Forklift mast height measurement device and operation diagnostic device

The mast height measuring device uses existing sensors to correlate hydraulic data for precise mast height calculation, addressing installation and cost issues while improving measurement accuracy.

JP7775907B2Active Publication Date: 2025-11-26SHIMADZU SEISAKUSHO LTD
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Patent Information

Application Number
JP2024032500
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-01-05
Filing Date
2024-03-04
Publication Date
2025-11-26
Estimated Expiration
2042-08-01

AI Technical Summary

Technical Problem

Existing methods for measuring forklift mast height are either costly due to expensive sensors, difficult to install, or only provide point measurements, leading to inaccurate results.

Method used

A mast height measuring device that uses existing sensors to calculate mast height by correlating hydraulic pump discharge pressure, rotation speed, and control valve stroke data, integrating these values with specific machine characteristics to determine fluid flow rates and accurately measure mast height.

Benefits of technology

Enables accurate mast height measurement using inexpensive, easily installable sensors and reduces calculation complexity, ensuring high measurement precision and speed.

✦ Generated by Eureka AI based on patent content.

Smart Images

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Patent Text Reader

Abstract

To provide a mast height measurement device 4 for a forklift or the like, which can accurately measure a mast height even with an inexpensive simple structure.SOLUTION: Correlation data indicating a correlation between a stroke amount of a control valve 21 for controlling a discharge pressure and a rotational speed of a liquid pressure pump 26 for supplying a working fluid to a lift cylinder 14 and flowing-in / out of the working fluid to the lift cylinder 14 and a flow rate of the working fluid flowing-in / out from the lift cylinder 14 is stored. Discharge pressure measurement data of the liquid pressure pump 26, rotational speed measurement data of the liquid pressure pump 26, and stroke measurement data of the control valve 21 are acquired. The flow rate of the working fluid flowing in / out from the lift cylinder 14 is calculated from each value of the discharge pressure measurement data, the rotational speed measurement data, and the stroke measurement data, by referring to the correlation data. A mast height is calculated on the basis of the flow rate of the working fluid.SELECTED DRAWING: Figure 6
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Description

[Technical Field]

[0001] The present invention relates to a mast height measuring device for measuring the height of a forklift mast. [Background technology]

[0002] Conventionally, the following methods have been considered for measuring the height of a forklift mast. (1) The stroke amount of the lift cylinder is measured using a stroke sensor. (2) Measure the supply flow rate to the cylinder using a flow meter. (3) Install a switch that turns ON / OFF when the mast reaches a specified height and measure the height.

[0003] However, method (1) requires sensing over a wide area of ​​several meters, which makes it difficult to install sensors and may also make the sensors expensive. Method (2) also has the problem that a new flow meter must be installed between the forklift hydraulic circuits, which is difficult in terms of space, and the sensor is expensive. Method (3) alleviates the problems of installation and cost, but it has the problem that it can only measure the height of the point where the switch is installed, and the height of the mast cannot be determined at intermediate points. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Publication No. 9-148941 Summary of the Invention [Problem to be solved by the invention]

[0005] On the other hand, a method has also been proposed for measuring mast height using equipment originally installed on a forklift, without using a dedicated sensor, as described in Patent Document 1. In Patent Document 1, the mast height is calculated by performing an operation on the output value of the tachometer of the hydraulic pump motor originally installed on the forklift, based on the principle that the rotation speed of the hydraulic pump motor that drives the mast to rise and fall is proportional to the oil flow rate that flows in and out of the mast cylinder, and therefore to the distance that the mast rises and falls per unit time (i.e., the lifting speed).

[0006] However, since the flow rate of oil flowing in and out of the mast cylinder varies depending on factors such as the load of the cargo and the amount of lift lever operation, the mast height calculated using this method is extremely inaccurate and unsuitable for practical use.

[0007] The present invention was first completed after identifying this problem, and its main objective is to provide a mast height measuring device for a forklift that is inexpensive, simple in construction, and yet can accurately measure the mast height. [Means for solving the problem]

[0008] That is, the mast height measuring device for a forklift according to the present invention is characterized by including the following components.

[0009] (1) A correlation data storage unit that stores correlation data showing the correlation between the discharge pressure of a hydraulic pump that supplies working fluid to the lift cylinder, the rotation speed of the hydraulic pump, and the stroke amount of a control valve that controls the flow of working fluid in and out of the lift cylinder, and the flow rate of working fluid in and out of the lift cylinder.

