distance 706 between a side 710 of the probe 700 and a side 712 of the reference structure 702. The detection circuit can be the same detection circuit used for liquid level detection, e.g., detection circuit 104 or 300, and the output signal of the detection circuit can be provided to the controller 102 or the signal measurement system 120 for analysis.

[0075]

[0082] The distance 706 can be determined based on a predetermined functional relationship relating one or more features (and / or changes therein) to distance. For example, the controller 102 can store or access a function A(r), where A is the amplitude of the output signal and r is the distance 706. r can be determined based on this functional relationship and the one or more features. In some implementations, the distance 706 is determined by monitoring one or more features during movement of the probe 700 and identifying a step in the one or more features, the presence of which can indicate that the probe 700 is in proximity to the reference structure 702 (e.g., within 2 mm of the reference structure 702). In some implementations, the distance 706 or proximity is determined based on comparing one or more features to initial values ​​of the one or more features. For example, the amplitude of the output signal may steadily decrease as the probe 700 approaches the reference structure 702, compared to an initial value of the amplitude when the probe 700 is relatively far from the reference structure 702 (e.g., at least 10 mm away, at least 20 mm away, or at least 50 mm away in various implementations). When the amplitude decreases to a threshold percentage of its initial value, for example, 0.95 to 0.99 of its initial value, the controller 102 may determine that the probe has approached the reference structure 702. Alternatively or additionally, the distance 706 may be determined as a function of amplitude.

[0076]

[0083] In some implementations, movement of the probe 700 can be stopped or reversed (e.g., not brought into contact with the reference structure 702) when the probe 700 is determined to be within a threshold distance of or in close proximity to the reference structure 702. The reference structure 702 is at a reference position within a coordinate system (e.g., an x-y-z coordinate system in which the plane 708 is the x-y plane), so that the position of the probe 700 can be determined within that coordinate system. For example, if the first direction 704 is along the x-axis, then the x-coordinate of the probe 700 can be determined. A similar process can be used to determine a second coordinate (e.g., a y-coordinate), for example, by moving the probe 700 in a direction parallel to the plane 708 and perpendicular to the first direction 704.

[0077]

[0084] 7B , the probe 700 can be moved longitudinally perpendicular to the plane 708, for example, in a direction 714 (e.g., the z-direction) to approach the reference structure. As the probe 700 moves, a distance 716 between the probe 700 and a portion (e.g., a distal end 720) of the reference structure 702 is determined, and a position of the probe 700 where the distance 716 is less than a predetermined threshold or where the probe 700 is in proximity to the reference structure is identified, for example, based on the presence of a change in one or more characteristics of the output signal. Based on stored data indicating the coordinates of the distal end 720 of the reference structure 702, a coordinate in the direction 714 (e.g., the z-coordinate) of the probe 700 can be determined, for example, without contacting the reference structure 702.

[0078]

[0085] Less sensitive systems can avoid or reduce contact with the reference structure by moving the probe slowly, which increases the time required for the calibration process. The high sensitivity provided by the disclosed methods and apparatus can allow for faster probe movement during calibration, thereby reducing the "time to first test" before an assay can be performed after start-up of the sample analysis system. The position calibration described with respect to Figures 7A-7B can be performed in response to various triggers, such as upon start-up of the sample analysis system, upon command from a user or computing system, or periodically upon power-on of the sample analysis system.

[0079]

[0086] Because the reference structure is solid and inelastic, contact with the reference structure can damage the probe, especially when combined with the probe continuing to move into the reference structure. Systems less sensitive than those described herein may perform calibration using an iterative approach-contact-withdrawal process, in which the probe approaches the reference structure from above, makes contact with the reference structure, withdraws from the reference structure, translates laterally, approaches the reference structure again, and repeats the process until it no longer makes contact. Due to their sensitivity and / or high detection speed, some implementations of the methods and apparatus disclosed herein can perform probe position calibration without contacting the probe with a target, as described for probe position calibration with respect to Figures 7A-7B, for example. This can reduce the incidence of probe damage due to probe contact with structures such as the reference structure 702. Additionally, the high sensitivity of some implementations of the present disclosure means that lateral calibrations (e.g., those shown in Figure 7A) can be performed in addition to vertical calibrations. In contrast, less sensitive systems can reliably perform only vertical calibration as shown in Figure 7B.

[0080]

[0087] Some features described may be implemented in digital and / or analog electronic circuitry, or in hardware, firmware, software, or any combination thereof. Some features may be implemented in a computer program product tangibly embodied in an information carrier, for example a machine-readable storage device, for execution by a programmable processor. Method steps may be performed by a programmable processor executing a program of instructions that performs functions described in the implementation by performing operations on input data and generating output, by discrete circuitry performing analog and / or digital circuit operations, or any combination thereof.

[0081]

[0088] Some of the described features may be advantageously implemented in one or more computer programs executing on a programmable system including at least one programmable processor, at least one input device, and at least one output device coupled to receive data and instructions from and transmit data and instructions to a data storage system. A computer program is a set of instructions that can be used, directly or indirectly, within a computer to perform a particular activity or bring about a particular result. Computer programs may be written in any form of programming language (e.g., Objective C, Java), including compiled or interpreted languages, and may be deployed as stand-alone programs or in any form including modules, components, subroutines, or other units suitable for use in a computing environment.

