Construction machinery
The construction machine design with integrated transportation and processing systems addresses layout limitations by enabling autonomous operation and multifunctionality, enhancing flexibility and efficiency in excavation and material handling.
Patent Information
- Application Number
- JP2023535089
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-07-16
- Filing Date
- 2022-02-16
- Publication Date
- 2025-10-15
- Estimated Expiration
- 2042-02-16
AI Technical Summary
Construction machines with driver's seats have limitations on layout flexibility, restricting their multifunctionality.
A construction machine design featuring an upper main body device with a working device, a lower main body device, and integrated material transportation and processing systems, including a swivel device, first and second transporting devices, and processing devices, allowing for autonomous or remote operation without a driver's seat.
Enables a high degree of layout freedom and multifunctionality, facilitating efficient excavation, material processing, and transportation, suitable for narrow sites and reducing energy consumption.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a construction machine such as a hydraulic excavator that performs excavation and loading work, and in particular to a construction machine that has a high degree of freedom in layout. [Background technology]
[0002] Conventionally, development of automatic operation has been carried out for construction machines such as backhoes, and the automation of excavation work is disclosed in Patent Document 1. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Publication No. 2020-41354 Summary of the Invention [Problem to be solved by the invention]
[0004] However, since the construction machine in Patent Document 1 has a driver's seat, there are limitations on the layout of the construction machine.
[0005] Therefore, an object of the present invention is to provide a construction machine that has a high degree of freedom in layout, or to provide a multifunctional construction machine. [Means for solving the problem]
[0006] The construction machine according to the first aspect of the present invention comprises an upper main body device to which a working device for excavating is connected; a lower main body device that supports the upper main body device via a swivel device; The work device excavates the material. under The excavated material transporting device is provided with a first transporting device for transporting the excavated material to the lower main body device, a processing device provided in the lower main body device for processing the excavated material transported by the first transporting device, and a second transporting device for transporting the excavated material processed by the processing device to the outside of the lower main body device. [Effects of the Invention]
[0007] According to the first aspect of the present invention, a construction machine with a high degree of freedom in layout can be realized, since a treatment device for treating the excavated material is provided when the excavated material is transported by the transport device. [Brief explanation of the drawings]
[0008] [Figure 1] 1A and 1B are schematic diagrams of a construction machine according to a first embodiment of the present invention, in which FIG. 1A is a top view and FIG. 1B is a front view. [Figure 2] FIG. 2 is a cross-sectional view of the construction machine of FIG. 1(b) taken along the line AA. [Figure 3] FIG. 2 is a block diagram of the main parts of the first embodiment. [Figure 4] 3 is a flowchart executed by the heavy equipment control device of the first embodiment. [Figure 5] 5A and 5B are schematic diagrams of a construction machine representing the second embodiment, in which Fig. 5(a) shows the state in which the working device has been retracted, Fig. 5(b) shows the state in which the soil feeder and discharge belt conveyor are in the middle of folding, Fig. 5(c) shows the state in which the soil feeder and discharge belt conveyor have been completely folded, and Fig. 5(d) shows the state in which the working device has been rotated toward the discharge belt conveyor. [Figure 6] 10 is a flowchart executed by the heavy equipment control device of the second embodiment. [Figure 7] FIG. 1 is a schematic diagram of a hydraulic excavator 1 that is an example of a construction machine according to a third embodiment of the present invention. [Figure 8] FIG. 1 is a schematic diagram of a hydraulic excavator 1 that is an example of a construction machine according to a fourth embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0009] A construction machine according to a first embodiment of the present invention will be described in detail below with reference to the accompanying drawings. Note that the present invention is not limited to the embodiment described below. In this embodiment, the description will continue using a hydraulic excavator 1 as an example of the construction machine.
[0010] (First embodiment) 1 and 2 are schematic diagrams showing a hydraulic excavator 1 representing this first embodiment, with FIG. 1(a) being a top view, FIG. 1(b) being a front view, and FIG. 2 being a cross-sectional view of the construction machine as seen from the arrow AA in FIG. 1(b). FIG. 3 is a block diagram of the main parts of this first embodiment. For convenience in the following description, the vertical direction is referred to as the Z direction, and two orthogonal axial directions in a horizontal plane are referred to as the X direction and the Y direction. In the cross-sectional view of FIG. 2, a working device 60 is omitted to avoid complicating the drawing.
[0011] The configuration of the hydraulic excavator 1 will be described below with reference to Figs. 1 to 3. As is clear from Fig. 1, the hydraulic excavator 1 of the first embodiment is an autonomous or remotely operated construction machine that does not have a driver's seat, and is equipped with a UAV (Unmanned Aerial Vehicle, hereinafter referred to as drone 100), which is an unmanned aerial vehicle. The hydraulic excavator 1 may be autonomously driven when traveling at a construction site, and may be transported on a trailer on public roads. The hydraulic excavator 1 may be operated automatically, or remotely operated at a remote location away from the excavation site.
[0012] The hydraulic excavator 1 of the first embodiment includes a drive system 10 (see FIG. 3), a first processing device 15, a traveling device 20, a swivel device 30, a main body device 40 having an upper main body device 40a and a lower main body device 40b, a work device 60, and a second processing device 70. The hydraulic excavator 1 also includes a drone 100 that can take off and land on a takeoff and landing pad provided on the top surface of the upper main body device 40a. While FIG. 1 shows one drone 100, multiple drones 100 may be used. The drone 100 may be of an electric type or a hydrogen-powered fuel cell type. By using more drones 100 than the number of work devices 60 (one drone in the first embodiment), it is possible to monitor other devices and charge the drone 100 in addition to monitoring the work device 60.
[0013] The drive system 10 includes an engine 11 housed in an upper main body device 40a (described later), a fuel tank 12, and a generator 13. The engine 11 is an internal combustion engine, and in this first embodiment, a diesel engine is used. The engine 11 burns fuel supplied from the fuel tank 12 to drive the generator 13.
