WO2022228981A1 - Apparatus and method for controlling flushing in rock drilling - Google Patents

Apparatus and method for controlling flushing in rock drilling Download PDF

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Publication number
WO2022228981A1
WO2022228981A1 PCT/EP2022/060503 EP2022060503W WO2022228981A1 WO 2022228981 A1 WO2022228981 A1 WO 2022228981A1 EP 2022060503 W EP2022060503 W EP 2022060503W WO 2022228981 A1 WO2022228981 A1 WO 2022228981A1
Authority
WO
WIPO (PCT)
Prior art keywords
drilling
control unit
flushing
feeding
liquid component
Prior art date
Legal status (The legal status 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 status listed.)
Ceased
Application number
PCT/EP2022/060503
Other languages
English (en)
French (fr)
Inventor
Pekka Anttonen
Timo SETÄLÄ
Tuomo KIVELÄ
Sirpa LAUNIS
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Sandvik Mining and Construction Oy
Original Assignee
Sandvik Mining and Construction Oy
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 Sandvik Mining and Construction Oy filed Critical Sandvik Mining and Construction Oy
Priority to US18/288,292 priority Critical patent/US12158047B2/en
Priority to JP2023566564A priority patent/JP7804696B2/ja
Priority to CN202280029451.0A priority patent/CN117178104A/zh
Priority to AU2022267680A priority patent/AU2022267680A1/en
Priority to CA3215319A priority patent/CA3215319A1/en
Publication of WO2022228981A1 publication Critical patent/WO2022228981A1/en
Priority to ZA2023/09640A priority patent/ZA202309640B/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Classifications

    • EFIXED CONSTRUCTIONS
    • E21EARTH OR ROCK DRILLING; MINING
    • E21BEARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
    • E21B44/00Automatic control systems specially adapted for drilling operations, i.e. self-operating systems which function to carry out or modify a drilling operation without intervention of a human operator, e.g. computer-controlled drilling systems; Systems specially adapted for monitoring a plurality of drilling variables or conditions
    • EFIXED CONSTRUCTIONS
    • E21EARTH OR ROCK DRILLING; MINING
    • E21BEARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
    • E21B21/00Methods or apparatus for flushing boreholes, e.g. by use of exhaust air from motor
    • E21B21/08Controlling or monitoring pressure or flow of drilling fluid, e.g. automatic filling of boreholes, automatic control of bottom pressure
    • EFIXED CONSTRUCTIONS
    • E21EARTH OR ROCK DRILLING; MINING
    • E21BEARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
    • E21B21/00Methods or apparatus for flushing boreholes, e.g. by use of exhaust air from motor
    • E21B21/16Methods or apparatus for flushing boreholes, e.g. by use of exhaust air from motor using gaseous fluids
    • EFIXED CONSTRUCTIONS
    • E21EARTH OR ROCK DRILLING; MINING
    • E21BEARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
    • E21B45/00Measuring the drilling time or rate of penetration
    • EFIXED CONSTRUCTIONS
    • E21EARTH OR ROCK DRILLING; MINING
    • E21FSAFETY DEVICES, TRANSPORT, FILLING-UP, RESCUE, VENTILATION, OR DRAINING IN OR OF MINES OR TUNNELS
    • E21F5/00Means or methods for preventing, binding, depositing, or removing dust; Preventing explosions or fires
    • E21F5/02Means or methods for preventing, binding, depositing, or removing dust; Preventing explosions or fires by wetting or spraying