[0010] (2) A calculation unit that acquires discharge pressure measurement data having a value related to the discharge pressure of the hydraulic pump, rotation speed measurement data having a value related to the rotation speed of the hydraulic pump, and stroke measurement data having a value related to the stroke amount of the control valve, and calculates the flow rate of the working fluid flowing in and out of the lift cylinder from each of the values ​​of the discharge pressure measurement data, rotation speed measurement data, and stroke measurement data by referring to the correlation data, and calculates the mast height based on the flow rate of the working fluid. [Effects of the Invention]

[0011] With the above configuration, not only can mast height be measured using existing sensors or inexpensive, easy-to-install sensors, but the flow rate of the working fluid flowing in and out of the lift cylinder can be calculated using correlation data that takes into account the specific characteristics of the hydraulic pump and control valve installed on the actual machine, allowing for accurate measurement of mast height. [Brief explanation of the drawings]

[0012] [Figure 1] 1 is an overall schematic diagram of a forklift according to an embodiment of the present invention; [Figure 2] 2 is a circuit diagram of a hydraulic mechanism of the forklift truck and an overall schematic diagram showing a mast height measuring device according to the embodiment; FIG. [Figure 3] FIG. 4 is a circuit diagram showing the movement of the control valve when the lift lever is operated to the lift side in the embodiment. [Figure 4] FIG. 4 is a circuit diagram showing the movement of the control valve when the lift lever is operated to the lowering side in the embodiment. [Figure 5] FIG. 2 is a functional block diagram of the mast height measurement device of the embodiment. [Figure 6] 4 is a flowchart showing a mast height measurement procedure performed by the mast height measurement device of the embodiment. [Figure 7] 4 is a flowchart showing a procedure for calculating a mast elevation distance (mast movement distance) by the mast height measurement device of the embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0013] Hereinafter, an embodiment of the present invention will be described with reference to the drawings. <Configuration>

[0014] As shown in Figure 1, the forklift 1 according to this embodiment includes a travellable vehicle body 11 equipped with tires, a platform (forks) 12 on which cargo is loaded, and a mast 13 that supports the platform 12 so that it can be raised and lowered. In the figure, reference numeral 14 denotes a lift cylinder that extends and retracts the mast 13 to drive the platform 12 to rise and lower, reference numeral 15 denotes a tilt cylinder that tilts the mast, reference numeral 16 denotes a lift lever for operating the lift cylinder, and reference numeral 17 denotes a tilt lever for operating the tilt cylinder.

[0015] The forklift 1 also includes a hydraulic mechanism 2 for driving the lift cylinder 14 and tilt cylinder 15, and a mast height measuring device 4 for acquiring status data indicating the status of the hydraulic mechanism 2 and calculating the height of the mast 13 from the acquired status data.

[0016] As shown in the circuit diagram of Figure 2, the hydraulic mechanism 2 guides the working fluid (here, the working fluid is oil) discharged from the hydraulic pump 26 to the lift cylinder 14 and tilt cylinder 15 to operate them. Note that the following will particularly refer to the structure related to the lift cylinder 14.

[0017] In FIG. 2, reference numeral denotes a control valve 21 which is linked to the operation of the lift lever 16, and in this case is of a directional flow control type having both the functions of direction switching and flow control.

[0018] When the lift lever 16 is operated to the stop position, the spool of the control valve 21 is also in the stop position as shown in Figure 2, and all hydraulic oil discharged from the hydraulic pump 26 returns to the tank 22. The flow of hydraulic fluid into and out of the lift cylinder 14 is prohibited, and the mast 13 comes to a standstill.

[0019] When the lift lever 16 is operated in the upward direction, as shown in Figure 3, the spool of the control valve 21 moves upward in accordance with the amount of operation, and hydraulic oil discharged from the hydraulic pump 26 flows into the lift cylinder 14 through the pilot valve 24, raising the mast 13. When the mast 13 reaches its uppermost position, hydraulic oil can no longer flow into the lift cylinder 14, and returns to the tank 22 through the relief valve 28.

[0020] When the lift lever 16 is operated in the downward direction, as shown in Figure 4, the hydraulic pump 26 stops, and the spool of the control valve 21 moves downward according to the amount of operation of the lift lever 16, causing the hydraulic oil in the pump 26 lift cylinder 14 to return to the tank 22 through the flow control valve 23, thereby lowering the mast 13. At this time, the pilot valve 24 located between the lift cylinder 14 and the tank 22 has a pressure difference generated by the hydraulic oil passing through its orifice as the state of the pilot switching valve 25 switches, and this pressure difference keeps the pilot valve 24 open.

[0021] The hydraulic mechanism 2 is also provided with a number of sensors. Here, these are a rotation speed sensor 31 that measures the rotation speed of the electric motor 27 or the rotation speed of the hydraulic pump 26, a discharge pressure sensor 32 that measures the discharge pressure of the hydraulic pump 26, a stroke sensor 33 that detects the stroke amount of the spool of the control valve 21, and a cylinder pressure sensor 34 that measures the pressure inside the lift cylinder 14.

[0022] The rotation speed sensor 31 may be, for example, an electromagnetic pickup type or a rotary encoder. The discharge pressure sensor 32 and the cylinder pressure sensor 34 may be, for example, pressure sensors such as strain gauge type or capacitance type. The stroke sensor 33 may be, for example, a magnetostrictive type or a Hall effect type.