[0014] In the first embodiment, the fuel tank 12 stores liquid ammonia (NH3), and is provided with a fuel level gauge (not shown) inside. The liquid ammonia is vaporized by a vaporizer (not shown), and the vaporized ammonia is burned together with air by the engine 11. Note that a plurality of fuel tanks 12 may be provided, each serving as an ammonia storage tank and a diesel storage tank. In this case, the engine 11 may be a dual-fuel engine that burns ammonia and diesel together.
[0015] The generator 13 is connected to the output shaft of the engine 11 and generates electricity using the rotational driving force of the output shaft of the engine 11. The electric power generated by the generator 13 is supplied to various cylinders and motors, as shown in the block diagram of FIG.
[0016] The power transmitting device 14 supplies power to a power receiving device 103 (described later) of the drone 100, and in this first embodiment, wireless power feeding is adopted. Wireless power feeding supplies power to the power receiving device 103 in a contactless manner, and known methods include a magnetic resonance method and an electromagnetic induction method. The power transmitting device 14 in this first embodiment includes a power source, a control circuit, and a power transmitting coil. Furthermore, the power transmitting device 14 may be of a spatial transmission type instead of the proximity junction type described above. Spatial transmission type power supply uses electromagnetic waves such as microwaves to supply power to an object (the power receiving device 103 of the drone 100 in this first embodiment) located several meters to several tens of meters away.
[0017] Note that a contact-type power supply method may be used instead of wireless power supply. In this case, metal contacts may be provided on each of the power transmitting device 14 and the power receiving device 103, and the contacts may be mechanically connected to supply power. For example, a concave contact may be provided on the takeoff and landing section, and a convex contact may be provided on the drone 100 side. There may be one concave contact and one convex contact, or multiple contacts may be provided.
[0018] The first processing device 15 processes the material excavated by the work device 60. In the first embodiment, the first processing device 15 has a first detection device 16 that detects the properties of the excavated material excavated by the working device 60, and a first change device 17 that changes the properties of the excavated material. The first detection device 16 detects the moisture contained in the excavated material as a property of the excavated material, and in the first embodiment, is provided in the lower main body device 40b so as to face the discharge belt conveyor 74 described below. A near-infrared moisture meter using near-infrared rays can be used as the first detection device 16. The near-infrared moisture meter detects the moisture contained in the excavated material by measuring the intensity of near-infrared rays reflected by the measurement object (the excavated material in the first embodiment) with a light-receiving element.
[0019] When detecting moisture contained in excavated material using a near-infrared moisture meter, the near-infrared moisture meter needs to be brought within approximately 10 cm to 50 cm of the excavated material, so in this first embodiment the near-infrared moisture meter is provided in the lower main body device 40b, but this is not limited to this.
[0020] In the first embodiment, the first changing device 17 changes the moisture content (moisture content) of the excavated material, and uses a liquid supply device that supplies liquid such as water to the excavated material. The liquid supply device has a liquid tank 18 that stores water, and a pump, nozzle, and piping for supplying the water stored in the liquid tank 18 to the excavated material. In the first embodiment, the first changing device 17 is provided in the lower main body device 40b so as to face the discharge belt conveyor 74 described below, and the liquid tank 18 is provided in the upper main body device 40a, but the present invention is not limited to this.
[0021] In the first embodiment, the first detecting device 16 and the first changing device 17 are provided as a single unit, but a plurality of first detecting devices 16 and a plurality of first changing devices 17 may be provided. In this case, the first detecting device 16 and the first changing device 17 may be provided so as to face a soil feeder (described later) or a sieve 73 (described later).
[0022] The traveling device 20 has a pair of crawler tracks 23 wound around an idler wheel 21 and a drive wheel 22, and a traveling motor (not shown) that drives the drive wheels 22, and the pair of crawler tracks 23 are driven by the drive wheels 22 to cause the hydraulic excavator 1 to travel. The traveling motor 24 is driven by power supplied from the generator 13, and in the first embodiment, an in-wheel motor is used that is connected coaxially to the drive wheels 22 or the hubs of the drive wheels 22. Note that a hydraulic motor may also be used as the traveling motor 24.
[0023] The slewing device 30 is disposed between the upper main body device 40a and the lower main body device 40b. The slewing device 30 is equipped with a bearing (not shown) and a slewing motor 31 supplied with power from the generator 13, and rotates the upper main body device 40a and the working device 60. Note that the rotation of the main body device 40 and the working device 60 by the slewing device 30 may be performed by a hydraulic motor using hydraulic pressure instead of the slewing motor 31.
[0024] The main body device 40 of the first embodiment has an upper main body device 40a and a lower main body device 40b. The upper main body device 40a has a cylindrical shape with a flat top surface, and has a power transmission device 14 on the top surface that supplies power to the drone 100. The power transmission device 14 on the top surface of the main body device 40 serves as the takeoff and landing section of the drone 100. Note that, although the main body device 40 has a cylindrical shape in the first embodiment, it is not limited to this and can have any shape.
[0025] The upper main body device 40a accommodates therein the engine 11, the fuel tank 12, the generator 13, and the liquid tank 18. Furthermore, the upper main body device 40a has a working device 60 connected to one side via a swing section 41 and a swing cylinder 42, and a counter mass 43 connected to the other side. Furthermore, as shown in the block diagram of FIG. 3, the upper main body device 40a is provided with a first GNSS 47 (Global Navigation Satellite System) which is a global positioning system, a first communication device 48, a first memory 49, and a heavy equipment control device 50 which controls the entire hydraulic excavator 1.
[0026] In the first embodiment, the lower main body device 40b is a frame member with a shelf-type structure, which holds the swivel device 30 and the second processing device 70, and is connected to the traveling device 20 via a pair of side frames 25. The lower main body device 40b holds the swivel device 30 on the first tier (the upper tier), the soil feeder 72 on the second tier, the sieve 73 on the third tier, and the discharge belt conveyor 74 on the fourth tier (the lower tier).
