The present invention relates to a work machine such as a construction machine.
For this type of a work machine, a technology disclosed in, for example, Patent Document 1 has been proposed. This Patent Document 1 proposes a technology in which, in order to provide an operator with easy-to-understand malfunction information of a work machine, one of two screens that is currently displayed in an information display device displays a malfunction of an engine or the like of the work machine when the degree of the malfunction is small. Further, a technology has been proposed, in which if the degree of the malfunction is large and one screen is being displayed in the information display device, then the one screen is automatically switched to the other screen to display the malfunction on the other screen.
Patent Literature 1: Japanese Patent No. 5956386
However, it is desirable to guide an operator to operate a work machine before a malfunction occurs in a constituent element of the work machine so that such a malfunction will not occur.
Accordingly, an object of the present invention is to provide a work machine capable of guiding an operator to operate the work machine before a malfunction occurs in a constituent element of the work machine so that such a malfunction will not occur.
To this end, a work machine in accordance with the present invention includes:
an operation mechanism;
a load detection element which detects a load applied to the operation mechanism;
an information output device which outputs at east one of an image, a sound, and a vibration to an operator; and
a control element which performs one or more controls, according to a magnitude of a load on the operation mechanism detected by the load detection element, among control of a level of at least one of color intensity, brightness, and transparency of at least a part of an image output by the information output device, control of at least one of intensity and a level of frequency of a sound output by the information output device, and control of at least one of an intensity and a level of frequency of a vibration output by the information output device.
A first embodiment of the present invention will be described below with reference to
The work machine 10 is, for example, a hydraulic excavator, and includes a front operation mechanism 100 that has an attachment 11, an arm 12, and a boom 13, a swivel body 14, and a traveling body 15. The traveling body 15 is a crawler type traveling body in the illustrated example, and is driven by a hydraulic motor for traveling, which is not illustrated. The traveling body 15 may be a wheel type traveling body.
The swivel body 14 is placed above the traveling body 15, and configured to be capable of swiveling around a yaw axis with respect to the traveling body 15 by a hydraulic motor for swiveling, which is not illustrated. Provided at the rear of the swivel body 14 is a machine room 14b that houses hydraulic equipment (a hydraulic pump, a directional switching valve, a hydraulic oil tank, or the like), which is not illustrated, and an engine, which is a power source for a hydraulic pump or the like, and which is not illustrated.
Further, the work machine 10 is a work machine that can be hoarded and operated by a driver, and a driver's cab 14a is provided at a front portion of the swivel body 14. An operation device 17 (illustrated in
The front operation mechanism 100 constitutes an example of the operation mechanism in the present invention, and includes the attachment 11, the arm 12, and the boom 13, and hydraulic cylinders 11a, 12a, and 13a that drive the attachment 11, the arm 12, and the boom 13, respectively. Further, the boom 13 is attached to the front portion of the swivel body 14 such that the boom 13 can be swung with respect to the swivel body 14 by the hydraulic cylinder 13a. The arm 12 is attached to the tip of the boom 13 such that the arm 12 can be swung with respect to the boom 13 by the hydraulic cylinder 12a. The attachment 11 is attached to the tip of the arm 12 such that the attachment 11 can be swung with respect to the arm 12 by the hydraulic cylinder 11a. Here, in the present embodiment, each of the hydraulic cylinders 11a, 12a, and 13a corresponds to an actuator as a constituent element of an operation mechanism in the present invention, and each of the attachment 11, the arm 12, and the boom 13 corresponds to a driven part as a constituent element of the operation mechanism in the present invention.
Although the bucket is illustrated as an attachment 11 in
In the work machine 10 having the above-mentioned configuration, the operation levers or the operation pedals of the operation device 17 are operated while the engine is running, thereby to actuate the hydraulic motor for traveling, the hydraulic motor for swiveling, the actuators of the hydraulic cylinders 11a, 12a, and 13a, and the like, thus making it possible to steer the work machine 10. In this case, the operations of the actuators based on the control through the operation device 17 can be performed in the same manner as with, for example, a publicly known work machine.