[0023] The mast height measurement device 2 physically comprises a CPU, memory, I / O ports, A / D converter, etc., and functionally functions as a correlation data storage unit, calculation unit, etc., as shown in Figure 5, by the CPU and its peripheral devices working together in accordance with the programs pre-stored in the memory. Each part will be described in detail.

[0024] The correlation data storage unit holds and stores master data, which is a plurality of (three in this example) correlation data that have been previously obtained and created through experiments, simulations, theoretical calculations, and the like.

[0025] The first master data is in the form of a table that shows the correlation between the discharge pressure and rotation speed of the hydraulic pump 26 and the discharge flow rate, and is unique to the type of hydraulic pump 26.

[0026] The second master data is in the form of a table that shows the correlation between the discharge pressure of the hydraulic pump 26, the spool stroke of the control valve 21, and the flow rate ratio of the hydraulic fluid discharged from the pump to the circuit leading to the lift cylinder 14 and the circuit leading to the tank 22, and is specific to the type of control valve 21.

[0027] The third master data is in the form of a table that shows the correlation between the cylinder pressure and spool stroke amount, and the flow rate returning from the control valve 21 to the tank 22. Note that this third master data also includes the flow control valve 23 shown in Figures 2 to 4 as a set. Therefore, this correlation data is specific to the control valve 21 if the flow control valve 23 is built into the control valve 21, and is specific to the set of the control valve 21 and the flow control valve 23 if the flow control valve 23 is outside the control valve 21 (built into the forklift vehicle).

[0028] Each piece of master data is in table format here, and is obtained in advance by experiment or simulation for each type of hydraulic pump 26 or control valve 21, or for each type of forklift 1 on which it is mounted, and is recorded in the correlation data storage unit. Note that the relationship obtained by experiment or simulation may be expressed as a calculation formula, and this calculation formula may be used as the master data.

[0029] The calculation unit receives the measurement data output from each sensor, i.e., the rotation speed measurement data output from the rotation speed sensor 31, the discharge pressure measurement data output from the discharge pressure sensor 32, the stroke measurement data output from the stroke sensor 33, and the cylinder pressure measurement data output from the cylinder pressure sensor 34, at a predetermined sampling interval, calculates the flow rate of the working fluid flowing in and out of the lift cylinder 14 based on the values ​​of each measurement data and each master data, calculates the height of the mast 13 based on this flow rate of the working fluid and specifications such as the cylinder volume and effective cross-sectional area that are recorded in advance in memory, and sequentially outputs this as a mast height measurement value. <Mast height measurement procedure>

[0030] Next, the mast height measurement procedure will be specifically described with reference to FIG. When the forklift 1 is started, the calculation unit first calculates an initial value for the mast height measurement value (step S1). In this embodiment, this initial value is, for example, the mast height measurement value measured and recorded when the forklift 1 finished its previous operation, and is stored in a mast height measurement data storage unit provided in a predetermined area of ​​memory. Alternatively, the initial value may be the lowest position of the mast 13, or the initial value may be obtained by multiplying the elapsed time since the previous operation finished by the natural descent speed per unit time (determined by the flow rate returning from the lift cylinder 14 to the tank 22 due to slight leakage from a valve, etc.).

[0031] Next, when a predetermined sampling time comes (step S2), the calculation unit acquires the discharge pressure measurement data, the rotational speed measurement data, and the stroke measurement data (step S3).

[0032] Next, the calculation unit determines whether the mast height is a predetermined reference height (step S4). This determination is made using position sensors such as limit switches attached to one or more locations on the mast 13 or lift cylinder 14. These position sensors are designed to emit a signal when the mast 13 or lift cylinder 14 reaches the reference height.

[0033] The reference height can also be determined from the values ​​of each measurement data without using a position sensor. In this case, the reference height is preferably the highest position or the lowest position.

[0034] The mast 13 is determined to be at its highest position using the stroke measurement data and the discharge pressure measurement data. That is, the mast 13 is determined to be at its highest position when the value of the stroke measurement data (hereinafter referred to as the stroke measurement value) detects that the lift lever 16 is being operated to the lift side, and the value of the discharge pressure measurement data (hereinafter referred to as the discharge pressure measurement value) detects that the discharge pressure of the hydraulic pump 26 is equal to the relief pressure of the relief valve 28 (or when this state continues for a certain period of time).

[0035] The mast 13 is determined to be at its lowest position using the stroke measurement data and the cylinder pressure discharge pressure measurement data. That is, if the stroke measurement value indicates that the lift lever 16 is being operated downward, and the cylinder pressure measurement data value (hereinafter referred to as the cylinder pressure measurement value) indicates that the pressure in the lift cylinder 14 is 0 or the pressure in the case of an empty load (the pressure holding the forks only), or if a certain period of time has passed since the lift lever 16 was operated downward, regardless of the cylinder pressure measurement value, the mast is determined to be at its lowest position. If the mast height is at the reference position, the mast height measurement value is set as the reference height, and this value is stored in the mast height measurement data storage unit (step S7). Thereafter, if the forklift operation has not ended (step S8), the process returns to step S2.