[0027] The swing section 41 is supported so that a portion connected to one end of the upper main body device 40a and a portion connected to the boom 53 can rotate around the Z axis indicating the vertical direction. The swing cylinder 42 is a cylinder having one end connected to the upper main body device 40a and the other end connected to the swing section 41, and the cylinder extends and retracts using power supplied from the generator 13. The extension and contraction of the swing cylinder 42 causes the working device 60 to rotate around the Z axis in Fig. 1. The counter mass 43 is a mass body provided on the other end side of the upper main body device 40a, and corrects the unbalanced load acting on the main body device 40 due to the excavation operation of the working device 60.
[0028] The first GNSS 47 (see FIG. 3) uses an artificial satellite to measure the position of the hydraulic excavator 1. The first GNSS 47 may be provided in the takeoff and landing section of the upper main body device 40a. The first communication device 48 has a transmitter, a receiver, various circuits, an antenna (not shown), and is a wireless communication unit that accesses the second communication device 106 (described below) and a wide area network such as the Internet. In the first embodiment, the first communication device 48 communicates the flight path of the drone 100 to the second communication device 106 based on the position of the hydraulic excavator 1 detected by the first GNSS 47.
[0029] The first memory 49 is a non-volatile memory (for example, a flash memory) that stores various data and programs for driving the hydraulic excavator 1 and various data and programs for automatically operating the hydraulic excavator 1. The first memory 49 also stores data related to the flight path of the drone 100 and the water content (moisture content) calculated based on the detection results of the first detection device 16. The first memory 49 may also be configured to store the amount of liquid supplied by the first change device 17.
[0030] The heavy equipment control device 50 is equipped with a CPU and is a control device that controls the entire hydraulic excavator 1, and for example, controls the excavation operation of the work device 60, the detection operation of the first detection device 16, the calculation of the water content ratio (water content rate), the operation of the first change device 17, and the flight operation of the drone 100.
[0031] The work device 60 has a boom 53 , a boom cylinder 54 , an arm 55 , an arm cylinder 56 , a bucket 57 , and a bucket cylinder 58 .
[0032] The boom 53 is a rotating L-shaped part connected to the upper main body device 40a via the swing part 41, and is rotated by a boom cylinder . The arm 55 is connected to the tip of the boom 53 and is rotated by an arm cylinder 56 . The bucket 57 is connected to the tip of the arm 55 and is rotated by a bucket cylinder 58. Instead of the bucket 57, a breaker or the like can be attached to the tip of the arm 55.
[0033] The boom cylinder 54 is a cylinder that is extended and retracted by power supplied from the generator 13 to drive the boom 53. The arm cylinder 56 is a cylinder that is extended and retracted by power supplied from the generator 13 to drive the arm 55 . The bucket cylinder 58 is a cylinder that extends and retracts using power supplied from the generator 13 to drive the bucket 57 . In the first embodiment, the swing cylinder 42, the boom cylinder 54, the arm cylinder 56, and the bucket cylinder 58 are driven by electric power from the generator 13, but these cylinders may also be driven by hydraulic pressure.
[0034] The second processing device 70 processes the excavated material excavated by the work device 60, and in this first embodiment, sieves the excavated material. The second processing device 70 has a hopper 71, a soil feeder 72, a sieve 73, and a discharge belt conveyor 74 to sieve the excavated material.
[0035] The hopper 71 has an inlet and a discharge outlet, and receives the excavated material released from the bucket 57 through the inlet and discharges the excavated material from the discharge outlet to the soil feeder 72. The cross-sectional area of the inlet of the hopper 71 is larger than the cross-sectional area of the discharge outlet, so the excavated material can be temporarily stored. In this first embodiment, the hopper 71 is supported by a pair of frames 72b of the soil feeder 72.
[0036] The soil feeder 72 transports the excavated material from the hopper 71 to the sieve 73. The soil feeder 72 has a belt 72a, a pair of frames 72b, and a support portion 72c. The belt 72a is driven to rotate by a motor (not shown) to transport the excavated material to the sieve 73. The pair of frames 72b are fixed to the second stage of the lower main body device 40b and rotatably support the belt 72a. The support portion 72c supports the pair of frames 72b.
[0037] The sieve 73 has a mesh 73a for sieving, and allows excavated material of a predetermined size or smaller to pass through the openings of the mesh 73a. The sieve 73 has a discharge member 73b inclined in the Y direction as shown in FIG. 2, and discharges excavated material such as rocks that did not pass through the openings of the mesh 73a in the -Y direction. The mesh 73a is preferably modularized so that the size of the openings can be changed depending on the required properties of the excavated material (e.g., particle size). In this case, the mesh 73a may be prepared with multiple opening sizes while maintaining the same external dimensions. Furthermore, a vibration imparting member that imparts vibrations to the mesh 73a is preferably provided to prevent the excavated material from adhering to the mesh 73a. For example, an ultrasonic vibrator can be used as the vibration imparting member.
[0038] The discharge belt conveyor 74 transports the excavated material that has passed through the mesh 73a to a dump truck (not shown). The discharge belt conveyor 74 has a belt 74a, a pair of frames 74b, and a support portion 74c. The belt 74a is driven to rotate by a motor (not shown) to transport the excavated material to the dump truck (not shown). The pair of frames 74b are fixed to the fourth stage of the lower main body device 40b and rotatably support the belt 74a. The support portion 74c supports the pair of frames 74b.
[0039] In the first embodiment, the distance over which the discharge belt conveyor 74 transports the excavated material is longer than the distance over which the soil feeder 72 transports the excavated material. The weight of the discharge belt conveyor 74 is greater than the combined weight of the hopper 71 and the soil feeder 72. Therefore, the discharge belt conveyor 74 can correct the uneven load acting on the main unit 40 due to the excavation operation of the work device 60. This allows the weight of the counter mass 43 to be reduced.
[0040] The drone 100 of the first embodiment includes a flight device 101, an imaging device 102, a power receiving device 103, a sensor group 104, a battery 105, a second communication device 106, a second memory 107, and a UAV control device 108. These components are provided in the main body of the drone 100. Note that, as shown in FIG. 3 , the drone 100 may be configured to include at least one of a first detection device 16 and a first change device 17.