Further, in the present embodiment, an electrically powered operation drive device 21 that drives the operation device 17 is mounted on the work machine 10 as illustrated in
As illustrated in
The operation state detector 22 in the present embodiment includes a load detection unit 22a that detects a load applied to each actuator of the front operation mechanism 100. The load detection unit 22a corresponds to a load detection element in the present invention. The load detection unit 22a is composed of a pressure sensor that detects, for example, the pressure of hydraulic oil supplied to each of the hydraulic cylinders 11a, 12a, and 13a, or the pressure of hydraulic oil discharged from each of the hydraulic cylinders 11a, 12a, and 13a. In this case, the pressure of hydraulic oil detected by the pressure sensor for each of the hydraulic cylinders 11a, 12a, and 13a represents the load applied to each of the hydraulic cylinders 11a, 12a, and 13a.
The load detection unit 22a may be provided with, for example, a force sensor that detects the translational force generated by the hydraulic cylinders 11a, 12a, and 13a, or a force sensor that detects the rotational force (torque) of each of the boom 13, the arm 12, and the attachment 11 corresponding to the swivel body 14, the boom 13, and the arm 12, respectively, instead of the pressure sensor.
Further, although not illustrated, the operation state detector 2:2 includes, in addition to the load detection unit 22a, for example, a detector that detects the rotational angle of the swing motion of each of the attachment 11, the arm 12, and the boom 13 (or the stroke lengths of the hydraulic cylinders 11a, 12a, and 13a), a detector that detects the swivel angle of the swivel body 14, and a detector that detects a driving speed of the traveling body 15. The operation state detector 22 can thither include, in addition to the detectors described above, for example, a detector that detects the tilt angle of the swivel body 14 or the traveling body 15, an inertial sensor that detects the angular velocity or the acceleration of the swivel body 14, and other sensors.
The camera 23 is mounted on the ceiling of the drivers cab 14a, or the inside of the driver's cab 14a, or the like such that, for example, an area in front of the swivel body 14 can be photographed. A plurality of cameras 23 may be mounted on the work machine 10 such that a plurality of areas around the work machine 10 can be photographed.
The work machine side control device 25 is composed of one or more electronic circuit units that include, for example, microcomputers, memories, interface circuits and the like, and can acquire, as necessary, a captured image signal of the camera 23 or a detection signal of the operation state detector 22. In addition, the work machine side control device 25 can communicate, as necessary, with the remote control device 40 through the intermediary of the wireless communication device 26.
Further, the work machine side control device 25 has, as a function implemented by both or one of hardware configuration and a program (software configuration) that have been installed, a function as an operation control unit 25a which performs the operation control of the work machine 10 according to an operation through the operation device 17 or in response to an operation command given front the remote control device 40 through the intermediary of the wireless communication device 26. The operation control unit 25a can perform the operation control of the operation drive device 21 (consequently the operation control of the operation device 17), and can perform the operation control of an engine.
A description will now be given of the remote control device 40. As illustrated in
Further, as illustrated in
The operation device 42 can adopt a configuration that is the same as or similar to that of, for example, the operation device 17 of the work machine 10. For example, the operation device 42 illustrated in
The operation state detector 46 corresponds to a first detection element in the present invention. The operation state detector 46 includes, for example, a potentiometer, a contact switch, and the like incorporated in the operation device 42, and is configured to output detection signals indicating the operation state of each of the operation parts (the control levers 42a, 42b, the control pedal 42ap, and the like) of the operation device 42.
The speakers 43 are placed, for example, at a plurality of locations around the remote control room 2, e.g., at the front the rear and both left and right sides of the remote control room 2. The display 44 is composed of, for example, a liquid crystal display, a head-up display, or the like, and is placed on the front side of the seat 41 such that the display 44 can be seen by the operator seated on the seat 41. In the present embodiment, the speakers 43, the display 44, and the vibration exciter 41a can function as an information output device in the present invention.