[0036] On the other hand, if the mast height is not at the reference position, the calculation unit calculates the distance traveled by the mast 13 during the period from the previous sampling time to the current sampling time (step S5). The distance traveled is then added to the mast height measurement value stored in the mast height measurement data storage unit, and the result is updated as a new mast height measurement value. Thereafter, if the forklift operation has not ended (step S8), the process returns to step S2.

[0037] Next, step S5, that is, the mast lifting distance calculation routine, will be described below with reference to FIG. If it can be determined from the stroke measurement value that the control valve 21 (or lift lever 16) is in the stopped position (step S21), the calculation unit sets the lifting distance of the mast 13 to 0 (step S28) and maintains the mast height measurement value at the previous value.

[0038] If it can be determined from the stroke measurement value that the control valve 21 (or the lift lever 16) is on the rising side (step S22), the calculation unit applies the discharge pressure measurement value and the rotation speed measurement value of the hydraulic pump 26 to the first master data, and calculates the corresponding discharge flow rate Q P At this time, if each measurement value is an intermediate value of the first master data, the discharge flow rate Q of the hydraulic pump 26 is calculated by interpolating using a known method. P Calculate.

[0039] The calculation unit also applies the discharge pressure measurement value and stroke measurement value of the hydraulic pump 26 to the second master data, and calculates the flow rate ratio α between the flow rate of the working fluid discharged from the hydraulic pump 26 flowing into the lift cylinder 14 and the flow rate returning to the tank 22 (step S24). Note that, as described above, when each measurement value is an intermediate value of the second master data, interpolation is performed. Here, α is the ratio of the flow rate QS going to the lift cylinder 14 to the flow rate QT going to the tank 22. IN is the ratio of QS IN It can be expressed as / QT.

[0040] Next, the calculation unit calculates the discharge flow rate Q of the hydraulic pump 26 in this way. P Based on the flow rate ratio α, the inflow flow rate QS of the working fluid to the lift cylinder 14 is calculated. IN is calculated (step S25). Specifically, the inflow flow rate QS is calculated based on the following equation (1): IN is calculated. QS IN =Q P ×(QS IN / QS IN +QT)=Q P ×α / (α+1) (1)

[0041] Next, the calculation unit calculates the inflow flow rate QS IN Based on this, the stroke amount of the cylinder piston, i.e., the lift distance D of the mast 13, M is calculated (step S26). Specifically, for example, the moving distance (climbing distance) D is calculated based on the following formula (2): M is calculated. D M =Δt×QS IN / A···(2) where Δt is the sampling interval and A is the effective area of ​​the cylinder.

[0042] Next, the calculation unit calculates the mast height H calculated at the previous sampling time as shown in equation (3). i-1 , the rising distance D M Add this to get the new mast height measurement H i (step S27). H i =H i―1 +D M ···(3)

[0043] On the other hand, if it can be determined from the stroke measurement value that the control valve 21 (or the lift lever 16) is on the downward side (step S22), the calculation unit applies the cylinder pressure measurement value and the stroke measurement value to the third master data, and calculates the flow rate QS of the working fluid returning from the lift cylinder 14 through the control valve 21 to the tank 22.OUT is calculated (step S29).

[0044] Next, the calculation unit calculates the outflow rate QS OUT Based on this, the stroke amount of the cylinder piston, i.e., the lowering distance D of the mast 13, M is calculated (step S26). Specifically, for example, the descending distance D is calculated based on the following equation (4): M is calculated. D M =Δt×QS OUT / A···(4) where Δt is the sampling interval and A is the effective area of ​​the cylinder.

[0045] Next, the calculation unit calculates the mast height H calculated at the previous sampling time as shown in equation (3). (前回) From the distance D M Subtract this to get the new mast height measurement H (今回) (step S27). H (今回) =H (前回) -D M ···(5) The calculation unit then outputs the calculated mast height measurement value and displays it on a display device provided in the driver's seat of the forklift, for example. <Effects of this mast height measurement device 2>

[0046] With the above configuration, not only can mast height be measured using existing sensors such as the rotation speed sensor 31, discharge pressure sensor 32, and stroke sensor 33, or inexpensive, easy-to-install sensors, but the flow rate of the working fluid flowing in and out of the lift cylinder 14 is calculated based on correlation data previously obtained through experiments, simulations, etc. for each type of hydraulic pump 26 or control valve 21, or for each type of forklift 1 on which it is installed, and the mast height is calculated from this, ensuring high measurement accuracy.

