Cylinder block and hydraulic device equipped with same
The cylinder block's detectable portions facilitate signal-based compatibility verification, ensuring hydraulic systems operate correctly by identifying and adapting to compatible or non-compatible cylinder blocks.
Patent Information
- Application Number
- JP2021182883
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-11-09
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2041-11-09
AI Technical Summary
The challenge lies in determining whether a cylinder block used in a hydraulic system is compatible or non-compatible, as using a non-compatible cylinder block can lead to functional issues in the hydraulic system.
The cylinder block is designed with detectable portions on its outer peripheral surface, which output signals at specific time intervals, allowing sensors to differentiate between compatible and non-compatible products through signal analysis.
This approach enables accurate determination of the cylinder block's compatibility, ensuring proper system function by limiting or adjusting output when non-compatible blocks are used.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a cylinder block in which a plurality of cylinder chambers are formed, and a hydraulic device including the cylinder block. [Background technology]
[0002] Known hydraulic devices include an axial pump and an axial motor, as described in Patent Document 1. Both the axial pump and the axial motor include a cylinder block. The cylinder block of the axial pump and the axial motor is replaced depending on the frequency of use, cumulative time, etc. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2015-212522 Summary of the Invention [Problem to be solved by the invention]
[0004] When replacing a cylinder block, it is necessary to use a cylinder block that is compatible with the hydraulic system, a so-called compatible product (e.g., a genuine product). However, there are also non-compatible cylinder blocks that are manufactured to be compatible for installation. If a non-compatible product is used in a hydraulic system, problems may occur, such as the hydraulic system not being able to achieve the desired function. Therefore, there is a need to be able to determine whether the cylinder block being used is a compatible product or a non-compatible product.
[0005] SUMMARY OF THE INVENTION It is therefore an object of the present invention to provide a cylinder block that can be judged as being conforming or not, and a hydraulic device including the cylinder block. [Means for solving the problem]
[0006] The cylinder block of the first invention comprises a cylinder block body in which a plurality of cylinder chambers are formed around a rotation axis, a plurality of first detectable portions formed on the outer peripheral surface of the cylinder block body at a predetermined first interval in the circumferential direction from each other, and at least one second detectable portion formed on the outer peripheral surface of the cylinder block body at a second interval in the circumferential direction from adjacent first detectable portions that is different from the first interval.
[0007] According to the first aspect of the present invention, by detecting the first and second detection portions as the cylinder block rotates, a first signal is output at a time interval corresponding to the first interval, and a second signal is output at a time interval corresponding to the second interval. Then, by using the first and second signals output at different time intervals, it can be determined whether the cylinder block is a conforming product.
[0008] The hydraulic device of the present invention comprises the cylinder block described above, a casing that houses and rotatably supports the cylinder block, pistons that are inserted into each of the multiple cylinder chambers of the cylinder block so that they can move back and forth, a linkage mechanism that causes the pistons to move back and forth in conjunction with the rotation of the cylinder block, and sensors that are provided at positions corresponding to the first detectable portion and the second detectable portion and that output a first signal and a second signal, respectively, when the first detectable portion and the second detectable portion pass by as the cylinder block rotates.
[0009] According to the present invention, when the cylinder block rotates, the first detection portion and the second detection portion are detected, and the sensors output a first signal at a time interval corresponding to the first interval and a second signal at a time interval corresponding to the second interval.The first and second signals output at different time intervals can be used to determine whether the cylinder block is a conforming product.
[0010] The cylinder block of the second invention comprises a cylinder block main body in which a plurality of cylinder chambers are formed around a rotation axis, and N-1 first detectable portions formed on the outer peripheral surface of the cylinder block main body, and the first detectable portions are respectively arranged at N-1 positions among the positions obtained by dividing the outer peripheral surface of the cylinder block main body into N equal parts, excluding one remaining position.
[0011] According to the second aspect of the present invention, since there are no first detectable portions at the remaining position, detecting the first detectable portions as the cylinder block rotates results in the following: The time interval between first signals output from two first detectable portions that are adjacent in the rotational direction to the remaining position is different from the time interval between first signals detected elsewhere. By varying the time intervals at which the signals are output in this way, it is possible to determine whether the cylinder block is a conforming product.
[0012] The cylinder block of the third invention comprises a cylinder block main body in which a plurality of cylinder chambers are formed around a rotation axis, N-2 first detectable portions formed on the outer peripheral surface of the cylinder block main body, and second detectable portions formed on the outer peripheral surface of the cylinder block main body, wherein the first detectable portions are respectively arranged at any of N-2 positions among N equal divisions of the outer peripheral surface of the cylinder block main body, and the second detectable portion is arranged at a position shifted from the remaining two remaining positions among the N equal divisions.
