DISPLACEMENT MEASURING DEVICE AND SPEED MEASURING METHOD OF DRILLING TRACTION ROBOT

20220307367 · 2022-09-29

    Inventors

    Cpc classification

    International classification

    Abstract

    The invention relates to a displacement measuring device and a velocity measuring method of a drilling traction robot. The measuring device comprises a support bar, a stopper, a hydraulic, a piston of the hydraulic, a displacement sensor, a seal baffle, a waveguide, a magnetic ring, and a magnetic ring support plate. The invention can realize instant measurement and instant feedback of the velocity of the drilling traction robot and can provide data reference for automatic drilling of the drilling traction robot.

    Claims

    1. A displacement measuring device of a drilling traction robot, comprising a support bar (1), a stopper (2), a hydraulic A (3), a hydraulic B (16), a piston (4) of the hydraulic A, a piston (10) of the hydraulic B, a displacement sensor A (5), a displacement sensor B (11), a seal baffle A (6), a seal baffle B (12), a waveguide A (7), a waveguide B (13), as magnetic ring A (9), a magnetic ring B (15), a magnetic ring support plate A (8), a magnetic ring support plate B (14 ), a computer (17) and a drilling traction robot (18), wherein: the by A (3), the hydraulic B (16), the piston (4) of the hydraulic A and the piston (10) of the hydraulic B are coaxially mounted on the support bar (1); the piston (4) of the hydraulic A is mounted in a cavity a (19) between the hydraulic A (3) and the support bar (1); and the piston (10) of the hydraulic B is mounted in a cavity b (20) between the hydraulic B (16) and the support bar (1), where n the piston (10) of the hydraulic B is fixedly connected with the support bar (1); the magnetic ring A (9) and the magnetic ring support plate A (8) are fixedly connected through a screw, wherein the magnetic ring support plate A (8) is fixedly connected with the hydraulic A (3) through a screw: the seal baffle A (6) is connected with the displacement sensor A (5) through a thread, wherein the seal baffle A (6) and the piston (4) of the hydraulic A are fixed through a glue stick: and the stopper (2) is mounted in a thread mode at a notion limiting position of the piston (4) of the hydraulic A to realize as displacement measuring function between the hydraulic A (3) and the piston (4) the hydraulic A; and the magnetic ring B (15) and the magnetic ring support plate B (14) are fixedly connected through a screw, wherein the magnetic ring support plate B (14) is fixedly connected with the hydraulic B (16) through a screw, and the seal baffle B(12) is connected with the displacement sensor B (11) through a thread wherein the seal baffle B (12) and the piston (10) of the hydraulic B are fixed through a glue stick to realize a travelling displacement measuring function of the robot between the hydraulic B (16) and the piston (10) of the hydraulic B.

    2. The displacement measuring device of the drilling traction robot according to claim 1, wherein two to four mounting groove (301) which are uniformly distributed in a circumferential direction are Lu-ranged on inner cylinder walls of the hydraulic A. (3) and the hydraulic B (16).

    3. The displacement measuring device of the drilling traction robot according to claim 1, wherein a countersunk hole (803) is milled on the magnetic ring, support plate A (8) and the magnetic ring support plate B (14), a through hole (801) is arranged at a center of the countersunk hole (803), and two to four threaded holes (802) are uniformly and circumferentially arranged along an outside radial direction of the through hole (801).

    4. The displacement measuring device of the drilling traction robot according to claim 1, wherein the seal baffle A (6) and the seal baffle B (12) are both provided with a seal threaded hole (601) at a center, and two to four axial symmetrical through holes (602) are arranged in a radial direction.

    5. The displacement measuring, device of the drilling traction robot according to claim 1, wherein the piston (4) of the hydraulic A and the piston (10) of the hydraulic B are both provided with two to four circular countersunk holes (401) which are axially symmetrical with a through hole (404) in an external structure, a center of the circular countersunk hole (401) is provided with a through hole (402), and two to four threaded holes (403) which are uniformly distributed are arranged in a radial direction, and an inside of the piston (10) of the hydraulic B is provided with an arc-shaped groove (1001); and an axial long grow is arranged in the piston (4) of the hydraulic A.

    6. The displacement measuring device of the drilling traction robot according to claim 1, wherein a through hole (101) is axially arranged in the support bar (1), and a through hole (103) and a threaded hole (102) are radially arranged in the support bar (1).