[0047] Furthermore, although the correlation data is in table format and some simple interpolation calculations may be necessary, the flow rate of the working fluid can basically be calculated simply by applying the values ​​of each measurement data to the correlation data, which reduces the calculation load and ensures sufficient measurement speed and accuracy without using a high-performance (high-cost) CPU, for example.

[0048] Furthermore, in the above embodiment, the mast height is calculated by integrating the amount of hydraulic fluid flowing in and out of the cylinder. However, any integral error that may occur during this calculation is reset by detecting the reference height, thereby reliably avoiding significant measurement errors due to the accumulation of integral errors. As described above, an inexpensive, easily installed sensor such as a limit switch is used to detect this reference height, which does not complicate the configuration or increase the price. Furthermore, if the reference height is set to the highest or lowest position of the mast 13, as described above, measurement errors due to the accumulation of integral errors can be avoided by utilizing the pump discharge pressure or the like, without using a dedicated sensor such as a limit switch. <Other embodiments> The present invention is not limited to the above-described embodiment.

[0049] In the above embodiment, the lift cylinder pressure is directly measured by a pressure sensor and the cylinder pressure measurement value is used to calculate the mast height during lowering. However, there are cases where a cylinder pressure sensor is not installed, or where even if a cylinder pressure sensor is installed, it is difficult to obtain its output data.

[0050] In such a case, for example, the lift cylinder pressure is proportional to the weight obtained by adding the weight of the empty load, such as the weight of the mast or the weight of the platform, and the weight of the loaded luggage. Therefore, it is possible to measure the luggage weight using a weight sensor installed on the platform of the forklift, and indirectly calculate the cylinder pressure measurement value based on the value obtained by adding the measured weight to the empty load.

[0051] On the other hand, in the above embodiment, the cylinder pressure measurement value is not used when calculating the mast height during lifting. However, if the cylinder pressure measurement value is used, correlation data (fourth master data) between the discharge pressure of the hydraulic pump, the lift cylinder pressure, and the control valve spool stroke amount, and the inflow flow rate of the working fluid into the lift cylinder may be created and recorded in advance through experiments, simulations, etc., and the cylinder pressure measurement value, the discharge pressure measurement value of the hydraulic pump, and the stroke measurement value of the control valve may be fitted to the fourth master data to find the inflow flow rate of the working fluid into the lift cylinder. Also, the lift cylinder pressure may be calculated from the measured value of the discharge pressure of the hydraulic pump and the measured value of the stroke of the control valve when the lift is increased.

[0052] Although the mast height measuring device in the above embodiment is attached to a forklift, it may be provided separately from the forklift, with its functions being carried out by a mobile terminal used by the worker (driver), a computer used by the work manager, a cloud computer, etc. In this case, each sensor may be made IoT-enabled so that the mast height measuring device can obtain each measurement data via a wireless line such as the Internet.

[0053] Furthermore, the data indicating the mast height measurement value calculated as described above (mast height measurement data) may be sent not only to the display device in the driver's seat of the forklift but also to the mobile terminal or the computer of the work manager as mentioned above, and recorded in a log. It may also be notified by voice.

[0054] It is also possible to create and use correlation data using the weight of the cargo instead of the pressure inside the lift cylinder (cylinder pressure). Because cargo weight has a one-to-one relationship with cylinder pressure, the mast height can be calculated in the same way even if it is substituted. The stroke measurement data can also be obtained from the amount of operation of the lift lever. <Forklift operation diagnostic device>

[0055] Furthermore, the mast height measurement value thus obtained can be used to diagnose the operation of the forklift. An example of this operation diagnosis will now be described. Conventionally, in a forklift control device, the speed and load weight are individually limited based on threshold values ​​set for each mechanism, such as the weight of the load and the vehicle speed.

[0056] However, in actual forklift operation, multiple factors can overlap at the same time, creating a dangerous situation. For example, even if the lift height is the same, the degree of danger of operation varies depending on the weight of the load, the vehicle speed, and the mast raising and lowering speed. Therefore, in the past, forklift operators in actual work sites would rely on their own experience to judge the situation from the multiple factors mentioned above and avoid dangerous driving.

[0057] In the following, an example will be described in which the calculation unit is provided with a function to automatically diagnose forklift operation based on multiple factors and visualize the safety level. In other words, the mast height measurement device also functions as a forklift operation diagnosis device. Specifically, the calculation unit calculates a safe operation index based on the luggage weight measurement value, the mast height measurement value, and the vehicle speed measurement value.

[0058] The measurement of the load weight and mast height has been described above. Regarding the vehicle speed, existing forklifts are equipped with a vehicle speed sensor, and the vehicle speed data output from this vehicle speed sensor is acquired. Alternatively, a separate rotation speed sensor may be attached to the axle, the driving motor, etc., to acquire the vehicle speed data.