[0013] According to the third aspect of the present invention, since the second detection target is located at a position shifted from the remaining position, when the first detection target and the second detection target are detected as the cylinder block rotates, the time intervals at which the first signal and the second signal are output can be made different, and therefore, by using the first signal and the second signal, it can be determined whether the cylinder block is a conforming product. [Effects of the Invention]
[0014] According to the first to third aspects of the present invention, it is possible to determine whether or not the cylinder block is a conforming product. [Brief explanation of the drawings]
[0015] [Figure 1] 1 is a cross-sectional view showing a hydraulic device including a cylinder block according to a first embodiment of the present invention. [Figure 2] 2 is a cross-sectional view showing the cylinder block of the hydraulic pressure device of FIG. 1 taken along line II-II. [Figure 3] FIG. 2 is a front view showing a cylinder block of the hydraulic device of FIG. [Figure 4] 2 is a graph showing output results from a sensor in the hydraulic device of FIG. 1. [Figure 5] FIG. 2 is a block diagram relating to a control device for the hydraulic device of FIG. [Figure 6] 5 is a graph showing the analysis results when the output results of FIG. 4 are subjected to FFT calculation processing. [Figure 7] FIG. 4 is a cross-sectional view showing a cylinder block according to a second embodiment of the present invention. [Figure 8] FIG. 10 is a cross-sectional view showing a cylinder block according to a third embodiment of the present invention. [Figure 9] 9 is a graph showing the analysis results when FFT calculation is performed on the output results when the cylinder block of FIG. 8 is used. [Figure 10] FIG. 10 is a cross-sectional view showing a cylinder block according to a fourth embodiment of the present invention. [Figure 11] 11 is a graph showing the analysis results when the output results when the cylinder block of FIG. 10 is used are subjected to FFT calculation processing. [Figure 12] FIG. 10 is a cross-sectional view showing a cylinder block according to a fifth embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0016] Hereinafter, cylinder blocks 1, 1A-1C according to first to fourth embodiments of the present invention and a hydraulic device 2 including the same will be described with reference to the drawings. Note that the concepts of directions used in the following description are used for convenience of explanation and do not limit the orientation of the configuration of the invention to those directions. Furthermore, the cylinder blocks 1, 1A-1C and the hydraulic device 2 including the same described below are merely one embodiment of the present invention. Therefore, the present invention is not limited to the embodiments, and additions, deletions, and modifications are possible within the scope of the invention.
[0017] [First embodiment] <Hydraulic equipment> The hydraulic device 2 shown in FIG. 1 is provided in various machines, such as construction machines such as excavators and cranes, industrial machines such as forklifts, agricultural machines such as tractors, and hydraulic machines such as presses. The hydraulic device 2 functions as at least one of a hydraulic pump and a hydraulic motor. In this embodiment, the hydraulic device 2 is a hydraulic pump and a variable displacement swash plate pump. The hydraulic device 2 includes a casing 11, a cylinder block 1, a plurality of pistons 12, a swash plate 13, a regulator 14, a valve plate 15, and a sensor 16. The hydraulic device 2 may be a fixed displacement swash plate pump or a bent-axis pump. The hydraulic device 2 can discharge hydraulic fluid by being driven by a drive source (e.g., an engine E, an electric motor, or both; in this embodiment, the engine E). The hydraulic device 2, together with a control device 4, which will be described in detail later, constitutes a hydraulic system 3.
[0018] <Casing> The casing 11 accommodates the cylinder block 1 and other components. An opening 11a is formed in the casing 11 at one end in the axial direction along which a predetermined axis L1 extends. A suction passage 11b and a discharge passage 11c are formed in the casing 11 at the other end in the axial direction.
[0019] <Cylinder block> The cylinder block 1 includes a cylinder block main body 21, a plurality of first detectable portions 22, and a plurality of second detectable portions 23. The cylinder block main body 21 is housed in a casing 11. The cylinder block main body 21 is formed in a roughly cylindrical shape. A rotary shaft 24 is inserted through the cylinder block main body 21 along its axis so as not to rotate relative to the cylinder block main body 21. The rotary shaft 24 is supported by the casing 11 so as to be rotatable about an axis L1. That is, the cylinder block main body 21 is rotatably supported by the casing 11 via the rotary shaft 24. One end of the rotary shaft 24 protrudes from the opening 11a. One end of the rotary shaft 24 is connected to the engine E. When the engine E rotates the rotary shaft 24, the cylinder block 1 rotates about the axis L1.
[0020] The cylinder block body 21 also has a plurality of cylinder chambers 21a formed around the rotation shaft 24. More specifically, the cylinder block body 21 has a plurality of cylinder chambers 21a formed in its end face on one axial side. The cylinder chambers 21a extend to the other axial side. The cylinder chambers 21a open at the end face on the other axial side via cylinder ports 21b. In this embodiment, nine cylinder chambers 21a are formed in the cylinder block body 21. However, the number of cylinder blocks 1 described above is merely an example, and the number may be eight or less, or ten or more.
[0021] As shown in FIG. 2, the plurality of first detectable portions 22 are formed on the outer peripheral surface of the cylinder block main body 21. The plurality of first detectable portions 22 are spaced apart from one another in the circumferential direction on the outer peripheral surface of the cylinder block main body 21 at a first interval α (e.g., angle). More specifically, the first detectable portions 22 are formed at equal intervals on the outer peripheral surface of the cylinder block main body 21. In this embodiment, nine first detectable portions 22 are formed, the same number as the number of cylinder chambers 21a. That is, the nine first detectable portions 22 are formed on the outer peripheral surface of the cylinder block main body 21 at intervals of 40 degrees (=α) from one another about the axis L1. The number of first detectable portions 22 is not limited to being the same, and may be greater or less than that.