Definitions

  • the invention relates to an apparatus for control ling air mist flushing of a rock drilling unit in rock drilling.
  • the air mist comprises pressurized air and one or more liquid components.
  • the air mist is used for flushing the drilled holes.
  • the invention further relates to a rock drilling rig, and to a method and computer program product for con trolling the air mist flushing system.
  • rock drilling rigs In mines and at other work sites different type of rock drilling rigs are used for drilling drill holes to rock surfaces.
  • the rock drilling rigs are provided with one or more booms and rock drilling machines are arranged at distal ends of the booms.
  • the drilling machine is provided with a flushing device for feeding flushing fluid inside the drill hole via the drilling tool.
  • the flushing media may be air, water, or mist.
  • An object of the invention is to provide a novel and improved apparatus, method and computer program product for controlling air mist flushing, and further to provide a novel and improved rock drilling rig utilizing the dis closed solutions.
  • the apparatus according to the invention is charac terized by the characterizing features of the first inde pendent apparatus claim.
  • the rock drilling rig according to the invention is characterized by the characterizing features of the second independent apparatus claim.
  • the method according to the invention is character ized by the characterizing features of the independent method claim.
  • the computer program product according to the in vention is characterized by the characterizing features of the third independent apparatus claim.
  • the appa ratus comprises one or more control units for controlling feeding of the air mist comprising pressurized air and one or more liquid components.
  • the control unit is provided with data on penetration rate of drilling. Thereby, the control unit generates control signals for controlling feeding of the one or more liquid components of the air mist in re sponse to the input data on penetration rate.
  • the control unit may also be provided input parameters affecting to executed flushing control.
  • moisture content of the fed air mist is adjusted in relation to the data on penetration rate.
  • the penetration rate means progression of a drill bit into the rock in a certain period of time.
  • the pene tration rate is expressed m/min.
  • the aim of the disclosed solution is to affect to properties of drilling cuttings, removed by the flushing from the drill hole, predominantly by adjusting the amount of the liquid content in the air mist. Further, the purpose is to keep the moisture level of the removed drilling cut tings relative constant despite of possible variations in the penetration rate during drilling of one drill hole. Then the system can react to varying rock characteristics and other external variations, for example.
  • An advantage of the disclosed solution is that clog ging of drilling cuttings and other problems can be avoided when the amount of the liquid content and other flushing parameters in the air mist are adjusted properly. Too high level of moisture may cause clogging. On the other hand, when the level of moisture is too low, then dust may cause significant problems.
  • the moisture-based flushing not only prevents the clogging and dusting problems but may also save energy and flushing media, and further, may ensure full drilling efficiency and allows to keep the working site and the rock drilling rig cleaner.
  • the penetration rate can be determined in versatile ways and by means of differ ent sensing means. It is possible to sense movement of a rock drilling machine on a feed beam of the rock drilling unit by means of one or more sensors or sensing devices. Alternatively, it is possible to sense operation of a feed device and to determine for example flow rate of hydraulic fluid fed to a feed cylinder of the drilling unit and to determine the penetration rate on the basis of the sensed flows.
  • the feeding of the liq uid component is adjusted automatically when the penetra tion rate varies due to external factors, such as changes in rock quality.
  • the penetration rate may indicate indi rectly rock quality, whereby the moisture content is con trolled indirectly in response to rock characteristics.
  • the disclosed solution may also detect drilling parameters selected by the operator and may control the feeding of the liquid component based on that.
  • the operator may decrease penetration rate of the drilling by decreasing impact pressure of an impact device, for example, and may thereby try to improve straightness of the drilled holes when drilling demanding rock.
  • the system may monitor the input drilling parameters and may execute required control for the flushing.
  • the liquid component may be water, water solution or any suitable liquid mixture.
  • control unit is configured to examine each drill hole separately and to execute the disclosed adjustment measures case-by-case for each drill hole.
  • the control unit is con figured to examine each drill hole gradually as the drilling advances and executes the disclosed adjustment measures ac cordingly.
  • control unit may be provided with input target value for moisture content of drilling cuttings removed from the drill hole being drilled.
  • the control unit may also determine real value of moisture content of the drilling cuttings and may then compare the input target value and the real value and may adjust feeding of the liquid component on the basis of the comparison.