[0059] Here, a predetermined operation evaluation function is stored in a predetermined area of ​​the memory, and the calculation unit calculates a safe operation index by substituting the luggage weight measurement value, mast height measurement value, and vehicle speed measurement value into this operation evaluation function. This can be expressed by the following formula: S=f(M,H,V) where I is the safe operation index, f is the operation evaluation function, M is the measured luggage weight, H is the measured mast height, and V is the measured vehicle speed.

[0060] Furthermore, the calculation unit classifies the safe operation index S into a plurality of levels, for example, into the following three levels, depending on the value. Level 1: Level specified in forklift safety regulations Level 2: A level that exceeds level 1 but does not pose a structural problem to the forklift. Level 3: A level that exceeds level 2 and has a high risk of the forklift tipping over.

[0061] The calculation unit sequentially records the calculated safe operation index and level in an operation index storage unit set in a predetermined area of ​​the memory, together with the driver ID, time, etc. At this time, in addition to the safe operation index, the luggage weight measurement value, the mast height measurement value and the vehicle speed measurement value may also be recorded in the operation index storage unit.

[0062] The operational status information including the safe operation index is displayed on a display device installed in the driver's seat of the forklift, as described above, so that the operator can be notified immediately. In addition, this operational status information may be transmitted to a terminal device or a cloud computer used by the work manager, recorded in a log, and used for managing the forklift operation by the worker.

[0063] With this configuration, the safety of forklift operation can be quantitatively and objectively evaluated from multiple sensing items, and dangerous lift heights can be diagnosed according to the weight of the load, and the operator can be alerted and managers can be notified of dangerous conditions regarding driving speeds at dangerous heights, loading and unloading operation speeds, etc. Furthermore, the safe operation index can be used to classify conditions that do not lead to accidents, and to perform energy saving diagnosis and evaluate the skill of operators.

[0064] In addition, by adding the mast speed, which is the time-differentiated value of the mast height measurement, or the acceleration, which is the time-differentiated value of the vehicle speed, to the variables of the operation evaluation function, it is possible to add items such as danger diagnosis based on the mast operation speed or danger diagnosis based on sudden acceleration / deceleration of the forklift. The mast height may also be measured by, for example, attaching a pulley-type winding gauge or linear gauge to the mast lifting cylinder. To summarize the above, the following can be said:

[0065] (1) This forklift mast height measuring device comprises: a correlation data storage unit that stores correlation data indicating the correlation between the discharge pressure of a hydraulic pump that supplies hydraulic fluid to a lift cylinder, the rotation speed of the hydraulic pump, the spool stroke amount of a control valve that controls the flow of hydraulic fluid into and out of the lift cylinder, and the flow rate of hydraulic fluid flowing into and out of the lift cylinder; Acquiring discharge pressure measurement data having a value related to the discharge pressure of the hydraulic pump, rotation speed measurement data having a value related to the rotation speed of the hydraulic pump, and stroke measurement data having a value related to the spool stroke amount of the control valve; The system is characterized by having a calculation unit that calculates the flow rate of the working fluid flowing in and out of the lift cylinder from the values ​​of the discharge pressure measurement data, rotation speed measurement data, and stroke measurement data by referring to the correlation data, and calculates the mast height based on the flow rate of the working fluid.

[0066] With this configuration, not only can mast height be measured using existing sensors or inexpensive, easy-to-install sensors, but the flow rate of the working fluid flowing in and out of the lift cylinder can be calculated using correlation data that takes into account the specific characteristics of the hydraulic pump and control valve installed on the actual machine, allowing for accurate measurement of mast height.

[0067] (2) The calculation unit determines whether the lift cylinder is rising based on the value of the stroke measurement data, and if it determines that the lift cylinder is rising, calculates the flow rate of the working fluid flowing into the lift cylinder by referring to the correlation data from the values ​​of the discharge pressure measurement data, the rotation speed measurement data, and the stroke measurement data. With this arrangement, it is possible to reliably determine when the mast is rising based on the value of the stroke measurement data, and to accurately calculate the mast height.

[0068] (3) as the correlation data, first master data representing a correlation between the discharge pressure and rotation speed of the hydraulic pump and the discharge flow rate of the hydraulic pump; a second master data representing a correlation between the discharge pressure of the hydraulic pump and the spool stroke of the control valve, and a flow rate ratio of a flow rate supplied from the hydraulic pump to the lift cylinder via the control valve and a flow rate returning to the tank; The calculation unit calculates the discharge flow rate of the hydraulic pump by referring to the first master data, and calculates the flow rate ratio by referring to the second master data, and calculates the flow rate of the working fluid flowing into the lift cylinder based on the discharge flow rate of the hydraulic pump and the flow rate ratio.

[0069] With this configuration, the correlation data is separated into the first master data specific to the hydraulic pump and the second master data specific to the control valve, which makes it easy to obtain each master data through experiments or the like.