[0022] The first detectable portion 22 is a recess. However, as described below, the first detectable portion 22 may be a protrusion. More specifically, the first detectable portion 22 is a recessed groove. In this embodiment, the first detectable portion 22 is a groove having a depth extending radially inward and formed with a U-shaped cross section. However, the first detectable portion 22 is not limited to a U-shaped cross section, and may be a V-shaped, rectangular, or semicircular cross section, and any other shape is possible. The first detectable portion 22 is formed, for example, on the outer peripheral surface of the cylinder block main body 21, in the axial middle portion. The position where the first detectable portion 22 is formed is not limited to the above-described position. That is, the first detectable portion 22 may be formed on either one or the other axial side, or may be formed across the cylinder block main body 21 from one axial side to the other axial side.
[0023] The plurality of second detectable portions 23 are formed on the outer peripheral surface of the cylinder block main body 21. The plurality of second detectable portions 23 are spaced apart from adjacent first detectable portions 22 at a second interval β in the circumferential direction. The second interval β is an angle different from the first interval α. More specifically, the number of second detectable portions 23 formed on the outer peripheral surface of the cylinder block main body 21 is less than the number of first detectable portions 22. Each second detectable portion 23 is located between two adjacent first detectable portions 22. Each second detectable portion 23 is spaced apart from at least one of the two first detectable portions 22 at the second interval β. In this embodiment, three second detectable portions 23 are formed. The three second detectable portions 23 are spaced apart at equal intervals (for example, γ = 120 degrees apart from each other about the axis L1). Furthermore, the second detectable portions 23 are arranged at a second distance β from both of the two adjacent first detectable portions 22. The number of second detectable portions 23 may be one or two, or may be four or more. The multiple second detectable portions 23 do not necessarily have to be spaced at equal intervals. The second detectable portion 23 may also be arranged at the second distance β from only one of the two adjacent first detectable portions 22.
[0024] 3, the second detectable portions 23 are arranged together with the first detectable portions 22 on a partial circumferential surface b1 that extends in the circumferential direction on the outer circumferential surface of the cylinder block main body 21. That is, the second detectable portions 23 are arranged so as to overlap at least partially in the circumferential direction with the other second detectable portions 23 and all of the first detectable portions 22. In this embodiment, the first detectable portions 22 and the second detectable portions 23 are arranged so as to overlap entirely with each other in the circumferential direction.
[0025] Furthermore, the second detectable portion 23 is a recessed groove, similar to the first detectable portion 22. That is, in this embodiment, the second detectable portion 23 is a groove having a depth extending radially inward and having a U-shaped cross section. Note that the second detectable portion 23 is also not limited to a U-shaped cross section, and may have a V-shaped, rectangular, or semicircular cross section, and any other shape is possible. Furthermore, the second detectable portion 23 is formed, for example, on the outer peripheral surface of the cylinder block main body 21, in the axial middle portion. Note that the position where the second detectable portion 23 is formed is not limited to the above-described position. That is, the second detectable portion 23 may be formed on either one or the other axial side, or may be formed across the cylinder block main body 21 from one axial side to the other axial side.
[0026] <Piston> The plurality of pistons 12 are inserted into the respective cylinder chambers 21a of the cylinder block 1. Each of the pistons 12 reciprocates in its respective cylinder chamber 21a. A shoe 26 is attached to the tip of each piston 12 so as to be slidable and rotatable.
[0027] <Swash plate> The swash plate 13, an example of an interlocking mechanism, is spaced from one axial side of the cylinder block 1 and tilted toward the cylinder block 1. The swash plate 13 supports shoes 26 from one axial side. More specifically, the swash plate 13 is provided with a shoe plate 27. The shoe plate 27 supports the shoes 26. The shoe plate 27 is also provided with a retaining plate 28. The retaining plate 28 presses the shoes 26 against the shoe plate 27. The shoes 26 rotate around the axis L1 on the tilted shoe plate 27 while being pressed by the retaining plate 28. Therefore, when the cylinder block 1 rotates, the pistons 12 reciprocate within the cylinder chamber 21a. The swash plate 13 can change its tilt angle by rotating around an axis L2 perpendicular to the axis L1. This changes the stroke of the pistons 12, thereby changing the discharge volume from the hydraulic device 2, as described below.
[0028] <Regulator> The regulator 14 can change the tilt angle of the swash plate 13 by rotating the swash plate 13 about the axis L2 of the swash plate 13. More specifically, the regulator 14 has a servo piston (not shown) connected to the swash plate 13 via a connecting member 14a. The regulator 14 moves the servo piston in response to an input signal. More specifically, the signal input to the regulator 14 is a pilot pressure. The pilot pressure is regulated by a solenoid valve 25. The regulator 14 adjusts the tilt angle of the swash plate 13 in response to the regulated pilot pressure.
[0029] <Valve plate> The valve plate 15 is interposed between the other axial end face of the casing 11 and the cylinder block 1. The valve plate 15 is formed with an intake port 15a and a discharge port 15b, which are connected to the intake passage 11b and the discharge passage 11c, respectively. The cylinder port 21b connected to the intake port 15a and the discharge port 15b is switched as the cylinder block 1 rotates. The intake port 15a guides working fluid from the intake passage 11b to the cylinder chamber 21a via the connected cylinder port 21b. The discharge port 15b discharges working fluid from the cylinder chamber 21a to the discharge passage 11c via the connected cylinder port 21b.
