A method for quantitatively measuring a variable dependent on the current operating state of a fan, in particular a pressure change or pressure increase, and a method for measuring the pressure change or pressure increase of a fan

By measuring fan pressure rise through air volume flow rate and using calibration curves, the method addresses sensor complexity and position-dependent issues, achieving precise fan control and maintenance scheduling.

JP7777066B2Active Publication Date: 2025-11-27ZIEHL ABEGG AG
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Patent Information

Application Number
JP2022509197
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-08-17
Filing Date
2020-07-02
Publication Date
2025-11-27
Estimated Expiration
2040-07-02

AI Technical Summary

Technical Problem

Existing methods for measuring fan pressure change or pressure rise during operation are complex, require elaborate plumbing or wiring, and are position-dependent, leading to measurement inaccuracies and limitations.

Method used

Measure fan pressure change or pressure rise by determining the air volume flow rate or air mass flow rate, using the fan's rotational speed and stored calibration characteristic curves to calculate variables like pressure rise without external sensors, thereby eliminating measurement errors and sensor dependencies.

Benefits of technology

Accurately measures fan pressure rise and other operating variables with high precision, enabling effective control and maintenance scheduling without complex sensors, and allowing for direct measurement of air volume or mass flow rates.

✦ Generated by Eureka AI based on patent content.

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Abstract

A method for quantitatively measuring a variable dependent on the current operating state of a fan, such as a pressure rise, in which the variable dependent on the current operating state is measured by the fan's rotational speed when the fan's air volume flow rate or air mass flow rate is known.
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Description

[Technical Field]

[0001] The present invention relates to a method for quantitatively measuring a variable, such as a pressure change, in particular a pressure rise, that is dependent on the current operating state of a fan during operation, and to a fan in which a quantitative measurement of at least one variable, such as a pressure change, in particular a pressure rise, that is dependent on the current operating state is performed during operation. [Background technology]

[0002] Knowing the variables that depend on the current operating state can have many advantages. For example, a fan can be controlled and adjusted in response to one or more of these variables. The host system in which the fan operates may also be controlled and adjusted in response to one or more of these variables. Furthermore, these variables can be recorded, integrated over time, and used in a variety of ways.

[0003] When operating a fan, for example, it is desirable to know the current pressure rise. Knowledge of the current pressure rise can be used to advantage. This allows the user to monitor and check the current status of the air handling system, for example, the icing condition of the heat exchanger, the degree of clogging of the filter, the critical state of the damper, or the current wind load.

[0004] On the fan side, knowing the pressure rise makes it possible to monitor, for example, the pressure reserve of the fan, which may be damaged. It can be determined whether the fan is operating within an acceptable operating range and it can also be determined whether, for example, a so-called drum rotor is operating at too low a pressure.

[0005] It is known from the prior art to measure the pressure rise by means of a differential pressure sensor. This takes time and cannot usually be applied directly to the fan. In most cases, elaborate plumbing or electrical wiring is required.

[0006] Another disadvantage of measuring differential pressure with a differential pressure sensor is that the measured differential pressure depends on the location of the pressure sensor, which creates problems as to where and how to house or mount such a pressure sensor.

[0007] It is also already known from the prior art to measure the air volume flow rate using the shaft torque in the case of backward-curved radial impellers, to measure the air volume flow rate by measuring the differential pressure at the inlet nozzle, and to measure the air volume flow rate using an impeller anemometer or a thermal anemometer.

[0008] According to the above embodiment, the pressure sensor can be used to measure the pressure change or pressure rise of the fan, and in particular to monitor the speed or torque of the fan. This allows for an indirect measurement of filter clogging or icing.

[0009] Measurement of the fan's current sound emission can be used, for example, to control the fan so that it does not exceed some predetermined limit on sound emission.

[0010] Measurement of the fan's current drive torque can be used to control the fan so that it does not exceed a predetermined limit drive torque, for example to avoid overloading the drive motor.

[0011] A measurement of the current efficiency of a fan can be used to control a single fan or a system with multiple fans so that the highest possible efficiency is achieved.

