Fluid sensor system, computing device, and method for estimating flow direction

The fluid sensor system with a heating element and circumferentially arranged temperature sensors simplifies and enhances flow direction estimation, ensuring accurate detection in limited spaces.

JP7789313B2Active Publication Date: 2025-12-22MITSUBISHI HEAVY IND LTD +1
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Patent Information

Application Number
JP2022038594
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-03-11
Publication Date
2025-12-22
Estimated Expiration
2042-03-11

AI Technical Summary

Technical Problem

Existing fluid sensors with multiple heating resistors and temperature sensors become complicated and cumbersome, leading to inaccurate flow direction estimation, especially when installed in limited spaces.

Method used

A fluid sensor system with a heating element and three or more pairs of temperature sensors arranged circumferentially around it, using a computing device to identify the sensor pair with the largest output difference and estimate flow direction based on output differences from adjacent pairs.

Benefits of technology

Enables accurate and easy detection of fluid flow direction even in confined installations by simplifying the sensor configuration and enhancing estimation accuracy.

✦ Generated by Eureka AI based on patent content.

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Abstract

To detect the flow direction of a fluid easily with high accuracy even when installed in a limited installation space.SOLUTION: A fluid sensor system comprises a sensor and a computing device. The sensor includes a heat generating body, and an outer circumferential sensor unit that includes three or more sensor pairs so as to enclose the circumference of the heat generating body, the sensor pair composed of two temperature sensors arranged facing each other across the heat generating body. The computing device includes a first identification unit that identifies a sensor pair among the three or more sensor pairs, where the output difference between an output value corresponding to the temperature detected by a temperature sensor in one of the sensor pair and an output value corresponding to the temperature detected by a temperature sensor in the other of the sensor pair is largest, a second identification unit that identifies other sensor pairs that adjoin the identified sensor pair in the circumferential direction, and a flow direction estimation unit that estimates the flow direction of the fluid on the basis of the output difference in the sensor pair whose output difference is largest, and the output difference in the other sensor pairs that adjoin in the circumferential direction.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] The present disclosure relates to a fluid sensor system, a computing device, and a method for estimating flow direction. [Background technology]

[0002] Various techniques are used to observe and measure fluid flow. For example, when measuring the fluid flow inside equipment such as a steam turbine or gas turbine in real time while the equipment is operating, the installation location of the measuring equipment is limited. A fluid sensor applicable to such applications includes, for example, a configuration including a heating element and a pair of temperature sensors arranged opposite each other across the heating element. In such a fluid sensor, a temperature difference occurs between the upstream and downstream sides of the heating element due to the flow of the fluid to be detected. The fluid flow is detected by detecting this temperature difference using multiple temperature sensors.

[0003] In such a fluid sensor, if the direction of fluid flow is misaligned with the direction in which a pair of temperature sensors are positioned opposite each other across the heating element, the accuracy of flow detection decreases. In response to this, for example, Patent Document 1 discloses a fluid sensor having a main heating resistor, a pair of X-axis temperature sensors, a pair of Y-axis temperature sensors, and a sub-heating resistor connected to the main heating resistor and positioned between the X-axis and Y-axis temperature sensors. This fluid sensor is designed to detect the direction of fluid flow with higher accuracy by providing multiple pairs of temperature sensors around the main heating resistor. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Publication No. 2020-143903 Summary of the Invention [Problem to be solved by the invention]

[0005] However, in the configuration described in Patent Document 1, multiple sub-heating resistors are arranged around the main heating resistor, which makes the fluid sensor configuration complicated. Furthermore, after multiple pairs of temperature sensors detect the temperature difference according to the direction of fluid flow caused by the heat generated by the main heating resistor and the sub-heating resistor, the process of estimating the direction of fluid flow from the detected temperature difference also becomes complicated.

[0006] The present disclosure has been made to solve the above-mentioned problems, and aims to provide a fluid sensor system, a computing device, and a method for estimating flow direction that can easily and accurately detect the direction of fluid flow even when installed in a limited installation space. [Means for solving the problem]

[0007] In order to solve the above problem, the fluid sensor system of the present disclosure comprises a sensor arranged on a flow path forming surface that forms a flow path for the fluid, and a computing device that estimates the flow direction of the fluid in the flow path based on an output from the sensor, wherein the sensor is arranged on the flow path forming surface and comprises a heating element that generates heat using power supplied from an external power source, and an outer peripheral sensor unit that has three or more pairs of sensors each consisting of two temperature sensors arranged opposite each other on either side of the heating element, spaced apart circumferentially so as to surround the periphery of the heating element, and the computing device comprises a first identification unit that identifies, among the three or more pairs of sensors, the sensor pair that has the largest output difference between an output value corresponding to a temperature detected by one of the temperature sensors in the sensor pair and an output value corresponding to a temperature detected by the other temperature sensor, a second identification unit that identifies other sensor pairs that are adjacent to the identified sensor pair in the circumferential direction, and a flow direction estimation unit that estimates the flow direction of the fluid based on the output difference in the sensor pair with the largest output difference and the output difference in the other sensor pairs that are adjacent to the identified sensor pair in the circumferential direction.

[0008] A computing device according to the present disclosure is a computing device that estimates the flow direction of a fluid in a flow path based on outputs from sensors that are arranged on a flow path forming surface that forms a flow path of the fluid, and that include an outer peripheral sensor unit that includes three or more pairs of sensors spaced circumferentially around the heating element, each pair consisting of a heating element that generates heat by power supplied from an external power source and two temperature sensors that are arranged opposite each other on either side of the heating element, and the computing device includes: a first identification unit that identifies, among the three or more pairs of sensors, the sensor pair that has the largest output difference between an output value corresponding to a temperature detected by one of the temperature sensors in the sensor pair and an output value corresponding to a temperature detected by the other temperature sensor; a second identification unit that identifies other pairs of sensors that are adjacent to the identified sensor pair in the circumferential direction; and a flow direction estimation unit that estimates the flow direction of the fluid based on the output difference in the sensor pair with the largest output difference and the output difference in the other pairs of sensors that are adjacent to the identified sensor pair in the circumferential direction.

[0009] A flow direction estimation method according to the present disclosure is a flow direction estimation method for estimating the flow direction of a fluid in a flow path based on outputs from a sensor that is arranged on a flow path forming surface that forms a flow path of the fluid, and that includes an outer peripheral sensor unit that includes three or more pairs of sensors spaced circumferentially around the heating element, the outer peripheral sensor unit including two temperature sensors arranged opposite each other on either side of the heating element, the sensor unit including the steps of: identifying, among the three or more pairs of sensors, the sensor pair that has the largest output difference between an output value corresponding to a temperature detected by one of the temperature sensors in the sensor pair and an output value corresponding to a temperature detected by the other of the temperature sensors; identifying other pairs of sensors that are adjacent to the identified sensor pair in the circumferential direction; and estimating the flow direction of the fluid based on the output difference in the sensor pair with the largest output difference and the output differences in the other pairs of sensors that are adjacent to the identified sensor pair in the circumferential direction. [Effects of the Invention]

[0010] According to the fluid sensor system, computing device, and flow direction estimation method of the present disclosure, the flow direction of a fluid can be detected easily and with high accuracy even when the sensor system is installed in a limited installation space. [Brief explanation of the drawings]

[0011] [Figure 1] 1 is a diagram showing a schematic configuration of a fluid sensor system according to an embodiment of the present disclosure. [Figure 2] FIG. 2 is a plan view showing a sensor of the fluid sensor system. [Figure 3] 3A to 3C are diagrams illustrating a specific example of the structure of the sensor. [Figure 4] FIG. 2 is a diagram illustrating a hardware configuration of a computing device according to an embodiment of the present disclosure. [Figure 5] FIG. 1 is a functional block diagram of a computing device according to an embodiment of the present disclosure. [Figure 6] FIG. 2 is a diagram illustrating an example of the relationship between the sensor and a fluid flow. [Figure 7] FIG. 6 is a diagram showing an example of the correlation between the tilt angle of the fluid flow and the output difference in each sensor pair in the example of FIG. 5. [Figure 8] FIG. 10 is a diagram showing another example of the relationship between the sensor and the flow of a fluid. [Figure 9] FIG. 2 is a diagram illustrating an example of a circuit configuration of the sensor. [Figure 10] 1 is a flowchart showing the procedure of a flow direction estimation method according to a first embodiment of the present disclosure. [Figure 11] FIG. 10 is a diagram illustrating an example of a periodic function used when estimating the flow direction of a fluid. [Figure 12] 10 is a flowchart showing the procedure of a flow direction estimation method according to a second embodiment of the present disclosure. [Figure 13] FIG. 10 illustrates an example of a sensor according to a variation of an embodiment of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0012] Hereinafter, embodiments for carrying out a fluid sensor system, a computing device, and a flow direction estimation method according to the present disclosure will be described with reference to the accompanying drawings. However, the present disclosure is not limited to these embodiments.