[0030] <Sensor> The sensor 16 is provided at a position corresponding to the first and second detection targets 22 and 23. When the first and second detection targets 22 and 23 pass by the sensor 16 as the cylinder block 1 rotates, the sensor 16 outputs a first signal S1 and a second signal S2, respectively (see FIG. 4). More specifically, the sensor 16 is provided on the casing 11 at a position corresponding to the partial circumferential surface b1 of the cylinder block 1 (in this embodiment, a position radially opposite the partial circumferential surface b1). The sensor 16 is, for example, an electromagnetic pulse generator. That is, the sensor 16 outputs a first signal S1 and a second signal S2 when the detection targets 22 and 23 pass in front of the sensor 16 (detection position). Therefore, the output of the sensor 16 (i.e., the change in output over time) corresponds to the shape of the outer circumferential surface of the cylinder block main body 21. The sensor 16 may be an MRE rotation sensor or an optical rotation sensor.
[0031] <Operation of hydraulic device> In the hydraulic device 2, the engine E drives the rotary shaft 24, causing the cylinder block 1 to rotate about the axis L1. This causes the multiple pistons 12 to rotate about the axis L1 and reciprocate in the cylinder chamber 21a. Furthermore, as the cylinder block 1 rotates, the connection destination of the cylinder port 21b switches between the suction port 15a and the discharge port 15b. As a result, hydraulic fluid is sucked into the cylinder chamber 21a via the suction port 15a, and the hydraulic fluid is discharged from the cylinder chamber 21a to the discharge port 15b. In this way, the hydraulic device 2 discharges hydraulic fluid.
[0032] In the hydraulic device 2, when a pilot pressure is input to the regulator 14, the swash plate 13 tilts in accordance with the pilot pressure. More specifically, by adjusting the pilot pressure with the solenoid valve 25, the tilt angle of the swash plate 13 can be adjusted via the regulator 14. This adjusts the stroke of the pistons 12. Therefore, the discharge volume of the hydraulic device 2 can be adjusted.
[0033] <Control device> The control device 4 controls the operation of the hydraulic device 2. More specifically, the control device 4 controls the operation of the regulator 14. That is, the control device 4 controls the operation of the solenoid valve 25. This adjusts the pilot pressure output from the solenoid valve 25, thereby controlling the tilt angle of the swash plate 13. The control device 4, which is an example of a determination device, includes an LPF unit 31, an FFT calculation processing unit 32, a rotation speed conversion unit 33, a control unit 34, and a notification unit 35, as shown in FIG. 5 . The control device 4 determines whether the cylinder block 1 is a conforming product based on the output results from the sensor 16. More specifically, the control device 4 performs spectral analysis on the output results by performing FFT calculation on the output results from the sensor 16. The control device 4 then determines whether the cylinder block 1 is a conforming product based on the results of the FFT calculation. The control device 4 also limits the output of the hydraulic device 2 based on the determination result. In this embodiment, the control device 4 limits the maximum output of the hydraulic device 2. However, the control device 4 may also reduce the overall output when the hydraulic device 2 is determined to be non-conforming compared to when the hydraulic device 2 is conforming.
[0034] The LPF unit 31 removes high frequency components from the output result output from the sensor 16. In other words, the LPF unit 31 is a low-pass filter. The FFT calculation processing unit 32 performs FFT calculation processing on the output result filtered by the LPF unit 31. More specifically, the FFT calculation processing unit 32 converts the sensor output output from the sensor 16 into frequency components by performing spectrum analysis on the output result (see FIG. 6).
[0035] The rotation speed conversion unit 33 calculates the rotation speed of the cylinder block 1 per unit time. More specifically, the rotation speed conversion unit 33 calculates the rotation speed based on the reference component in the analysis result of the FFT operation processing unit 32. In the present embodiment, the first detection units 22 are formed at equal intervals in the hydraulic device 2. Therefore, the first signal S1 is output at a time interval t1 (rotation speed / number of cylinder bores in the present embodiment) corresponding to the rotation speed of the cylinder block 1. And since more first detection units 22 are formed than the second detection units 23, more first signals S1 are output. Then, in the analysis result, the frequency component caused by the first signal S1, that is, the spectrum of the first frequency component f1 (reference component) appears with the strongest signal intensity. Therefore, the rotation speed conversion unit 33 calculates the rotation speed based on the first frequency component f1 which is the reference component.
[0036] Also, the rotation speed conversion unit 33 calculates a discrimination component according to the rotation speed. The discrimination component is a frequency component for comparison with the analysis result when determining whether the cylinder block 1 is a conforming product. More specifically, in the hydraulic device 2, when the cylinder block 1 is rotated, the second signal S2 is output after the time interval t2 has elapsed after the immediately preceding first signal S1 is output as shown in FIG. 4. And the second signal S2 is output at a time interval t2 (<t1) different from the time interval t1 of the first signal S1. Also, the first signal S1 is output at the time interval t2 after the second signal S2. As a result, in the analysis result, a second frequency component f2 different from the first frequency component f1 appears (see FIG. 6). The second frequency component f2 is a value corresponding to the second interval β of the second detection unit 23 and the rotation speed. Therefore, when the discrimination component is set to a value that can be calculated by the coefficient corresponding to the second interval β of the second detection unit 23 and the rotation speed, it is possible to determine whether the second detection unit 23 is formed at the second interval β by comparing the discrimination component and the second frequency component f2. That is, it is possible to determine whether the cylinder block 1 is a conforming product by comparing the discrimination component and the second frequency component f2. Therefore, the rotation speed conversion unit 33 calculates the discrimination component based on the calculated rotation speed and the second interval β.