[0041] The flight device 101 has a motor (not shown) and multiple propellers, which lift the drone 100 into the air and generate thrust for movement in the air. As mentioned above, the number of drones 100 that land on the takeoff and landing area can be set arbitrarily. The configuration of each drone 100 may be the same or may be partially modified. Furthermore, the size of each drone 100 may be the same or may be different.
[0042] The imaging device 102 is a digital camera that has a lens, an imaging element, an image processing engine, etc., and captures moving images and still images. In the first embodiment, the imaging device 102 is used for surveying and capturing images of excavation sites.
[0043] In the enlarged view enclosed by the dashed-dotted line in FIG. 1, the lens of the imaging device 102 is attached to the side (front) of the drone 100, but the lens of the imaging device 102 may be attached to the underside of the drone 100, or multiple lenses may be provided on the drone 100. Also, a movement mechanism may be provided that moves the lens attached to the side toward the underside. Also, a mechanism may be provided that rotates the imaging device 102 around the Z axis so that the lens of the imaging device 102 can be positioned at any position around the Z axis. Note that an omnidirectional camera (360-degree camera) may be used as the imaging device 102, and a 3D scanner may be used instead of the imaging device 102.
[0044] The power receiving device 103 has a power receiving coil and a charging circuit provided on the leg 109 of the drone 100, and charges the battery 105 with power from the power transmitting device . The battery 105 is a secondary battery connected to the power receiving device 103, and may be, but is not limited to, a lithium ion secondary battery or a lithium polymer secondary battery. The battery 105 is capable of supplying power to the flight device 101, the imaging device 102, the second communication device 106, the second memory 107, and the UAV control device 108.
[0045] The sensor group 104 includes a GNSS, an infrared sensor for avoiding collisions between the drone 100 and other devices (e.g., work equipment 60), a barometric pressure sensor for measuring altitude, a magnetic sensor for detecting direction, a gyro sensor for detecting the attitude of the drone 100, and an acceleration sensor for detecting acceleration acting on the drone 100.
[0046] The second communication device 106 has a wireless communication unit and is configured to access a wide area network such as the Internet and to communicate with the first communication device 48. In the first embodiment, the second communication device 106 transmits image data captured by the imaging device 102 and detection results detected by the sensor group 104 to the first communication device 48, and transmits flight commands from the first communication device 48 to the UAV control device 108.
[0047] The second memory 107 is a non-volatile memory (e.g., flash memory) that stores various data and programs for flying the drone 100, as well as image data captured by the imaging device 102 and detection results detected by the sensor group 104.
[0048] The UAV control device 108 includes a CPU, an attitude control circuit, a flight control circuit, etc., and controls the entire drone 100. The UAV control device 108 also determines the timing of charging the takeoff and landing section based on the remaining charge of the battery 105, and controls the imaging position, angle of view, frame rate, etc. of the imaging device 102.
[0049] In the hydraulic excavator 1 of the first embodiment configured as described above, the drone 100 surveys the excavation area prior to excavation by the working device 60, and can also take images from above and images of the bucket near the bucket 57 while the working device 60 is excavating, allowing excavation to be performed even if the operator is not present in the excavation area. Furthermore, if the drone 100 takes images at the takeoff and landing section, it can take images from approximately the same position as from the driver's seat of a conventional hydraulic excavator. Because the takeoff and landing section is provided at the top of the upper main body device 40a, the drone 100 can take images with the imaging device 102 at the takeoff and landing section without being obstructed by the upper main body device 40a.
[0050] As mentioned above, the drone 100 of this first embodiment is equipped with the first detection device 16 and the first change device 17, but it may be equipped with at least one of the first detection device 16 and the first change device 17, or the first detection device 16 and the first change device 17 may be omitted.
[0051] When the first change device 17 is provided on the drone 100, the liquid tank 18 in the upper main body device 40a may be used as a tank that supplies liquid to a tank (not shown) inside the drone 100. In this case, the liquid tank 18 may be provided on the top surface of the upper main body device 40a, and a male joint may be provided on one side of the drone 100 or the liquid tank 18, and a female joint may be provided on the other side of the drone 100 or the liquid tank 18. When the drone 100 lands on the takeoff and landing section, it is preferable to connect the male joint and the female joint to supply liquid from the liquid tank 18 to a tank (not shown) inside the drone 100.
[0052] By using multiple drones 100, the second drone 100 can be charged at the takeoff and landing area while the first drone 100 is flying, so the first drone 100 and the second drone 100 can fly alternately.The number of drones 100 may be three or more. The following will continue to explain the control of the excavation operation and the treatment of the excavated material by the heavy equipment control device 50 of the first embodiment configured as described above. Figure 4 is a flowchart executed by the heavy equipment control device 50 of the first embodiment.
[0053] (flowchart) When the hydraulic excavator 1 arrives at the excavation site and preparations for excavation are complete, the heavy equipment control device 50 performs excavation using the work implement 60 and also performs screening using the second processing device 70 (step S1). The heavy equipment control device 50 causes the excavated material stored in the bucket 57 to be fed into the inlet of the hopper 71. The excavated material discharged from the outlet of the hopper 71 is discharged into the soil feeder 72 and transported to the sieve 73. In the sieve 73, the excavated material that has passed through the mesh 73a is transported in the +X direction by the discharge belt conveyor 74. On the other hand, the excavated material that has not passed through the mesh 73a is carried out to the outside of the hydraulic excavator 1 by the discharge member 73b.
[0054] The heavy equipment control device 50 determines whether or not it is necessary to detect the properties of the excavated material that has passed through the mesh 73a (step S2). Here, it is assumed that it is necessary to detect the properties of the excavated material by the first detection device 16, and the process proceeds to step S3. If it is not necessary to detect the properties of the excavated material by the first detection device 16, the heavy equipment control device 50 proceeds to step S4.
