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WO2018147491A1 - Concasseur hydraulique, système et procédé de surveillance de fluide hydraulique - Google Patents

Concasseur hydraulique, système et procédé de surveillance de fluide hydraulique Download PDF

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Publication number
WO2018147491A1
WO2018147491A1 PCT/KR2017/001775 KR2017001775W WO2018147491A1 WO 2018147491 A1 WO2018147491 A1 WO 2018147491A1 KR 2017001775 W KR2017001775 W KR 2017001775W WO 2018147491 A1 WO2018147491 A1 WO 2018147491A1
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WO
WIPO (PCT)
Prior art keywords
hydraulic
pollution degree
hydraulic oil
piston
port
Prior art date
Application number
PCT/KR2017/001775
Other languages
English (en)
Korean (ko)
Inventor
주진무
박용식
Original Assignee
대모 엔지니어링 주식회사
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 대모 엔지니어링 주식회사 filed Critical 대모 엔지니어링 주식회사
Publication of WO2018147491A1 publication Critical patent/WO2018147491A1/fr

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Classifications

    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02FDREDGING; SOIL-SHIFTING
    • E02F3/00Dredgers; Soil-shifting machines
    • E02F3/04Dredgers; Soil-shifting machines mechanically-driven
    • E02F3/96Dredgers; Soil-shifting machines mechanically-driven with arrangements for alternate or simultaneous use of different digging elements
    • E02F3/966Dredgers; Soil-shifting machines mechanically-driven with arrangements for alternate or simultaneous use of different digging elements of hammer-type tools
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02FDREDGING; SOIL-SHIFTING
    • E02F3/00Dredgers; Soil-shifting machines
    • E02F3/04Dredgers; Soil-shifting machines mechanically-driven
    • E02F3/96Dredgers; Soil-shifting machines mechanically-driven with arrangements for alternate or simultaneous use of different digging elements
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02FDREDGING; SOIL-SHIFTING
    • E02F5/00Dredgers or soil-shifting machines for special purposes
    • E02F5/30Auxiliary apparatus, e.g. for thawing, cracking, blowing-up, or other preparatory treatment of the soil
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02FDREDGING; SOIL-SHIFTING
    • E02F5/00Dredgers or soil-shifting machines for special purposes
    • E02F5/30Auxiliary apparatus, e.g. for thawing, cracking, blowing-up, or other preparatory treatment of the soil
    • E02F5/305Arrangements for breaking-up hard ground
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02FDREDGING; SOIL-SHIFTING
    • E02F9/00Component parts of dredgers or soil-shifting machines, not restricted to one of the kinds covered by groups E02F3/00 - E02F7/00
    • E02F9/26Indicating devices
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F15FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
    • F15BSYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
    • F15B15/00Fluid-actuated devices for displacing a member from one position to another; Gearing associated therewith
    • F15B15/08Characterised by the construction of the motor unit
    • F15B15/14Characterised by the construction of the motor unit of the straight-cylinder type
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F15FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
    • F15BSYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
    • F15B15/00Fluid-actuated devices for displacing a member from one position to another; Gearing associated therewith
    • F15B15/08Characterised by the construction of the motor unit
    • F15B15/14Characterised by the construction of the motor unit of the straight-cylinder type
    • F15B15/1423Component parts; Constructional details
    • F15B15/1428Cylinders
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F15FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
    • F15BSYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
    • F15B15/00Fluid-actuated devices for displacing a member from one position to another; Gearing associated therewith
    • F15B15/08Characterised by the construction of the motor unit
    • F15B15/14Characterised by the construction of the motor unit of the straight-cylinder type
    • F15B15/1423Component parts; Constructional details
    • F15B15/1447Pistons; Piston to piston rod assemblies
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F15FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
    • F15BSYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
    • F15B21/00Common features of fluid actuator systems; Fluid-pressure actuator systems or details thereof, not covered by any other group of this subclass
    • F15B21/04Special measures taken in connection with the properties of the fluid
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F15FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
    • F15BSYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
    • F15B2211/00Circuits for servomotor systems
    • F15B2211/80Other types of control related to particular problems or conditions
    • F15B2211/857Monitoring of fluid pressure systems