  • control unit is configured to communicate with at least one user interface.
  • An operator may input desired target values to the control unit by means of the user interface.
  • the mentioned user in terface may comprise a visual display element or graphical element for inputting the target values.
  • the visual or graphical display element may be intuitive and may improve user friendliness.
  • the input target value and real value are relative values.
  • the input target value and real value are percentage values.
  • the values under examination are percentages of moisture.
  • the control unit is configured to: calculate removal rate of the removed drill ing cuttings per time period during the drilling in response to input data on diameter of a drill bit, data on density of the drilled rock material and the penetration rate; cal culate required liquid component feed rate in response to the input target value for moisture content and the calcu lated data on the removal rate of drilling cuttings.
  • the control unit is configured to determine the real value of the moisture content by means of calcu lation process. Then, there is no need to provide the con trol unit with sensing data on the real moisture amount.
  • an indirect control principle is implemented .
  • the calculated removal rate of the flushed drilling cuttings per time period during the drilling may be called a volumetric penetration rate, since it indicates amount of volume of removed solid rock per time period. Feeding of the pressurized air and the liquid component needs to be adjusted in response to the detected volumetric penetration rate so that the preferable moisture content values can be reached.
  • control unit is provided with input data on density of the rock material to be drilled, or alternatively, the control unit is provided with sensing data during the drilling process and is con figured to determine the density of the rock material in response to the sensing data.
  • the control unit may be pro vided with a suitable algorithm for executing calculation or determination of the density.
  • control unit is provided with sensing data on the real moisture of the drilling cuttings removed from the drilled hole, whereby the control unit is provided with feedback control and is configured to control the feeding of the liquid component in response to the input feedback data.
  • the control unit is provided with feedback control and is configured to control the feeding of the liquid component in response to the input feedback data.
  • the sensors may be arranged in connection with a dust collection system, for example.
  • the disclosed solution comprises flushing parameters input to the control unit, and the input control parameters comprise data sets on al lowed moisture values of moisture content of the drilling cuttings.
  • the allowed moisture values may be determined in practical test and measurements. Further, the data sets may be customized for different drilling situations, rock types, drilling tools, for example.
  • control unit is configured to prevent control situations wherein the feed ing of the liquid component leads to air mist flushing situations outside the allowed moisture values defined by the input data sets.
  • the allowable flushing parameters or data sets are illustrated by means of prede fined flushing maps.
  • flushing param eters and flushing maps which are based on practical studies made for different rock characteristics and drilling tools, for example.
  • control unit may automatically select such control parameters from the data set on allowed moisture values which minimize feeding of liquid component.
  • this embodiment utilizes as low moisture content as possible but still takes care of that no significant dusting occurs outside the drill hole during the drilling process.
  • An advantage of this principle is that typically the penetration rate can be higher when the feeding rate of the liquid component is low. The higher penetration rate means more effective drilling and savings in time and expenses. Further, liquid component tanks onboard the rock drilling machine may then be smaller.
  • the control unit is configured to control at least one control element for con trolling feeding of the liquid component.
  • control unit is configured to control at least one liquid component feed valve.
  • control unit is configured to control at least one pump for controlling feeding of the liquid component.
  • the pump may then serve as the above mentioned control element.
  • control unit may additionally control feeding of air flow in response to the detected penetration rate.
  • control unit is configured to control an onboard compressor of a flushing system.
  • control unit is configured to control air flow supplied from a compressed air line of a mine or work site.
  • the disclosed solution relates to a rock drilling rig.
  • the rock drilling rig com prises: a movable carrier; at least one drilling boom mounted movably relative to the carrier; at least one drill ing unit mounted to the at least one drilling boom and comprising a feed beam; a rock drilling machine mounted on the feed beam and a drilling tool mountable to the rock drilling machine; an air mist flushing system for feeding pressurized air and at least one liquid component into a drill hole; and an apparatus for controlling the air mist flushing system.
  • the apparatus is in accordance with any one of the features and embodiments disclosed in this doc ument.