[0055] The heavy equipment control device 50 detects the properties of the excavated material being transported by the discharge belt conveyor 74 using the first detection device 16 (step S3). The reason why the heavy equipment control device 50 detects the properties of the excavated material after sieving is to avoid detecting the properties of the excavated material that did not pass through the mesh 73a. In the first embodiment, the heavy equipment control device 50 detects the moisture contained in the excavated material using a near-infrared moisture meter. The heavy equipment control device 50 calculates the moisture content (moisture content) of the excavated material based on the moisture contained in the excavated material detected by the near-infrared moisture meter, and stores this calculation result in the first memory 49.
[0056] The heavy equipment control device 50 determines whether or not it is necessary to change the properties of the excavated material being transported by the discharge belt conveyor 74 (step S4). Here, it is assumed that it is necessary to change the properties of the excavated material by the first changing device 17, and the process proceeds to step S5. Note that if it is not necessary to change the properties of the excavated material by the first changing device 17, the heavy equipment control device 50 proceeds to step S6.
[0057] In this flowchart, even if the property of the excavated material is not detected in step S2, the heavy equipment control device 50 may determine Yes in step S4 and change the property of the excavated material. This assumes a case where the property of the excavated material (e.g., water content) is known in advance from preliminary excavation or past experience. In this way, when it is not necessary for the hydraulic excavator 1 to detect the property of the excavated material, the first detection device 16 may be omitted.
[0058] The heavy equipment control device 50 causes the first changing device 17 to supply liquid to the excavated material so that the excavated material has a predetermined water content (moisture content) based on the detection result of the first detection device 16 or preliminary excavation, etc. Note that the water content (moisture content) of the excavated material may be adjusted, for example, by the time the embankment using the excavated material is completed, and therefore may be adjusted so as to approach the predetermined water content (moisture content) during work by the hydraulic excavator 1. Note that a flow meter may be provided in the first changing device 17, and the heavy equipment control device 50 may store the amount of liquid supplied to the excavated material by the first changing device 17 in the first memory 49.
[0059] The heavy equipment control device 50 detects the operating state of the hydraulic excavator 1 (step S6). In the first embodiment, the heavy equipment control device 50 detects the operating state of the hydraulic excavator 1 based on the imaging results of the imaging device 102 of the drone 100. The UAV control device 108 causes the imaging device 102 to capture images of the work device 60, the second processing device 70, and their surroundings while flying the drone 100 so as to avoid collision with the work device 60, the second processing device 70, etc. using the infrared sensor of the sensor group 104. The heavy equipment control device 50 may detect the operating state of the various motors by comparing the rated current and load current of the various motors.
[0060] The heavy equipment control device 50 determines whether or not there is an abnormality in the hydraulic excavator 1 based on the detection of the operating state of the hydraulic excavator 1 carried out in step S6 (step S7). The heavy equipment control device 50 determines that there is an abnormality when the images captured by the imaging device 102 include an image of the excavated material falling from the belt 72a or the belt 74a, or an image of scratches or slack in the belt 72a or the belt 74a. Furthermore, the heavy equipment control device 50 determines that there is an abnormality because the mesh 73a is clogged when the excavated material discharged by the discharge member 73b includes an image of soil that would normally pass through the openings of the mesh 73a.
[0061] The heavy equipment control device 50 acquires training data relating to past abnormalities of the hydraulic excavator 1 collected by the drone 100 and generates an evaluation model using machine learning, thereby analyzing the image captured by the imaging device 102 in step S6 to determine whether or not an abnormality exists. Note that the determination in step S7 may be made not by the heavy equipment control device 50 but by a host computer (not shown) equipped with artificial intelligence via a network, or by an operator in a remote location such as a temporary office.
[0062] In the first embodiment, the heavy equipment control device 50 determines that an abnormality caused by clogging of the mesh 73a has occurred and proceeds to step S8. If the heavy equipment control device 50 determines that no abnormality has occurred, it proceeds to step S10.
[0063] The heavy equipment control device 50 performs maintenance on the location where the abnormality occurred (step S8). In the first embodiment, the heavy equipment control device 50 drives a vibration imparting member that imparts vibrations to the mesh 73a in order to perform maintenance on the clogged mesh 73a. Alternatively, or in combination with this, the first change device 17 may supply liquid to the mesh 73a to clean the mesh 73a. In this case, the first change device 17 is preferably provided on the lower main body device 40b so as to face the mesh 73a. The heavy equipment control device 50 may also supply liquid to the mesh 73a using the first change device 17 provided on the drone 100. Note that the clogged mesh 73a may be cleared using compressed gas (e.g., air) instead of liquid.
[0064] The heavy equipment control device 50 determines whether maintenance has been completed (step S9). The heavy equipment control device 50 determines whether the blockage in the mesh 73a has been cleared by generating an evaluation model based on training data for a state in which the mesh 73a is not clogged. Note that the determination in step S9 may be made not by the heavy equipment control device 50 but by a host computer (not shown) via a network, or by an operator in a remote location such as a temporary office.
[0065] The heavy equipment control device 50 repeats step S8 until the maintenance is completed, and when the maintenance is completed, the determination in step S9 becomes Yes and the process proceeds to step S10. Note that the maintenance in step S8 may be performed by an operator. Maintenance performed by the operator may include replacing the belts 72a and 74a and adjusting the tension.
[0066] The heavy equipment control device 50 determines whether or not excavation using the work implement 60 has finished (step S10). If excavation has not finished, the process returns to step S1, and if excavation has finished, the flow chart of FIG. 4 ends.
[0067] In addition, when the flowchart of Figure 4 is completed, the heavy equipment control device 50 may transmit data on the moisture content (moisture content rate) calculated from the moisture contained in the excavated material detected by the first detection device 16 and data on the amount of liquid supplied by the first change device 17 via the first communication device 48 to, for example, the drone 100, a host computer in the temporary office, or construction equipment (such as a bulldozer or motor grader) that uses the excavated material to fill or level the earth.
[0068] In the first embodiment, the mesh 73a is imaged by the imaging device 102 of the drone 100, but an imaging device may be provided in the lower main body device 40b so as to face the mesh 73a.