The master side control device 47 is composed of one or more electronic circuit units that include, for example, microcomputers, memories, interface circuits and the like, and can acquire, as necessary, a detection signal of the operation state detector 46. In addition, the master side control device 47 can communicate, as necessary, with the work machine side control device 25 through the intermediary of the wireless communication device 45 and the wireless communication device 26 of the work machine 10. This communication enables the master side control device 47 to transmit an operation command of the work machine 10 specified according to the operation state of the operation device 42 detected by the operation state detector 46 to the work machine side control device 25, or to receive various types of information on the work machine 10 (a captured image by the camera 23, the detection information of the operation state of the work machine 10, and the like) front the work machine side control device 25.
Further, the master side control device 47 has, as a function implemented by both or one of a hardware configuration and a program (a software configuration), which are installed, a function as an output information control unit 47a that controls the speakers 43, the display 44, and the vibration exciter 41a. The output information control unit 47a corresponds to a control element in the present invention.
Next, the operation of the remote control system 1 of the present embodiment will be specifically described. When the operator seated on the seat 41 in the remote control room 2 performs a predetermined startup operation (e.g., turning on a start switch, which is not illustrated, of the operation device 42, or a voice input operation) to start an operation by the work machine 10, the master side control device 47 transmits a startup command to the work machine side control device 25 through the wireless communication devices 45 and 26 in response to the startup operation.
At this time, the work machine side control device 25 carries out, by the operation control unit 25a, the control processing for starting the engine of the work machine 10 upon receipt of the startup command. Then, when the startup of the engine is completed, the work machine side control device 25 transmits engine startup completion information, which indicates that the engine has started, to the master side control device 47 through the wireless communication devices 26 and 45.
Upon receipt of the engine startup completion information, the master side control device 47 causes the speakers 43 to output audio information indicating that the engine of the work machine 10 has started up, or causes the display 44 to show display information indicating that the engine has started up. This enables the operator to recognize that the engine of the work machine 10 has started up.
Further, the master side control device 47 sequentially acquires (receives), by the communication with the work machine side control device 25, a captured image (including a captured image of the front side of the swivel body 14) by the camera 23 of the work machine 10. Then, the master side control device 47 causes the acquired captured image to be shown on the display 44. For example, as illustrated in
Subsequently, the operator operates the operation device 42 to cause, when necessary, the traveling body 15 of the work machine 10 to perform a traveling operation, the swivel body 14 to perform a swiveling operation, or the front operation mechanism 100 to perform its operation. At this time, the master side control device 47 sequentially detects the operation state of the operation device 42 through the intermediary of the operation state detector 46, and transmits an operation command based on the operation state to the work machine side control device 25.
At this time, the work machine side control device 25 controls the operation drive device 21 so as to operate the operation device 17 of the work machine 10 in response to a received operation command. Consequently, the traveling operation of the traveling body 15 of the work machine 10, the swiveling operation of the swivel body 14, or the operation of the front operation mechanism 100 is carried out according to the operation of the operation device 42 performed by the operator. Consequently, required work by the work machine 10 is accomplished.
During such an operation, the work machine side control device 25 sequentially acquires detection information obtained by the operation state detector 22 and transmits the detection information to the master side control device 47 through the wireless communication devices 26 and 45. At this time, the output information control unit 47a of the master side control device 47 generates, while sequentially updating, an image showing the overall attitude state (real-time attitude state) of the front operation mechanism 100 defined according to the detection value of each of the swing rotational angles of the attachment 11, the arm 12, and the boom 13 (or the detection value of the stroke length of each of the hydraulic cylinders 11a, 12a, and 13a), and causes the image (hereinafter referred to as the operation mechanism state image) to be displayed on a partial screen area of the display 44.
Thus, the operation mechanism state image illustrated in, for example,
Further, the operation mechanism state image may include diagrams 11ab, 12ab, and 13ab showing the arrangement modes of the actuators (the hydraulic cylinders 11a, 12a, and 13a) included in the front operation mechanism 100 as illustrated in, for example,
Further, the output information control unit 47a of the master side control device 47 sequentially monitors the detection information of the load on each of the hydraulic cylinders 11a, 12a, and 13a of the front operation mechanism 100 by the load detection unit 22a among the detection information of the operation state detector 22 transmitted from the work machine side control device 25 while the work machine 10 is in operation.