[0013] (Configuration of fluid sensor system) The fluid sensor system 1A shown in FIG. 1 estimates (detects) the flow direction Df of a fluid flowing through a fluid flow path 10. Such a fluid sensor system 1A is applicable to various machines and facilities equipped with a fluid flow path 10, such as steam turbines, gas turbines, compressors, and wind tunnel facilities. The fluid sensor system 1A can also be applied to pipes, ducts, and the like that form a fluid flow path. The fluid sensor system 1A can also be applied to cases where a relative speed difference occurs between a surrounding gas (e.g., air) or liquid (e.g., water) due to the movement of a moving body such as an aircraft wing or fuselage, a ship's hull, or a vehicle's body, and the surrounding gas or liquid can be considered to flow relative to the moving body. The fluid whose flow direction Df is estimated by the fluid sensor system 1A may be, for example, a gas such as air, or a liquid such as water. The fluid sensor system 1A includes a sensor 2 and a computing device 3A.

[0014] The sensor 2 is disposed on a flow path forming surface 10f that defines the flow path 10 of the fluid. The sensor 2 is plate-shaped and embedded in a recess 11 formed in the flow path forming surface 10f. The sensor 2 is disposed so that the sensor surface 2f facing the flow path 10 is continuous with the flow path forming surface 10f. This prevents a portion of the sensor 2 from protruding from the flow path forming surface 10f into the flow path 10 and affecting the flow of the fluid. The sensor 2 may be bonded to the flow path forming surface 10f by an appropriate bonding means such as an adhesive or double-sided tape, without forming a recess 11. Depending on the application, the sensor 2 may be detachably fixed to the flow path forming surface 10f. A plurality of sensors 2 may be disposed in the flow path 10.

[0015] As shown in FIGS. 1 and 2, the sensor 2 includes a sensor substrate 20, a heating element 21, and a peripheral sensor portion 22. The sensor substrate 20 is plate-shaped and holds the heating element 21 and the peripheral sensor portion 22. The heating element 21 is disposed in the center of the sensor substrate 20 when viewed from a direction perpendicular to the sensor surface 2f. The heating element 21 is connected to an external power source 24 via a power line. The heating element 21 is configured to be able to generate heat using power supplied from the external power source 24. The heating element 21 generates heat to a temperature higher than the temperature of the fluid flowing through the flow path 10.

[0016] As shown in Fig. 2, the peripheral sensor unit 22 is disposed on the outer periphery of the heating element 21 when viewed from a direction perpendicular to the sensor surface 2f. The peripheral sensor unit 22 includes a plurality of temperature sensors 23 disposed at equal intervals in the circumferential direction Dc centered on the heating element 21. These plurality of temperature sensors 23 form a sensor pair 25, with two temperature sensors 23 disposed on both sides of the heating element 21. That is, one sensor pair 25 includes two temperature sensors 23 disposed opposite each other on both sides of the heating element 21. The two temperature sensors 23 constituting each sensor pair 25 are disposed on one side and the other side of the heating element 21 in the radial direction, with the heating element 21 in between.

[0017] The peripheral sensor unit 22 includes three or more sensor pairs 25, i.e., six or more temperature sensors 23 in total. In this embodiment, the peripheral sensor unit 22 includes three sensor pairs 25 and six temperature sensors 23. These temperature sensors 23 are arranged concentrically around the heating element 21. The peripheral sensor unit 22 may include eight or more temperature sensors 23. However, if the number of temperature sensors 23 increases too much, the difference in output between the multiple sensor pairs 25 will decrease unless the size of the sensors 2 is changed, making them more susceptible to noise, which may make it difficult to estimate the fluid flow direction Df, as described below. Furthermore, increasing the number of temperature sensors 23 (sensor pairs 25) also increases the number of wirings, which hinders the dense arrangement of multiple sensors 2 on the flow path surface. For this reason, it is preferable that the number of temperature sensors 23 constituting the peripheral sensor unit 22 be, for example, six or eight. Furthermore, if space allows for an increase in the size of the sensor 2, increasing the size of the sensor 2 reduces the effects of noise caused by increasing the number of temperature sensors 23 (sensor pairs 25) and the problems caused by an increase in the number of wirings.

[0018] Each temperature sensor 23 detects the temperature inside the flow path 10. Each temperature sensor 23 outputs the detected temperature or an output value such as an electric potential corresponding to the detected temperature as a detection signal to the calculation device 3A. In the embodiment of the present disclosure, each temperature sensor 23 outputs an electric potential value (output value) corresponding to the detected temperature as a detection signal. The upstream side of the fluid flow direction Df is less susceptible to the heat generated by the heating element 21, whereas the downstream side of the fluid flow direction Df experiences a rise in temperature due to the heat generated by the heating element 21. For this reason, when the arrangement direction of a sensor pair 25 consisting of two temperature sensors 23 is aligned along the fluid flow direction Df, an output difference (potential difference) occurs between the output value (electric potential value) corresponding to the temperature detected by the temperature sensor 23 located upstream in the fluid flow direction Df and the output value (electric potential value) corresponding to the temperature detected by the temperature sensor 23 located downstream in the fluid flow direction Df.

[0019] FIG. 3 is a diagram showing a specific example of a wiring pattern of the sensor 2 described above. As shown in FIG. 3, the heating element 21 and the temperature sensor 23 are each formed by a conductive film formed on a sensor substrate 20. The heating element 21 includes a plurality of semicircular arc patterns 21r formed concentrically and a connection pattern 21j connecting adjacent semicircular arc patterns 21r in the radial direction. Both ends of the heating element 21 are continuous with terminal patterns 21t connected to an external power supply 24 (see FIG. 1). Each temperature sensor 23 has a sensor pattern 23p extending in an arc shape on the outer periphery of the heating element 21. Both ends of the sensor pattern 23p are continuous with terminal patterns 23t connected to a computing device 3A (see FIGS. 1 and 2). The wiring pattern constituting the sensor 2 is not limited to the example shown in FIG. 3 and can be modified as appropriate.

[0020] (Hardware configuration diagram of the computing device) 4, the arithmetic device 3A is a computer including a CPU 61 (Central Processing Unit), a ROM 62 (Read Only Memory), a RAM 63 (Random Access Memory), a HDD 64 (Hard Disk Drive), and a signal transmitting / receiving module 65. The signal transmitting / receiving module 65 receives detection signals from the temperature sensors 23.

[0021] (Function block diagram) 5, the CPU 61 of the calculation device 3A executes a program stored in advance in the device, thereby providing the following components: a signal input unit 31, an output difference calculation unit 32, a first identification unit 33, a second identification unit 34, a flow direction estimation unit 35A, and an output unit 36. The calculation device 3A estimates the flow direction Df of the fluid in the flow path 10 based on the output from the sensor 2. The signal input unit 31 is a signal transmission / reception module 65 in terms of hardware, and receives detection signals from the temperature sensors 23 .

[0022] The output difference calculation unit 32 calculates an output difference value, which is the difference between the potential value detected by one temperature sensor 23 and the potential value detected by the other temperature sensor 23 in each sensor pair 25 .

[0023] The first identifying unit 33 identifies the sensor pair 25 with the largest output difference among the three sensor pairs 25 based on the value of the output difference of each sensor pair 25 calculated by the output difference calculating unit 32 . The second identifying unit 34 identifies other sensor pairs 25 adjacent to the sensor pair 25 with the largest output difference identified by the first identifying unit 33 on both sides in the circumferential direction Dc.

[0024] The flow direction estimating unit 35A estimates the flow direction Df of the fluid based on the output difference of the sensor pair 25 with the largest output difference and the output differences of other sensor pairs 25 adjacent in the circumferential direction Dc.