[0069] In the first embodiment, at least a part of the second processing device 70 is provided using the space of a conventional operator's cab, making it possible to provide a hydraulic excavator 1 with a high degree of freedom in layout. Furthermore, since the working device 60 transports excavated material to the hopper 71 connected to the lower main body device 70b, the bucket 57 is not driven above the lower main body device 70b, making it possible to shorten the stroke of the working device 60 in the Z direction and also to reduce the size of the boom cylinder 54, arm cylinder 56, and bucket cylinder 58, making it possible to realize an energy-saving hydraulic excavator 1.
[0070] 4, excavation work, processing by the first processing device 15, and processing by the second processing device 70 were performed without driving the swing device 30 and swing motor 31. For this reason, in this first embodiment, it is also possible to omit the swing device 30 and swing motor 31. The hydraulic excavator 1 of this first embodiment is also suitable for work in narrow sites where swinging is difficult, such as tunnels. It is also possible to configure the device so that one of the first processing device 15 and the second processing device 70 is omitted.
[0071] In the first embodiment, the hydraulic excavator 1 and the drone 100 are provided with the first detection device 16 and the first change device 17, but one of the first detection device 16 and the first change device 17 may be provided on one of the hydraulic excavator 1 and the drone 100, and the other of the first detection device 16 and the first change device 17 may be provided on the other of the hydraulic excavator 1 and the drone 100. When the first change device 17 is provided on the drone 100, the amount of liquid supplied to the excavated material by the first change device 17 may be stored in the second memory 107.
[0072] In the first embodiment, a near-infrared moisture meter is used as the first detection device 16. Alternatively, the imaging results of the imaging device 102 may be used, and training data for excavated material with various moisture contents (moisture content rates) may be stored in the first memory 49. The heavy equipment control device 50 may infer the moisture and moisture contents (moisture content rates) contained in the excavated material based on the images captured by the imaging device 102 and the training data. Furthermore, the moisture and moisture contents (moisture content rates) may be inferred using a host computer equipped with artificial intelligence, rather than the heavy equipment control device 50. The imaging device 102 may be provided in the hydraulic excavator 1. Furthermore, the imaging device 102 may detect the particle size of the excavated material as the property of the excavated material. Furthermore, the first detection device 16 may be an oil detection device that detects oil content in the excavated material or an odor detection meter that detects the odor of the excavated material. Furthermore, when the hydraulic excavator 1 is used in a tunnel, the first detection device 16 may be a detection device that detects the oxygen concentration or the concentration of harmful gases in the tunnel.
[0073] It is also possible to provide a solar power generation device on the top or side of the upper main body device 40a, and use the electricity generated by this solar power generation device to drive the hydraulic excavator 1. The solar power generation device may be, for example, a perovskite solar cell. Perovskite solar cells are solar cells that use perovskite crystals, and because they are flexible, they can be attached to structures with curved surfaces. In addition, because perovskite solar cells are lightweight, they can prevent an increase in the weight of the hydraulic excavator 1.
[0074] (Second embodiment) The second embodiment will be described below using FIG. 5. The same components as those in the first embodiment are designated by the same reference numerals, and their description will be omitted or simplified. Note that FIG. 5 does not illustrate the drone 100, nor does it illustrate the interior of the upper main body device 40a. FIG. 5 is a schematic diagram of a hydraulic excavator 1, an example of a construction machine, illustrating the second embodiment. FIG. 5(a) illustrates the working device 60 after it has been retracted by rotating approximately 90 degrees using the swivel device 30. FIG. 5(b) illustrates the soil feeder 72 and the discharge belt conveyor 74 in the middle of folding. FIG. 5(c) illustrates the soil feeder 72 and the discharge belt conveyor 74 after they have been completely folded. FIG. 5(d) illustrates the working device 60 after it has been rotated toward the discharge belt conveyor 74.
[0075] The hydraulic excavator 1 of the second embodiment is provided with a mechanism for folding the soil feeder 72 and the discharge belt conveyor 74 so that they have a length that allows them to be loaded onto a truck bed or a trailer. Also, the hydraulic excavator 1 of the second embodiment has the height of the working implement 60 adjusted so that it has a height that allows it to be loaded onto a truck bed or a trailer.
[0076] For this reason, the soil feeder 72 has a hinge portion 72d so that it can be folded toward the lower main body device 40b, and a motor (not shown) that drives the hinge portion 72d toward the lower main body device 40b. Also, the discharge belt conveyor 74 has a hinge portion 74d so that it can be folded toward the lower main body device 40b, and a motor (not shown) that drives the hinge portion 74d toward the lower main body device 40b.
[0077] The hinge portion 72d rotatably supports a pair of frames 72b separated along the conveying direction. Similarly, the hinge portion 74d rotatably supports a pair of frames 74b separated along the conveying direction.
[0078] The attitude control of the hydraulic excavator 1 by the heavy machine control device 50 of the second embodiment configured as above will be described below. Fig. 6 is a flowchart executed by the heavy machine control device 50 of the second embodiment.
[0079] (flowchart) The heavy equipment control device 50 retracts the working device 60 before the soil feeder 72 and the discharge belt conveyor 74 are folded (step S11). The heavy equipment control device 50 causes the turning device 30 to turn the working device 60 by about 90 degrees so that the working device 60 does not interfere with the soil feeder 72 and the discharge belt conveyor 74. Figure 5(a) shows the state of the hydraulic excavator 1 after step S11 has been performed.
[0080] The heavy equipment control device 50 folds the soil feeder 72 and the discharge belt conveyor 74 (step S12). Figure 5(b) shows the soil feeder 72 and the discharge belt conveyor 74 in the middle of being folded.
[0081] The heavy equipment control device 50 determines whether the folding of the soil feeder 72 and the discharge belt conveyor 74 has finished (step S13). The completion of folding of the soil feeder 72 may be detected, for example, by providing a contact sensor in the hopper 71 and based on the output of this contact sensor. The completion of folding of the discharge belt conveyor 74 may be detected, for example, by providing a contact sensor that detects contact between frames 74b.