Definitions

  • the present invention relates to a hydraulic breaker, a hydraulic oil monitoring system and a hydraulic oil monitoring method, and more particularly, to a breaker having a cylinder and a piston moved on the cylinder, a hydraulic oil monitoring system and a hydraulic oil monitoring method.
  • a breaker is a device used to crush a rock by hitting a chisel in contact with an object through a reciprocating motion of a piston, and a hydraulic attachment form that is mounted on a heavy equipment vehicle such as an excavator is mainly used in a large construction site. .
  • the conventional breaker has a long stroke mode that increases the stroke distance of the piston so that the impact force is strengthened for hard rock crushing according to the operator's operation, and the shot speed is improved even when sacrificing some impact force for soft rock crushing. It is configured to change the short stroke mode.
  • the piston reciprocating on the cylinder may be scratched on the outer surface when the hydraulic fluid is contaminated due to the inflow of foreign matter, such that the oil film is broken, causing unintentional friction between the piston and the cylinder.
  • Such friction can increase the debris generated from the piston and the cylinder surface, and the vicious cycle can be repeated which worsens the contamination of the working oil.
  • contamination of the hydraulic fluid can have serious consequences on the performance and durability of the piston, such as increased vibration and reduced impact force of the piston.
  • the present invention is to solve the above problems, to detect whether the hydraulic oil of the hydraulic breaker is contaminated, and analyzes the pollution degree information to inform the user according to a predetermined condition or hydraulic breaker, hydraulic oil for controlling the movement of the piston It is to provide a system and a method for monitoring oil.
  • a hydraulic breaker a cylinder having a plurality of hydraulic ports, a piston reciprocating in the cylinder by the hydraulic pressure of the hydraulic oil flowing in or out through the hydraulic port, the hydraulic pressure connected to the hydraulic port Installed on the line, the pollution degree sensor for detecting pollution degree information including inflow pollution degree for the incoming hydraulic oil and discharge pollution degree for the discharged hydraulic oil and the detected pollution degree information to determine whether or not the hydraulic fluid is contaminated If it is determined that the contamination is a hydraulic breaker including a transmission module for outputting the pollution degree information to the controller for performing a warning operation.
  • a hydraulic oil monitoring system comprising: a pollution degree sensor installed on a hydraulic line connected to the hydraulic port, and configured to detect pollution degree information including an contamination level of an inflow pollution concerning the incoming hydraulic fluid and an emission pollution level of the discharged hydraulic oil;
  • a hydraulic fluid monitoring system may be provided that includes a controller configured to perform a warning operation by determining that the hydraulic fluid is contaminated when the predetermined condition is satisfied based on the pollution degree information.
  • a method for monitoring hydraulic fluid comprising: a chisel hitting an object according to a reciprocating motion of a piston in a cylinder, and a contamination sensor provided on a hydraulic line connected to a hydraulic port provided on the cylinder
  • a hydraulic fluid monitoring method may include providing a pollution degree information regarding hydraulic oil flowing into or out of the furnace, and performing a warning operation when a controller satisfies a predetermined condition based on the detected pollution degree information.
  • the hydraulic fluid monitoring system and the hydraulic fluid monitoring method when the pollution degree information of the hydraulic fluid is sensed and the warning is made to the user according to a predetermined condition when judging based on the detected pollution degree information, By controlling the movement of the, it is effective in maintaining the performance and durability of the hydraulic breaker.
  • the warning for notifying the user may include a degree of contamination of the hydraulic oil, a need for replacement of the hydraulic oil, and whether parts such as a piston are damaged.
  • FIG. 1 is a schematic diagram of construction equipment including a hydraulic breaker according to an embodiment of the present invention.
  • FIG. 2 is a schematic view of a hydraulic breaker according to an embodiment of the present invention.
  • FIG. 3 is an exploded perspective view of a hydraulic breaker according to an embodiment of the present invention.
  • FIG. 4 is a circuit diagram of a hydraulic breaker according to an embodiment of the present invention.
  • 5 and 6 are diagrams illustrating pollution degree information detected by a pollution degree sensor according to an exemplary embodiment of the present invention.
  • FIG. 7 is a schematic structural diagram of a hydraulic oil monitoring system according to an embodiment of the present invention.
  • a hydraulic breaker a cylinder having a plurality of hydraulic ports, a piston reciprocating in the cylinder by the hydraulic pressure of the hydraulic oil flowing in or out through the hydraulic port, the hydraulic pressure connected to the hydraulic port Installed on the line, the pollution degree sensor for detecting pollution degree information including inflow pollution degree for the incoming hydraulic oil and discharge pollution degree for the discharged hydraulic oil and the detected pollution degree information to determine whether or not the hydraulic fluid is contaminated If it is determined that the contamination is a hydraulic breaker including a transmission module for outputting the pollution degree information to the controller for performing a warning operation.
  • the hydraulic port includes a forward port connecting the hydraulic source and the rear chamber of the cylinder for the forward and backward movement of the piston, the forward port, the rear chamber from the hydraulic source during the forward movement of the piston Hydraulic oil is supplied in the direction, hydraulic fluid is discharged from the rear chamber toward the hydraulic source during the backward movement of the piston, and the contamination sensor is disposed on the hydraulic line connected to the forward port, The inflow contamination level of the hydraulic oil flowing in the direction of the rear chamber from the hydraulic source may be sensed, and the discharge pollution degree of the hydraulic fluid discharged from the rear chamber toward the hydraulic source during the backward movement of the piston.
  • the hydraulic port includes a reverse port connecting the hydraulic source and the front chamber of the cylinder for the backward movement of the piston and a discharge port for discharging the hydraulic oil from the front chamber for the forward movement of the piston
  • the sensor is installed on a hydraulic line connected to the reverse port and the hydraulic source and installed on an oil pressure line connected to the inlet contamination sensor and the discharge port to detect the oil contamination level of the hydraulic oil flowing into the front chamber. It may include a discharge pollution sensor for detecting the discharge pollution of the operating oil discharged from the front chamber.
  • the discharge port may include a hydraulic tank port for discharging the hydraulic oil from the front chamber in the direction of the hydraulic tank, the discharge pollution sensor may be installed on the hydraulic line connected to the hydraulic tank port.
  • a hydraulic oil monitoring system comprising: a pollution degree sensor installed on a hydraulic line connected to the hydraulic port, and configured to detect pollution degree information including an contamination level of an inflow pollution concerning the incoming hydraulic fluid and an emission pollution level of the discharged hydraulic oil;
