Lubricant supply control method, lubricant supply control device, and program

By measuring impedance to derive oil film parameters and controlling lubricant supply, the method addresses precision issues in lubrication, reducing torque and waste while ensuring stable operation.

JP7848869B2Active Publication Date: 2026-04-21NSK LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
NSK LTD
Filing Date
2023-07-06
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Existing lubricant supply methods in bearing devices lack precision, leading to potential excess or deficiency, increased torque, and unnecessary consumption, which can cause damage and inefficiency.

Method used

A method and device that measure the impedance of an electrical circuit to derive oil film thickness and breakage rate, controlling lubricant supply based on these parameters to achieve a predetermined lubrication state, reducing torque and consumption.

Benefits of technology

Precise lubricant supply control reduces torque and minimizes lubricant waste, preventing damage and enhancing operational efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

Provided is a method for controlling supply of a lubricant to a device configured such that a plurality of portions are lubricated with the lubricant, wherein: the impedance of an electronic circuit including the plurality of portions is measured by applying alternating voltage to the electronic circuit; the oil film thickness and the oil film fracture rate between the plurality of portions are derived on the basis of the measured impedance; and the amount of supply of the lubricant to the device and / or the timing of the supply is controlled on the basis of the derived oil film thickness and the derived oil film fracture rate so that a lubrication state between the plurality of portions can be a prescribed lubrication state.
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Description

Technical Field

[0001] The present invention relates to a lubricant supply control method, a lubricant supply control device, and a program.

Background Art

[0002] Conventionally, in a bearing device, a configuration in which rotation is lubricated using a lubricant (for example, lubricating oil or grease) has been widely spread. Since the lubricant gradually wears out and deteriorates according to the operation of the bearing device, in order to stably drive the bearing device and prevent damage to the bearing device, the lubricant is appropriately supplied.

[0003] The supply timing and supply amount of the lubricant are affected by the state of the bearing device at a certain point in time. For example, in Patent Document 1, a configuration for controlling the timing of supplying grease to a bearing based on the integrated value of the rotational speed of the shaft and time is disclosed. Further, in Patent Document 2, a configuration using a DC power supply device in a method for monitoring the oil film state of a bearing device is disclosed.

Prior Art Documents

Patent Documents

[0004]

Patent Document 1

Patent Document 2

Summary of the Invention

Problems to be Solved by the Invention

[0005] For example, the method described in Patent Document 1 does not directly measure the oil film state, which means that there may be an excess or deficiency in the amount of lubricant supplied. Therefore, a more precise control method for lubricant supply is required to achieve more stable operation of the bearing device. Furthermore, if too much lubricant is supplied, the torque related to the operation of the bearing device will increase, hindering the reduction of torque in the device. In addition, supplying more lubricant than necessary results in the wasteful consumption of lubricant.

[0006] In view of the above issues, the present invention aims to provide a lubricant supply control method that enables lower torque and suppression of unnecessary lubricant consumption in devices using lubricants. [Means for solving the problem]

[0007] To solve the above problems, the present invention has the following configuration. That is, a method for controlling the supply of a lubricant to a device configured to lubricate multiple parts with a lubricant, A measurement step of measuring the impedance of an electrical circuit by applying an AC voltage to the electrical circuit composed of the aforementioned multiple parts, A derivation step in which the oil film thickness and oil film breakage rate between the plurality of parts are derived based on the impedance measured in the measurement step, A control step that controls at least one of the amount or timing of supply of the lubricant to the device, based on the oil film thickness and oil film rupture rate derived in the above derivation step, so that the lubrication state between the plurality of parts becomes a predetermined lubrication state. It holds.