[0037] The control unit 34 determines whether the cylinder block 1 is a conforming product based on the analysis results of the FFT calculation processing unit 32 and the discrimination component of the rotation speed conversion unit 33. More specifically, the control unit 34 selects frequencies with strong signal strength from the analysis results. In this embodiment, the spectrum of the second frequency component f2, in addition to the spectrum of the first frequency component f1, is selected from the analysis results. The control unit 34 then compares the second frequency component f2 with the discrimination component to determine whether the cylinder block 1 is a conforming product. That is, if the second frequency component f2 is identical to the discrimination component or within a predetermined range (e.g., a tolerance or detection error range), the control unit 34 determines that the cylinder block 1 is a conforming product. On the other hand, if the second frequency component f2 is not within a predetermined range for the discrimination component, the control unit 34 determines that the cylinder block 1 is a non-conforming product.
[0038] Furthermore, if the control unit 34 determines that the cylinder block 1 is non-conforming, it limits the output of the hydraulic device 2. In this embodiment, the control unit 34 limits the maximum output of the hydraulic device 2. More specifically, the control unit 34 limits the maximum tilt point angle of the swash plate 13 to less than a predetermined angle by controlling the operation of the solenoid valve 25. This reduces the maximum discharge rate of the hydraulic device 2, thereby reducing the maximum output of the hydraulic device 2. The control unit 34 also controls the operation of the engine E. The control unit 34 may limit the output of the hydraulic device 2 by reducing the output of the engine E. The control unit 34 may also delay the tilt response of the swash plate 13 in a ramp-like manner.
[0039] The notification unit 35 notifies the user whether the cylinder block 1 is a conforming product or not based on the determination result. More specifically, the notification unit 35 notifies the user whether the cylinder block 1 is a conforming product or not by, for example, sounding, displaying, or emitting light. The notification unit 35 also transmits information regarding whether the cylinder block 1 is a conforming product or not to a predetermined data center or the like.
[0040] <Hydraulic system evaluation> In the hydraulic system 3, when the cylinder block 1 rotates, the sensor 16 outputs a first signal S1 and a second signal S2, the number of which corresponds to the number of detection targets 22, 23. In the control device 4, the LPF unit 31 removes high-frequency components from the output result of the sensor 16. The FFT calculation processing unit 32 then performs spectrum analysis on the output result filtered by the LPF unit 31. The rotation speed conversion unit 33 calculates the rotation speed and the identification component based on the analysis result. The control unit 34 then compares the calculated identification component with the second frequency component f2 to determine whether the cylinder block 1 is a conforming product.
[0041] If the control unit 34 determines that the cylinder block 1 is a conforming product, it permits the maximum output. That is, the control unit 34 allows the maximum tilt angle of the swash plate 13 in the hydraulic device 2 up to a predetermined angle. The permitted tilt angle (i.e., the predetermined angle) may be set according to the pressure. On the other hand, if the control unit 34 determines that the cylinder block 1 is a non-conforming product, it limits the maximum output. That is, the control unit 34 limits the maximum tilt angle of the swash plate 13 in the hydraulic device 2 to less than the predetermined angle. As a result, the maximum output of the hydraulic device 2 is limited when the cylinder block 1 is a non-conforming product.
[0042] Furthermore, the control unit 34 transmits information regarding whether the cylinder block 1 is a conforming product to a predetermined data center or the like by the notification unit 35. The notification unit 35 also notifies the user or the like whether the cylinder block 1 is a conforming product by sound, display, or light emission.
[0043] According to the cylinder block 1 and hydraulic device 2 of this embodiment, the first detection target 22 and the second detection target 23 are detected as the cylinder block 1 rotates. This results in a first signal S1 being output at a time interval t1 corresponding to the first interval α and a second signal S2 being output at a time interval t2 corresponding to the second interval β (see FIG. 4). Then, by using the first signal S1 and the second signal S2 output at different time intervals, it can be determined whether the cylinder block 1 is a conforming product.
[0044] In this embodiment, the sensor 16 outputs a first signal S1 at equal time intervals t1 based on the first detectable portion 22. Therefore, the first signal S1 is used as a reference signal. On the other hand, after the sensor 16 outputs the immediately preceding first signal S1, it outputs a second signal S2 at time intervals t2 based on the second detectable portion 23. The second signal S2 is output at time intervals t2 that are different from the time intervals of the first signal S1 and correspond to the second interval β. Therefore, the second signal S2 is used as an identification signal. Using the first signal S1 and the second signal S2, the time interval t2 at which the second signal S2 is output (the second frequency component f2 in this embodiment) is compared with a predetermined time interval (the identification component in this embodiment). This allows a determination to be made as to whether the cylinder block 1 is a conforming product.
[0045] Furthermore, according to the cylinder block 1, the first detectable portion 22 and the second detectable portion 23 are each a recess, so that the first detectable portion 22 and the second detectable portion 23 can be easily and accurately formed. This makes it possible to accurately determine whether the cylinder block 1 is a conforming product.