  • the hydraulic oil monitoring system may include a controller configured to perform a warning operation by determining that the hydraulic oil is contaminated.
  • the predetermined condition may be a condition that a contamination value of the pollution degree information is equal to or greater than a predetermined reference contamination value.
  • the predetermined condition may be a condition in which the frequency of the contamination value of the pollution degree information is greater than or equal to a predetermined reference contamination value.
  • the predetermined condition may be a condition in which a difference value between the inflow pollution level of the pollution degree information and the emission pollution degree of the pollution degree information is equal to or greater than a predetermined reference difference value.
  • the inflow pollution degree and the discharge pollution degree may be a pollution degree with respect to the hydraulic oil flowing in and the hydraulic oil discharged when the piston reciprocates once.
  • the controller may further include an output module configured to output a video or audio signal.
  • the hydraulic oil may output a warning message through the output module.
  • the controller may stop the reciprocating motion of the piston when it is determined that the hydraulic oil is contaminated.
  • And-the hydraulic breaker connects the hydraulic source and the rear chamber of the cylinder for the forward movement of the piston or the control valve for discharging the hydraulic oil from the rear chamber of the cylinder for the backward movement and the flow of the hydraulic oil. And further comprising a shutoff valve for selectively blocking the controller.
  • the controller may control the shutoff valve so that the shutoff valve blocks the flow of the hydraulic oil when it is determined that the hydraulic oil is contaminated.
  • And-the shutoff valve selectively shuts off the flow of the hydraulic oil directed to the control valve-the controller is configured to shut off the shutoff valve so that the shutoff valve shuts off the flow of the hydraulic oil when it is determined that the hydraulic oil is contaminated. Can be controlled.
  • the apparatus may further include an output module configured to output an image or an audio, wherein the controller outputs a warning message through the output module when the pollution value of the pollution degree information is greater than or equal to a first reference pollution value, and the pollution value of the pollution degree information.
  • the reciprocating motion of the piston may be stopped when the second reference contamination value is greater than the first reference contamination value.
  • a hydraulic fluid monitoring method may include providing a pollution degree information regarding the discharged hydraulic oil, and performing a warning operation when a controller satisfies a predetermined condition based on the detected pollution degree information.
  • FIG. 1 is a schematic diagram of construction equipment including a hydraulic breaker according to an embodiment of the present invention.
  • FIG. 2 is a schematic view of a hydraulic breaker according to an embodiment of the present invention.
  • FIG. 3 is an exploded perspective view of a hydraulic breaker according to an embodiment of the present invention.
  • FIG. 4 is a circuit diagram of a hydraulic breaker according to an embodiment of the present invention.
  • 5 and 6 are diagrams illustrating pollution degree information detected by a pollution degree sensor according to an exemplary embodiment of the present invention.
  • FIG. 7 is a schematic structural diagram of a hydraulic oil monitoring system according to an embodiment of the present invention.
  • the height direction may mean the up and down direction with reference to Figures 2, 3 and 4.
  • the construction equipment 100 is equipment for performing a hitting operation on an object.
  • Construction equipment 100 for the blow operation is mainly implemented in the form that the hydraulic breaker 1000 is mounted as an attachment to a heavy-duty vehicle such as an excavator.
  • the hydraulic breaker 1000 is a device that performs an operation of hitting an object.
  • hydraulic breaker 1000 in the present invention is not limited to the above-described examples, it should be understood as a concept encompassing all other types of hitting device that performs a function of hitting the object in addition to the hydraulic breaker.
  • the hydraulic breaker 1000 is generally, but not necessarily, an attachment type mounted to a heavy-duty vehicle, ie, the carrier 120, and may also exist in an independent form from the carrier 120, such as a form directly handled by an operator.
  • the carrier 120 may be largely divided into a driving body 121 and a rotating body 122.
  • the traveling body 121 is mainly provided in a crawler type or a wheel type, and in some cases, may be a crane type or a truck type.
  • the rotating body 122 is mounted on the traveling body 121 to be rotatable about an axis in a direction perpendicular to the ground.
  • the rotating body 122 is provided with a connecting member 123 such as a boom or an arm.
  • the end of the connection member 123 may be detachably attached to the hydraulic breaker 1000 in the form of an attachment or fastened through the coupler 140.
  • the connecting member 123 is mainly two or more members are fastened in a link manner, connected to the cylinder can be bent or stretched by the expansion and contraction of the cylinder, stretching operation and the like.
  • the connection member 123 may position the hydraulic breaker 1000 attached to the end by the operation on the hit.
  • the carrier 120 may apply hydraulic pressure to the hydraulic breaker 1000 so that the mounted hydraulic breaker 1000 may operate, or in addition, the parts of the carrier 120 including the boom or the arm may be hydraulically applied to the coupler 140, or the like.
  • Hydraulic source 160 for supplying the hydraulic tank 160a for storing the operating oil may be installed.
  • a cabin 124 on which the operator boards is provided on the rotating body 122 so that the user can operate the carrier 120 or the hydraulic breaker 1000 by using a manipulation device such as a handle, a lever, or a button in the cabin 124.
  • a manipulation device such as a handle, a lever, or a button in the cabin 124.
  • the hydraulic breaker 1000 may include a mounting bracket 1200, a main body 1400, and a chisel 1600.
  • the main body 1400 is a site for generating the striking force in the hydraulic breaker 1000, and has a cylinder 1430 and a piston 1440 accommodated in the cylinder 1430 therein for the hydraulic oil applied from the hydraulic source 160.
  • the chisel 1600 is a portion for directly hitting the hitting object, and the lower side of the main body 1400 (the piston 1440 in the following description) moves forward (extension) so that its upper end hits the lower end of the piston 1440. It defines downward, and is arrange
  • the mounting bracket 1200 is coupled to the upper end of the main body 1400, and is configured to connect the carrier 120 and the main body 1400.
  • the main components of the main body 1400 may be the cylinder 1430 and the piston 1440.
  • the piston 1440 is provided in a cylindrical shape
  • the cylinder 1430 may be provided in a hollow cylindrical shape so that the piston 1440 is inserted to reciprocate.
  • the inner surface 1437 of the cylinder is provided with various hydraulic ports 1433, 1434, 1435, 1436, and 1438 for supplying hydraulic pressure to the interior of the cylinder 1430 or for discharging the hydraulic pressure from the interior of the cylinder 1430.
  • the piston 1440 includes at least a small diameter portion 1446, a first large diameter portion 1444 positioned above the small diameter portion 1446, and a second large diameter portion 1442 positioned below the small diameter portion 1446. Can be.
  • the piston 1440 acts as a cylinder. It is possible to reciprocate forward and backward within 1430.
  • the front head 1450 and the head cap 1420 may be connected to the lower and upper ends of the cylinder 1430, respectively.
  • the front head 1450 is provided with a chisel pin (not shown) on which the chisel 1600 is placed, and the chisel 1600 is hit by the lower end of the piston 1440 when the piston 1440 is advanced by the chisel pin (not shown). Be placed in the proper position.