[0070] (4) The forklift mast height measuring device also includes a correlation data storage unit that stores correlation data indicating the correlation between the cylinder load acting on the lift cylinder, the spool stroke amount of the control valve that controls the flow of hydraulic fluid into and out of the lift cylinder, and the flow rate of hydraulic fluid flowing in and out of the lift cylinder. acquiring cylinder pressure measurement data having a value related to the pressure in the lift cylinder and stroke measurement data having a value related to the spool stroke amount of the control valve; The system is characterized by having a calculation unit that calculates the flow rate of the working fluid flowing in and out of the lift cylinder from each value of the cylinder pressure measurement data and stroke measurement data by referring to the correlation data, and calculates the mast height based on the flow rate of the working fluid. With this, the mast height during lowering can be measured with high accuracy using cylinder pressure measurement data.

[0071] (5) The calculation unit determines whether the lift cylinder is descending based on the value of the stroke measurement data, and if it determines that the lift cylinder is descending, it refers to the correlation data from the values ​​of the cylinder pressure measurement data and the stroke measurement data to calculate the flow rate of the working fluid flowing out of the lift cylinder, and calculates the mast height based on the flow rate of the working fluid. With this arrangement, it is possible to reliably determine when the mast is lowered based on the value of the stroke measurement data, and to accurately calculate the mast height.

[0072] (6) As the correlation data, third master data is provided which represents a correlation between the pressure of the lift cylinder and the spool stroke amount of the control valve and the flow rate of the working fluid supplied from the hydraulic pump to the lift cylinder via the control valve, The calculation unit calculates the flow rate of the working fluid flowing out of the lift cylinder by referring to the third master data. With this configuration, the third master data can be obtained through experiments, simulations, or the like, thereby enabling accurate measurement of the mast height.

[0073] (7) Specifically, it is preferable that the cylinder pressure measurement data be acquired from a cylinder pressure sensor that measures the pressure of a lift cylinder or a weight sensor that measures the weight of a load loaded on the forklift.

[0074] (8) The forklift mast height measuring device also includes a correlation data storage unit that stores correlation data indicating the correlation between the discharge pressure of a hydraulic pump that supplies hydraulic fluid to a lift cylinder, the pressure of the hydraulic fluid in the lift cylinder, the spool stroke amount of a control valve that controls the flow of hydraulic fluid into and out of the lift cylinder, and the flow rate of the hydraulic fluid flowing in and out of the lift cylinder; Acquire discharge pressure measurement data having a value related to the discharge pressure of the hydraulic pump, cylinder pressure measurement data having a value related to the pressure in the lift cylinder, and stroke measurement data having a value related to the spool stroke amount of the control valve; The system is characterized by having a calculation unit that calculates the flow rate of the working fluid flowing in and out of the lift cylinder from the values ​​of the discharge pressure measurement data, cylinder pressure measurement data, and stroke measurement data by referring to the correlation data, and calculates the mast height based on the flow rate of the working fluid. By using the cylinder pressure measurement data in this way, the mast height during raising can be measured without using the discharge flow rate of the hydraulic pump.

[0075] (9) The calculation unit determines whether the lift cylinder is rising based on the value of the stroke measurement data, and if it determines that the lift cylinder is rising, calculates the flow rate of the working fluid flowing into the lift cylinder from the values ​​of the discharge pressure measurement data, cylinder load data, and stroke measurement data by referring to the correlation data. With this arrangement, it is possible to reliably determine when the mast is rising based on the value of the stroke measurement data, and to accurately calculate the mast height.

[0076] (10) During the ascent, the calculation unit can also calculate the value of the cylinder pressure measurement data based on the values ​​of the discharge pressure measurement data and the stroke measurement data.

[0077] (11) Furthermore, this forklift operation diagnosis device is characterized in that it calculates an operation safety index that indicates the safety of forklift operation based on luggage weight data having a value related to the weight of luggage loaded on the forklift platform, platform height data having a value related to the height of the platform, and vehicle speed data having a value related to the forklift vehicle speed. Such a system would enable a quantitative and objective evaluation of the safety of forklift operation, which is made up of multiple factors, and would enable the diagnosis of dangerous lift heights according to the weight of the load, alerting the operator to driving speeds at dangerous heights, cargo handling operation speeds, etc., and notifying managers of dangerous conditions. Furthermore, the safe operation index would enable classification of conditions that do not lead to accidents, enabling energy-saving diagnosis and evaluation of operator skills.

[0078] (12) If the operation safety index is calculated based on platform ascent / descent speed data having a value related to the platform ascent / descent speed and / or acceleration data having a value related to the forklift acceleration, it becomes possible to perform an even more detailed and accurate operation evaluation.