[0046] Furthermore, according to the cylinder block 1, the second detectable portions 23 are also formed regularly (i.e., with a spacing γ between the second detectable portions 23) in the same manner as the first detectable portions 22, so that the weight balance of the cylinder block main body 21 can be made more even.
[0047] Furthermore, in the cylinder block 1 and the hydraulic device 2, the first detectable portion 22 and the second detectable portion 23 are arranged side by side on the partial circumferential surface b1. Therefore, the sensor 16 that detects the first detectable portion 22 and the second detectable portion 23 can be shared, thereby reducing the number of parts.
[0048] Furthermore, according to the hydraulic device 2, a pulse generator is used for the sensor 16, so that the first detectable portion 22 and the second detectable portion 23, which are the detection targets, can be prevented from having a complex configuration.
[0049] [Second embodiment] 7 is similar in configuration to the cylinder block 1 of the first embodiment. Therefore, the configuration of the cylinder block 1A of the second embodiment will be mainly described in terms of differences from the cylinder block 1 of the first embodiment, and the same components will be assigned the same reference numerals and will not be described again.
[0050] The cylinder block 1A of the second embodiment is configured as follows. Specifically, the cylinder block 1A includes a cylinder block main body 21, a plurality of first detectable portions 22A, and second detectable portions 23A. The first detectable portions 22A and second detectable portions 23A are both convex portions. More specifically, the first detectable portions 22A and second detectable portions 23A are ridge portions. The first detectable portions 22A and second detectable portions 23A are arranged in the cylinder block main body 21 in the same manner as the first detectable portions 22 and second detectable portions 23 of the first embodiment. The first detectable portions 22A and second detectable portions 23A are detected by a sensor 16. The sensor 16 outputs a first signal S1 and a second signal S2 in response to the first detectable portions 22A and second detectable portions 23A.
[0051] The cylinder block 1A of the second embodiment configured in this manner provides the same effects as the cylinder block 1 of the first embodiment.
[0052] [Third embodiment] The cylinder block 1B of the third embodiment shown in Fig. 8 has a similar configuration to the cylinder block 1 of the first embodiment. Therefore, the configuration of the cylinder block 1B of the third embodiment will be mainly described in terms of differences from the cylinder block 1 of the first embodiment, and the same components will be assigned the same reference numerals and will not be described again.
[0053] The cylinder block 1B of the third embodiment includes a cylinder block main body 21 and a plurality of first detectable portions 22B. The plurality of first detectable portions 22B are respectively formed on the outer peripheral surface of the cylinder block main body 21. More specifically, N-1 first detectable portions 22B are formed on the cylinder block main body 21. In this embodiment, N is 9. That is, eight first detectable portions 22B are formed on the cylinder block main body 21. The first detectable portions 22B are respectively arranged at N-1 positions, excluding one remaining position 30, among positions obtained by dividing the outer peripheral surface of the cylinder block main body 21 into N equal parts. In this embodiment, the first detectable portions 22B are respectively arranged at eight positions, from the first to the eighth, among positions obtained by dividing the outer peripheral surface of the cylinder block main body 21 into nine equal parts. Furthermore, at the ninth remaining position 30, neither the first detectable portion 22B nor any other detectable portion is formed. The first detected portion 22B is then detected by the sensor 16. The sensor 16 outputs a first signal S1 in response to the first detected portion 22B.
[0054] In the cylinder block 1B of the third embodiment configured as described above, the first detection portions 22B are arranged at equal intervals from the first to eighth positions of nine equal divisions on the outer peripheral surface of the cylinder block body 21. Therefore, when the cylinder block 1B rotates, the sensor 16 outputs a first signal S1 at time intervals t1 corresponding to the rotation speed of the cylinder block 1B from the first to eighth positions.
[0055] On the other hand, the first detection target 22B is not present at the ninth remaining position 30. Therefore, for example, the first signal S1 is not output from the sensor 16 after the eighth position passes by until the first position passes by the sensor 16 again. That is, the first signal S1 is output from the sensor 16 at a time interval t0 (= t1 × 2) that is different from the time interval t1 during that time. As a result, the analysis results show a frequency component f0 (= (f1) / 2) that is different from the first frequency component f1 resulting from the time interval t1, as shown in FIG. 9. The control unit 34 determines whether the cylinder block 1B is a conforming product by comparing the frequency component f0 with a previously calculated discrimination component.
[0056] The cylinder block 1B of the third embodiment configured as described above does not have the first detectable portion 22B at the remaining position 30. Therefore, when the first detectable portion 22B is detected as the cylinder block 1B rotates, the following occurs: The timing time interval t0 of the first signal S1 output from the first detectable portion 22B at a position adjacent to the remaining position 30 in the rotational direction differs from the timing time interval t1 of the first signal S1 detected at other positions. By varying the timing time intervals at which the first signal S1 is output in this way, it is possible to determine whether the cylinder block 1B is a conforming product.
[0057] In addition, the cylinder block 1B of the third embodiment has the same functions and effects as the cylinder block 1 of the first embodiment.
[0058] [Fourth embodiment] The cylinder block 1C of the fourth embodiment shown in Fig. 10 has a similar configuration to the cylinder block 1B of the third embodiment. Therefore, the configuration of the cylinder block 1C of the fourth embodiment will be mainly described in terms of differences from the cylinder block 1B of the third embodiment, and the same components will be assigned the same reference numerals and will not be described again.