Then, the output information control unit 47a causes the operation mechanism state image to be displayed on the display 44 such that the state amount of one or more of brightness, color intensity, and transparency of at least a part of the operation mechanism state image is changed according to the detection information of the load on each of the hydraulic cylinders 11a, 12a, and 13a. The following will describe some examples of the display form of the operation mechanism state image based on the load on each of the hydraulic cylinders 11a, 12a, and 13a.
A first example will be described with reference to
Then, if the load on any one of the hydraulic cylinders 11a, 12a, and 13a increases to be more than the predetermined value, a masking color of a predetermined color is superimposed on the entire operation mechanism state image such that the transparency of the entire operation mechanism state image becomes lower than that in a low load state (
Consequently, while operating the work machine 10 without boarding the work machine 10, the operator can visually recognize with ease when the load on any one of the hydraulic cylinders 11a, 12a, and 13a increases, and the high or low degree of the magnitude of the load. Thus, the operator can correct the way of moving the front operation mechanism 100 at an appropriate timing to prevent the load on each of the hydraulic cylinders 11a, 12a, and 13a from becoming excessive. As a result, the occurrence of a malfunction such as a failure of the front operation mechanism 100 can be properly prevented.
In the first example, when the load on any one of the hydraulic cylinders 11a, 12a, and 13a becomes larger than a predetermined value, instead of or in addition to decreasing the transparency of the entire operation mechanism state image as the load increases, one or both of the brightness and the color intensity of the entire operation mechanism state image may be changed according to the load. For example, one or both of the brightness and the color intensity of the entire operation mechanism state image may be decreased as the load increases.
(Second example) Referring now to
For example,
Consequently, while operating the work machine 10 without boarding the work machine 10, the operator can visually recognize with ease when the load on any one of the hydraulic cylinders 11a, 12a, and 13a increases, and the high or low degree of the magnitude of the load. In addition, the operator can visually recognize with ease which one of the hydraulic cylinders 11a, 12a, and 13a is the hydraulic cylinder with increased load X. Thus, the operator can properly correct the way of moving the front operation mechanism 100 at an appropriate timing to decrease the load on the hydraulic cylinder with increased load X. As a result, the occurrence of a failure or the like of the front operation mechanism 100 can be properly prevented.
In the second example, when the load on any one of the hydraulic cylinders 11a, 12a, and 13a becomes larger than a predetermined value, instead of or in addition to decreasing the transparency of the image of the hydraulic cylinder with increased load X as the load on the hydraulic cylinder with increased load X increases, one or both of the brightness and the color intensity of the image of the hydraulic cylinder with increased load X may be changed according to the load on the hydraulic cylinder with increased load X. For example, one or both of the brightness and the color intensity of the image of the hydraulic cylinder with increased load X may be decreased as the load on the hydraulic cylinder with increased load X increases.
Referring now to
For example,
Consequently, while operating the work machine 10 without boarding the work machine 10, the operator can visually recognize with ease when the load on any one of the hydraulic cylinders 11a, 12a, and 13a increases, and the high or low degree of the magnitude of the load. In addition, the operator can visually recognize with ease which one of the driven parts, namely, an attachment 11, an arm 12, and a boom 13, is the driven part with increased load Y corresponding to the hydraulic cylinder with increased load X. Thus, the operator can properly correct the way of moving a front operation mechanism 100 at an appropriate timing to decrease the load on the hydraulic cylinder with increased load X that drives the driven part with increased load Y. As a result, the occurrence of a failure or the like of the front operation mechanism 100 can be properly prevented.
In the third example, if the load on any one of the hydraulic cylinders 11a, 12a, and 13a becomes larger than the predetermined value, then the brightness or the color intensity of the image of the driven part with increased load Y may be decreased as the load on the hydraulic cylinder with increased load X corresponding to the driven part with increased load Y increases.