[0082] The heavy equipment control device 50 repeats steps S12 and S13 until folding of the soil feeder 72 and the discharge belt conveyor 74 is complete. When folding of the soil feeder 72 and the discharge belt conveyor 74 is complete, the heavy equipment control device 50 controls the attitude of the work device 60 (step S14). As shown in FIG. 5(d), the heavy equipment control device 50 controls the attitude of the work device 60 so that it surrounds the folded discharge belt conveyor 74. Note that the heavy equipment control device 50 may also control the attitude of the work device 60 so that it surrounds the folded soil feeder 72.
[0083] As described above, according to the second embodiment, a part of the second processing device 70 can be folded, so that a hydraulic excavator 1 that can be easily transported on the back of a truck or on a trailer can be realized.
[0084] (Third embodiment) The third embodiment will be described below with reference to Fig. 7, but the same components as those in the first and second embodiments will be given the same reference numerals and their description will be omitted or simplified. Fig. 7 is a schematic diagram of a hydraulic excavator 1 which is an example of a construction machine representing the third embodiment.
[0085] As shown in Fig. 7, the hydraulic excavator 1 of the third embodiment has two working implements 60. However, the number of working implements 60 may be three or more. Here, since the configurations of the two working devices 60 are the same as those in the first and second embodiments, one is referred to as working device 60a and the other as working device 60b, and each element constituting working devices 60a and 60b has an a or b added after its reference number.
[0086] The second processing device 70 of this third embodiment has a mesh 73a, a discharge member 75, and a support portion 76. The discharge member 75 is connected to one end of the mesh 73a and discharges the excavated material that did not pass through the openings of the mesh 73a. The discharge member 75 is inclined to discharge the excavated material that did not pass through the openings of the mesh 73a, but instead of this, or in combination with this, the discharge member 75 may be configured to transport the excavated material using a motor (not shown). The discharge member 75 may also be configured to be separable along the longitudinal direction.
[0087] The support portion 76 is a member that supports the mesh 73a and the discharge member 75, and one end is connected to the lower main body device 40b. The support portion 76 may support the discharge member 75 at multiple points. In the third embodiment, a damming member 77 is provided to prevent the discharged excavated material from returning to the excavation site.
[0088] In the hydraulic excavator 1 of the third embodiment, one of the working implements 60 (for example, working implement 60b) is rotated by the rotating device 30 following excavation, and the bucket 57b is positioned above the bed of the dump truck 79. The excavated material stored in the bucket 57b passes through the openings of the mesh 73a of the second processing device 70 and is discharged onto the bed of the dump truck 79 if it is of a predetermined size or smaller.
[0089] In the third embodiment, the working implement 60a is excavating while the working implement 60b is discharging excavated material onto the bed of the dump truck 79. In this way, the hydraulic excavator 1 of the third embodiment can perform excavation and discharging in parallel, thereby realizing a hydraulic excavator 1 that is easy to use. Furthermore, since the working implement 60a is provided on one side of the upper main body device 40a and the working implement 60b is provided on the other side of the upper main body device 40a, for example, an unbalanced load acting on the upper main body device 40a by the working implement 60a that is excavating is corrected by the operation of the working implement 60b that is discharging. For this reason, the countermass 43 can be omitted in the third embodiment.
[0090] In this third embodiment, excavated materials of a size required for subsequent processes (e.g., embankment) are selected, eliminating the need to select excavated materials of a size not required for subsequent processes (e.g., rocks), thereby shortening the overall construction work process.
[0091] If it is desired to change the properties of the excavated material that has passed through the openings in the mesh 73a, the properties can be changed by the first change device 17 of the drone 100 flying near the mesh 73a. Also, in the third embodiment, it is possible to omit the first processing device 15 that was provided in the lower main body device 40b in the first and second embodiments.
[0092] In the third embodiment, by increasing the number of working devices 60 (two in the third embodiment), it is possible to monitor other devices and charge the drone 100 in addition to monitoring the working devices 60a and 60b. Also, images captured by the imaging device 102 of the drone 100 located at the takeoff and landing section of the upper main body device 40a can be used as images that the worker can view from the conventional driver's seat.
[0093] (Fourth embodiment) The fourth embodiment will be described below with reference to Fig. 8, but the same components as those in the first to third embodiments will be given the same reference numerals and their description will be omitted or simplified. Fig. 8 is a schematic diagram of a hydraulic excavator 1 which is an example of a construction machine representing the fourth embodiment.
[0094] In the fourth embodiment, a rotary crushing device 80 is provided on the lower main body device 40b as the second processing device 70. The rotary crushing device 80 is a device that crushes construction generated soil (surplus soil) and other materials to produce improved soil. The rotary crushing device 80 can also mix additives, such as lime-based solidification materials such as quicklime and slaked lime, cement-based solidification materials such as ordinary cement and blast furnace cement, or soil improvement materials made from polymeric materials, into the construction generated soil to adjust the properties and strength of the improved soil. In the fourth embodiment, improved soil is produced using material excavated by the work device 60 as the raw material. In the fourth embodiment, four triangular track-type traveling bodies are used as the traveling devices 20.
[0095] The rotary crusher 80 has a motor 81, a driving pulley 82, a belt 83, a driven pulley 84, a rotating shaft 85, and a crushing unit 86. In the fourth embodiment, the rotary crusher 80 is controlled by the heavy equipment control device 50.
[0096] The motor 81 is provided in the lower main body device 40b, and is decelerated by a driving pulley 82, a belt 83, and a driven pulley 84 to apply a rotational driving force to a rotation shaft 85.
[0097] The driving pulley 82 is connected to a motor 81 and is connected to a driven pulley 84 via a belt 83 . The belt 83 is stretched over a driving pulley 82 and a driven pulley 84, and rotates around the Z axis. The driven pulley 84 is connected to the rotary shaft 85 and transmits the driving torque of the motor 81 to the rotary shaft 85 .