[0008] Another embodiment of the present invention has the following configuration: a control device for supplying a lubricant to a device configured to lubricate multiple parts with a lubricant, A measuring means for measuring the impedance of an electrical circuit by applying an AC voltage to the electrical circuit composed of the aforementioned multiple parts, A derivation means for deriving the oil film thickness and oil film breakage rate between the plurality of parts based on the impedance measured by the measurement means, Based on the oil film thickness and oil film rupture rate derived by the derivation means, a control means controls at least one of the amount or timing of supply of the lubricant to the device so that the lubrication state between the plurality of parts becomes a predetermined lubrication state. It holds.

[0009] Another embodiment of the present invention has the following configuration: namely, a program, On the computer, A measurement step of measuring the impedance of an electrical circuit by applying an AC voltage to an electrical circuit composed of multiple parts lubricated by a lubricant inside the device, A derivation step in which the oil film thickness and oil film breakage rate between the plurality of parts are derived based on the impedance measured in the measurement step, A control step that controls at least one of the amount or timing of supply of the lubricant to the device, based on the oil film thickness and oil film rupture rate derived in the above derivation step, so that the lubrication state between the plurality of parts becomes a predetermined lubrication state. Make it run. [Effects of the Invention]

[0010] The present invention enables the supply of lubricants that reduce torque and suppress unnecessary lubricant consumption in devices using lubricants. [Brief explanation of the drawing]

[0011] [Figure 1] A schematic diagram showing an example of the device configuration related to one embodiment of the present invention. [Figure 2] A graph illustrating the measurement results related to one embodiment of the present invention. [Figure 3] A flowchart for controlling the supply of lubricant according to one embodiment of the present invention. [Modes for carrying out the invention]

[0012] Hereinafter, embodiments for implementing the present invention will be described with reference to the drawings and the like. Note that the embodiments described below are merely one embodiment for explaining the present invention, and are not intended to be construed as limiting the present invention. Also, not all the configurations described in each embodiment are essential configurations for solving the problems of the present invention. In each drawing, the same reference numerals are assigned to the same components to indicate the correspondence relationship.

[0013] <First Embodiment> Hereinafter, the first embodiment of the present invention will be described. In the following description, a ball bearing will be described as an example of the rolling bearing included in the bearing device, but the present invention is not limited thereto. The present invention is an apparatus that can utilize a lubricant and is also applicable to other configurations of apparatuses to which a lubricant can be appropriately supplied from the outside. For example, examples of the types of rolling bearings to which the present invention is applicable include deep groove ball bearings, angular ball bearings, tapered roller bearings, cylindrical roller bearings, self-aligning roller bearings, and the like. Furthermore, the present invention is also applicable to other rolling devices, such as spindles.

[0014] [Device Configuration] FIG. 1 is a schematic configuration diagram showing an example of the overall configuration of a system 1 capable of executing supply control of a lubricant according to the present embodiment. The system 1 includes a control device 100, a state detection device 200, a rolling device 300, and a lubricant supply device 400. The control device 100 controls the state detection device 200, the rolling device 300, and the lubricant supply device 400, and acquires various information from each device.

[0015] The state detection device 200 monitors the state of the rolling device 300 based on an instruction from the control device 100, and detects changes in the state and the like. In the present embodiment, the state detection device 200 detects the thickness of the oil film of the lubricant of the rolling device 300, the presence or absence of oil film breakage, etc. by an electrical method (more specifically, the electrical impedance method (EIM: Electrical Impedance Method)). Further, the state detection device 200 may include a temperature sensor that detects the temperature of the rolling device 300 and other sensors.

[0016] The rolling device 300 includes, for example, a rolling bearing (not shown) such as a ball bearing, and performs a rotational operation based on an instruction from the control device 100. The lubricant supply device 400 supplies lubricant to a predetermined part of the rolling device 300 based on an instruction from the control device 100. The lubricant supply device 400 may be configured to include, for example, a syringe pump.

[0017] The control device 100 includes a state detection device control unit 101, a rolling device control unit 102, a supply device control unit 103, a state monitoring unit 104, a state notification unit 105, and a history information management unit 106. The state detection device control unit 101 causes the state detection device 200 to monitor the state of the rolling device 300 and acquires the detection result. The rolling device control unit 102 controls the operation of the rolling device 300 by driving a motor (not shown) to rotate or stop, for example, the rotating shaft (not shown) of the rolling device 300. The supply device control unit 103 causes the lubricant supply device 400 to supply lubricant according to the state of the lubricant in the rolling device 300.