[0025] As will be described in detail later, the flow direction estimation unit 35A sets the direction connecting the two temperature sensors 23 of the sensor pair 25 with the largest output difference as the reference flow direction H of the fluid (see FIG. 6). Furthermore, the flow direction estimation unit 35A calculates the inclination angle θ (see FIG. 6) of the fluid flow with respect to the reference flow direction H based on the output differences of other sensor pairs 25 adjacent to the sensor pair 25 with the largest output difference in the circumferential direction Dc. The flow direction estimation unit 35A estimates the fluid flow direction Df based on the reference flow direction H set based on the sensor pair 25 with the largest output difference and the inclination angle θ calculated based on the output differences of the other sensor pairs 25 adjacent to the sensor pair 25 in the circumferential direction Dc. The flow direction estimation unit 35A corrects the reference flow direction H using the inclination angle θ to estimate the fluid flow direction Df.

[0026] For example, as shown in Fig. 6, assume that the fluid flow direction Df crosses one temperature sensor 231a and the other temperature sensor 231b constituting a first sensor pair 25A out of three sensor pairs 25. In this case, the temperature of the fluid rises downstream of the fluid flow direction Df due to the influence of heat generated by the heating element 21. Therefore, the temperature sensor 231a located upstream of the fluid flow direction Df detects the temperature rise of the fluid, while the temperature sensor 231b located downstream detects the temperature rise of the fluid. Therefore, in the first sensor pair 25A, the difference between the temperature detected by one temperature sensor 231a and the temperature detected by the other temperature sensor 231b is large, resulting in a large output difference in the potential values ​​output.

[0027] In contrast, of the three sensor pairs 25, the temperature sensors 232a and 232b constituting the second sensor pair 25B and the temperature sensors 233a and 233b constituting the third sensor pair 25C are disposed on both sides in a direction intersecting the fluid flow direction Df. Therefore, the amount of fluid whose temperature rises due to heat generated by the heating element 21 that flows over the temperature sensors 232a and 232b and the temperature sensors 233a and 233b is small, and the fluid is less susceptible to the heat generated by the heating element 21. As a result, the difference in temperature output detected by the temperature sensors 232a and 232b of the second sensor pair 25B and the difference in temperature output detected by the temperature sensors 233a and 233b of the third sensor pair 25C are smaller than the difference in output between the first sensor pair 25A.

[0028] 6, when the output difference calculation unit 32 calculates the output differences among the first sensor pair 25A, the second sensor pair 25B, and the third sensor pair 25C, the first identification unit 33 determines that the output difference among the first sensor pair 25A is larger than the output differences among the second sensor pair 25B and the third sensor pair 25C. Therefore, the first sensor pair 25A is identified as the sensor pair 25 with the largest output difference. The second identification unit 34 identifies the other sensor pairs 25 adjacent in the circumferential direction Dc to the first sensor pair 25A having the largest output difference: a second sensor pair (sensor pair on one side) 25B adjacent on one side Dc1 of the circumferential direction Dc, and a third sensor pair (sensor pair on the other side) 25C adjacent on the other side Dc2 of the circumferential direction Dc.

[0029] The flow direction estimation unit 35A sets the direction CL1 connecting the center C1 in the circumferential direction Dc of one temperature sensor 231a constituting the first sensor pair 25A having the largest output difference and the center C2 in the circumferential direction Dc of the other temperature sensor 231b as the reference flow direction H of the fluid. Furthermore, the flow direction estimation unit 35A calculates the inclination angle θ of the flow direction Df of the fluid with respect to the reference flow direction H, based on the output difference between the second sensor pair 25B and the third sensor pair 25C adjacent to the first sensor pair 25A in the circumferential direction Dc.

[0030] 6, the fluid flow direction Df is inclined at an inclination angle θ to one side Dc1 in the circumferential direction Dc with respect to the reference flow direction H of the fluid (the direction CL1 connecting the centers C1 and C2). In this case, the output difference of the second sensor pair 25B, which is adjacent to the first sensor pair 25A, which has the largest output difference, on one side Dc1 in the circumferential direction Dc, is larger than the output difference of the third sensor pair 25C, which is adjacent to the first sensor pair 25A on the other side Dc2 in the circumferential direction Dc. Note that as the inclination angle θ increases, the output difference of the second sensor pair 25B becomes larger relative to the output difference of the third sensor pair 25C.

[0031] The flow direction estimating unit 35A calculates the inclination angle θ of the fluid flow with respect to the reference flow direction H based on the difference between the output difference of the second sensor pair 25B and the output difference of the third sensor pair 25C.

[0032] In an embodiment of the present disclosure, the flow direction estimation unit 35A calculates the tilt angle θ based on the ratio of the output difference between the sensor pair 25 adjacent to the sensor pair 25 having the largest output difference on one side Dc1 of the circumferential direction Dc and the output difference between the sensor pair 25 adjacent to the sensor pair 25 on the other side Dc2 of the circumferential direction Dc.

[0033] Figure 7 shows an example of the distribution of the output difference ΔE1 in the first sensor pair 25A, the output difference ΔE2 in the second sensor pair 25B adjacent to the first sensor pair 25A on one side Dc1 of the circumferential direction Dc, and the output difference ΔE3 in the third sensor pair 25C adjacent to the first sensor pair 25A on the other side Dc2 of the circumferential direction Dc, depending on the inclination angle θ of the fluid flow direction Df in the example of Figure 6. As shown in Fig. 6, the six temperature sensors 23 of the outer peripheral sensor unit 22 are arranged at equal intervals of 60° in the circumferential direction Dc. Therefore, the inclination angle θ with respect to the reference flow direction H is less than ±30°. Within this range of the inclination angle θ, as shown in Fig. 7, the output difference ΔE1 of the first sensor pair 25A is greater than the output difference ΔE2 of the second sensor pair 25B and the output difference ΔE3 of the third sensor pair 25C. The output difference ΔE1 of the first sensor pair 25A is maximum when the inclination angle θ = 0° and decreases as the absolute value of the inclination angle θ increases. The output difference ΔE2 of the second sensor pair 25B and the output difference ΔE3 of the third sensor pair 25C are equivalent when the tilt angle θ = 0°. The output difference ΔE2 of the second sensor pair 25B increases as the tilt angle θ increases and decreases as the tilt angle θ decreases. The output difference ΔE3 of the third sensor pair 25C decreases as the tilt angle θ increases and increases as the tilt angle θ decreases. Furthermore, it has been confirmed through analysis, experiments, etc. that the sum of the output difference ΔE2 of the second sensor pair 25B and the output difference ΔE3 of the third sensor pair 25C is approximately constant regardless of the tilt angle θ.

[0034] The flow direction estimation unit 35A calculates the tilt angle θ using the following equation (1) based on a ratio ΔE2 / ΔE1 of the output difference ΔE2 in the second sensor pair 25B to the output difference ΔE1 in the first sensor pair 25A, and a ratio ΔE3 / ΔE1 of the output difference ΔE3 in the third sensor pair 25C to the output difference ΔE1 in the first sensor pair 25A. θ=(a / h)×{(ΔE2 / ΔE1-base) / (ΔE2 / ΔE1-base+ΔE3 / ΔE1-base)}-a / 2 ···(1) Here, a is the arrangement angle of the temperature sensors 23. When there are six temperature sensors as shown in FIG. 6, a = 360° / 6 = 360° = 60°. base is the value of the output difference ΔE3 between the third sensor pair 25C at point K1 where ΔE1 = ΔE2 in FIG. 7, or the value of the output difference ΔE2 between the second sensor pair 25B at point K2 where ΔE1 = ΔE3. When there are six temperature sensors 23, base = 0. h is an adjustment coefficient for the slope of the estimation function, which can be set arbitrarily to increase prediction accuracy. For example, the adjustment coefficient h can be determined from a graph of flow angle and output value obtained in a previous test, or can be set by approximating Equation (1) above with a cosine function. In this embodiment, for example, when the arrangement angle of the temperature sensors 23 is a = 60°, h = 1; when a = 45°, h = 0.95; and when a = 36°, h = 0.90. Then, when there are six temperature sensors as shown in FIG. 6, the above formula (1) becomes as follows: θ=60°×ΔE2 / (ΔE2+ΔE3)-30° In the above equation (1), for example, the output difference ΔE1 of the first sensor pair 25A may be approximated as cosθ, the output difference ΔE2 of the second sensor pair 25B as cos(θ-a), and the output difference ΔE2 of the third sensor pair 25C as cos(θ+a).