    7. The displacement measuring device of the drilling traction robot according to claim 1, wherein the displacement sensor A (5) and the displacement sensor B (11) are both magnetic displacement sensors the displacement sensor A (5) is connected with the seal baffle A (6) through a thread so as to be fixed on the piston (4) of the hydraulic A, and the magnetic ring A (9) of the displacement sensor A (5) is fixed on the magnetic ring support plate A (8) through a glue stick or a screw, the displacement sensor B (11) is fixed on the seal baffle B (12) through a thread so as to be fixed on the hydraulic piston (10) of the hydraulic B, and the magnetic ring B (15) of the displacement sensor B (11) is fixed on the magnetic ring support plate B (14) through a glue stick or a screw.

    8. A velocity measuring method of a drilling traction robot, comprising the following steps of: S1: assembling a drilling traction robot (18) on the ground and testing, and calibrating, by a computer (17), data collected by a sensor A (5) and a sensor B (11) to zero S2: inputting a bit pressure FP in the computer (17); S3: putting the drilling traction robot (18) into a well and starting drilling when a pressure detector D detects that the drilling traction robot (18) contacts a bottom of the well: 54: starting to record, by the computer (17), data (L.sub.A1, L.sub.A2, L.sub.A3) of the displacement sensor A (5) and data (L.sub.B1, L.sub.B1, L.sub.B3) of the displacement sensor B (11): S5: filtering, by the computer (17), the data (L.sub.A1, L.sub.A2, L.sub.A3) of the displacement sensor A (5) and the data (L.sub.B1, L.sub.B2, L.sub.B3) of the displacement sensor B (11); S6: processing aril deriving, by the computer (17), the filtered data (L.sub.A1, L.sub.A2, L.sub.A3) of the displacement sensor A (5) and the filtered data (L.sub.B1, L.sub.B2, L.sub.B3) of the displacement sensor B (11) to obtain velocitys V.sub.tA and V.sub.tB; and S7: after the drilling is completed, tripping out and extracting the velocity and displacement data from the computer (17).

    9. The velocity measuring method of the drilling traction robot according to claim 8, wherein the collecting process of the pressure detector D comprises the following steps of: S31: mounting the pressure detector D at a rear part of a drill bit (21), or a part fixedly connected with the drill bit (21), and S32: when the pressure data collected by the pressure detector D is continuously higher than a certain set value, deeming that the drill bit (21) reaches the bottom of the well and starting drilling, which means to transmit a signal to the computer (17).

    10. The velocity measuring method of the drilling traction robot according to claim 8, wherein the displacement sensor A (5), and the displacement sensor B comprise the following technical features: the displacement sensor A) and the displacement sensor B (11) are respectively provided with three positions which are axially symmetrical with a through hole (404), when a hydraulic A (3) begins to move the hydraulic A (3) is fixedly connected with a magnetic ring A (9) to drive the magnetic ring A (9) to move along waveguide A (7), so that the displacement sensor A (5) measures movement displacement data (L.sub.A1, L.sub.A2, L.sub.A3) of a piston (4) at art A part of the drilling traction robot; and when a hydraulic B (16) begins to move, the hydraulic B (16) is fixedly connected with a magnetic ring B (15) to drive the magnetic ring B (15) to move along a waveguide B (13), so that the displacement sensor B (11) measures displacement data (B1, B2, B3) of a piston (10) at a B part of the drilling traction robot.

    11. The velocity measuring method of the drilling traction robot according to claim 8, comprising: S61: sorting, by the computer (17) the three data (L.sub.A1, L.sub.A2, L.sub.A3) inputted from the displacement sensor A (5), and inputting the sorting result into a formula L.sub.t=(L.sub.1+l.sub.2+l.sub.3)/6 to obtain displacement data L.sub.tA, wherein a data processing method of the sensor B is the same as that of the displacement sensor A (5); S62: performing, by the computer (17), continuous function interpolation processing on the processed displacement data L.sub.tA and L.sub.tB an interpolation method; S63: deriving, by the computer (17), V t = Δ L t Δ t on the processed data L.sub.tA of the displacement sensor A (5) to obtain the movement velocity V.sub.tA of a piston (4) at a part A of the drilling traction robot; and S64: deriving, by the computer (17) V t = Δ L t Δ t on the processed data L.sub.tB of the displacement sensor B (11) to obtain the movement velocity V.sub.tB of a piston (10) at a B part of the drilling traction robot.