  • the rock drilling rig is provided with an onboard air mist flushing system.
  • the rock drilling rig comprises a compressor for generating the pressurized air, and further, there is a tank and a pump for feeding the liquid component.
  • the system further com prises at least one liquid component feed channel provided with at least one feed valve for adjusting flow of the fed liquid component.
  • the rock drilling rig is provided with connection to a water supply line of a mine or work site, or to a compressed air line of the mine or work site, or to both.
  • one or more external flushing media supply sources such as external reservoirs and systems can also be implemented in the disclosed solu tion.
  • the supply systems may be mobile.
  • the drilling unit is provided with at least one sensing device for detecting penetration rate during the drilling.
  • the rock drilling rig is provided with at least one sensing device for detecting moisture content of drilling cuttings removed from the drilled hole during the drilling.
  • the discloses solution relates to a method of controlling flushing in rock drill ing.
  • the method comprises: using air mist flushing wherein flushing fluid comprises pressurized air and at least one liquid component; controlling during the drilling feeding of the air mist to a flushing system by means of at least one control unit; detecting penetration rate of the drill ing; and controlling feeding of the at least one liquid component of the air mist in response to the detected pen etration rate and parameters input to the control unit.
  • the method further com prises keeping moisture content of flushed drilling cuttings constant or substantially constant for each examined drill hole despite of varying penetration rate during the drilling of the drill hole.
  • the method further com prises providing the control unit with a selectable target moisture value for moisture content of drilling cuttings flushed away from the drill hole during the drilling.
  • the method further com prises calculating in the control unit volume of solid mat ter of the removed and flushed drilling cuttings per time period in response to data on diameter of a drilling tool and the detected penetration rate; providing the control unit with a target value defining relative amounts between the liquid component of the air mist and the calculated volume of solid matter of the drilling cuttings; and con trolling the feeding of the liquid component in accordance with the target value.
  • the method further com prises providing the control unit with predetermined data sets defining allowed moisture content of the drilling cut tings; and providing, on a user interface, an operator with assistance for selecting allowable parameters for the air mist flushing used in the drilling.
  • the disclosed solution relates to a computer program product for controlling feed ing of air mist flushing in rock drilling.
  • the computer program product comprises program code means configured to execute the steps and procedures disclosed in the previous claims when being run on a computer or a data processing device.
  • Figure 1 is a schematic side view of a rock drilling rig for surface drilling and being provided with a drilling unit and system for flushing drilling cuttings
  • Figure 2 is a schematic diagram showing some fea tures relating to parameters in the disclosed flushing con trol
  • Figure 3 is a schematic view of an apparatus for controlling air mist flushing
  • Figure 4 is a schematic diagram of some control parameters utilized in the disclosed apparatus
  • Figure 5 is a schematic graph illustrating the dis closed control principle
  • Figure 6 is schematic diagram showing possible liq uid components of the air mist.
  • Figure 7 is schematic graph illustrating a flushing map.
  • FIG. 1 shows a rock drilling rig 1 intended for surface drilling.
  • the rock drilling rig 1 comprises a mov able carrier 2 and at least one drilling boom 3 connected to the carrier 2.
  • a drilling unit 4 provided with a feed beam 5 and a rock drilling machine 6 supported on it.
  • the rock drill ing machine 6 may comprise a shank adaptor at a front end of the rock drilling machine 6 for connecting the tool 7.
  • the rock drilling machine 6 may comprise an impact device
  • the rock drilling machine 6 may be moved on the feed beam 5 by means of a feed device 10.
  • a drill bit 11 At a distal end of the drilling tool 7 there is a drill bit 11. Drilling cuttings are flushed from a bottom of a drill hole 12 during drilling by conveying flushing flow trough the rock drilling machine 6 and the drilling tool 7 to a bottom of the drill hole 12.
  • the drilling tool 7 may com prises tubular extension rods or tubes inside which is a flow channel for the flushing media. The drilling cuttings can move out of the drill hole when the flushing media flows through the drill bit 11.
  • the carrier 2 may be provided with a compressor C for feeding pressurized air, and a liquid com ponent source L for feeding one or more liquid components, for producing desired flow and composition for the air mist.
  • a feed unit 13 for connecting the carrier 2 to one or more external sources of compressed air and liquid components.
  • tubes, hoses and other flow channels for conveying the flushing media to the drilling unit 4 are not shown in Figure 1.
  • the air mist flushing system, and its devices and control elements can be controlled by means of one or more control units CU.