[0035] The flow direction estimating unit 35A estimates the flow direction Df of the fluid by correcting the reference flow direction H by the inclination angle θ calculated by the above equation (1).

[0036] As shown in Figure 8, when the fluid flow direction Df passes through the middle of two pairs of sensors 25 adjacent to each other in the circumferential direction Dc (for example, in the example of Figure 8, the first sensor pair 25A and the second sensor pair 25B), the output difference in the first sensor pair 25A and the output difference in the second sensor pair 25B are approximately equal. In such a case, the first identification unit 33 identifies two pairs of sensors, the first sensor pair 25A and the second sensor pair 25B, as the sensor pairs 25 having the largest output difference. In such a case, the flow direction estimation unit 35A estimates, as the fluid flow direction Df, the direction intermediate between the direction CL2 connecting the centers C3 and C4 of the temperature sensors 23 (temperature sensors 232a, 232b) of one of the identified two sensor pairs 25 (the first sensor pair 25A) and the direction CL1 connecting the temperature sensors 23 (temperature sensors 233a, 233b) of the other sensor pair 25 (the second sensor pair 25B).

[0037] The output unit 36 ​​outputs information about the fluid flow direction Df estimated by the flow direction estimation unit 35A to the outside. The output unit 36 ​​is a device capable of outputting information to the outside, such as a monitor, a display screen of a tablet terminal or smartphone, or a printer. The information about the fluid flow direction Df output by the output unit 36 ​​may be in various forms, such as numerical values, numerical information representing the fluid flow direction Df, text information, or graphic information such as arrows.

[0038] (sensor pre-conditioning) In the sensor 2 described above, any error in the output difference between the multiple sensor pairs 25 adversely affects the accuracy of estimating the fluid flow direction Df. For this reason, it is preferable to adjust the internal circuit resistance in advance between the multiple sensor pairs 25 that make up the sensor 2. The pair of temperature sensors 23 constituting each sensor pair 25 is configured by a bridge circuit R as shown in Fig. 9. This bridge circuit R includes variable resistors R1 and R2, fixed resistors R3 and R4, and an internal resistor R u , R d Here, variable resistors R1 and R2 are used to adjust the resistance in the bridge circuit R. The internal resistance R u , R d is the internal resistance of the pair of temperature sensors 23 of the sensor pair 25 themselves and the internal resistance of the substrate on which the temperature sensors 23 are provided.

[0039] When a sensor voltage E is applied to such a bridge circuit R, the output voltage of the bridge circuit R is determined by the variable resistor R1 and the internal resistor R. u and variable resistor R2, and internal resistance R d The potential difference (output difference) between point P between fixed resistors R3 and R4 is e and point Q between fixed resistors R3 and R4.

[0040] In such a bridge circuit R, the bridge output voltage e0 when there is no wind is expressed by the following equation (2).

number

number

number

[0041] Therefore, in order to pre-adjust the circuit internal resistance between the plurality of sensor pairs 25 that make up the sensor 2, in addition to the internal resistance of the temperature sensor 23, the internal resistance R u , R d Measure in advance. Then, in all of the plurality of sensor pairs 25, the variable resistor R1 and the internal resistor R u The sum of (R1+R u The resistance value of the variable resistor R1 is adjusted so that the resistance (V) of the variable resistor R1 is constant. Then, in each of the plurality of sensor pairs 25, R1+R u =R2+R d Adjust the variable resistor R2 so that In this way, the flow direction Df of the fluid is estimated using the pre-adjusted sensor 2.

[0042] (Processing Procedure) Next, the method S100A for estimating the fluid flow direction Df in the calculation device 3A as described above will be described. As shown in FIG. 10 , a method S100A for estimating a fluid flow direction Df according to an embodiment of the present disclosure mainly includes a step S101 for detecting a temperature, a step S102 for receiving a detection signal, a step S110 for setting a reference flow direction, a step S120A for calculating an inclination angle, a step S130 for setting a fluid flow direction between two sensor pairs, and a step S140 for outputting an estimation result of the fluid flow direction.

[0043] In step S101 of detecting temperature, the temperature sensor 23 of each sensor pair 25 detects the temperature of the fluid flow path 10. Each temperature sensor 23 outputs a potential value corresponding to the detected temperature as a detection signal. In step S102 of receiving the detection signals, the signal input unit 31 of the arithmetic device 3A receives the detection signals from the temperature sensors 23.

[0044] The reference flow direction setting step S110 includes step S111 of calculating the output difference, step S112 of identifying the sensor pair with the largest output difference, step S113 of determining the number of identified sensor pairs, and step S114 of setting the reference flow direction.

[0045] In step S111 of calculating the output difference, the output difference calculation unit 32 calculates the output difference between the potential value detected by one temperature sensor 23 and the potential value detected by the other temperature sensor 23 in each sensor pair 25.

[0046] In step S112 of identifying the sensor pair with the largest output difference, the first identifying unit 33 identifies the sensor pair 25 with the largest output difference among the three sensor pairs 25 (the first sensor pair 25A in the example of FIG. 6 ) based on the value of the output difference of each sensor pair 25 calculated in step S111. To do this, for example, the first identifying unit 33 calculates the difference between the output difference calculated for each of the multiple sensor pairs 25 and the output difference calculated for the other sensor pairs 25. Among the multiple sensor pairs 25, the sensor pair 25 whose difference between its output difference and the output differences of the other sensor pairs 25 is larger than a predetermined value is selected. As a result, if only one sensor pair 25 is selected, the selected sensor pair 25 is identified as the sensor pair 25 with the largest output difference. Furthermore, if two sensor pairs 25 are selected, these two sensor pairs 25 are identified as the sensor pair 25 with the largest output difference (the first sensor pair 25A and the second sensor pair 25B in the example of FIG. 8 ).

[0047] In step S113 for determining the number of identified sensor pairs, it is determined whether the number of sensor pairs identified in step S112 as the sensor pair 25 with the largest output difference is one or two. If the number of identified sensor pairs is one, proceed to step S114. If the number of identified sensor pairs is two, proceed to step S130.

[0048] In step S114 for setting the reference flow direction, the flow direction estimation unit 35A sets the direction connecting the two temperature sensors 23 of the sensor pair 25 with the largest output difference as the reference flow direction H of the fluid. The flow direction estimation unit 35A also identifies the reference flow direction H based on whether the output difference of the sensor pair 25 with the largest output difference is positive or negative. After setting the reference flow direction H, the process proceeds to step S120A for calculating the inclination angle.

[0049] The tilt angle calculation step S120A in the embodiment of the present disclosure includes a step S121 of identifying a pair of sensors adjacent in the circumferential direction, a step S122 of calculating the tilt angle of the fluid flow direction, and a step S123 of estimating the fluid flow direction.

[0050] In step S121 of identifying adjacent sensor pairs in the circumferential direction, the second identification unit 34 identifies other adjacent sensor pairs 25 on both sides of the sensor pair 25 with the largest output difference in the circumferential direction Dc (in the example of Figure 6, the second sensor pair 25B and the third sensor pair 25C). In step S122 of calculating the inclination angle of the fluid flow direction, the flow direction estimation unit 35A calculates the inclination angle θ using the above equation (1) based on the ratio of the output difference between the sensor pair 25 adjacent to the sensor pair 25 with the largest output difference on one side Dc1 of the circumferential direction Dc (in the example of Figure 6, the second sensor pair 25B) and the output difference between the sensor pair 25 adjacent to the sensor pair 25 on the other side Dc2 of the circumferential direction Dc (in the example of Figure 6, the third sensor pair 25C). In step S123 for estimating the flow direction of the fluid, the flow direction estimation unit 35A corrects the reference flow direction H set in step S114 using the inclination angle θ calculated in step S122, and estimates the flow direction Df of the fluid.