[0079] In order to enable an operator to intuitively grasp the operational safety of a forklift, it is preferable that the operational safety be classified into a plurality of levels based on the operational safety index value and output. [Industrial Applicability]

[0080] According to the present invention, not only can mast height be measured using existing sensors or inexpensive, easy-to-install sensors, but the flow rate of the working fluid flowing in and out of the lift cylinder can be calculated using correlation data that takes into account the specific characteristics of the hydraulic pump and control valve installed on the actual machine, allowing for accurate measurement of mast height. [Explanation of symbols]

[0081] 100···Mast height measuring device (operation diagnostic device) 1. Forklift 21. Control valve 14. Lift cylinder 26 Hydraulic pump

Claims

1. 1. A forklift operation diagnosis device comprising: a forklift operation safety index indicating the safety of forklift operation based on luggage weight data having a value related to the weight of luggage loaded on the forklift platform, platform height data having a value related to the height of the platform, and vehicle speed data having a value related to the forklift's vehicle speed; a forklift operation diagnosis device comprising: a forklift operation status diagnostic device; a forklift operation status diagnostic device; a forklift operation status diagnostic device;

2. 2. The forklift operation diagnosis device according to claim 1, wherein the operation safety index is calculated further based on platform ascent / descent speed data having a value related to the platform ascent / descent speed and / or acceleration data having a value related to the acceleration of the forklift.

3. Calculating an operation safety index indicating the safety of forklift operation based on luggage weight data having a value related to the weight of luggage loaded on the platform of the forklift, platform height data having a value related to the height of the platform, and vehicle speed data having a value related to the vehicle speed of the forklift, and sequentially recording operation status information including the operation safety index; It is also equipped with a forklift mast height measuring device, Calculating the height of the conveyance platform based on the mast height calculated by the mast height measuring device; The mast height measuring device is a correlation data storage unit that stores correlation data indicating a correlation between the discharge pressure of a hydraulic pump that supplies hydraulic fluid to the lift cylinder, the rotation speed of the hydraulic pump, and the spool stroke amount of a control valve that controls the inflow and outflow of hydraulic fluid to the lift cylinder, and the flow rate of the hydraulic fluid that flows in and out of the lift cylinder; Acquiring discharge pressure measurement data having a value related to the discharge pressure of the hydraulic pump, rotation speed measurement data having a value related to the rotation speed of the hydraulic pump, and stroke measurement data having a value related to the spool stroke amount of the control valve; and a calculation unit that calculates the flow rate of the working fluid flowing in and out of the lift cylinder from the values ​​of the discharge pressure measurement data, rotation speed measurement data, and stroke measurement data by referring to the correlation data, and calculates the mast height based on the flow rate of the working fluid.

4. Calculating an operation safety index indicating the safety of forklift operation based on luggage weight data having a value related to the weight of luggage loaded on the platform of the forklift, platform height data having a value related to the height of the platform, and vehicle speed data having a value related to the vehicle speed of the forklift, and sequentially recording operation status information including the operation safety index; It is also equipped with a forklift mast height measuring device, Calculating the height of the conveyance platform based on the mast height calculated by the mast height measuring device; The mast height measuring device is a correlation data storage unit that stores correlation data indicating a correlation between the pressure inside the lift cylinder, the spool stroke amount of a control valve that controls the inflow and outflow of the working fluid to the lift cylinder, and the flow rate of the working fluid flowing in and out of the lift cylinder; and acquiring cylinder pressure measurement data having a value related to the pressure inside the lift cylinder and stroke measurement data having a value related to the spool stroke amount of the control valve, and a calculation unit that calculates the flow rate of the working fluid flowing in and out of the lift cylinder from each value of the cylinder pressure measurement data and the stroke measurement data by referring to the correlation data, and calculates the mast height based on the flow rate of the working fluid.

5. Calculating an operation safety index indicating the safety of forklift operation based on luggage weight data having a value related to the weight of luggage loaded on the platform of the forklift, platform height data having a value related to the height of the platform, and vehicle speed data having a value related to the vehicle speed of the forklift, and sequentially recording operation status information including the operation safety index, It is also equipped with a forklift mast height measuring device, Calculating the height of the conveyance platform based on the mast height calculated by the mast height measuring device; The mast height measuring device is a correlation data storage unit that stores correlation data indicating a correlation between the discharge pressure of a hydraulic pump that supplies hydraulic fluid to a lift cylinder, the pressure inside the lift cylinder, the spool stroke amount of a control valve that controls the inflow and outflow of hydraulic fluid to the lift cylinder, and the flow rate of hydraulic fluid flowing in and out of the lift cylinder; Acquire discharge pressure measurement data having a value related to the discharge pressure of the hydraulic pump, cylinder pressure measurement data having a value related to the pressure in the lift cylinder, and stroke measurement data having a value related to the spool stroke amount of the control valve; and a calculation unit that calculates the flow rate of the working fluid flowing in and out of the lift cylinder from the values ​​of the discharge pressure measurement data, cylinder pressure measurement data, and stroke measurement data by referring to the correlation data, and calculates the mast height based on the flow rate of the working fluid.

Citation Information

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