The invention relates to a control valve of a hydraulic impact device of a rock breaking apparatus.
The invention further relates to an impact device and to a method of generating impacts in a hydraulic impact device of a rock breaking apparatus.
The field of the invention is defined more specifically in the preambles of the independent claims.
In rock drilling machines and other rock breaking apparatuses different type of hydraulic impact devices are used. The impact devices are provided with reciprocating percussion pistons working cycle of which is controlled by means of control valves. However, the known solutions have shown some disadvantages regarding durability of the control valves.
An object of the invention is to provide a novel and improved control valve, impact device, and a method for generating impacts in a hydraulic impact device of a rock breaking apparatus.
The control valve according to the invention is characterized by the characterizing features of the first independent apparatus claim.
The impact device according to the invention is characterized by the characterizing features of the second independent apparatus claim.
The method according to the invention is characterized by the characterizing features of the independent method claim.
An idea of the disclosed solution is that a control valve of a hydraulic impact device of a rock breaking apparatus is an elongated piece with a central axis and radial outer and inner surfaces, and it also comprises several control surfaces at axial distances from each other for controlling hydraulic fluid flows in response to axial control movement. Further, at least one radial surface of the valve comprises at least one slanted surface longitudinal direction of which has oblique orientation in relation to the central axis of the valve. In other words, the control valve comprises one or more slanted surfaces at one or more surface areas being subjected to fluid flow during the operating cycle of the impact device. Thus, the fluid flow causes on the slanted surfaces torque around the central axis of the control valve and makes the control valve to rotate, or at least turn, in relation to its central axis. The control valve is a control sleeve comprising a central axial opening configured to serve as a fluid passage. In other words, the control sleeve can surround a percussion piston which can be arranged to the central axial opening.
An advantage of the disclosed solution is that the control valve changes automatically and without any external actuator or force its position in relation the central axis. Thereby it is possible to increase durability of the control valve. The control valve may be subjected to cavitation whereby cavitation damages of the control valve can be decreased. A further advantage is that manufacture of the slanted surfaces is easy and inexpensive. The use of the disclosed solution requires only slight modifications to the basic structure of the impact device.
According to an embodiment, the control valve is without any transverse openings passing the control valve in transverse direction. In other words, the control valve is a solid element with closed surfaces in transverse direction.
According to an embodiment, the slanted surface has axial dimension and extends on the surface of the control valve for a limited distance in axial direction.
According to an embodiment, the slanted surface has at least 10° pitch relative to the central axis of the control valve. The pitch may be 8-15°, for example.
According to an embodiment, the slanted surfaces have limited dimensions in axial direction of the control valve, i.e., the slanted surfaces do not extend end to end of the control valve.
According to an embodiment, the slanted surfaces extend end to end of the control valve.
According to an embodiment, the slanted surfaces of the control valve are formed by chip removing machining, such as milling.
According to an embodiment, the control valve is manufactured by means of additive manufacturing (AM).
According to an embodiment, the rock breaking apparatus is a rock drilling machine.
According to an embodiment, the rock breaking apparatus is alternatively a breaking hammer.
According to an embodiment, the radial outer surface is provided with several slanted surfaces. In other words, the generated rotational torque can be intensified by increasing number of the slanted surfaces.
According to an embodiment, number of the slanted surfaces at one cross-section may be 2-20.
According to an embodiment, the radial inner surface is provided with several slanted surfaces.
According to an embodiment, the slanted surface is linearly directed configuration on the radial surface of the control valve. In other words, shape of the slanted surface is straight and deviates thereby from curved or helical surfaces. An advantage of this solution is that the linearly directed slanted surface may be easier to manufacture.
According to an embodiment, the slanted surface has helical configuration in longitudinal direction of the slanted surface.
According to an embodiment, the slanted surface has uniform radial dimensions at least in one longitudinal part of the slanted surface.
According to an embodiment, the slanted surface has continuously changing radial dimensions at least in one longitudinal part of the slanted surface.
According to an embodiment, the control valve has a first end surface and an opposite second end surface. Further, several slanted surfaces extend to at one of the mentioned first end surface and second end surface.
According to an embodiment, the control valve has at least one control shoulder on at least one of the mentioned inner radial surface and outer radial surface. The mentioned at least one control shoulder is provided with several slanted surfaces.
According to an embodiment, the slanted surface has groove-like configuration. In other words, the groove comprises an oblique surface portion or wall facing towards hydraulic fluid flow passing the surface of the control valve during the operation whereby the torque is generated on that surface.
According to an embodiment, the groove has constant cross section from end to end.
According to an embodiment, cross sectional shape of the groove changes when examined in longitudinal direction of the groove.