[0082]

[0089] Processors suitable for executing a program of instructions include, by way of example, both general-purpose and special-purpose microprocessors, and the sole processor or one of multiple processors or cores of any type of computer. Generally, a processor receives instructions and data from a read-only memory or a random-access memory, or both. The essential elements of a computer are a processor for executing instructions and one or more memories for storing instructions and data. Generally, a computer may be in communication with mass storage devices for storing data files. These mass storage devices may include magnetic disks, e.g., internal hard disks and removable disks, magneto-optical disks, and optical disks. Storage devices suitable for tangibly embodying computer program instructions and data include all forms of non-volatile memory, including, by way of example, semiconductor memory devices such as EPROMs, EEPROMs, and flash memory devices, magnetic disks, e.g., internal hard disks and removable disks, magneto-optical disks, and CD-ROM and DVD-ROM disks. The processor and memory may be supplemented by, or incorporated in, ASICs (Application-Specific Integrated Circuits). Features for enabling user interaction may be implemented on a computer having a display device, such as a CRT (cathode ray tube), LED (light emitting diode) or LCD (liquid crystal display) display or monitor, for displaying information to the author, a keyboard and a pointing device, such as a mouse or trackball, with which the author may provide input to the computer.

[0083]

[0090] Numerous implementations have been described. However, it should be understood that various modifications may be made. Further implementations may be formed by combining, deleting, modifying, or supplementing elements of one or more implementations. As yet another example, the logic flows depicted in the figures do not require the particular order or sequential order depicted to achieve desirable results. Additionally, other steps may be provided or steps may be eliminated from the described flows, and other components may be added to or removed from the described systems. Accordingly, other implementations are within the scope of the following claims. [Explanation of symbols]

[0084] 100 Sample Analysis System 102 Controller 104, 300 detection circuit 106 Container 108, 206, 700 probes 110 Moving mechanism 112 Attachment 114 Vertical movement axis 116 Lateral movement plane 118 Liquid 120, 400, 421 Signal Measurement System 122 Liquid Surface 202 Excitation Power Generation Module 203, 308 Input signal 204 Circuit Components 205, 310, 404 output signals 208 Probe Environment 210, 305, 312 LC tank circuit 214 Earth 302, 307 Capacitance elements 304 Inductive Elements 306 Resistor element 314, 316 amplitude 402 Rectifier 406 Rectified Output Signal 408, 428 Amplitude detector 410, 430 Data signal 420 Analog-to-Digital Converter 422 digitized output signal 424 Fast Fourier Transform Module 426 Frequency Components 502, 504, 506, 600, 602 curve 508 vertical line 604 hours 606 areas 702 Reference structure 704 First Direction 706, 716 Distance between probe and reference structure 708 plane 710 Probe side 712 Reference Structure Aspects 714 directions 718 Distal end of probe 720 Distal end of reference structure

Claims

1. An apparatus, comprising: one or more reference structures, each of which is an at least partially conductive structure positioned at a known location on the device; a probe configured to provide at least a portion of the capacitance of a detection circuit comprising an inductance-capacitance (LC) circuit, the capacitance of the LC circuit depending at least in part on the distance between the probe and one or more reference structures; a movement mechanism configured to move the probe; and A circuit configuration comprising: causing the movement mechanism to move the probe relative to the reference structure; measuring one or more characteristics of an output signal of the detection circuit, the one or more characteristics depending on the capacitance of the LC circuit; and determining the distance between the probe and the reference structure based on the one or more features of the output signal; a circuit arrangement configured to perform operations including Equipped with measuring the one or more characteristics of the output signal; providing an input signal frequency to said detection circuit, said input signal frequency being between 1 MHz and 10 MHz; measuring the amplitude of the output signal as at least a portion of the one or more characteristics of the output signal; 1. An apparatus comprising:

2. 10. The apparatus of claim 1, wherein the LC circuit comprises an adjustable LC tank circuit, the LC tank circuit including an inductor and a capacitor in addition to a probe in a detection circuit.

3. The apparatus of claim 1 , wherein the reference structure is formed of metal.

4. The apparatus of claim 1 , wherein the reference structure induces a change in a parasitic capacitance on the probe.

5. The apparatus of claim 1 , wherein at least one of the reference structures is a post.

6. The apparatus of claim 1 , wherein the probe does not contact the reference structure.

7. The apparatus of claim 1 , wherein the circuitry causes the movement mechanism to move the probe rapidly in a space where a reference structure is present and slowly when the probe is within a threshold distance from the reference structure.

8. The apparatus of claim 1 , wherein the reference structure provides a reference position for calibrating a spatial coordinate system in which the probe moves.

9. 2. The apparatus of claim 1, wherein the capacitance between a probe and one of the reference structures is between 50 and 250 pF when the probe is between 1 mm and 5 mm from the one reference structure.

10. The apparatus of claim 1 , wherein the probe is movable in a longitudinal direction perpendicular to a plane containing the reference structure.

11. The device described in claim 1, wherein the probe is further configured to provide at least a portion of the capacitance of the detection circuit including the inductance-capacitance (LC) circuit, and the capacitance of the LC circuit depends at least in part on the distance between the probe and the surface of the liquid.

12. 12. The device of claim 11, wherein the liquid has an ionic conductivity of less than 1 mS / cm.

13. The apparatus of claim 11 , wherein the action includes determining whether the probe is in contact with an air bubble in the liquid.

14. 1. A method for identifying the presence of a reference structure in a liquid sample analysis system, comprising: Providing an apparatus according to claim 1; causing the movement mechanism to move the probe relative to the reference structure; measuring one or more characteristics of an output signal of the detection circuit, the one or more characteristics depending on the capacitance of the LC circuit; and determining the presence of the reference structure and / or the distance between the probe and the reference structure based on the one or more features of the output signal; A method comprising:

Citation Information

Patent Citations

  • System and method for clearance estimation between two objects

    JP2010175542A