[0098] The crushing unit 86 is connected to the rotating shaft 85. In the fourth embodiment, the crushing unit 86 has a two-stage configuration spaced apart in the Z direction, but may have a single stage or three or more stages. When the motor 81 is stopped, the crushing unit 86 hangs down. When the motor 81 is driven, the rotating shaft 85 rotates via the driving pulley 82, belt 83, and driven pulley 84. The resulting centrifugal rotation causes the crushing unit 86 to rotate around the Z axis and crush the excavated material fed from the soil feeder 72. A portion of the rotating shaft 85 and the crushing unit 86 are housed in a container. For this reason, a portion of the rotating shaft 85 and the crushing unit 86 are shown by dotted lines in FIG. 8.
[0099] The excavated material crushed by the crushing unit 86 is transported to the outside of the hydraulic excavator 1 (for example, to a dump truck not shown) by a discharge belt conveyor 74 provided below the crushing unit 86. A more detailed configuration of the rotary crusher 80 is disclosed in Japanese Patent No. 6466043 filed by the applicant of the present application.
[0100] As described above, in the fourth embodiment, four triangular track-type traveling bodies are used as the traveling devices 20 (two track-type traveling bodies are shown in FIG. 8 ). The traveling devices 20 are connected to the lower main body device 40b, and have driving wheels 26, driven wheels 27, crawler belts 28, and supports 29. The traveling devices 20 also have in-wheel motors as traveling motors 24 on the rear sides of the driving wheels 26, which transmit driving force to the driving wheels 26. The rotation shaft of the in-wheel motor is connected to the rotation shaft of the driving wheels 26, and the rotational driving force of the in-wheel motor rotates the driving wheels 26, which in turn transmits driving force to the crawler belts 28.
[0101] In the fourth embodiment, a triangular shape is formed by one drive wheel 26 and two driven wheels 27. A crawler belt 28 is looped around the one drive wheel 26 and the two driven wheels 27. A support body 29 is connected to the lower main body device 40b and rotatably supports the drive wheel 26 and the driven wheels 27.
[0102] The fourth embodiment has four triangular track-type running bodies, which allows the hydraulic excavator 1 to travel stably even on rough ground. Furthermore, the four triangular track-type running bodies also allow the hydraulic excavator 1 to travel stably when loading or unloading the excavator 1 onto or from a trailer. The triangular track-type traveling body of the fourth embodiment may be used as the traveling device 20 of any of the first to third embodiments. Conversely, the triangular track-type traveling body of the fourth embodiment may be used as the traveling device 20 of any of the first to third embodiments.
[0103] In the fourth embodiment, a mass body (counter mass) may also be provided on the +X direction side of the lower main body device 40b in order to correct the unbalanced load acting on the main body device 40 due to the excavation operation of the working device 60. By providing a mass body (counter mass) on the lower main body device 40b, it is possible to prevent the center of gravity of the hydraulic excavator 1 from becoming higher.
[0104] As described above, according to the fourth embodiment, the rotary crushing device 80 is provided in a space where the driver's seat is omitted, so that the hydraulic excavator 1 can crush construction soil (waste soil) in addition to excavating it.
[0105] As the drive system 10 of the first to fourth embodiments described above, hydrogen and a fuel cell may be used instead of an internal combustion engine to drive the hydraulic excavator 1. In this case, high-pressure hydrogen gas may be stored in the fuel tank 12 and supplied to the fuel cell. If a drive system that emits low greenhouse gases is used as the drive system 10, an environmentally friendly hydraulic excavator 1 can be realized.
[0106] The above-described embodiment is merely an example for explaining the present invention, and various modifications can be made without departing from the scope of the present invention. For example, when flying the drone 100 near the bucket 57, the UAV control device 108 can avoid a collision between the bucket 57 and the drone 100 by recognizing the bucket 57 using the infrared sensor of the sensor group 104. Furthermore, the configurations of the hydraulic excavators 1 according to the first to fourth embodiments can also be combined as appropriate. [Explanation of symbols]
[0107] 1 hydraulic excavator 15 first processing device 16 first detection device 17 First change device 18 Liquid tank 30 Swivel device 40 Main unit 50 Heavy equipment control device 60 Work device 70 Second treatment device 71 Hopper 72 Soil feeder 73 Sieve 74 Discharge belt conveyor 80 Rotary crusher 86 Crushing unit 100 Drone 108 UAV control device
Claims
1. an upper main body device to which a work device for performing excavation is connected; a lower main body device that supports the upper main body device via a swivel device; a first transport device that transports the excavated material excavated by the work device to the lower main body device; a processing device provided in the lower main body device for processing the excavated material transported by the first transport device; a second transport device that transports the excavated material processed by the processing device to the outside of the lower main body device.
2. 2. The construction machine according to claim 1, wherein the processing device includes a sorting mechanism for sorting the excavated material by size.
3. 3. A construction machine according to claim 1, wherein the processing device is provided with a mechanism for changing the properties of the excavated material.
4. 3. The construction machine according to claim 2, wherein the processing device includes a changing mechanism for changing the properties of the excavated material sorted by the sorting mechanism.
5. The construction machine according to any one of claims 1 to 4, further comprising a detection device for detecting the properties of the excavated material.
6. the first conveying device has a first folding unit that performs folding; the second conveying device has a second folding unit that performs folding, 6. The construction machine according to claim 1, further comprising a control device that positions the working device relative to the folded first transport device and the folded second transport device.
7. 2. The construction machine according to claim 1, wherein the processing device includes a crushing device for crushing the excavated material.
8. 8. A construction machine according to claim 1, wherein a mass body is provided on each of the upper body device and the lower body device to correct an unbalanced load acting on the upper body device and the lower body device due to driving of the working device.
Citation Information
Patent Citations
Excavated earth processing method and excavated earth processing device used in the method
JP1995011667A
Attitude holding device for video transmission device in remote control system
JP1995288753A
Operating device for working machine
JP1997165797A
Crushing machine
JP2000042443A
Soil improving method
JP2004132030A