  • the front head 1450 includes a dust protector (not shown) for preventing foreign matter from entering the cylinder 1430 when the piston 1440 is reciprocated, or a sound absorbing member (not shown) for reducing the impact sound.
  • a dust protector for preventing foreign matter from entering the cylinder 1430 when the piston 1440 is reciprocated
  • a sound absorbing member (not shown) for reducing the impact sound.
  • the head cap 1420 has a gas chamber (not shown) therein, and the gas chamber may give an appropriate damping effect to the piston 1440 as its volume is compressed when the piston 1440 is retracted.
  • the structure or structure of the hydraulic breaker 1000 described above is only one embodiment of the hydraulic breaker 1000 according to the present invention, and the hydraulic breaker 1000 according to the present invention may be similar to the above-described configuration or structure, although somewhat different. It is to be understood that other striking devices having functions are also included.
  • a piston 1440 is inserted into the cylinder 1430, and a chisel 1600 is disposed below the piston 1440.
  • the piston 1440 may include the small diameter portion 1446, the first large diameter portion 1444 positioned above the small diameter portion 1446, and the second large diameter portion 1442 positioned below the small diameter portion 1446. have.
  • the outer diameter of the first large diameter portion 1444 and the second large diameter portion 1442 may be substantially the same as the inner diameter of the cylinder 1430, and thus, the lower side and the second large portion of the cylinder 1430 may be disposed inside the cylinder 1430.
  • the front chamber 1431 may be formed between the necks 1442, and the rear chamber 1432 may be formed between the upper side of the cylinder 1430 and the first large diameter part 1444.
  • a reverse port 1433 is formed in the front chamber 1431, and the reverse port 1433 may be connected to the hydraulic source 160 through the reverse line 1433a.
  • hydraulic pressure may be applied to the front chamber 1431 by the hydraulic oil flowing from the hydraulic source 160 through the reverse line 1433a to the reverse port 1433.
  • the hydraulic pressure applied to the front chamber 1431 may act on the stepped surface 1442a of the second large diameter portion 1442, and a reverse force may be applied to the piston 1440.
  • a forward port 1434 is formed in the rear chamber 1432, and the forward port 1434 may be connected to the control valve 1460 through the forward line 1434a.
  • the control valve 1460 may be disposed in either one of the forward position 1460-2 or the reverse position 1460-1, and the forward position 1460-2 may move the forward line 1434a to the hydraulic source 160. ), And the forward line 1434a may be connected to the hydraulic tank 160a in the reverse position 1460-1.
  • the hydraulic pressure applied to the rear chamber 1432 acts on the stepped surface 1444a of the first large diameter portion 1444, and a forward force is applied to the piston 1440.
  • the rear chamber 1432 is connected to the hydraulic tank 160a via the forward line 1434a and the control valve 1460, and the forward position ( The hydraulic oil introduced into the rear chamber 1432 in 1460-2 is discharged to the hydraulic tank 160a.
  • the stepped surface 1444a of the first large diameter portion 1444 has an area larger than the stepped surface 1442a of the second large diameter portion 1442 so that the control valve 1460 is positioned at the forward position 1460-2.
  • the forward force may be greater than the backward force so that the piston 1440 may advance.
  • the reciprocating motion of the piston 1440 can be implemented as the control valve 1460 is disposed in the forward position 1460-2 or the backward position 1460-1.
  • the position control of the control valve 1460 may be hydraulic.
  • control valve 1460 may be a hydraulic valve in which the forward position 1460-2 and the reverse position 1460-1 may be selected according to the input hydraulic signal.
  • Both ends of the control valve 1460 may be provided with a forward action surface 1464 and a reverse action surface 1462 respectively connected to the hydraulic line.
  • the forward action surface 1464 may be connected to the forward control line 1464a branched into the long stroke line 1435a and the short stroke line 1434a.
  • Reverse action surface 1462 may be connected to hydraulic source 160 via reverse control line 1462a.
  • the forward acting surface 1464 has an area larger than the backward acting surface 1462, so that when the hydraulic pressure is applied to both acting surfaces, the control valve 1460 may be disposed at the forward position 1460-2. Accordingly, the piston 1440 may move forward.
  • the control valve 1460 may be disposed from the forward position 1460-2 to the reverse position 1460-1, and thus the piston 1440 may reverse.
  • the long stroke line 1435a is connected to the long stroke port 1435 formed in the cylinder 1430.
  • the long stroke port 1435 may be formed between the forward port 1434 and the reverse port 1433 of the cylinder 1430 to be connected or disconnected from the front chamber 1431 according to the position of the piston 1440.
  • the long stroke port 1435 has a front chamber 1431 when the piston 1440 is advanced so that the second large diameter portion 1442 is on the long stroke port 1435 or located below the long stroke port 1435. The connection with is cut off.
  • the long stroke port 1435 is connected to the front chamber 1431 when the piston 1440 is backward and the second large diameter portion 1442 is positioned above the long stroke port 1435.
  • the hydraulic pressure from the hydraulic source 160 is reverse line 1433a, the reverse port 1433, the front chamber 1431, the long stroke port 1435.
  • the control valve 1460 may be disposed at the forward position 1460-2 by being sequentially applied to the forward action surface 1464 through the long stroke line 1435a and the forward control line 1464a.
  • the short stroke line 1436a may be connected to the short stroke port 1434 formed in the cylinder 1430.
  • the short stroke port 1436 is formed between the forward port 1434 and the reverse port 1433 of the cylinder 1430 to be connected to or disconnected from the front chamber 1431 according to the position of the piston 1440, and the long stroke It may be formed at a position closer to the reverse port 1433 than to the port 1435.
  • the short stroke port 1434 is in contact with the front chamber 1431 when the piston 1440 is advanced so that the second large diameter portion 1442 is on the short stroke port 1434 or located ahead of the short stroke port 1434.
  • the connection is cut off.
  • the short stroke port 1434 is connected to the front chamber 1431 when the piston 1440 is backward and the second large diameter portion 1442 is located behind the short stroke port 1434.
  • a shift valve 1470 may be provided on the short stroke line 1436a to control a short circuit of the short stroke line 1436a.
  • the shift valve 1470 may be selectively disposed at any one of the long stroke position 1470-1 and the short stroke position 1470-2, and the short stroke line 1436a at the long stroke position 1470-1. ) And the short stroke line 1434a is connected at the short stroke position 1470-2.
  • the long stroke mode and the short stroke mode of the piston 1440 may be determined by the shift valve 1470.
  • the shift valve 1470 is disposed in the short stroke position 1470-2 and the second large diameter portion 1442 is located behind the short stroke port 1434 such that the short stroke port 1434 and the front chamber 1431 are positioned.
  • Hydraulic fluid is connected to the hydraulic source 160, the reverse line 1433a, the reverse port 1433, the front chamber 1431, the short stroke port 1434, the shift valve 1470, and the forward action surface 1464. Can be reached sequentially.
  • the piston 1440 may selectively perform reciprocating motion in the long stroke mode and the short stroke mode according to the position of the shift valve 1470.