Further, instead of or in addition to increasing (or decreasing) the brightness or the color intensity of the image of the driven part with increased load Y as the load on the hydraulic cylinder with increased load X corresponding to the driven part with increased load Y increases, the transparency of the image of the driven part with increased load Y may be changed according to the load on the hydraulic cylinder with increased load X that drives the driven part with increased load Y. For example, the transparency of the image of the driven part with increased load Y may be decreased as the load on the hydraulic cylinder with increased load X increases.
Referring now to
Then, when the load on any one of the hydraulic cylinders 11a, 12a, and 13a becomes larger than the predetermined value, a masking color of a predetermined color (e.g., red) is superimposed on the image of a diagram 11ab, or 12ab or 13ab corresponding to a hydraulic cylinder with increased load X, the load on which has exceeded the predetermined value (hereinafter referred to as the diagram with increased load D), in an operation mechanism state image such that the transparency of the image of the diagram with increased load D is lower than that of the low load state (
For example,
Consequently, as with the second example, while operating a work machine 10 without boarding the work machine 10, an operator can visually recognize with ease when the load on any one of the hydraulic cylinders 11a, 12a, and 13a increases, and the high or low degree of the magnitude of the load. In addition, the operator can visually recognize with ease which one of the hydraulic cylinder 11a, 12a, and 13a is the hydraulic cylinder with increased load X. Thus, the operator can properly correct the way of moving a front operation mechanism 100 at an appropriate tinting to reduce the load on the hydraulic cylinder with increased load X. As a result, the occurrence of a failure or the like of the front operation mechanism 100 can be properly prevented.
In the fourth example, when the load on any one of the hydraulic cylinders 11a, 12a, and 13a becomes larger than the predetermined value, instead of or in addition to decreasing the transparency of the image of the diagram with increased load D corresponding to the hydraulic cylinder with increased load X as the load on the hydraulic cylinder with increased load X increases, one or both of the brightness and the color intensity of the diagram with increased load D corresponding to the hydraulic cylinder with increased load X may be changed according to the load on the hydraulic cylinder with increased load X. For example, one or both of the brightness and the color intensity of the image of the diagram with increased load D corresponding to the hydraulic cylinder with increased load X may be increased (or decreased) as the load on the hydraulic cylinder with increased load X increases.
A second embodiment of the present invention will now be described with reference to
In the present embodiment, when the load on any one of the actuators (hydraulic cylinders 11a, 12a, and 13a) of a front operation mechanism 100 becomes larger than a predetermined value, the output information control unit 47a causes speakers 43 to output an alarm sound and causes a seat 41 to vibrate through the intermediary of a vibration exciter 41a in addition to controlling the display of an operation mechanism state image on a display 44 as in the first embodiment, or instead of controlling the display. Further, in this case, the output information control unit 47a changes both or one of the frequency and intensity of each of the alarm sound and the vibration of the seat 41 according to the magnitude of the load on a hydraulic cylinder with increased load X. The alarm sound is not limited to a mere acoustic output, but may be a voice (e.g., a voice such as “The load on the hydraulic cylinder ○ is large”).
More specifically, referring to
In addition, the output information control unit 47a controls the vibration exciter 41a to change the frequency or the intensity of the vibration of the seat 41 according to the magnitude of the load on the hydraulic cylinder with increased load X as with the alarm sound (e.g., as indicated by the solid line graph or the dashed line graph of
In the present embodiment, when the load on any one of the actuators (the hydraulic cylinders 11a, 12a, and 13a) of the front operation mechanism 100 becomes larger than a predetermined value, the alarm sound is output from the speakers 43 and the seat 41 is vibrated as described above.
Consequently, while operating a work machine 10 without boarding the work machine 10, an operator can aurally or sensorily recognize with ease when the load on any one of the hydraulic cylinders 11a, 12a, and 13a increases, and the high or low degree of the magnitude of the load. Thus, the operator can correct the way of moving the front operation mechanism 100 at an appropriate timing to decrease the load on the hydraulic cylinder with increased load X. As a result, the occurrence of a failure or the like of the front operation mechanism 100 can be properly prevented.
To output the alarm sound as described above from the speakers 43, audio information indicating which hydraulic cylinder among the hydraulic cylinders 11a, 12a, and 13a has an increased load may be output from the speakers 43 at the timing immediately before the output.