[0018] [[ID=

[0019] The control device 100 may be implemented as an information processing device comprising, for example, a control unit, a memory unit, and an output unit (not shown). The control unit may consist of a CPU (Central Processing Unit), an MPU (Micro Processing Unit), a DSP (Digital Single Processor), or a dedicated circuit. The memory unit consists of volatile and non-volatile storage media such as an HDD (Hard Disk Drive), ROM (Read Only Memory), or RAM (Random Access Memory), and is capable of inputting and outputting various types of information in response to instructions from the control unit. The output unit consists of a speaker, a light, or a display device such as a liquid crystal display, and outputs information to the operator in response to instructions from the control unit. The output unit may also be a network interface with communication capabilities, and may perform output operations by transmitting data to an external device (not shown) via a network (not shown).

[0020] In this embodiment, the control device 100 is shown as a single device that controls the state detection device 200, the rolling device 300, and the lubricant supply device 400, but it is not limited to this configuration. Separate control devices may be provided for each of the state detection device 200, the rolling device 300, and the lubricant supply device 400, and these may be configured to work in coordination.

[0021] In the rolling device 300, the rolling bearing rotatably supports the rotating shaft. The rotating shaft is supported by a housing that covers the outside of the rotating shaft via the rolling bearing, which is a rotating component. The rolling bearing comprises an outer ring (outer member), which is a fixed ring fitted inside the housing; an inner ring (inner member), which is a rotating ring fitted outside the rotating shaft; a plurality of balls (rollers), which are rolling elements, arranged between the inner ring and the outer ring; and a cage (not shown) that holds the rolling elements so that they can roll freely. Here, the outer ring is fixed, but a configuration in which the inner ring is fixed and the outer ring rotates is also possible. In addition, a seal, which is a peripheral member, may be provided to prevent the intrusion of dirt around the rolling elements and the leakage of lubricating oil. Inside the rolling bearing, friction between the inner ring and the rolling elements, and between the outer ring and the rolling elements is reduced by a predetermined lubrication method. The lubrication method is not particularly limited, but for example, grease lubrication or oil lubrication can be used and are appropriately supplied inside the rolling bearing by a process described later. There are no particular restrictions on the type of lubricant used.

[0022] Furthermore, in this embodiment, the rotating shaft of the rolling device 300 is connected to an LCR meter provided in the state detection device 200 via a rotating connector (not shown). The rotating connector may, for example, be made of carbon brushes, but is not limited thereto. The rolling bearings of the rolling device 300 are also electrically connected to the LCR meter, and in this case, the LCR meter also functions as an AC power source for the rolling bearings.

[0023] The state detection device control unit 101 of the control device 100, when detecting (monitoring) the state, instructs the LCR meter to input the angular frequency ω and AC voltage V of the AC power supply, and obtains the impedance Z and phase angle θ of the rolling device 300 from the LCR meter as output. The state monitoring unit 104 of the control device 100 then uses these values ​​to detect information regarding the state of the lubricant in the rolling device 300. The specific method for detecting the state of the lubricant used in the configuration of this embodiment (for example, the thickness of the oil film of the lubricant or whether or not the oil film has broken) can be the method described in Japanese Patent No. 7099551 by the present applicant, but is not particularly limited.

[0024] [Example of lubrication] An example of the lubrication state according to this embodiment will be explained using Figure 2. Figure 2(a) is a graph showing the relationship between the oil film thickness h [m] and the lubricant supply rate q [μl / min] per unit time. Figure 2(b) is a graph showing the relationship between the oil film breakage rate α [%] and the lubricant supply rate q [μl / min] per unit time. Figure 2(c) is a graph showing the relationship between the torque M [N·mm] for rotating the rotating shaft provided by the rolling device 300 and the lubricant supply rate q [μl / min] per unit time. The supply rate q [μl / min] on the horizontal axis in Figures 2(a) to 2(c) corresponds to each other.