  • the shift valve 1470 may automatically switch between the long stroke position 1470-1 and the short stroke position 1470-2 by the controller 180, and the long stroke position may be selected by the user. Switching between 1470-1 and the short stroke position 1470-2 may be performed.
  • the hydraulic fluid from the hydraulic source 160 via the reverse port 1433a along the reverse line 1433a to the front chamber (1431).
  • the hydraulic fluid is discharged from the front chamber 1431 along the short stroke line 1434a.
  • the long stroke port 1435 is opened as the piston 1440 further retracts, the hydraulic oil is discharged from the front chamber 1431 along the long stroke line 1435a.
  • the working oil is discharged along the advance line 1434a via the advance port 1434.
  • the working oil flows into the rear chamber 1432 via the forward port 1434 along the forward line 1434a.
  • the hydraulic oil is discharged along the hydraulic tank line 1438a via the hydraulic tank port 1438.
  • the pollution degree sensor 150 may be provided on a hydraulic line connected to the cylinder to detect the degree of contamination of the working oil flowing into or out of the cylinder to cause the piston to reciprocate.
  • the pollution degree sensor 150 may be provided to the advance line 1434a.
  • the pollution degree sensor 150 may include an inflow pollution degree sensor 150a or 150b and an emission pollution degree sensor 150a, 150c, 150d or 150e.
  • Inflow contamination sensors 150a and 150b may be provided on the inflow line 1433a which is a line into which the hydraulic fluid flows into the cylinder 1430, and the exhaust pollution sensors 150a, 150c, 150d, and 150e may be provided in the cylinder.
  • 1430 is provided to at least one of the long stroke line 1435a, the short stroke line 1436a, and the hydraulic tank line 1438a, which is a line through which the hydraulic oil is discharged to the outside, to detect the degree of contamination of the hydraulic oil flowing through each hydraulic line Can be.
  • the chamber causing the contamination by specifying the position of the pollution degree sensor.
  • the hydraulic breaker 1000 may further include a shutoff valve 1480 for selectively blocking the flow of the hydraulic oil.
  • the shutoff valve 1480 may be installed in a line through which the hydraulic oil is moved, and may selectively allow the flow of the hydraulic oil, or block the flow of the hydraulic oil.
  • the shutoff valve 1480 may allow the flow of the hydraulic oil in the connecting position (1480-2), and may block the flow of the hydraulic oil in the blocking position (1480-1).
  • shutoff valve 1480 is installed on the forward control line 1464a and moves forward from the long stroke port 1435 to the forward action surface 1464 from the hydraulic oil or the short stroke port 1434 to the forward action surface 1464. Allows the flow of hydraulic fluid to be transported to and may be blocked.
  • shutoff valve 1480 is disposed at the shutoff position 1480-1 to block the flow of the hydraulic oil, no hydraulic pressure is applied to the forward action surface 1464, so that the control valve 1460 is moved backward. Cannot be converted from 1) to the advance position 1460-2.
  • hydraulic fluid is not supplied from the hydraulic source 160 to the rear chamber 1432 by the control valve 1460 in the reverse position 1460-1, so that the reciprocating motion of the piston 1440 may be stopped.
  • the installation position of the shutoff valve 1480 is not limited to the above-mentioned position, but may be installed on the reverse line 1433a or may also be installed on the advance line 1434a.
  • Debris may penetrate into the hydraulic fluid passing through the front chamber 1431 and the rear chamber 1432 to generate a reciprocating motion of the piston 1440, during the striking of the hydraulic breaker 1000.
  • the scratch generated on the piston 1440 may cause friction between the inside of the cylinder 1430 and the surface of the piston 1440, which may cause debris to contaminate the hydraulic fluid.
  • the contamination of the hydraulic fluid may increase due to various reasons, such as a failure of the hydraulic oil itself, which is directly connected to the performance and durability of the hydraulic breaker 1000, as described above, and thus needs to be detected and managed.
  • a pollution degree sensor 150 may be provided to detect the pollution level of the working oil.
  • the pollution degree sensor 150 may be provided on the reverse line 1433a to detect inflow contamination information of the hydraulic oil flowing into the front chamber 1431, and the pollution degree information of the hydraulic oil flowing into or discharged into the rear chamber 1432 may be provided. It may be provided on advance line 1434a for sensing. In addition, it may be provided on the short stroke line (1436a), long stroke line (1435a), hydraulic tank line (1438a) in order to detect the discharge pollution degree information of the hydraulic oil discharged out of the front chamber (1431).
  • the pollution degree sensor 150 may be a turbidity sensor using an optical sensor including a light emitting unit for outputting an optical signal and a light receiving unit for receiving the optical signal and outputting a corresponding current flow.
  • an electric conductivity sensor that detects an electric conductivity
  • the present invention is not limited thereto, and any sensor capable of detecting whether or not the oil is contaminated or whether or not a float or debris is present in the oil is contaminated. Can be used).
  • the scattering pattern may vary according to the light source and the particle size. Since the particle size can be derived by analyzing the scattering pattern of the light sensed in the hydraulic fluid, the user can be provided with information on the particle size, if necessary.
  • the user may be provided with information on the particle type by analyzing it.
  • various information such as the cause and region of occurrence of the contamination, a fragment of the piston, and a fragment of the strike target, can be derived.
  • the hydraulic breaker 1000 may be further provided with a transmission module (not shown).
  • the transmission module may be configured to output pollution degree information to the controller 180.
  • the transmission module may be configured to receive the pollution degree information detected by the pollution degree sensor 150 from the pollution degree sensor 150 and transmit the pollution degree information to the controller 180.
  • the transmission module may output the pollution degree information from the pollution degree sensor 150 to the controller 180 through wired communication, and may output the pollution degree information from the pollution degree sensor 150 to the controller 180 through wireless communication.
  • wireless communication of the transmission module may include Bluetooth Low Energy (BTLE) or Zigbee. Since the communication between the pollution degree sensor 150 and the controller 180 does not require a high bandwidth, low power communication such as BTLE or direct rain may be desirable.
  • BTLE Bluetooth Low Energy
  • Zigbee Zigbee
  • the communication method between the controller 180 and the pollution degree sensor 150 is not necessarily limited thereto.
  • the controller 180 may determine whether the hydraulic oil of the piston 1440 is contaminated based on the detected contamination degree information.
  • the controller 180 may perform a warning operation when it is determined that the hydraulic oil is contaminated.
  • the warning for notifying the user may include a degree of contamination of the hydraulic oil determined based on the pollution degree information detected by the pollution degree sensor, a need for replacement of the hydraulic oil, and whether parts such as a piston are damaged.
  • the controller 180 is an electronic circuit that processes and calculates various electronic signals.
  • the controller 180 receives pollution degree information or a signal from the pollution degree sensor 150, and calculates and processes information / data.
  • Other configurations of the breaker 1000 and construction equipment 100 can be controlled.
  • the controller 180 is typically located on the carrier 120, but may also be located on the hydraulic breaker 1000.