Further, in the processing for changing the frequency or the intensity (volume) of the alarm sound according to the load on the hydraulic cylinder with increased load X, the frequency or the intensity (volume) of the alarm sound may be decreased as the load increases, contrary to the above. The same applies also to the frequency or the intensity of the vibration of the seat 41.
Further, when the load on any one of the actuators (the hydraulic cylinders 11a, 12a, and 13a) of the front operation mechanism 100 becomes larger than the predetermined value, only one of the output of the alarm sound and the vibration of the seat 41 may be performed.
A third embodiment of the present invention will now be described with reference to
In the present embodiment, the output information control unit 47a causes a display 44 in front of an operator to continuously display captured images in front of a swivel body 14 photographed by a camera 23 of a work machine 10 while the work machine 10 is in operation (including captured images of a front operation mechanism 100, which will be hereinafter referred to simply as the captured front images). For example, as illustrated in
Then, in a state in which such a captured front image is being shown on the display 44, when the load on any one of the actuators (hydraulic cylinders 11a, 12a, and 13a) of the front operation mechanism 100 becomes larger than a predetermined value, which is detected from the detection information of the load, the output information control unit 47a performs display control of the display 44 so as to change the state amount of one of the brightness, the color intensity, and the transparency of at least a part of the captured front image.
In this case, the display control on the captured front image is performed in the same manner as the display control on the operation mechanism state image described in the first embodiment. For example, if the load on any one of the hydraulic cylinders 11a, 12a, and 13a becomes larger than the predetermined value, then the captured image of a driven part with increased load Y (an attachment 11 or an arm 12 or a boom 13) driven by a hydraulic cylinder with increased load X, the load on which has become larger than the predetermined value, is colored by a predetermined color (e.g., red) among the captured images of the front operation mechanism 100 included in the captured front image, and the colored image is shown on the display 44. Further, the captured image of the driven part with increased load Y is shown on the display 44 such that the brightness or the color intensity of the captured image of the driven part with increased load Y becomes higher than that of the low load state (
For example,
Consequently, while operating the work machine 10 without boarding the work machine 10, the operator can visually recognize with ease when the load on any one of the hydraulic cylinders 11a, 12a, and 13a increases, and the high or low degree of the magnitude of the load. In addition, the operator can visually recognize with ease which one of the driven parts, namely, the attachment 11, the arm 12, and the boom 13, is the driven part with increased load Y corresponding to the hydraulic cylinder with increased load X. Thus, the operator can properly correct the way of moving the front operation mechanism 100 at an appropriate timing to decrease the load on the hydraulic cylinder with increased load X that drives the driven part with increased load Y. As a result, the occurrence of a failure or the like of the front operation mechanism 100 can be properly prevented.
Both the brightness and the color intensity of a captured image of the driven part with increased load Y may be changed according to the magnitude of the load on the hydraulic cylinder with increased load X. Further, in addition to or instead of changing one or both of the brightness and the color intensity of the captured image of the driven part with increased load Y according to the magnitude of the load on the hydraulic cylinder with increased load X, the transparency of the captured image of the driven part with increased load. Y may be changed, or the state amount or amounts of one or more of the brightness, the color intensity, and transparency of the hydraulic cylinder with increased load X may be changed according to the magnitude of the load on the hydraulic cylinder with increased load X.
Alternatively, for example, the state amount or amounts of one or more of the brightness, the color intensity, and the transparency of the entire captured front image may be changed according to the magnitude of the load on the hydraulic cylinder with increased load X.
Further, for example, as with the second embodiment, the alarm sound output from the speakers 43 or the vibration of the seat 41 may be controlled in addition to changing the state amount of any one of the brightness, the color intensity, and the transparency of at least a part of the captured front image according to the magnitude of the load on the hydraulic cylinder with increased load X.
The above has described the first to the third embodiments of the present invention, but the present invention is not limited to the embodiments described above, and can also adopt other embodiments. For example, in the foregoing embodiments, the hydraulic excavator has been exemplified as the work machine 10, but the work machine in the present invention may be a work machine such as a crane or a forestry machine. Further, the work machine 10 may be a work machine exclusively designed for remote control.