[0025] The oil film thickness h and oil film fracture rate α used here are results obtained, for example, based on the conventional electrical impedance method described in Japanese Patent Publication No. 7099551.

[0026] Figures 2(a) to 2(c) will be explained by comparing them. In Figure 2(a), the dashed line indicates h c This indicates the theoretical oil film thickness, and corresponds to a state where further lubrication is not possible (hereinafter also referred to as the "first lubrication state"). Theoretical oil film thickness h c This is explained in detail, for example, in Hamrock BJ and Dowson D. Isothermal elastohydrodynamic lubrication of point contacts: part III - fully flooded results. ASME Trans J Lubricat Technol 1977; 99: 264-275. It is assumed that lubricant is supplied to the rolling gear 300 at a certain timing. The supply rate q shown on the horizontal axis of Figure 2 represents the supply rate, which indicates the amount of lubricant supplied per unit time.

[0027] As shown at points 203 and 204 in Figure 2(a), when lubricant is supplied, the oil film thickness h is equal to the theoretical oil film thickness h. cThis results in a state close to the above. In this case, as shown at points 213 and 214 in Figure 2(b), the oil film breakage rate α becomes 0, and contact between parts such as the inner ring and rolling elements is suppressed, reducing the possibility of breakage or other damage. On the other hand, as shown at points 223 and 224 in Figure 2(c), the torque M required to rotate the rotating shaft of the rolling bearing becomes a high value. In this case, for example, the load from the motor increases, and efficiency decreases.

[0028] On the other hand, if no lubricant is supplied (when the supply rate q is 0), as shown at point 201 in Figure 2(a), the oil film thickness h decreases, resulting in an increase in the oil film breakage rate α, as shown at point 211 in Figure 2(b). In this case, contact occurs between parts such as the inner ring and rolling elements, increasing the likelihood of abnormalities such as breakage. In this case, the torque M required to rotate the rotating shaft may also increase due to friction caused by contact between parts, as shown at point 221 in Figure 2(c).

[0029] Considering the above, in this embodiment, the fracture rate α is 0 or approximately 0, and the theoretical oil film thickness h c The supply of lubricant is controlled using a lubricant supply rate q such that the oil film thickness h becomes thinner than the theoretical oil film thickness h. For example, lubricant is supplied so that the oil film thickness h is as shown at point 202 in Figure 2(a) (hereinafter also referred to as the "second lubrication state"). At this time, as shown at point 222 in Figure 2(c), the oil film breaking rate α is approximately 0. Also, as shown at point 222 in Figure 2(c), the torque M is also reduced by the theoretical oil film thickness h. c The value is lower than that of points 223 and 224, which correspond to this point, and is even lower than that of point 221, where contact occurs between parts.

[0030] Although this explanation uses the example of adjusting the supply rate per unit time, similar control is possible even when adjusting the supply frequency for a given supply amount.

[0031] [Processing flow] Figure 3 is a flowchart of the lubricant supply control according to this embodiment. This process is executed by the control device 100, and may be realized, for example, by the control device 100 (not shown) reading a program for realizing the process according to this embodiment from a storage unit (not shown) and executing it. This process flow assumes that each part of the control device 100 shown in Figure 1 works together to perform the process, but here, for the sake of simplicity, the processing entity is described collectively as the control device 100.

[0032] In S301, the control device 100 causes the rolling device 300 to start rotating. At this time, it may be controlled so that a constant load (for example, an axial load) is applied. Note that the control of applying the load may be performed by a device other than the control device 100.

[0033] In S302, the control device 100 instructs the state detection device 200 to detect the state of the rolling device 300 and obtains the detection result. As described above, an AC voltage V with angular frequency ω is applied to the rolling device 300 using the AC power supply of the LCR meter, and impedance information (such as complex impedance Z and phase angle θ) is obtained as a result.