  • controller 180 does not necessarily need to be implemented as a single object.
  • controller 180 may be implemented as a plurality of controllers 180 that can communicate with each other.
  • the controller 180 may be distributedly disposed such that a part thereof is installed on the hydraulic breaker 1000 side and the other part is installed on the carrier 120, and the controller 180 is wirelessly distributed between the distributed controllers 180. You can do that by collaborating by performing wired communication.
  • controllers 180 when a plurality of controllers 180 are distributed, some of them simply transmit signals or information to a slave type, and others receive various signals or information to a master type to process / operate and command / It may also take the form of performing control.
  • controller 180 The description of the controller 180 will be described in more detail when describing the oil monitoring system below.
  • the hydraulic oil monitoring system is a system for monitoring the contamination of the hydraulic oil which is the power causing the reciprocating motion of the piston 1440 in the hydraulic breaker 1000 described above.
  • the monitoring system may monitor whether the working oil is contaminated by using the pollution degree information detected by the pollution degree sensor 150 described above. In addition, if the monitoring determines that the working oil is contaminated, a warning operation may be performed.
  • the hydraulic fluid monitoring system may include a pollution degree sensor 150 and a controller 180, and when the controller 180 satisfies a predetermined condition based on the pollution degree information detected from the pollution degree sensor 150, the hydraulic oil may be It may be considered contaminated and a warning action may be taken.
  • the predetermined condition may be a reference condition for determining whether the hydraulic oil is contaminated.
  • the controller 180 may determine that the working oil is contaminated when the degree of contamination information detected from the pollution degree sensor 150 or data calculated / converted based on the degree of contamination information satisfies a predetermined condition. If it is not satisfied, it can be determined that the working oil is in a normal state.
  • the predetermined condition may be set by the user or may be set based on the pollution degree information obtained from the pollution degree sensor 150 in a normal state in which the working oil is not polluted.
  • hydraulic fluid monitoring system may further include an output module 190 for outputting an image or an audio.
  • the module may further include an output module 190.
  • the output module 190 may be implemented as, for example, an image output module that mainly outputs an image or an audio output module that outputs an audio.
  • various output devices for transmitting information to the user may be adopted as the output module 190.
  • the output module 190 may directly output an image or an audio to a user, and may be configured to include a USB port for transmitting an image / audio signal to another device that directly outputs an image or an audio to a user.
  • the output module 190 may be a component capable of outputting an image or an audio and outputting a warning message about the oil contamination to the user.
  • the output module 190 may be installed in the breaker 1000 or may be installed in the carrier 120.
  • the controller 180 may control the output module 190 to output a warning message about the oil contamination to the user through the output module 190.
  • the controller 180 and the output module 190 may enable wired communication or wireless communication.
  • the predetermined condition may be a condition that the contamination value of the pollution degree information is equal to or greater than the predetermined reference contamination values K1 and K2.
  • the hydraulic breaker 1000 may be provided with a first pollution degree sensor 150a on the advance line 1434a.
  • the first pollution degree sensor 150a may detect the contamination level of the hydraulic oil flowing into the rear chamber 1432 during the forward movement of the piston 1440, and may be discharged from the rear chamber 1432 during the backward movement of the piston 1440. The degree of pollution of the discharged oil can be detected.
  • the first pollution degree sensor 150a may be an inflow pollution degree sensor, and at the same time, it may be an emission pollution degree sensor.
  • FIG. 5 illustrates pollution degree information detected by the first pollution degree sensor 150a.
  • Pollution degree information of the hydraulic oil flowing into the rear chamber 1432 while the piston 1440 is advanced is detected at a time interval of 0 to t1, t2 to t3, and t4 to t5, and the rear chamber ( Contamination information of the hydraulic oil discharged from 1432) is detected in the time t1 ⁇ t2, t3 ⁇ t4, t5 ⁇ t6.
  • K1 and K2 are predetermined reference contamination values, and when the detected contamination value is K1 or more as in the sections t1 to t2 and K2 or more in the sections t3 to t4 and t5 to t6, the predetermined condition is satisfied.
  • the controller 180 performs a predetermined operation of notifying the user of pollution degree information.
  • the predetermined condition may be a condition in which the frequency of the contamination value of the hydraulic oil is equal to or greater than the predetermined reference contamination value K1 and K2.
  • the contamination sensor is an optical sensor or an electrical conductivity sensor
  • the turbidity or the electrical conductivity may be temporarily different due to the direction of the fragment, the nonuniformity of impurities, and the like.
  • the piston 1440 detects the degree of contamination of the hydraulic oil introduced or discharged during the reciprocating motion a plurality of times, and compares the number of times that the hydraulic oil is greater than or equal to a predetermined reference contamination value with respect to the total number of piston reciprocating motions.
  • the frequency at which the contamination value is equal to or greater than a predetermined reference contamination value is obtained. Only when the acquired frequency is more than a predetermined reference frequency value, it is determined that the working oil is contaminated, thereby excluding errors and securing a high level of reliability. For example, as shown in FIG. 5, in six sections from 0 to t6, three times when the contamination value is K1 or more, and two times when K2 or more is detected, the predetermined reference frequency value is set to 40%. In this case, since it is equal to or greater than the predetermined reference frequency value for K1, the controller 180 can send a warning message, and since the K2 is less than or equal to the predetermined reference frequency value, the controller 180 does not take any action.
  • the frequency of the contamination value of the hydraulic fluid is more than the predetermined reference contamination value may be a condition of more than the predetermined reference frequency value.
  • the controller 180 may determine that the hydraulic oil is contaminated.
  • the controller 180 when the difference between the contamination value of the incoming hydraulic oil and the contamination value of the discharged hydraulic oil is equal to or more than a predetermined reference difference value DELTA K, the controller 180 notifies the user of the contamination level information as it satisfies a predetermined condition. Perform a predetermined operation.
  • the contamination value of the hydraulic oil flowing in and the pollution value of the hydraulic oil discharged may be pollution values of the hydraulic oil and the hydraulic oil introduced during one continuous backward movement and one forward movement of the piston 1440.
  • the hydraulic breaker 1000 may be provided with a second pollution degree sensor 150b on the reverse line 1433a, and a third pollution degree sensor on the hydraulic tank line 1438a.
  • 150c may be provided on the long stroke line 1435a, the fourth pollution degree sensor 150d, and the fifth pollution degree sensor 150e on the short stroke line 1436a, respectively.