[0051] If the number of sensor pairs 25 identified as having the largest output difference in step S113 is two, step S130 is executed. In step S130 for setting the fluid flow direction between the two sensor pairs, as shown in Fig. 8, the flow direction estimation unit 35A estimates, as the fluid flow direction Df, the direction intermediate between the direction CL2 connecting the centers C3 and C4 of the temperature sensors 23 (temperature sensors 232a, 232b) of one of the identified sensor pairs 25 (the first sensor pair 25A in the example of Fig. 6) and the direction CL3 connecting the temperature sensors 23 (temperature sensors 233a, 233b) of the other sensor pair 25 (the second sensor pair 25B in the example of Fig. 6). In this case, it may be confirmed that the output difference of a sensor pair other than the two sensor pairs 25 identified as having the largest output difference (in the example of Figure 6, the third sensor pair 25C) is 0 (zero) or less than a preset threshold value.

[0052] Next, the process proceeds to step S140, where the estimated flow direction of the fluid is output. In step S140 of outputting the estimation result of the fluid flow direction, the estimation result of the fluid flow direction Df estimated in steps S123 and S130 is output to the outside by the output unit . In this way, an estimate of the fluid flow direction Df is made.

[0053] (Action and effect) In the fluid sensor system 1A, the calculation device 3A, and the flow direction estimation method S100A configured as described above, among three or more pairs of temperature sensors 23, the sensor pair 25 having the largest output difference between the output value corresponding to the temperature detected by one of the temperature sensors 23 in the sensor pair 25 and the output value corresponding to the temperature detected by the other temperature sensor 23 is identified, and other sensor pairs 25 adjacent to the identified sensor pair 25 in the circumferential direction Dc are identified, and the fluid flow direction Df is estimated based on the output difference in the sensor pair 25 having the largest output difference and the output difference in the other sensor pairs 25 adjacent to the identified sensor pair 25 in the circumferential direction Dc. With this configuration, among the three or more sensor pairs 25, the sensor pair 25 having the largest output difference between the output value corresponding to the temperature detected by one temperature sensor 23 and the output value corresponding to the temperature detected by the other temperature sensor 23 is identified. This reveals that the fluid flow direction Df overlaps with the portion of the sensor pair 25 with the largest output difference in the circumferential direction Dc centered on the heating element 21. Furthermore, the second identification unit 34 of the computing devices 3A and 3B identifies other sensor pairs 25 adjacent in the circumferential direction Dc to the sensor pair 25 identified as having the largest output difference. Furthermore, based on the output difference between the sensor pair 25 with the largest output difference and the output differences between the other sensor pairs 25 adjacent in the circumferential direction Dc, the inclination angle θ of the fluid flow direction Df with respect to the arrangement direction of the sensor pair 25 with the largest output difference can be estimated. In this manner, the fluid flow direction Df can be estimated. Therefore, even when the device is installed in a limited installation space, the fluid flow direction can be easily and accurately detected.

[0054] Furthermore, the direction connecting the two temperature sensors 23 of the sensor pair 25 with the largest output difference is defined as the reference flow direction H of the fluid, and the inclination angle θ of the fluid flow direction Df with respect to the reference flow direction H is calculated based on the output difference between other adjacent sensor pairs 25 in the circumferential direction Dc, thereby making it possible to easily estimate the fluid flow direction Df.

[0055] In addition, the tilt angle θ is calculated based on the ratio of the output difference between the sensor pair 25 adjacent to the sensor pair 25 on one side Dc1 of the circumferential direction Dc with respect to the sensor pair 25 having the largest output difference and the output difference between the sensor pair 25C adjacent to the sensor pair 25 on the other side Dc2 of the circumferential direction Dc. When the actual fluid flow direction Df is inclined with respect to the reference fluid flow direction H, which is set based on the direction connecting the two temperature sensors 23 of the sensor pair 25 with the largest output difference, the output difference of the sensor pair 25B adjacent to the sensor pair 25 with the largest output difference on one side Dc1 of the circumferential direction Dc differs from the output difference of the sensor pair 25C adjacent to the sensor pair 25 with the largest output difference on the other side Dc2 of the circumferential direction Dc. This allows the inclination angle θ of the actual fluid flow direction Df with respect to the reference fluid flow to be calculated based on the ratio of the output difference of the sensor pair 25B adjacent to the sensor pair 25B on one side Dc1 of the circumferential direction Dc to the output difference of the sensor pair 25C adjacent to the sensor pair 25C on the other side Dc2 of the circumferential direction Dc. In this way, the fluid flow direction Df can be detected easily and accurately.

[0056] Furthermore, when two pairs of sensors 25 with the largest output difference are identified, the direction intermediate between the direction connecting the temperature sensors 23 of one of the two identified sensor pairs 25 and the direction connecting the temperature sensors 23 of the other sensor pair 25 can be estimated as the fluid flow direction Df, thereby making it possible to easily and accurately detect the fluid flow direction Df.

[0057] Second Embodiment Next, a second embodiment of the fluid sensor system, the computing device, and the flow direction estimation method according to the present disclosure will be described. In the second embodiment described below, components common to the first embodiment will be denoted by the same reference numerals in the drawings, and their description will be omitted. In the second embodiment, the method of estimating the flow direction in the flow direction estimation unit 35B differs from that in the first embodiment. As shown in FIG. 1, the fluid sensor system 1B includes a sensor 2 and a computing device 3B. As shown in FIG. 5, the calculation device 3B includes a signal input unit 31, an output difference calculation unit 32, a first determination unit 33, a second determination unit , a flow direction estimation unit 35B, and an output unit .

[0058] Similar to the flow direction estimator 35A in the first embodiment, the flow direction estimator 35B sets the direction connecting the two temperature sensors 23 of the sensor pair 25 having the largest output difference as the reference flow direction H of the fluid (see FIG. 6). Furthermore, the flow direction estimator 35B calculates the inclination angle θ of the fluid flow with respect to the reference flow direction H based on the output differences of other sensor pairs 25 adjacent in the circumferential direction Dc to the sensor pair 25 having the largest output difference. The flow direction estimator 35B estimates the fluid flow direction Df based on the reference flow direction H and the calculated inclination angle θ.

[0059] In an embodiment of the present disclosure, the flow direction estimation unit 35B calculates the tilt angle θ by fitting to a predetermined periodic function based on the output difference of the sensor pair 25 having the largest output difference, the output difference of the adjacent sensor pair 25 on one side Dc1 of the circumferential direction Dc, and the output difference of the adjacent sensor pair 25 on the other side Dc2 of the circumferential direction Dc.

[0060] 11 shows an example of preset periodic functions FA, FB, and FC for the output difference of the first sensor pair 25A, the output difference of the second sensor pair 25B adjacent to the first sensor pair 25A on one side Dc1 in the circumferential direction Dc, and the output difference of the third sensor pair 25C adjacent to the first sensor pair 25A on the other side Dc2 in the circumferential direction Dc, in accordance with the inclination angle θ of the fluid flow direction Df in the example of FIG. Here, the periodic functions FA, FB, and FC may be a cosine function, a sinusoidal function, or the like. The periodic functions FA, FB, and FC correspond to the installation intervals of the multiple sensor pairs 25 in the circumferential direction Dc, and are set to shift the phase by, for example, 60°.

[0061] In the example of FIG. 11, a periodic function FA corresponding to the first sensor pair 25A, a periodic function FB corresponding to the second sensor pair 25B, and a periodic function FC corresponding to the third sensor pair 25C are expressed as, for example, the following equations (11), (12), and (13), respectively: FA=A·cosθ+B …(11) FB=A·cos(θ-60°)+B …(12) FC=A·cos(θ+60°)+B …(13) Here, A and B are fitting parameters (constants). A and B can also be variables.