[0034] In S303, the control device 100 acquires operational information of the rolling device 300 at that time. The operational information may include, for example, the load applied to the rolling device 300, the rotational speed, the specifications of the rolling bearings constituting the rolling device 300, the temperature acquired by the temperature sensor, and the type and characteristics of the lubricant.

[0035] In S304, the control device 100 uses an electrical impedance method, such as the method described in Japanese Patent Publication No. 7099551, to derive the lubrication state by the lubricant at that time (oil film thickness h and fracture rate α, etc.) based on the information obtained in S302 and S303.

[0036] In S305, the control device 100 determines whether or not it has detected a rupture of the oil film based on the rupture rate α derived in S304. Detecting a rupture of the oil film here may mean, for example, that the rupture rate α is greater than a predetermined threshold. The threshold for the rupture rate α is predetermined and stored in a memory unit or the like. If a rupture of the oil film is detected (YES in S305), the control device 100 proceeds to S308. On the other hand, if a rupture of the oil film is not detected (NO in S305), the control device 100 proceeds to S306.

[0037] In S306, the control device 100 determines, based on the oil film thickness h derived in S304, whether the lubrication is excessive, i.e., whether the first lubrication state described above is in effect. This determination may be made based on whether the derived oil film thickness h falls within a predetermined range corresponding to the second lubrication state described above. As described above, if the oil film thickness h exceeds the set range, there is no problem with lubrication, but the torque M increases, which may hinder efficient operation. If the lubrication is excessive (YES in S306), the control device 100 returns to S302 and repeats the process. At this time, the control device 100 may continue the process in S302 after a certain waiting period (for example, 1 minute, 5 minutes, 10 minutes, etc.). If the lubrication is not excessive (NO in S306), the control device 100 proceeds to S307.

[0038] In S307, the control device 100 instructs the lubricant supply device 400 to supply lubricant to the rolling device 300, and performs lubricant supply control. In this supply control, a predetermined fixed supply amount may be used, or a value that varies according to the comparison result with the threshold in S305 and S306 may be used. After this process is completed, the process returns to S302 and is repeated. At this time, the control device 100 may continue the process of S302 after a certain waiting time (for example, 1 minute, 5 minutes, 10 minutes, etc.). In this process, if a fixed supply amount is used, the waiting time may be adjusted. For example, if the oil film thickness h derived in S304 is close to the first lubrication state, the waiting time may be made longer. That is, the derived oil film thickness h and the theoretical oil film thickness h c Based on the difference, the timing of the next measurement using the electrical impedance method may be controlled. This makes it possible to reduce the frequency of unnecessary measurements and derivation processes depending on the oil film thickness at a given time, thereby reducing the processing load.

[0039] In S308, the control device 100 controls the rotational movement of the rolling device 300 to stop. The system may be configured to stop the rotational movement if the oil film breakage rate α exceeds a certain threshold, even though the lubricant supply control is in place, as this indicates some kind of abnormality.

[0040] In S309, the control device 100 notifies, in a predetermined manner, that the rotational operation of the rolling device 300 has been stopped. Then, this processing flow is terminated.

[0041] In the processing flow shown in Figure 3, the rotational operation of the rolling device 300 is controlled to stop based on the oil film breaking rate α, but this is not the only option. Furthermore, the rotational operation of the rolling device 300 may also be controlled to stop if, for example, the lubricant supply device 400 becomes unable to supply lubricant (e.g., depletion of available lubricant or damage to the supply part).

[0042] Furthermore, while the above example demonstrates controlling lubricant supply using oil film thickness h and oil film breakage rate α, it is not limited to this. For example, theoretical oil film thickness h c Alternatively, supply control may be performed using the ratio of the oil film thickness h derived from the measured value. In this case as well, at least one of the lubricant supply amount or supply timing (supply frequency) should be controlled so that the ratio of the oil film thickness falls within a predetermined threshold range.