  • the control unit CU may be provided with data on penetration rate and moisture content of drilling cuttings. Therefore, penetration rate may be detected by means of one or more sensors SI, and further, there may be one or more moisture sensors S2 in connection with a drill ing cuttings removal system 14.
  • Figure 2 discloses that for controlling feeding of the liquid component, penetration rate 15 and moisture tar get value 16 are input to the control unit.
  • the system may compare sensed real values of moisture content 17 of the drilling cuttings and the moisture target value 16 when generating control signals.
  • the system may calculate removal rate 18 of the removed drilling cuttings per time period during the drilling and may compare the calculated data to the moisture targe value 16.
  • the removal rate can be calculated in response to data on diameter of a drill bit, data on density of the drilled rock material and the sensed penetration rate.
  • the diameter D of the drill bit 11 is shown in Figure 3.
  • Figure 3 discloses features of the disclosed cut tings moisture control system, wherein the purpose is to keep moisture level of the removed drilling cuttings 19 relative constant despite of possible variations in the penetration rate 15 during drilling of one drill hole 12. It is advantageous to implement the disclosed automated flushing process and system in automated drilling processes.
  • An operator 20 may input control parameters to the control unit CU by means of a user interface UI.
  • the user interface UI may comprise one or more graphical elements 21 for as sisting feeding of the parameters.
  • the target value can be illustrated to the operator visually and in numerical values, such as percent age values.
  • the graphical element 21 may show an allowable range inside which the desired values can be selected so that the operator 20 is assisted or forced to make reason able selections in intuitive manner.
  • the flushing may be controlled indirectly, since at first the operator selects the desired moisture percentage for the drilling cuttings and then the system calculates the amount of removed rock material during the drilling, and finally the system cal culates how much water or other liquid component is needed to achieve the set moisture percentage.
  • the operation is easy for the operator since only the target value needs to be input. The system takes care rest of the control and adjusts the flushing to possible external variations.
  • the control unit CU is provided with one or more computer program products 22 or control algorithms which may be executed in a processor of the control unit CU.
  • the control unit CU is provided with required input control parameters and sensing data, and is configured to generate control signals CS for one or more control elements 23 controlling at least the feeding of the liquid component LC, and possibly also controlling feeding of the pressurized air PA.
  • the control element 23 may be a pump or valve, for example.
  • FIG. 4 discloses some control parameters of the drilling and flushing processes.
  • the flushing parameters have been disclosed already above in this document.
  • the drilling parameters may be feed parameters (speed, force), impact parameters (energy, frequency) and rotation parame ters (speed, torque).
  • the drilling parameters are also taken into account when controlling the flushing. Further, used drilling tool may have effect on the flushing process con trol.
  • Figure 5 shows a moisture target level 24 [%], pen etration rate 15 [m/min], sensed flow of liquid component 25 [1/min] and calculated moisture content of drilling cut tings 26 [%] in one combined presentation.
  • the calculated moisture content 26 is calculated on the basis of data on the sensed flow of liquid component 25 and the sensed pen etration rate 15.
  • An arrow 27 shows that the penetration rate 15 decreases due to factors external to the drilling control. The drilled rock may be changed to harder, for example.
  • the penetration rate decreases, the calculated moisture content 26 increases, whereby the flushing control system decreases flow of liquid component, as can be seen when examining the curve 25. Then new balance is found.
  • the flushing system takes into account the changes in the penetration rate 15 and tries to keep the curve 26 close to the set target level 24.
  • Figure 6 discloses that there may be several alter natives for the liquid component.
  • FIG. 7 shows an example of a flushing map 29.
  • Aim of the flushing map 29 is to illustrate flushing parameter values that are allowed. Too low amount of liquid component in the air mist may cause dusting wherefore parameters in side a dusting area D should be avoided. When too high amount of liquid component is used, then there is a risk of clogging. Therefore, operating parameters inside a forbid den clogging area Cl must be avoided. There is also a second clogging area C2, inside which clogging is possible, and that area should also be avoided, if possible. Operating parameters which lead to situations between the areas D and Cl, and marked with an arrow 30, should thereby preferred in the flushing control to achieve the improved problem free air-mist flushing. There may be customized flushing maps for different drilling tool and rock types.
  • the disclosed areas may be defined as data sets for the control unit. Further, the flushing maps and the used flushing parameters may be shown on display device of a rock drilling rig for the operator. This way valuable feed back can be provided for the operator.