[0059] The cylinder block 1C of the fourth embodiment includes a cylinder block main body 21, a plurality of first detectable portions 22B, and a plurality of second detectable portions 23C. Each of the second detectable portions 23C is formed on the outer peripheral surface of the cylinder block main body 21. The second detectable portions 23C are disposed offset from the Nth (ninth in this embodiment) remaining position 30. More specifically, the second detectable portions 23C are disposed offset from the remaining position 30 between the first and eighth positions. That is, the eight first detectable portions 22B are disposed on the outer peripheral surface of the cylinder block main body 21 at a first interval α (= 40 degrees). The second detectable portion 23C is disposed at a second interval β from the first detectable portion 22B disposed at the eighth position. The second detectable portion 23C is detected by the sensor 16. The sensor 16 outputs a second signal S2 in response to the second detected portion 23C.
[0060] In the cylinder block 1C of the fourth embodiment configured as described above, the second detection target 23C is positioned between the first position and the eighth position and offset from the remaining position 30. Therefore, when the cylinder block 1C rotates, the time interval t2 at which the second signal S2 is output differs from the time interval t1. Therefore, the analysis result shows a second frequency component f2, which differs from the first frequency component f1 resulting from the time interval t1, as shown in FIG. 11 . Furthermore, because the second detection target 23C is positioned offset from the Nth position, the time interval t3 at which the first signal S1 is output after the second signal S2 is output differs from both the time intervals t1 and t2. Therefore, the analysis result also shows a third frequency component f3. The control unit 34 uses these three frequency components f1, f2, and f3 to determine whether the cylinder block 1C is a conforming product.
[0061] In the cylinder block 1C of the fourth embodiment configured as described above, when the first detection target portion 22B and the second detection target portion 23C are detected as the cylinder block 1C rotates, the time intervals t1, t2, and t3 at which the first signal S1 and the second signal S2 are output can be made different. Therefore, by using the first signal S1 and the second signal S2, it can be determined whether the cylinder block 1C is a conforming product.
[0062] In addition, the cylinder block 1C of the fourth embodiment has the same functions and effects as the cylinder block 1B of the third embodiment.
[0063] [Fifth embodiment] The cylinder block 1D of the fifth embodiment shown in Fig. 12 has a similar configuration to the cylinder block 1C of the fourth embodiment. Therefore, the configuration of the cylinder block 1D of the fifth embodiment will be mainly described in terms of differences from the cylinder block 1C of the fourth embodiment, and the same components will be assigned the same reference numerals and will not be described again.
[0064] A cylinder block 1D of the fifth embodiment includes a cylinder block main body 21, a plurality of first detectable portions 22D, and a second detectable portion 23C. N-2 first detectable portions 22D are formed on the cylinder block main body 21. The first detectable portions 22D are respectively arranged at N-2 positions among N equal positions on the outer peripheral surface of the cylinder block main body 21. In this embodiment, N is 9. The first detectable portions 22D are respectively arranged at the first to seventh positions among 9 equal positions on the outer peripheral surface of the cylinder block main body 21. In other words, the first detectable portions 22D and other detectable portions are not formed at the eighth and ninth remaining positions 41, 42.
[0065] The second detection target portions 23C are formed on the outer peripheral surface of the cylinder block main body 21. The second detection target portions 23C are disposed offset from the Nth and N-1th (eighth and ninth in this embodiment) remaining positions 41, 42. More specifically, the second detection target portions 23C are disposed offset from the two remaining positions 41, 42 between the first position and the seventh position. That is, the seven first detection target portions 22D are disposed on the outer peripheral surface of the cylinder block main body 21 at a first interval α (= 40 degrees). The second detection target portions 23C are disposed at a third interval δ (≠α) from the first detection target portion 22D disposed at the seventh position.
[0066] In the cylinder block 1D of the fifth embodiment configured as described above, similar to the cylinder block 1C of the fourth embodiment, when the cylinder block 1D rotates, the time interval t4 at which the second signal S2 is output is different from the time interval t1. Furthermore, because the second detection target 23C is positioned offset from the Nth position, the first signal S1 is output at the time interval t5 after the second signal S2 is output. Therefore, the control unit 34 obtains three different frequency components f1, f4, and f5 in the analysis result, and can use the three frequency components f1, f4, and f5 to determine whether the cylinder block 1D is a conforming product.
[0067] In the cylinder block 1D of the fifth embodiment configured as described above, when the first detection target portion 22D and the second detection target portion 23C are detected as the cylinder block 1D rotates, the time intervals t1, t4, and t5 at which the first signal S1 and the second signal S2 are output can be made different. Therefore, by using the first signal S1 and the second signal S2, it can be determined whether the cylinder block 1D is a conforming product.
[0068] In addition, the cylinder block 1D of the fifth embodiment has the same functions and effects as the cylinder block 1C of the fourth embodiment.
[0069] [Other embodiments] In the cylinder block 1, 1A-1D of this embodiment, the detection target portions 22, 22A, 22B, 22D, 23, and 23C are arranged at two different intervals on the outer circumferential surface of the cylinder block main body 21. The detection target portions 22, 22A, 22B, 22D, 23, and 23C may be arranged at three or more different intervals (for example, arranged at three intervals relative to the target detection target portions). In this case, if three or more frequency components appear with strong signal intensities in the analysis results and all of these are the same or within a predetermined range for the identification components, the cylinder block 1 is determined to be a conforming product. Furthermore, the first interval α does not necessarily have to be an interval that equally divides the outer circumferential surface of the cylinder block main body 21. In other words, when there are nine first detection target portions 22, the first interval α does not necessarily have to be 40 degrees and may be less than 40 degrees or greater than 40 degrees.