[0062] The flow direction estimation unit 35B performs fitting on three values ​​calculated by the output difference calculation unit 32: the output difference ΔE1 of the first sensor pair 25A, the output difference ΔE2 of the second sensor pair 25B, and the output difference ΔE3 of the third sensor pair 25C, using the phase angle α of the periodic functions FA, FB, and FC as a variable. The flow direction estimation unit 35B uses, for example, a least-squares approximation method to fit the periodic functions FA, FB, and FC to the output difference ΔE1 of the first sensor pair 25A, the output difference ΔE2 of the second sensor pair 25B, and the output difference ΔE3 of the third sensor pair 25C. When the phase angle α is changed, the flow direction estimation unit 35B specifies the phase angle α so that the root-mean-square sum of the differences between the values ​​of the periodic functions FA, FB, and FC at a certain phase angle α and the output difference ΔE1 of the first sensor pair 25A, the output difference ΔE2 of the second sensor pair 25B, and the output difference ΔE3 of the third sensor pair 25C is minimized. The flow direction estimation unit 35B sets the phase angle α thus determined as the inclination angle θ of the fluid flow direction Df with respect to the reference flow direction H, and estimates the fluid flow direction Df. The method of iterative calculation performed during fitting in the flow direction estimation unit 35B will be described with reference to Fig. 11. First, three values ​​calculated by the output difference calculation unit 32, namely, the output difference ΔE1 of the first sensor pair 25A, the output difference ΔE2 of the second sensor pair 25B, and the output difference ΔE3 of the third sensor pair 25C, are represented by three points (three points arranged vertically in Fig. 11). For the values ​​of these points, an appropriate angle θ1 is determined, and the values ​​of the above equations (11) to (13) are calculated. Furthermore, the sum of squares of the deviations from these calculated values ​​is calculated. Next, the angle is changed in order from θ2 to θ3, and the angle at which the sum of squares of the deviations is minimized is iteratively searched for. In Fig. 11, the sum of squares of the deviations is minimized near θ3, so the calculation is terminated and α3 is set as the flow angle to be found.

[0063] (Processing Procedure) Next, the method S100B for estimating the fluid flow direction Df in the calculation device 3B as described above will be described. As shown in FIG. 12 , a method S100B for estimating a fluid flow direction Df according to an embodiment of the present disclosure mainly includes a step S101 for detecting a temperature, a step S102 for receiving a detection signal, a step S110 for setting a reference flow direction, a step S120B for calculating an inclination angle, a step S130 for setting a fluid flow direction between two sensor pairs, and a step S140 for outputting an estimation result of the fluid flow direction.

[0064] The tilt angle calculation step S120B in the embodiment of the present disclosure includes a step S121 of identifying pairs of sensors adjacent in the circumferential direction, a step S125 of setting a periodic function, a step S126 of calculating the tilt angle of the fluid flow direction, and a step S123 of estimating the fluid flow direction.

[0065] In step S121 of identifying adjacent sensor pairs in the circumferential direction, the second identification unit 34 identifies other adjacent sensor pairs 25 (in the example of Figure 6, the second sensor pair 25B and the third sensor pair 25C) on both sides of the sensor pair 25 with the largest output difference identified in step S112 in the circumferential direction Dc.

[0066] In step S125 of setting the periodic function, the flow direction estimation unit 35B sets the periodic function for performing the fitting process. The flow direction estimation unit 35B selects, for example, periodic functions FA, FB, and FC shown in the above equations (11), (12), and (13), and sets the reference flow direction H set according to the first sensor pair 25A having the largest output difference to a phase of 0°. At this time, the ranges of the fitting parameters A and B in the above equations (11), (12), and (13) may be limited as necessary based on information such as the position of the first sensor pair 25A and the output difference in the first sensor pair 25A.

[0067] In step S126, which calculates the inclination angle of the fluid flow direction, the flow direction estimation unit 35B uses the periodic functions set in step S125 to perform fitting on three values: the output difference ΔE1 of the first sensor pair 25A, the output difference ΔE2 of the second sensor pair 25B, and the output difference ΔE3 of the third sensor pair 25C. The flow direction estimation unit 35B performs fitting on the three values: the output difference ΔE1 of the first sensor pair 25A, the output difference ΔE2 of the second sensor pair 25B, and the output difference ΔE3 of the third sensor pair 25C, which are calculated by the output difference calculation unit 32, using, for example, least squares approximation, with the phase angle α in the periodic functions FA, FB, and FC as a variable. The flow direction estimation unit 35B determines the phase angle α so that the values ​​of the periodic functions FA, FB, and FC approximate the output difference ΔE1 of the first sensor pair 25A, the output difference ΔE2 of the second sensor pair 25B, and the output difference ΔE3 of the third sensor pair 25C. The flow direction estimation unit 35B calculates the phase angle α determined in this manner as the inclination angle θ of the fluid flow direction Df with respect to the reference flow direction H.

[0068] In step S123 of estimating the flow direction of the fluid, the flow direction estimation unit 35B corrects the reference flow direction H set in step S114 using the inclination angle θ (phase angle α) calculated in step S126, and estimates the flow direction Df of the fluid.

[0069] (Action and effect) In the fluid sensor system 1B, the calculation device 3B, and the flow direction estimation method S100B configured as described above, the output difference in the sensor pair 25 having the largest output difference, the output difference in the sensor pair 25 adjacent to the sensor pair 25 having the largest output difference on one side Dc1 of the circumferential direction Dc, and the output difference in the sensor pair 25 adjacent to the sensor pair 25 on the other side Dc2 of the circumferential direction Dc are used and fitted to a periodic function, thereby making it possible to easily and accurately detect the flow direction Df of the fluid.

[0070] Furthermore, similarly to the first embodiment, the sensor pair 25 with the largest output difference is identified, and other sensor pairs 25 adjacent to the identified sensor pair 25 in the circumferential direction Dc are identified, and the fluid flow direction Df is estimated based on the output difference of the sensor pair 25 with the largest output difference and the output differences of the other sensor pairs 25 adjacent to the identified sensor pair 25 in the circumferential direction Dc. This makes it possible to easily and accurately detect the fluid flow direction even when the sensor pair 25 is installed in a limited installation space.

[0071] (Modification of the second embodiment) In the second embodiment, a periodic function is used to calculate the tilt angle θ by fitting the output difference of the sensor pair 25 having the largest output difference to the output differences of the sensor pair 25 adjacent to the sensor pair 25 having the largest output difference on one side Dc1 in the circumferential direction Dc and the sensor pair 25 adjacent to the sensor pair 25 on the other side Dc2 in the circumferential direction Dc, but this is not limited to this. For example, instead of a periodic function, reference data may be used that is obtained by a previous experiment or the like, and that is the output difference in the sensor pair 25 that has the largest output difference when the phase angle α changes, the output difference in the adjacent sensor pair 25 on one side Dc1 in the circumferential direction Dc, and the output difference in the adjacent sensor pair 25 on the other side Dc2 in the circumferential direction Dc. Furthermore, the periodic function and the reference data may be corrected by machine learning.

[0072] (Other embodiments) The above describes in detail the embodiments of the present disclosure with reference to the drawings, but the specific configuration is not limited to this embodiment, and design changes and the like are also included within the scope that does not deviate from the gist of the present disclosure. In the above embodiment, three pairs of sensors 25 are provided, but this is not limited to this. For example, four pairs of sensors 25 (a total of eight temperature sensors 23) may be provided, as in the sensor 2 shown in FIG. 13.

[0073] <Additional Notes> The fluid sensor systems 1A and 1B, the arithmetic devices 3A and 3B, and the flow direction estimation methods S100A and S100B described in the respective embodiments can be understood, for example, as follows.

[0074] (1) A fluid sensor system 1A, 1B according to a first aspect includes a sensor 2 arranged on a flow path forming surface 10f that forms a flow path 10 of a fluid, and a calculation device 3A, 3B that estimates a flow direction Df of the fluid in the flow path 10 based on an output from the sensor 2. The sensor 2 is arranged on the flow path forming surface 10f and includes a heating element 21 that generates heat by power supplied from an external power source 24, and an outer peripheral sensor unit 22 that includes three or more pairs of sensors 25 each consisting of two temperature sensors 23 arranged opposite each other with the heating element 21 in between, spaced apart in a circumferential direction Dc so as to surround the periphery of the heating element 21. The calculation devices 3A, 3B The system is equipped with: a first identification unit 33 that identifies, among the three or more sensor pairs 25, the sensor pair 25 having the largest output difference between the output value corresponding to the temperature detected by one of the temperature sensors 23 of the sensor pair 25 and the output value corresponding to the temperature detected by the other temperature sensor 23; a second identification unit 34 that identifies other sensor pairs 25 adjacent to the identified sensor pair 25 in the circumferential direction Dc; and flow direction estimation units 35A, 35B that estimate the flow direction Df of the fluid based on the output difference of the sensor pair 25 having the largest output difference and the output difference of the other sensor pairs 25 adjacent to the sensor pair 25 in the circumferential direction Dc.