According to an embodiment, bottom of the groove is inclined. Inclination angle of the bottom may be 10-20°, for example about 15°.
According to an embodiment, the slanted surface has protrusion-like configuration. In other words, the control valve may comprise one or more longitudinal slanted protrusions, such as ridges, bulges, elevations, or spirals. Then there is an oblique surface portion or wall facing towards hydraulic fluid flow passing the surface of control valve during the operation whereby the torque is generated on that surface.
According to an embodiment, the control valve has a first set of several first slanted surfaces and a second set of several second slanted surfaces at an axial distance from the first set. The first and second slanted surfaces have oppositely directed oblique orientations relative to each other. In other words, the control valve can control fluid flows having opposite flow directions relative to each other. Then the first set is influenced by first fluid flow having first direction of flow, and the second set is influenced by second fluid flow having second direction. The first and second sets are configured to turn the control valve to the same rotation direction when being influenced by the first and second fluid flows.
According to an embodiment, the disclosed solution relates to an impact device of a rock breaking apparatus comprising: a body; a percussion piston being movable in an impact direction towards a front end of the impact device and in a reverse direction towards a rear end of the impact device; a working pressure space provided with hydraulic pressure fluid for moving the percussion piston in the reverse direction; a control pressure space at a rear end of the valve cylinder and being provided with a control valve for controlling hydraulic pressure affecting at the control pressure space and to thereby controlling reciprocating movement of the percussion piston; and wherein the control valve is configured to be rotated hydraulically during the operation of the impact device. Further, the control valve comprises several slanted surfaces on at least one radial surface of the control valve for generating torque for providing the hydraulic rotation. The control valve is in accordance with the embodiments and features disclosed in this document.
The above disclosed embodiments may be combined in order to form suitable solutions having those of the above features that are needed.
Some embodiments are described in more detail in the accompanying drawings, in which
For the sake of clarity, the figures show some embodiments of the disclosed solution in a simplified manner. In the figures, like reference numerals identify like elements.
In
The impact device 8 comprises a percussion piston 19 which is arranged to move in a reciprocating manner in the impact direction A and return direction B. At a front end of the percussion piston 19 is an impact surface 20 which is configured to strike the shank adapter. The impact device 8 may comprise a percussion cartridge 21 which is arranged axially inside a rear portion Re2 of a central space 22 of the body 10. The percussion cartridge 21 may comprise a valve cylinder 23 through which the percussion piston 19 passes. The impact device 8 comprises a working pressure space 24 provided with hydraulic pressure fluid for moving the percussion piston 19 in the reverse direction B. There is a control pressure space 25 at a rear end Re2 of the valve cylinder 23. The control pressure space 25 is provided with a sleeve-like control valve 26 for controlling hydraulic pressure affecting at the control pressure space 25 and to thereby control reciprocating movement of the percussion piston 19. The pressure in the control valve space 25 moves the percussion piston 19 in the impact direction because working pressure areas of the percussion piston in the impact direction A are greater therein compared to working pressure areas or the percussion piston at the working pressure space 24 and affecting in the return direction B. In the working pressure space 24 there may prevail continuous high pressure during the operation, whereas in the control pressure space 25 magnitude of the pressure can be changed by means of the control valve 26 for making the percussion piston 19 to execute the reciprocating movement. Further, the valve cylinder 23 is provided with a pilot pressure space 27 for providing pressure pulses in response to movement of the percussion piston 19 in the impact direction A. The valve cylinder 23 is further provided with several axial fluid channels 28 for connecting the pilot pressure space 27 and the control pressure space 25. The pressure pulses generated in the pilot pressure space 27 effect on control surfaces of the control valve 26 and make it to change its control position.
The control valve 26 is an elongated piece with a central axis and radial outer and inner surfaces, and it comprises several control surfaces at axial distances from each other for controlling hydraulic fluid flows in response to axial control movement. Furthermore, one or more radial surfaces i.e., inner or outer surfaces, of the control valve 26 comprise one or several slanted surfaces longitudinal direction of which have oblique orientation in relation to the central axis of the control valve. Possible configurations of the slanted surfaces are disclosed in
The impact device 8 disclosed in
In
Further, the control sleeves 38 have first end surfaces 43 and opposite second end surfaces 44, and the helical grooves extend from end the end in
Further, different combinations of the solutions disclosed in
The drawings and the related description are only intended to illustrate the idea of the invention. In its details, the invention may vary within the scope of the claims.
Number | Date | Country | Kind |
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22168155.4 | Apr 2022 | EP | regional |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2023/059116 | 4/6/2023 | WO |