[0070] Furthermore, in the hydraulic system 3 of the first embodiment, the second detectable portion 23 is disposed at the second distance β from both of the two adjacent first detectable portions 22, but the second detectable portion 23 does not necessarily have to be disposed in this manner. For example, the second detectable portion 23 may be disposed at a distance different from the first distance α and the second distance β from the other of the two adjacent first detectable portions 22 (the first detectable portion 22 on the other circumferential side). In this case, frequency components different from the first frequency component f1 and the second frequency component f2 appear in the analysis results. The control unit 34 then uses these three frequency components to determine whether the cylinder block 1 is a conforming product.
[0071] Furthermore, in the cylinder blocks 1, 1A to 1D of this embodiment, the detection target portions 22, 22A, 22B, 22D, 23, and 23C are recessed grooves or ridges, but any other detection target portions may be used as long as the sensor 16 reacts to them. The detection target portions 22 and 23 may be, for example, metal plates or reflecting plates, and may be any other detection target portions that reflect the electromagnetic waves or light emitted by the sensor 16. Furthermore, the detection target portions 22, 22A, 22B, 22D, 23, 23A, and 23C do not necessarily need to be arranged side by side on the partial circumferential surface b1. For example, a sensor 16 may be provided for each detection target portion 22, 22A, 22B, 22D, 23, 23A, and 23C, and the output results from each sensor 16 may be combined.
[0072] Although the hydraulic device 2 of this embodiment has been described using a hydraulic pump device as an example, it may also be a hydraulic motor device as described above. When the hydraulic device 2 is a hydraulic motor device, the process is basically the same as when it is a hydraulic pump device. However, if the cylinder block 1, 1A-1D is non-conforming, the control device 4 controls the tilt angle of the swash plate 13 to limit the torque of the rotating shaft 24 as the output of the hydraulic device 2. For example, the control device 4 may decrease the rotation speed by increasing the tilt angle of the swash plate 13. [Explanation of symbols]
[0073] 1,1A,1B,1C,1D Cylinder block 2 Hydraulic device 11 Casing 12 pistons 13 Swash plate (interlocking mechanism) 16 sensors 21 Cylinder block body 21a Cylinder chamber 22,22A,22B,22D 1st detected part 23,23A,23C 2nd detected part 24 Rotation Axis S1 1st signal S2 2nd signal α First interval β 2nd interval
Claims
1. a cylinder block body in which a plurality of cylinder chambers are formed around a rotation shaft; a plurality of first detection portions formed on an outer peripheral surface of the cylinder block body at predetermined first intervals in a circumferential direction; a plurality of second detection portions formed on an outer peripheral surface of the cylinder block body at second intervals in the circumferential direction from adjacent first detection portions, the second intervals being different from the first intervals; The plurality of second detection portions are arranged at equal intervals from one another in the cylinder block.
2. the first detection portion is a convex portion or a concave portion, The cylinder block according to claim 1 , wherein the second detection portion is a convex portion or a concave portion.
3. The cylinder block according to claim 1 or 2, wherein the second detection target portion and the first detection target portion are arranged side by side on a partial circumferential surface extending in a circumferential direction on the outer circumferential surface of the cylinder block body.
4. The cylinder block according to any one of claims 1 to 3; a casing that accommodates and rotatably supports the cylinder block; a piston inserted into each of the plurality of cylinder chambers of the cylinder block so as to be capable of reciprocating; a linkage mechanism that reciprocates the piston in conjunction with the rotation of the cylinder block; a sensor provided at a position corresponding to the first detectable portion and the second detectable portion, and outputting a first signal and a second signal, respectively, when the first detectable portion and the second detectable portion pass by as the cylinder block rotates.
5. the first detection portion and the second detection portion are aligned on a partial circumferential surface extending in a circumferential direction on the outer circumferential surface of the cylinder block body, 5. The hydraulic device according to claim 4, wherein the sensor is provided at a position corresponding to a partial circumferential surface of the cylinder block.
6. 6. The hydraulic device according to claim 4, wherein the sensor is a pulse generator.
7. a cylinder block body in which a plurality of cylinder chambers are formed around a rotation shaft; and (N-1) first detection portions formed on the outer peripheral surface of the cylinder block body, The first detection portions are respectively disposed at N-1 positions obtained by dividing the outer peripheral surface of the cylinder block body into N equal parts, excluding one remaining position.
8. a second detection portion formed on the outer peripheral surface of the cylinder block body; The cylinder block according to claim 7 , wherein the second detection target portion is disposed offset from a remaining position.
9. a cylinder block body in which a plurality of cylinder chambers are formed around a rotation shaft; N-2 first detection portions formed on the outer peripheral surface of the cylinder block body; a second detection portion formed on the outer peripheral surface of the cylinder block body, the first detection portions are disposed at N-2 positions among N equal divisions of the outer peripheral surface of the cylinder block body, The cylinder block, wherein one of the second detection portions is disposed at a position shifted from the remaining two remaining positions among the N equally divided positions.
Citation Information
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