[0012] With regard to prior art documents, reference is made, by way of example, to US Pat. No. 5,649,999. From this document a method for measuring the operating state of a range hood fan is known. The operating conditions are defined as a function of the speed and power consumption of the electric motor. However, measuring air volume flow using motor torque is not possible in a backward curved fan. [Prior art documents] [Patent documents]

[0013] [Patent Document 1] German Patent Application Publication No. 10 2013 204 137 A1 Summary of the Invention [Problem to be solved by the invention]

[0014] It is therefore an object of the present invention to define a method for quantitatively measuring a variable, such as a pressure change or pressure rise, that is dependent on the current operating state of a running fan. According to this method, variables dependent on the current operating state of the fan, such as pressure change or pressure rise, can be realized with sufficient accuracy without using complex sensors, such as pressure sensors, and without being limited to a particular fan. [Means for solving the problem]

[0015] This object is achieved by the features of claim 1 and, for the fan, by the features of claim 14. According to these features, if the air volume flow rate or air mass flow rate of the fan is known, a variable dependent on the current operating conditions, such as the pressure change or pressure rise, is quantitatively measured by the rotational speed of the fan.

[0016] With respect to current pressure rise measurements, the present invention is based on the fundamental concept / finding that a fan "definitely" measures the pressure change or pressure rise that occurs there, e.g., from applying the power required to overcome the pressure rise.

[0017] Advantageously, the user or a higher-level system can also read variables dependent on the measured current operating conditions, such as pressure change or pressure rise, and use this to control the fan or the entire ventilation system. It is also conceivable to use a variable dependent on the current operating state or its progression over time to clearly define the time for maintenance, cleaning or de-icing of the ventilation system or one or more components of such a ventilation system.

[0018] In one embodiment of the present invention, the fan can measure and output the back pressure exerted on it during a pressure rise without the use of a pressure sensor. This back pressure is measured at the fan, i.e., at the "source" where the pressure rise occurs or is generated by some means. Compared to using an external pressure sensor system, measurement errors and susceptibilities of the measuring device associated with the sensor system are eliminated. This is especially true with regard to the dependence of the measurement results on the selected position of each pressure sensor and on the current flow conditions on or around the pressure sensor. This includes, for example, separation and turbulence that may occur under certain operating conditions. The pressure sensor, wiring, and possible interference with data transmission between the pressure sensor and the electronic system are eliminated.

[0019] The features according to the invention have a high degree of accuracy and are advantageously based on measuring the volumetric or mass air flow rate of the fan by a method based on the analysis of the velocity field. Here, a variable dependent on the current operating state of the fan, for example the pressure rise of the fan, is measured taking into account the current speed, measured or estimated information on the current density, if necessary, and a characteristic curve stored in the fan.

[0020] For fans that can control the air volume flow rate or air mass flow rate to a constant value by default, there is no need to measure the air volume flow rate or air mass flow rate with a sensor, since the specific air volume flow rate or air mass flow rate can be used directly. On the other hand, fans with such constant air volume flow control or constant air mass flow control configurations are typically still based on sensors for directly or indirectly measuring the air volume flow or air mass flow.

[0021] In contrast to the prior art, measurements of variables dependent on the current operating state of the fan, such as pressure changes, in particular pressure rise, are now carried out near the fan, for example without the use of complex sensors, such as pressure sensors, sound sensors or torque sensors, and it is necessary to measure the current air volume flow rate upstream as accurately as possible. Only one sensor may be required to directly or indirectly measure air volume flow or air mass flow.

[0022] If the fan's volumetric or mass air flow rate is known, the speed is used to measure variables that depend on the current operating conditions, such as pressure rise, acoustic radiation, drive torque, drive power, efficiency, vibration, or axial thrust. The influence of the current ambient temperature or the current air density on the current air humidity may be taken into account. The air volume flow rate is previously measured using well-known methods with high accuracy. In order to measure a variable dependent on the current operating state, such as a pressure rise or a pressure change, at least one calibration characteristic curve must be stored for each variable dependent on the operating state of interest. The calibration characteristic curve is a functional relationship between the air volume flow rate or air mass flow rate and a variable that depends on the intended operating conditions (e.g., a specific speed or speed curve, a specific density). TIFF0007777066000001.tif8170 is shown. Equivalent characteristic curves may be used, for example to convert between static pressure rise and total pressure rise, if the air volume flow rate or air mass flow rate is known in any way.

[0023] The fan may control itself using a variable that is dependent on the calculated current operating state. For example, speed control as a function of the currently measured pressure rise is possible.

[0024] It is also conceivable that a pressure rise or another variable dependent on the current operating state can be read by a user or a higher-level system, so that the user or higher-level system can control or influence the fan speed or ventilation system based on this information.