[0075] In the fluid sensor systems 1A and 1B, three or more pairs of sensors 25 are arranged around a heating element 21. The pairs of sensors 25 are arranged opposite each other with the heating element 21 in between. The upstream side in the fluid flow direction Df is less affected by the heat generated by the heating element 21, whereas the downstream side in the fluid flow direction Df experiences a rise in temperature due to the heat generated by the heating element 21. For this reason, when the arrangement direction of a sensor pair 25 consisting of two temperature sensors 23 is aligned along the fluid flow direction Df, the output difference between the output value corresponding to the temperature detected by the temperature sensor 23 located upstream in the fluid flow direction Df and the output value corresponding to the temperature detected by the temperature sensor 23 located downstream in the fluid flow direction Df becomes large. In contrast, when the arrangement direction of a sensor pair 25 consisting of two temperature sensors 23 diagonally intersects the fluid flow direction Df, the output difference between the output value corresponding to the temperature detected by the temperature sensor 23 located upstream in the fluid flow direction Df and the output value corresponding to the temperature detected by the temperature sensor 23 located downstream in the fluid flow direction Df becomes small. The first identification unit 33 of the calculation devices 3A, 3B identifies the sensor pair 25, of the three or more pairs of sensors 25, that has the largest output difference between the output value corresponding to the temperature detected by one temperature sensor 23 of the sensor pair 25 and the output value corresponding to the temperature detected by the other temperature sensor 23. This reveals that the fluid flow direction Df is close to the direction in which the two temperature sensors 23 of the sensor pair 25 with the largest output difference are arranged in the circumferential direction Dc centered on the heating element 21. Furthermore, the second identification unit 34 of the calculation devices 3A, 3B identifies other sensor pairs 25 adjacent in the circumferential direction Dc to the sensor pair 25 identified as having the largest output difference. Furthermore, based on the output difference between the sensor pair 25 with the largest output difference and the output differences between the other sensor pairs 25 adjacent in the circumferential direction Dc, it is possible to estimate the inclination angle θ of the fluid flow direction Df with respect to the arrangement direction of the sensor pair 25 with the largest output difference. In this way, it is possible to estimate the fluid flow direction Df. Therefore, it is possible to easily and accurately detect the fluid flow direction even when the sensor pair 25 is installed in a limited installation space.

[0076] (2) The fluid sensor systems 1A, 1B according to the second aspect are the fluid sensor systems 1A, 1B of (1), in which the flow direction estimation units 35A, 35B set the direction connecting the two temperature sensors 23 of the sensor pair 25 having the largest output difference as the reference flow direction H of the fluid, calculate the inclination angle θ of the fluid flow with respect to the reference flow direction H based on the output difference between other adjacent sensor pairs 25 in the circumferential direction Dc, and estimate the flow direction of the fluid based on the reference flow direction H and the inclination angle θ.

[0077] This allows the direction connecting the two temperature sensors 23 of the sensor pair 25 with the largest output difference to be defined as the reference flow direction H of the fluid, and the inclination angle θ of the fluid flow with respect to the reference flow direction H to be easily estimated by calculating the output difference between other adjacent sensor pairs 25 in the circumferential direction Dc.

[0078] (3) A fluid sensor system 1A according to a third aspect is the fluid sensor system 1A of (2), in which the flow direction estimation units 35A, 35B calculate the inclination angle θ based on the ratio of the output difference between the sensor pair 25 adjacent to the sensor pair 25 having the largest output difference on one side Dc1 of the circumferential direction Dc to the sensor pair 25 having the largest output difference, and the output difference between the sensor pair 25 adjacent to the sensor pair 25 having the largest output difference on the other side Dc2 of the circumferential direction Dc.

[0079] As a result, when the actual fluid flow direction Df is inclined with respect to the reference fluid flow direction H, which is set based on the direction connecting the two temperature sensors 23 of the sensor pair 25 with the largest output difference, the output difference of the sensor pair 25 adjacent to the sensor pair 25 with the largest output difference on one side Dc1 in the circumferential direction Dc is different from the output difference of the sensor pair 25 adjacent to the sensor pair 25 on the other side Dc2 in the circumferential direction Dc. As a result, the inclination angle θ of the actual fluid flow direction Df can be calculated as the inclination angle θ based on the ratio of the output difference of the sensor pair 25 adjacent to the sensor pair 25 on one side Dc1 in the circumferential direction Dc to the output difference of the sensor pair 25 adjacent to the sensor pair 25 on the other side Dc2 in the circumferential direction Dc. In this way, the fluid flow direction Df can be detected easily and accurately.

[0080] (4) A fluid sensor system 1B according to a fourth aspect is the fluid sensor system 1B of (2), wherein the flow direction estimation units 35A, 35B calculate the tilt angle θ by approximating with a predetermined periodic function the output difference in the sensor pair 25 having the largest output difference, the output difference in the sensor pair 25 adjacent to the sensor pair 25 having the largest output difference on one side Dc1 of the circumferential direction Dc, and the output difference in the sensor pair 25 adjacent to the sensor pair 25 having the largest output difference on the other side Dc2 of the circumferential direction Dc.

[0081] This makes it possible to easily and accurately detect the fluid flow direction Df by fitting the output difference of the sensor pair 25 with the largest output difference, the sensor pair 25 adjacent to the sensor pair 25 with the largest output difference on one side Dc1 of the circumferential direction Dc, and the sensor pair 25 adjacent to the sensor pair 25 on the other side Dc2 of the circumferential direction Dc to a periodic function.

[0082] (5) The fluid sensor system 1A, 1B according to the fifth aspect is any one of the fluid sensor systems 1A, 1B of (1) to (4), and when the first identification unit 33 identifies two pairs of sensor pairs 25 having the largest output difference, the flow direction estimation units 35A, 35B estimate the flow direction Df of the fluid to be a direction intermediate between the direction connecting the temperature sensors 23 of one of the two identified sensor pairs 25 and the direction connecting the temperature sensors 23 of the other of the two identified sensor pairs 25.

[0083] As a result, when two pairs of sensors 25 with the largest output difference are identified, the direction intermediate between the direction connecting the temperature sensors 23 of one of the two identified sensor pairs 25 and the direction connecting the temperature sensors 23 of the other sensor pair 25 can be estimated as the fluid flow direction Df, making it possible to easily and accurately detect the fluid flow direction Df.

[0084] (6) The arithmetic unit 3A, 3B according to a sixth aspect is a arithmetic unit 3A, 3B that is arranged on a flow path forming surface 10f that forms a flow path 10 of a fluid, and that estimates a flow direction Df of the fluid in the flow path 10 based on an output from a sensor 2 that includes an outer peripheral sensor unit 22 that includes three or more pairs of sensors 25 that are spaced apart in a circumferential direction Dc so as to surround the periphery of the heating element 21, the sensor pairs 25 being made up of a heating element 21 that generates heat by power supplied from an external power source 24 and two temperature sensors 23 that are arranged opposite each other with the heating element 21 in between. the sensor pair 25 adjacent in the circumferential direction Dc to the identified sensor pair 25; and flow direction estimation units 35A, 35B that estimate the flow direction Df of the fluid based on the output difference in the sensor pair 25 with the largest output difference and the output difference in the other sensor pair 25 adjacent in the circumferential direction Dc.

[0085] This identifies the sensor pair 25 that has the largest output difference between the output value corresponding to the temperature detected by one temperature sensor 23 of the sensor pair 25 and the output value corresponding to the temperature detected by the other temperature sensor 23, out of the three or more sensor pairs 25. This reveals that the fluid flow direction Df overlaps with the portion in the circumferential direction Dc around the heating element 21 where the two temperature sensors 23 of the pair with the largest output difference are arranged. Furthermore, the second identification unit 34 of the calculation devices 3A, 3B identifies other sensor pairs 25 adjacent in the circumferential direction Dc to the sensor pair 25 identified as having the largest output difference. Furthermore, based on the output difference between the sensor pair 25 with the largest output difference and the output differences between the other sensor pairs 25 adjacent in the circumferential direction Dc, it is possible to estimate the inclination angle θ of the fluid flow direction Df with respect to the arrangement direction of the sensor pair 25 with the largest output difference. In this way, it is possible to estimate the fluid flow direction Df. Therefore, it is possible to easily and accurately detect the fluid flow direction even when the sensor pair 25 is installed in a limited installation space.