  • the second pollution degree sensor 150b may detect a pollution degree of the working oil flowing into the front chamber 1431 during the backward movement of the piston 1440, and the third pollution degree sensor 150c may detect the contamination during the forward movement of the piston 1440.
  • the degree of contamination of the hydraulic oil discharged from the chamber 1431 can be detected.
  • the fourth pollution degree sensor 150d may detect a degree of contamination of the hydraulic oil discharged from the front chamber 1431 as the long stroke port 1435 is opened.
  • the fifth pollution degree sensor 150e may detect a degree of contamination of the hydraulic oil discharged from the front chamber 1431 as the short stroke port 1434 opens.
  • the pollution degree information of the working oil flowing into the front chamber 1431 detected by the second pollution degree sensor 150b provided on the reverse line 1433a is shown in solid lines, and the emission pollution degree sensor
  • a discharge port-as a whole refers to a port through which the hydraulic oil discharged from the front chamber passes, there may be a short stroke port (1436), a long stroke port 1435, a hydraulic tank port (1438) and the like.
  • the contamination level information of the working oil detected by the third pollution degree sensor 150c, the fourth pollution degree sensor 150d, and the fifth pollution degree sensor 150e provided on the hydraulic line discharged from the front chamber 1431 via a broken line. Illustrated. When used without replacing the hydraulic fluid for a long time as shown in Figure 6 may be gradually increased pollution.
  • K1 and K2 are predetermined reference contamination values, and if the detected contamination value is K1 or K2 or more, the predetermined condition is satisfied, so that the controller 180 performs a predetermined operation of notifying the user of pollution degree information.
  • the controller 180 when the difference between the contamination value of the incoming hydraulic oil and the contamination value of the discharged hydraulic oil is equal to or more than a predetermined reference difference value DELTA K, the controller 180 notifies the user of the contamination level information as it satisfies a predetermined condition. Perform a predetermined operation.
  • the controller 180 determines that the working oil is contaminated based on the pollution degree information detected by the first pollution degree sensor 150a, impurities in the cylinder 1430 or scratches generated on the piston 1440 may be used. Where the inducing factor of the hydraulic oil contamination is located may be specified as the rear chamber (1432). The controller 180 may inform the user of the location of the specified contamination causing factor with a warning message.
  • the controller 180 compares the pollution of the hydraulic oil flowing into the front chamber 1431 from the second pollution degree sensor 150b with the contamination of the hydraulic oil discharged from the front chamber 1431 in the third pollution degree sensor 150c.
  • the front chamber 1431 may be located where the inducing factor of the hydraulic oil contamination, such as an impurity inside the cylinder 1430 or a scratch generated on the piston 1440, is located.
  • the controller 180 may inform the user of the location of the specified contamination causing factor with a warning message.
  • the fourth pollution degree sensor 150d and the fifth pollution degree sensor 150e also detect pollution levels of the hydraulic oil discharged from the front chamber 1431, and according to the function of specifying a chamber in which the cause of the hydraulic oil contamination is located, the third pollution degree The same role as the sensor 150c may be performed.
  • the controller 180 may output a warning message to the user through the output module 190.
  • the controller 180 may stop the reciprocating motion of the piston 1440 when it is determined that the hydraulic fluid is contaminated.
  • the controller 180 may output a warning message to the user through the output module 190 when the pollution value of the pollution degree information is equal to or greater than the first pollution value K1.
  • the reciprocating motion of the piston 1440 may be stopped when the pollution value of the pollution degree information is greater than or equal to the second pollution value K2 greater than the first pollution value K1.
  • the controller 180 may notify the user of the fact through the output module 190 when the degree of contamination of the hydraulic fluid is a warning level, and the piston 1440 without the user's separate operation when the degree of contamination of the hydraulic fluid is more than the warning level. ) The reciprocating motion can be stopped.
  • the controller 180 can prevent damage to the piston 1440 and the cylinder 1430 due to the increase in the degree of contamination of the hydraulic oil of the piston 1440.
  • controller 180 may control the shutoff valve 1480 to block the flow of the hydraulic oil when the shutoff valve 1480 determines that the hydraulic oil is contaminated.
  • the shutoff valve 1480 when the controller 180 does not control the shutoff valve 1480, the shutoff valve 1480 is in a connection position 1480-2, and when the controller 180 controls the shutoff valve 1480.
  • the shutoff valve 1480 may be changed from the connecting position 1480-2 to the blocking position 1480-1.
  • the controller 180 may control the shutoff valve 1480 to be changed from the connection position 1480-2 to the shutoff position 1480-1, and as a result, the shutoff valve 1480 controls the flow of hydraulic oil. You can block.
  • the control valve 1460 is the reverse position 1460-. It is continuously maintained at 1), and as a result, the hydraulic oil of the hydraulic source 160 cannot flow into the rear chamber 1432, so that the reciprocating motion of the piston 1440 may not be implemented.
  • the controller 180 may control the shift valve 1470 to control the reciprocating motion of the piston 1440.
  • the controller 180 may control the piston 1440 to change to a short stroke state by controlling the shift valve 1470 when the piston 1440 determines that the hydraulic oil is contaminated in the long stroke state.
  • the piston 1440 may be stopped by controlling the shutoff valve 1480.
  • the controller 180 may sequentially control the shift valve 1470 and the shutoff valve 1480, so that when the piston 1440 is a long stroke, the controller 180 may sequentially change to a short stroke and stop again at the short stroke.
  • the user may recognize that the hydraulic fluid is contaminated by changing the reciprocating state of the piston 1440 by the control of the controller 180.
  • the warning operation of the controller 180 may mean an operation of outputting a warning message to the user through the output module 190 and / or changing the reciprocating motion state of the piston 1440.
  • the hydraulic oil monitoring method includes a step in which a chisel strikes an object according to the reciprocating motion of the piston 1440 in the cylinder 1430 (S10), and a pollution degree sensor provided on a hydraulic line connected to a hydraulic port provided on the cylinder 1430. Detecting a pollution degree information on the hydraulic fluid flowing into or out of the cylinder 1430 and performing a warning operation when the controller 180 satisfies a predetermined condition based on the detected pollution degree information ( S30) may be included.
  • the controller 180, the pollution degree sensor 150, the shutoff valve 1480, the shift valve 1470 and the output module Wireline communication or wireless communication is possible between 190, and the shutoff valve 1480, the shift valve 1470, and the output module 190 may be controlled by the control of the controller 180.
  • the predetermined reference contamination values K1 and K2, the predetermined reference difference value ⁇ K, and the predetermined reference frequency value may be input by the input unit 195, and the controller 180 is not contaminated with the hydraulic oil. May be calculated and set based on the pollution degree information obtained from the pollution degree sensor 150 at.