[0025] Additionally, variables dependent on the current operating conditions, or their time history, may be stored and / or transmitted to the user or fan manufacturer to enable further optimization. This may be useful for basic fan selection or for fan design or engineering optimization.

[0026] In general, pressure rise / pressure change Δp may be understood as static pressure rise (total pressure vs. static pressure), total pressure rise (total pressure vs. total pressure), or another definition of pressure rise, as appropriate. Only the calibration characteristic curve that can be used to measure the desired pressure rise needs to be determined and stored in the fan.

[0027] In general, the method can be used to measure any variable that is dependent on current operating conditions, so long as the rate dependence of the variable of interest is at least substantially known. For example, the pressure rise (n 2 ), driving torque (n 2 ), acoustic radiation (n 4~6 axial thrust (roughly proportional to 2It is conceivable to measure a parameter n (roughly proportional to n) or a vibration variable (in which case the dependence on n needs to be determined specifically for the fan). Characteristic curve values ​​that depend on the derived current operating state can also be determined, for example, drive power can be determined using speed and drive torque, and efficiency can be determined using air volume flow rate, pressure rise and drive power. For each case, a corresponding calibration characteristic curve must be determined and stored in the fan.

[0028] There are various ways in which the features of the present invention can be advantageously embodied and further developed. For this purpose, reference is made on the one hand to the claims dependent on claim 1 and on the other hand to preferred exemplary embodiments of the method according to the invention or of a fan using the method, which are described below with reference to the drawings. With regard to the description of preferred exemplary embodiments of the invention based on the drawings, preferred embodiments and developments of these features are also generally described. [Brief explanation of the drawings]

[0029] [Figure 1] TIFF0007777066000002.tif18170 [Figure 2] FIG. 2 shows four curves of pressure rise Δp as a function of speed n for a fan at a particular fluid density and for four different flow rates. [Figure 3] TIFF0007777066000003.tif18170 DETAILED DESCRIPTION OF THE INVENTION

[0030] TIFF0007777066000004.tif7170 lines are shown for two different constant velocities n in each case. These characteristic curves are merely examples. These characteristic curves are determined based on experimental measurements of specific fans and may vary quantitatively and in terms of the shape of the curves from one fan to another. TIFF0007777066000005.tif8170p, which is often shown for a constant velocity, but may also be shown for a velocity curve of a defined variable. TIFF0007777066000006.tif18170It can be seen that this is a variable dependent on the state.

[0031] In this way, characteristic curves of variables dependent on other operating conditions may be measured and stored for particular speeds or particular speed curves. In this case, these other operating state dependent variables can also be measured with known air volume or mass flows by means of corresponding characteristic curves.

[0032] Showing TIFF0007777066000007.tif7170. Usually, to determine the pressure rise Δp of a fan, it is sufficient to measure only one characteristic curve for a particular speed. The rest can be obtained by conversion, as is done in this example. Here, the similarity law of the fixed fan geometry is used, and the For TIFF0007777066000008.tif15170 and a known velocity n, it can be measured as follows: 1. From the stored calibration characteristic curve (e.g., calibration characteristic curve for n_calibration = 1800 rpm, current speed = 2200 rpm), the characteristic curve for the current speed n (e.g., Find the intersection with the line in TIFF0007777066000009.tif13170, 3. Read the current pressure rise Δp at the intersection point.

[0033] Additionally, the effect of density may be taken into account, with the pressure rise being proportional to the density. For this purpose, it is necessary to determine or estimate the ratio of the current density to the density corresponding to the calibration characteristic curve.

[0034] In this way, other operating state dependent variables may also be measured, in particular the air volume or mass flow rate and the current speed. All that needs to be stored is the calibration characteristic curve that allows the desired target value to be calculated. It should be noted that different variables of interest have different dependencies on the rate n, and these dependencies must be taken into account separately.

[0035] In practice, the pressure rise or other operating condition dependent variables of the fan may be affected by the fan's installation environment. When measuring the pressure rise or another operating state dependent variable, it is advantageous to take into account a correction factor or correction function that depends on the installation of the fan. Alternatively, a calibration characteristic curve may be measured in an installation or in a configuration that models the installation, stored in the fan, and used to measure variables that depend on the operating conditions. To achieve the most accurate measurement of variables dependent on the current operating state, it is necessary to TIFF0007777066000010.tif19170 Relatively large errors in the numbers can already occur. The accuracy of the air volume flow / air mass flow measurement is preferably within 5% deviation from the actual value, and in the case of special accuracy requirements, the accuracy of the current air volume flow / air mass flow is preferably within 2% deviation from the actual value. Such high accuracy requirements for air volume flow / air mass flow measurement have proven to be met in particular using methods based on the analysis of the flow velocity field at suitable points in the fan region. As an example, such a method is based on the velocity measurement of an impeller anemometer.