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  • Engineering & Computer Science (AREA)
  • Mining & Mineral Resources (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Geology (AREA)
  • General Life Sciences & Earth Sciences (AREA)
  • Geochemistry & Mineralogy (AREA)
  • Physics & Mathematics (AREA)
  • Environmental & Geological Engineering (AREA)
  • Fluid Mechanics (AREA)
  • Mechanical Engineering (AREA)
  • Earth Drilling (AREA)
  • Drilling And Exploitation, And Mining Machines And Methods (AREA)
PCT/EP2022/060503 2021-04-29 2022-04-21 Apparatus and method for controlling flushing in rock drilling Ceased WO2022228981A1 (en)

Priority Applications (6)

Application Number Priority Date Filing Date Title
US18/288,292 US12158047B2 (en) 2021-04-29 2022-04-21 Apparatus and method for controlling flushing in rock drilling
JP2023566564A JP7804696B2 (ja) 2021-04-29 2022-04-21 削岩におけるフラッシングを制御するための装置および方法
CN202280029451.0A CN117178104A (zh) 2021-04-29 2022-04-21 用于控制岩石钻凿中的冲洗的设备和方法
AU2022267680A AU2022267680A1 (en) 2021-04-29 2022-04-21 Apparatus and method for controlling flushing in rock drilling
CA3215319A CA3215319A1 (en) 2021-04-29 2022-04-21 Apparatus and method for controlling flushing in rock drilling
ZA2023/09640A ZA202309640B (en) 2021-04-29 2023-10-16 Apparatus and method for controlling flushing in rock drilling

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
EP21171309.4A EP4083371B1 (en) 2021-04-29 2021-04-29 Apparatus and method for controlling flushing in rock drilling
EP21171309.4 2021-04-29

Publications (1)

Publication Number Publication Date
WO2022228981A1 true WO2022228981A1 (en) 2022-11-03

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PCT/EP2022/060503 Ceased WO2022228981A1 (en) 2021-04-29 2022-04-21 Apparatus and method for controlling flushing in rock drilling

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US (1) US12158047B2 (enExample)
EP (1) EP4083371B1 (enExample)
JP (1) JP7804696B2 (enExample)
CN (1) CN117178104A (enExample)
AU (1) AU2022267680A1 (enExample)
CA (1) CA3215319A1 (enExample)
CL (1) CL2023003167A1 (enExample)
WO (1) WO2022228981A1 (enExample)
ZA (1) ZA202309640B (enExample)

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WO2025009996A1 (en) * 2023-07-06 2025-01-09 Epiroc Rock Drills Aktiebolag A control system for controlling a waterflow for an autonomous drilling machine

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EP4083371C0 (en) 2023-11-15
EP4083371A1 (en) 2022-11-02
CN117178104A (zh) 2023-12-05
CL2023003167A1 (es) 2024-06-21
AU2022267680A1 (en) 2023-11-09
US20240209701A1 (en) 2024-06-27
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