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  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Mining & Mineral Resources (AREA)
  • Civil Engineering (AREA)
  • Structural Engineering (AREA)
  • Physics & Mathematics (AREA)
  • Fluid Mechanics (AREA)
  • Chemical & Material Sciences (AREA)
  • Analytical Chemistry (AREA)
  • Fluid-Pressure Circuits (AREA)
  • Percussive Tools And Related Accessories (AREA)

Abstract

L'invention concerne un concasseur hydraulique qui comporte : un cylindre ayant une pluralité d'orifices hydrauliques ; un piston animé d'un mouvement alternatif à l'intérieur du cylindre au moyen d'une pression hydraulique d'un fluide hydraulique s'écoulant dans les orifices hydrauliques ou évacué par le biais de ceux-ci ; un capteur de niveau de contamination disposé sur des conduites hydrauliques raccordées aux orifices hydrauliques et permettant de détecter des informations de niveau de contamination comprenant le niveau de contamination d'entrée par rapport au fluide hydraulique d'entrée et le niveau de contamination d'évacuation par rapport au fluide hydraulique évacué ; un module de transmission permettant, s'il est déterminé que le fluide hydraulique a été contaminé sur la base des informations de niveau de contamination détectées, de fournir les informations de niveau de contamination à un dispositif de commande pour effectuer une opération d'avertissement.
PCT/KR2017/001775 2017-02-10 2017-02-17 Concasseur hydraulique, système et procédé de surveillance de fluide hydraulique WO2018147491A1 (fr)

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KR1020170018722A KR101918837B1 (ko) 2017-02-10 2017-02-10 유압식 브레이커, 작동유 모니터링 시스템 및 작동유 모니터링 방법
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Publication number Priority date Publication date Assignee Title
CN109296595A (zh) * 2018-12-06 2019-02-01 武汉理工大学 一种矿业防爆车的全自动紧急制动阀
CN111968878A (zh) * 2020-08-04 2020-11-20 北京中车赛德铁道电气科技有限公司 一种轨道交通用真空断路器动作机构气动控制装置

Families Citing this family (1)

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KR102181324B1 (ko) * 2019-07-15 2020-11-20 대모 엔지니어링 주식회사 유압브레이커의 스크래치 조기 감지장치 및 조기 감지방법

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JPH06117987A (ja) * 1992-10-07 1994-04-28 Hitachi Constr Mach Co Ltd 油圧回路の作動油の劣化度検出装置
JP2001221793A (ja) * 2000-02-08 2001-08-17 Hitachi Constr Mach Co Ltd 作動油の汚れ状態診断装置
KR100499263B1 (ko) * 2002-12-26 2005-07-07 볼보 컨스트럭션 이키프먼트 홀딩 스웨덴 에이비 온라인상에서의 굴삭기의 오일 오염도 측정시스템 및 그방법
KR20110038065A (ko) * 2008-06-27 2011-04-13 히다찌 겐끼 가부시키가이샤 작동유의 오염도 검출 장치
JP2013233595A (ja) * 2010-08-27 2013-11-21 Teisaku:Kk 流体圧式打撃装置

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JPH06117987A (ja) * 1992-10-07 1994-04-28 Hitachi Constr Mach Co Ltd 油圧回路の作動油の劣化度検出装置
JP2001221793A (ja) * 2000-02-08 2001-08-17 Hitachi Constr Mach Co Ltd 作動油の汚れ状態診断装置
KR100499263B1 (ko) * 2002-12-26 2005-07-07 볼보 컨스트럭션 이키프먼트 홀딩 스웨덴 에이비 온라인상에서의 굴삭기의 오일 오염도 측정시스템 및 그방법
KR20110038065A (ko) * 2008-06-27 2011-04-13 히다찌 겐끼 가부시키가이샤 작동유의 오염도 검출 장치
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Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN109296595A (zh) * 2018-12-06 2019-02-01 武汉理工大学 一种矿业防爆车的全自动紧急制动阀
CN111968878A (zh) * 2020-08-04 2020-11-20 北京中车赛德铁道电气科技有限公司 一种轨道交通用真空断路器动作机构气动控制装置

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