[0036] TIFF0007777066000011.tif9170Time averaging of variables dependent on operating conditions over a period of a few seconds, for example 10 seconds or less, has also proven advantageous.

[0037] FIG. 2 shows the pressure rise Δp as a function of speed n for a particular exemplary fan. Such a variable can be derived from only a known calibration characteristic curve, similar to that described in FIG. 1, and the known rate dependence of the variable of interest, in this case the pressure rise Δp. TIFF0007777066000013.tif7170. In this case too, it is necessary to correct the pressure rise taking into account the air density in the same way as in Figure 1.

[0038] This is done using TIFF0007777066000014.tif13170. TIFF0007777066000015.tif8170Measured by known methods. Density correction of the pressure rise Δp is no longer necessary. The calibration characteristic curve TIFF0007777066000016.tif8170 may be saved in the fan. The method for measuring mass air flow is substantially similar to the method for measuring volumetric air flow. In addition to the meter velocity, the current air density must also be measured or estimated, and the current air density must be included in the calculation of the air mass flow rate.

[0039] A graph similar to that shown in FIG. 2 may also be plotted for variables of interest that depend on operating conditions other than pressure rise Δp. It should be taken into account that the velocity dependence is of different nature for different objects. In many cases, the speed dependence can be derived from general laws for fans, for example the pressure rise, drive torque or axial thrust is proportional to the square of the speed, using an approximation. Air volume or mass flow rate must always be linearly scaled with velocity. The acoustic power level or sound pressure is proportional to the fourth to sixth power of the rotational speed. Furthermore, the derived target variables may consist of two or more target variables. For variables of interest whose speed dependence cannot be derived from a general law (for fans), the speed dependence may be estimated based on testing or simulation.

[0040] TIFF0007777066000018.tif7169 A perspective view of one embodiment of a fan 1, in which measurements of variables dependent on the current operating conditions are made, and a cross-sectional view taken along a plane passing through the axis of rotation of the impeller 3. The volume flow measuring wheel 2 is composed of a hub 7 and blades 6 attached to it. The volume flow measuring wheel 2 and its attachment to the inlet-side configuration, in this case the inlet-side grid 26, are clearly shown. The shaft 13 on which the volume flow measuring wheel 2 is mounted is attached via a mounting area 31 to the central area 30 of the inlet grid 26 .

[0041] The volume flow measuring wheel 2 is mounted on the shaft 13 using bearings, and in the embodiment example, two bearings (not shown) are provided. In the volume flow measuring wheel 2, the bearings are inserted in receiving areas 20, which are provided for this purpose in the hub 7. In this way, the volume flow measuring wheel 2 can rotate freely relative to the inlet grid 26 and independently of the rotor 11 of the motor 4 which drives the impeller 3 of the fan 1 . TIFF0007777066000019.tif8170 can be estimated with accuracy.

[0042] The impeller 3 of the fan 1 is attached to the rotor 11 of the motor 4 by means of a mounting element 15 which is designed as a sheet metal disc which is cast into the impeller 3 and pressed onto the rotor 11 . Speed ​​n of volume flow measuring wheel 2 Ane By measuring and estimating the impeller speed n TIFF0007777066000020.tif7170.

[0043] TIFF0007777066000021.tif7170 and in this embodiment, as explained with reference to FIGS. 1 and 2, a variable dependent on the current operating state, for example, the pressure rise Δp, is measured based on this. In particular, the speed n of the impeller 3, which is formed by the cover ring 8, the hub ring 10 and the impeller blades 9 extending therebetween, and therefore the speed n of the motor 4, which is formed by the stator 12 and the rotor 11, must be known. This can be easily measured in the motor 4. A temperature or humidity sensor may be used to measure the current density of the medium being transported by the pump. Alternatively, the density may simply be estimated or supplied to the motor 4 via an interface from a higher-level system.

[0044] Advantageously, the motor 4 further comprises an interface for transmitting at least one variable dependent on the current state to a higher-level system. It is further advantageous if the time history of one or more state-dependent variables may be stored in the motor 4 with a suitable time resolution and read out as required.