[0043] As described above, this embodiment enables more precise control of lubricant supply. As a result, it becomes possible to prevent seizing and damage to parts caused by insufficient lubricant in the rolling mechanism.

[0044] <Other Embodiments> Furthermore, in the present invention, the functions of one or more embodiments described above can also be realized by supplying a program or application to a system or device using a network or storage medium, and one or more processors in the computer of that system or device reading and executing the program.

[0045] Alternatively, it may be implemented by a circuit that performs one or more functions (for example, an ASIC (Application Specific Integrated Circuit) or an FPGA (Field Programmable Gate Array)).

[0046] Thus, the present invention is not limited to the embodiments described above. It is also intended and within the scope of protection to be provided for the combination of each configuration of the embodiments, as well as for modifications and applications by those skilled in the art based on the description in the specification and well-known technology.

[0047] As described above, the following matters are disclosed in this specification: (1) A method for controlling the supply of a lubricant to a device configured to lubricate multiple parts with the lubricant, A measurement step of measuring the impedance of an electrical circuit by applying an AC voltage to the electrical circuit composed of the aforementioned multiple parts, A derivation step in which the oil film thickness and oil film breakage rate between the plurality of parts are derived based on the impedance measured in the measurement step, A control step that controls at least one of the amount or timing of supply of the lubricant to the device, based on the oil film thickness and oil film rupture rate derived in the above derivation step, so that the lubrication state between the plurality of parts becomes a predetermined lubrication state. A supply control method characterized by having the following features. This configuration enables the supply of lubricants that reduce torque and suppress unnecessary lubricant consumption in devices that use lubricants.

[0048] (2) The supply control method according to (1), characterized in that the predetermined lubrication state is a state in which the rate of breakage of the oil film is 0 or approximately 0, and the oil film thickness is smaller than the theoretical oil film thickness between the plurality of parts. This configuration allows for controlled lubrication supply that suppresses oil film breakdown while achieving reduced torque.

[0049] (3) The supply control method according to (2), characterized in that, in the control step, the timing of the measurement in the next measurement step is controlled based on the difference between the oil film thickness derived in the derivation step and the theoretical oil film thickness. This configuration allows for control of the measurement timing based on the oil film thickness, thereby suppressing the processing load associated with the measurement.

[0050] (4) The supply control method according to any one of (1) to (3), characterized in that the device is a rolling device. This configuration allows for control of the lubricant supply to the rolling mechanism.

[0051] (5) The device is a bearing device, The aforementioned plurality of parts include an outer member, an inner member, and rolling elements. A supply control method according to any one of (1) to (3), characterized in that This configuration allows for the control of the lubricant supply around the rolling elements in bearing devices.

[0052] (6) A device for supplying a lubricant to a device configured to lubricate multiple parts with a lubricant, A measuring means for measuring the impedance of an electrical circuit by applying an AC voltage to the electrical circuit composed of the aforementioned multiple parts, A derivation means for deriving the oil film thickness and oil film breakage rate between the plurality of parts based on the impedance measured by the measurement means, Based on the oil film thickness and oil film rupture rate derived by the derivation means, a control means controls at least one of the amount or timing of supply of the lubricant to the device so that the lubrication state between the plurality of parts becomes a predetermined lubrication state. A supply control device characterized by having the following features. This configuration enables the supply of lubricants that reduce torque and suppress unnecessary lubricant consumption in devices that use lubricants.

[0053] (7) To the computer, A measurement step of measuring the impedance of an electrical circuit by applying an AC voltage to an electrical circuit composed of multiple parts lubricated by a lubricant inside the device, A derivation step in which the oil film thickness and oil film breakage rate between the plurality of parts are derived based on the impedance measured in the measurement step, A control step that controls at least one of the amount or timing of supply of the lubricant to the device, based on the oil film thickness and oil film rupture rate derived in the above derivation step, so that the lubrication state between the plurality of parts becomes a predetermined lubrication state. A program to execute. This configuration enables the supply of lubricants that reduce torque and suppress unnecessary lubricant consumption in devices that use lubricants.