Further, in the foregoing embodiments, the remote control system 1 of the work machine 10 has been exemplified, but the present invention can be applied also to a work machine operated by an operator aboard.
As described above, the work machine in accordance with the present invention includes: an operation mechanism; a load detection element that detects a load applied to the operation mechanism; an information output device that outputs at least one of an image, a sound, and a vibration to an operator; and a control element that carries out one or more controls among the control of the level of at least one of the color intensity, the brightness, and the transparency of at least a part of an image output by the information output device according to the magnitude of a load on the operation mechanism detected by the load detection element, the control of at least one of the intensity and the level of frequency of a sound output by the information output device, and the control of at least one of the intensity and the level of frequency of a vibration output by the information output device.
According to the work machine in accordance with the present invention, at least one of an “image” in which the level of at least one of color intensity, brightness, and transparency differs at least partly, depending on the magnitude of the load applied to the operation mechanism, a “sound” in which at least one of the intensity and the level of frequency is different, and a “vibration” in which at least one of the intensity and the level of frequency is different is output from an information output device to the operator. This makes it possible to cause the operator to recognize that the load on the operation mechanism is large before the operation mechanism malfunctions, thus guiding the operator to control the operating state of the work machine including the operation mechanism so that the load is reduced.
Further, in the present invention, the control element can adopt a mode in which control is performed such that the transparency of an area that overlaps at least partly with an image normally displayed among the images output by the information output device decreases as the load on the operation mechanism detected by the load detection element increases. The phrase an “image normally displayed” means an image output by the information output device in a state in which the load on at least the operation mechanism is sufficiently small.
With this arrangement, the control is performed such that the transparency of an area overlapping with an image normally displayed among the images output by the information output device decreases as the load applied to the operation mechanism increases. Consequently, the visibility of a normally displayed image decreases, so that the operator is made more aware of the fact that the load on the operation mechanism is large before the operation mechanism malfunctions, and thus the operator can be more reliably guided to control the operating state of the work machine including the operation mechanism such that the load is reduced.
Further, in the present invention, the operation mechanism can be a mechanism that includes an actuator and a part driven by the actuator. In this case, a mode can be adopted, in which the level of at least one of the color intensity, the brightness, and the transparency of an image part corresponding to at least one of the actuator and the driven part in an image output by the information output device is controlled according to the magnitude of the load on the operation mechanism detected by the load detection element.
According to this mode, the level of at least one of the color intensity, the brightness, and the transparency of an image part corresponding to at least one of the actuator and the driven part of the operation mechanism is controlled according to the magnitude of the load on the operation mechanism. Consequently, when the load applied to the operation mechanism increases, an operator can visually recognize with ease which part of the operation mechanism has the increased load. This enables the operator to appropriately control the operation state of the work machine to reduce the load.
Further, in the present invention, the control element can output a diagram illustrating the arrangement mode of each of a plurality of the operation mechanisms in the work machine to the information output device. In this case, the control element can adopt controlling the level of at least one of the color intensity, the brightness, and the transparency of a part corresponding to each of the plurality of the operation mechanisms in the diagram output by the information output device according to the magnitude of the load on each of the plurality of the operation mechanisms detected by the load detection element.
With this arrangement, as the load applied to each of a plurality of operation mechanisms increases, the level of at least one of the color intensity, the brightness, and the transparency of a part corresponding to each operation mechanism in a diagram, which is output by an information output device and which indicates the arrangement mode of each operation mechanism in a work machine is controlled. This enables an operator to recognize at least one operation mechanism with a relatively large load among a plurality of operation mechanisms, thus making it possible to guide the operator to control the work machine so as to reduce the load on the at least one operation mechanism.
Number | Date | Country | Kind |
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2019-012193 | Jan 2019 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2019/046887 | 11/29/2019 | WO |
Publishing Document | Publishing Date | Country | Kind |
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WO2020/158157 | 8/6/2020 | WO | A |
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