[0045] Please note that for the sake of completeness, not all components of fan 1 are depicted in FIG. In particular, the motor mounting, which attaches the stator 11 of the motor 4 to, for example, the nozzle plate 29, is not shown for the sake of clarity. The fan 1 may include many other components not listed. [Explanation of symbols]

[0046] 1. Fan 2. Volume flow measuring wheel 3. Fan impeller 4. Motor 5. Inlet nozzle 6. Blades of the volumetric flow measuring wheel 7. Hub of volumetric flow measuring wheel 8. Impeller covering 9. Impeller blades 10. Impeller hub ring 11. Motor rotor 12. Motor stator 13. Volume flow measuring wheel bearing shaft 15. Mounting member for impeller on motor 20....Mounting of volume flow measuring wheel for bearing 26 Inlet grid 29 Nozzle plate 30...Central region of the inlet grid 31....Shaft receiving area in the inlet grid

Claims

1. A method for quantitatively measuring a variable dependent on a current operating state of a fan by measuring the air volume flow rate of the fan using a volume flow rate measuring wheel attached to an inlet grid of the fan and consisting of a hub and blades attached to the hub, and the rotational speed of the fan, comprising: When the air volume flow rate and the rotational speed are known, the variable dependent on the operating state is calculated by calculating at least one characteristic curve for the current rotational speed based on stored calibration characteristic curves, determining the intersection point between the calculated characteristic curve for the current rotational speed and a line of a currently measured constant air volume flow rate, and determining or reading the intersection point; A method of measuring a variable dependent on said operating conditions using a correction factor or function that takes into account the installation and / or environment of said fan.

2. 2. The method of claim 1, wherein the air volume flow rate is pre-measured using an impeller anemometer.

3. a calibration characteristic curve is stored in said fan for a particular speed or a particular speed curve, optionally for a particular air density, 3. The method of claim 1 or claim 2, wherein the calibration characteristic curve shows a functional relationship between air volume flow rate and a variable dependent on operating conditions.

4. Method according to any one of claims 1 to 3, characterized in that the influence of the current air density is taken into account.

5. The method according to any one of claims 1 to 3, characterized in that the current air density is measured, calculated or estimated.

6. 6. A method according to claim 5, characterized in that in order to take the air density into account, the ratio of the current air density to the air density corresponding to the stored calibration characteristic curve is determined or estimated.

7. A calibration characteristic curve is used to measure a variable dependent on the operating conditions; 7. The method according to claim 1, wherein the calibration characteristic curve is obtained and stored in the fan in an installation situation or in a configuration that models or simulates an installation situation.

8. 8. A method according to any one of claims 1 to 7, characterized in that the fan is controlled or self-regulated using a variable dependent on one or more measured operating conditions.

9. 9. The method of claim 8, wherein the self-control comprises speed control as a function of a variable dependent on an operating condition or conditions.

10. A variable dependent on one or more operating states is read by a user or a higher-level system; The method according to any one of claims 1 to 9, characterized in that the user or the higher-level system controls or influences the fan speed or ventilation system based on a variable dependent on the operating state or states.

11. 11. The method according to claim 1, further comprising storing the variables dependent on the operating state or states and / or the time course of the variables dependent on the operating state or states and / or transferring the variables to a user or a fan manufacturer for performing an optimization.

12. In a fan for quantitatively measuring a variable dependent on one or more operating conditions, a volume flow measuring wheel attached to an inlet side grid of the fan and configured with a hub and blades attached to the hub; Quantitatively measuring at least one variable dependent on a current operating state by the volumetric air flow rate of the fan measured by the volumetric flow measuring wheel and the rotational speed of the fan; When the air volume flow rate and the rotational speed are known, the variable dependent on the operating state is calculated by calculating at least one characteristic curve for the current rotational speed based on stored calibration characteristic curves, determining the intersection point between the calculated characteristic curve for the current rotational speed and a line of a currently measured constant air volume flow rate, and determining or reading the intersection point; A fan that measures a variable dependent on said operating conditions using a correction factor or function that takes into account the installation and / or environment of said fan.

Citation Information

Patent Citations

  • Flow detection sensor and smoke purifying and filtering system with same

    CN103452887A

  • Method for determining the operating state of a cooker hood arrangement

    DE102013204137A1

  • Method and system for automatically adjusting the operation of a fan and a computer program implementing the method

    EP2799789A1

  • Air quantity control method for air blowing / exhausting equipment

    JP1987294797A

  • Dc fan motor whose air flow rate is controlled constantly

    JP1994335280A