[0054] Although various embodiments have been described above, it goes without saying that the present invention is not limited to these examples. It is clear to those skilled in the art that various modifications or alterations can be conceived within the scope of the claims, and these will naturally also fall within the technical scope of the present invention. Furthermore, the components in the above embodiments may be combined in any way without departing from the spirit of the invention.

[0055] This application is based on Japanese Patent Application No. 2022-109201 filed on July 6, 2022, and its contents are incorporated herein by reference. [Explanation of symbols]

[0056] 1 System 100 Control device 101 State detection device control unit 102 Rolling mechanism control unit 103 Supply device control unit 104 Status Monitoring Unit 105 Status Notification Unit 106 History Information Management Department 200 State detection device 300 Rolling mechanism 400 Lubricant supply device

Claims

1. A method for controlling the supply of a lubricant to a device configured to lubricate multiple parts with a lubricant, A measurement step of measuring the impedance of an electrical circuit by applying an AC voltage to the electrical circuit composed of the aforementioned multiple parts, A derivation step in which the oil film thickness and oil film breakage rate between the plurality of parts are derived based on the impedance measured in the measurement step, A control step that controls at least one of the amount or timing of supply of the lubricant to the device, based on the oil film thickness and oil film rupture rate derived in the derivation step, so that the lubrication state between the plurality of parts becomes a predetermined lubrication state. It has, The predetermined lubrication state is a state in which the rate of breakage of the oil film is 0 or approximately 0, and the oil film thickness is smaller than the theoretical oil film thickness between the plurality of parts. A supply control method characterized in that, in the control step, the timing of measurement in the next measurement step is controlled based on the difference between the oil film thickness derived in the derivation step and the theoretical oil film thickness.

2. The supply control method according to claim 1, characterized in that the device is a rolling device.

3. The aforementioned device is a bearing device, The aforementioned plurality of parts include an outer member, an inner member, and rolling elements. The supply control method according to claim 1 or 2, characterized by the above.

4. A control device for supplying a lubricant to a device configured to lubricate multiple parts with a lubricant, A measuring means for measuring the impedance of an electrical circuit by applying an AC voltage to the electrical circuit composed of the aforementioned multiple parts, A derivation means for deriving the oil film thickness and oil film breakage rate between the plurality of parts based on the impedance measured by the measurement means, Based on the oil film thickness and oil film rupture rate derived by the derivation means, a control means controls at least one of the amount or timing of supply of the lubricant to the device so that the lubrication state between the plurality of parts becomes a predetermined lubrication state. It has, The predetermined lubrication state is a state in which the rate of breakage of the oil film is 0 or approximately 0, and the oil film thickness is smaller than the theoretical oil film thickness between the plurality of parts. A supply control device characterized in that the control means controls the timing of the next measurement by the measurement means based on the difference between the oil film thickness derived by the derivation means and the theoretical oil film thickness.

5. On the computer, A measurement step of measuring the impedance of an electrical circuit by applying an AC voltage to an electrical circuit composed of multiple parts lubricated by a lubricant inside the device, A derivation step in which the oil film thickness and oil film breakage rate between the plurality of parts are derived based on the impedance measured in the measurement step, A control step that controls at least one of the amount or timing of supply of the lubricant to the device, based on the oil film thickness and oil film rupture rate derived in the derivation step, so that the lubrication state between the plurality of parts becomes a predetermined lubrication state. A program to execute, The predetermined lubrication state is a state in which the rate of breakage of the oil film is 0 or approximately 0, and the oil film thickness is smaller than the theoretical oil film thickness between the plurality of parts. A program that controls the timing of the measurement in the next measurement step based on the difference between the oil film thickness derived in the derivation step and the theoretical oil film thickness in the control step.

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