[0086] (7) Flow direction estimation methods S100A and S100B according to a seventh aspect are flow direction estimation methods S100A and S100B for estimating a flow direction Df of a fluid in a flow path 10 based on an output from a sensor 2 that is arranged on a flow path forming surface 10f that forms the flow path 10 of the fluid, and that includes an outer peripheral sensor unit 22 that includes three or more pairs of sensors 25 that are spaced apart in a circumferential direction Dc so as to surround the periphery of the heating element 21, the sensor pairs 25 being made up of a heating element 21 that generates heat by power supplied from an external power source 24 and two temperature sensors 23 that are arranged opposite each other with the heating element 21 in between, 25, the sensor pair 25 having the largest output difference between the output value corresponding to the temperature detected by one of the temperature sensors 23 of the sensor pair 25 and the output value corresponding to the temperature detected by the other temperature sensor 23; step S121 identifying other sensor pairs 25 adjacent to the identified sensor pair 25 in the circumferential direction Dc; and step S123 estimating the flow direction Df of the fluid based on the output difference in the sensor pair 25 having the largest output difference and the output difference in the other sensor pairs 25 adjacent to the identified sensor pair 25 in the circumferential direction Dc.

[0087] This identifies the sensor pair 25 that has the largest output difference between the output value corresponding to the temperature detected by one temperature sensor 23 of the sensor pair 25 and the output value corresponding to the temperature detected by the other temperature sensor 23, out of the three or more sensor pairs 25. This reveals that the fluid flow direction Df overlaps with the portion in the circumferential direction Dc around the heating element 21 where the two temperature sensors 23 of the pair with the largest output difference are arranged. Furthermore, other sensor pairs 25 adjacent in the circumferential direction Dc to the sensor pair 25 identified as having the largest output difference are identified. Furthermore, based on the output difference of the sensor pair 25 with the largest output difference and the output differences of the other sensor pairs 25 adjacent in the circumferential direction Dc, it is possible to estimate the tilt angle θ of the fluid flow direction Df with respect to the arrangement direction of the sensor pair 25 with the largest output difference. In this way, it is possible to estimate the fluid flow direction Df. Therefore, it is possible to easily and accurately detect the fluid flow direction even when the sensor pair 25 is installed in a limited installation space. [Explanation of symbols]

[0088] 1A, 1B Fluid Sensor System 2 sensors 2f Sensor surface 3A, 3B calculation unit 10 Flow path 10f Flow path forming surface 11 Recess 20 Sensor substrate 21 Heating element 21r semicircular arc pattern 21j connection pattern 21t terminal pattern 22 Periphery sensor section 23 Temperature Sensor 23p sensor pattern 23t terminal pattern 24 External power supply 25 sensor pairs 25A First Sensor Pair 25B Second Sensor Pair 25C Third Sensor Pair 31 Signal input section 32 Output difference calculation unit 33 First Specific Department 34 Second Specific Section 35A, 35B Flow direction estimation section 36 Output section 61 CPU 62 ROM 63 RAM 64 HDD 65 signal transmission and reception モジュール 231a, 231b, 232a, 232b, 233a, 233b temperature control C1~C4 Center CL1, CL2, CL3 directions DC Zhou direction Dc1 One side Dc2 Other side Df direction ΔE, ΔE1, ΔE2, ΔE3 output difference α phase angle θ tilt angle

Claims

1. a sensor disposed on a flow path forming surface that forms a flow path of a fluid; a calculation device that estimates a flow direction of the fluid in the flow path based on an output from the sensor, The sensor a heating element disposed on the flow path forming surface and generating heat by power supplied from an external power source; a peripheral sensor unit including three or more pairs of sensors, each pair consisting of two temperature sensors arranged opposite each other with the heating element in between, spaced apart in the circumferential direction so as to surround the heating element, The computing device a first identification unit that identifies, from among the three or more pairs of sensors, a pair of sensors having the largest output difference between an output value corresponding to a temperature detected by one of the temperature sensors and an output value corresponding to a temperature detected by the other of the temperature sensors; a second identification unit that identifies two other pairs of sensors that are adjacent to the identified pair of sensors on both sides in the circumferential direction; a flow direction estimation unit that estimates a flow direction of the fluid based on an output difference in the sensor pair having the largest output difference and output differences in other sensor pairs adjacent to the sensor pair in the circumferential direction, The flow direction estimation unit a direction connecting the two temperature sensors of the sensor pair having the largest output difference is set as a reference flow direction of the fluid; calculating an inclination angle of the fluid flow with respect to the reference flow direction using a difference between outputs of two other pairs of sensors adjacent to each other on both sides in the circumferential direction; Estimating the flow direction of the fluid based on the reference flow direction and the tilt angle. Fluid sensor system.

2. The flow direction estimation unit an output difference between the pair of sensors adjacent to the pair of sensors having the largest output difference on a first side in the circumferential direction; The tilt angle is calculated based on a ratio of an output difference between the sensor pair having the largest output difference and the sensor pair adjacent to the sensor pair on the second side in the circumferential direction. The fluid sensor system of claim 1 .

3. The flow direction estimation unit an output difference in the sensor pair having the largest output difference; an output difference between the pair of sensors adjacent to the pair of sensors having the largest output difference on a first side in the circumferential direction; The tilt angle is calculated by approximating the output difference between the sensor pair having the largest output difference and the sensor pair adjacent to the sensor pair on the second side in the circumferential direction with a predetermined periodic function. The fluid sensor system of claim 1 .

4. When the first identifying unit identifies two pairs of sensors having the largest output difference, The flow direction estimation unit estimates, as the flow direction of the fluid, a direction intermediate between a direction connecting the temperature sensors of one of the identified two sensor pairs and a direction connecting the temperature sensors of the other sensor pair. The fluid sensor system according to claim 1 .

5. A computing device that estimates a flow direction of a fluid in a flow path based on an output from a sensor that is arranged on a flow path forming surface of the fluid, the sensor comprising: a heating element that generates heat by power supplied from an external power source; and an outer peripheral sensor unit that has three or more pairs of sensors spaced apart in a circumferential direction so as to surround a periphery of the heating element, the sensor pairs being made of two temperature sensors that are arranged opposite each other with the heating element between them, a first identification unit that identifies, from among the three or more pairs of sensors, a pair of sensors having the largest output difference between an output value corresponding to a temperature detected by one of the temperature sensors and an output value corresponding to a temperature detected by the other of the temperature sensors; a second identification unit that identifies two other pairs of sensors that are adjacent to the identified pair of sensors on both sides in the circumferential direction; a flow direction estimation unit that estimates a flow direction of the fluid based on an output difference in the sensor pair having the largest output difference and output differences in other sensor pairs adjacent to the sensor pair in the circumferential direction, The flow direction estimation unit a direction connecting the two temperature sensors of the sensor pair having the largest output difference is set as a reference flow direction of the fluid; calculating an inclination angle of the fluid flow with respect to the reference flow direction using a difference between outputs of two other pairs of sensors adjacent to each other on both sides in the circumferential direction; Estimating the flow direction of the fluid based on the reference flow direction and the tilt angle. Computing device.

6. A method for estimating a flow direction of a fluid in a flow path based on an output from a sensor including: a heating element that is disposed on a flow path forming surface that forms a flow path of the fluid, and that generates heat by power supplied from an external power source; and an outer peripheral sensor unit that includes three or more pairs of sensors, each pair consisting of two temperature sensors that are disposed opposite each other with the heating element between them, spaced apart in a circumferential direction so as to surround the periphery of the heating element, the method comprising: a step of identifying a sensor pair among the three or more sensor pairs that has the largest output difference between an output value corresponding to a temperature detected by one of the temperature sensors and an output value corresponding to a temperature detected by the other of the temperature sensors; Identifying two other pairs of sensors adjacent to the identified pair of sensors on both sides in the circumferential direction; estimating the flow direction of the fluid based on an output difference in the sensor pair having the largest output difference and output differences in other sensor pairs adjacent to the sensor pair in the circumferential direction, In the step of estimating the flow direction, a direction connecting the two temperature sensors of the sensor pair having the largest output difference is set as a reference flow direction of the fluid; calculating an inclination angle of the fluid flow with respect to the reference flow direction using a difference between outputs of two other pairs of sensors adjacent to each other on both sides in the circumferential direction; Estimating the flow direction of the fluid based on the reference flow direction and the tilt angle. A method for estimating flow direction.

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