    Description

    BRIEF DESCRIPTION OF THE DRAWINGS

    [0040] FIG. 1 is a structural diagram of a displacement measuring system of a drilling traction robot;

    [0041] FIG. 2 is a structural diagram of a gripper translation hydraulic cylinder, which is a detailed structure of part A in FIG. 1;

    [0042] FIG. 3 is a structural diagram of a robot traveling hydraulic cylinder, which is a detailed structure of part B in FIG. 1;

    [0043] FIG. 4 is a schematic diagram of a cylinder wall mounting structure of the hydraulic cylinders in FIG. 1 and FIG. 2;

    [0044] FIG. 5 is a schematic diagram of magnetic ring support plates in FIG. 1 and FIG. 2;

    [0045] FIG. 6 is a schematic diagram of seal baffles in FIG. 1 and FIG. 2;

    [0046] FIG. 7 is a schematic diagram of pistons in FIG. 1 and FIG. 2;

    [0047] FIG. 8 is schematic diagram of a mounting position of the drilling traction robot;

    [0048] FIG. 9 is a flow chart of velocity measurement of the drilling traction robot;

    [0049] FIG. 10 is a detailed flow chart for calculating a movement velocity V.sub.tA of a piston (4) and a velocity V.sub.tB of a piston (10) in FIG. 7; and

    [0050] FIG. 11 is a detailed flow chart of a sorting program of a computer (17).

    [0051] In the drawings: 1 refers to support bar, 2 refers to stopper, 3 refers to hydraulic A, 4 refers to position of hydraulic A, 5 refers to displacement sensor A, 6 refers to seal baffle A, 7 refers to waveguide A, 8 refers to magnetic ring support plate A, 9 refers to magnetic ring A, 10 refers to piston of hydraulic B, 11 refers to displacement sensor B, 12 refer to seal baffle B, 13 refers to waveguide B, 14 refers to magnetic ring support plate B, 1 refers to magnetic ring B, 1 refers to hydraulic B, 17 refers to computer, 18 refers to drilling traction robot, 19 refers to cavity a, 20 refers to cavity b, 21 refers to drill bit, 101 refers to through hole 1001 refers to arc-shaped groove, 102 refers to threaded hole, 103 refers to through hole, 301 refers to mounting groove, 401 refers to countersunk hole, 402 refers to mounting hole, 403 refers to threaded hole, 404 refers to through hole, 601 refers to through hole, 602 refers to mounting hole 801 refers to through hole, 802 refers to mounting hole, and 803 refers to countersunk hole.

    DETAILED DESCRIPTION

    [0052] The present invention will be further described in detail hereinafter with reference to the drawings, but the protection scope of the present invention is not limited to the following descriptions.

    [0053] The object of the present invention is to provide displacement measuring device of a drilling traction robot to make up a gap in the prior art. In order to make the above objects, features and advantages of the present invention be understood more clearly, the present invention will be described in further detail below with reference to the drawings and detailed description.

    [0054] As shown in FIGS. 1 to 7 after a drilling traction robot is completely mounted on the ground, the drilling traction robot is descended into a well and drill. After drilling, displacement data is extracted from the drilling traction robot (18).

    [0055] The specific steps of mounting the displacement sensors pare as follows: a magnetic ring B (15) is mounted on a mounting countersunk hole (803) of a magnetic ring support plate B (14) by a screw, a magnetic ring A (9) is mounted on a mounting countersunk hole (80) of a magnetic ring support plate A (8) by a screw, and then a seal baffle A (6) is threaded on a waveguide A (7), and mounted on a displacement sensor A (5) through a mounting screw, a seal baffle B (12) is threaded on a waveguide B (13) and mounted on a displacement sensor B (11) through a mounting thread, data lines of the displacement sensor A (5) and the displacement sensor B (11) are connected on a computer (17) of the drilling, traction rob(a (18) through a through hole (101), and then the waveguide A (7) is penetrated into a through hole (801) of the magnetic ring support plate A (8), and the waveguide B (13) is penetrated into a through hole (801) of the magnetic ring support plate B (14), then the seal baffle A (6) is mounted in a mounting countersunk hole (401) of a piston (4), the magnetic ring support plate B (14) is mounted in a mounting countersunk hole (401) of a piston (10) through a glue stick, and finally, the magnetic ring support plate B (14) is mounted in a mounting groove (301) of a hydraulic B (16) through a screw, and the magnetic ring support plate A (8) is mounted in a mounting groove (301) of a hydraulic A (3) through a screw.

    [0056] A velocity measuring method of a drilling traction robot a cording to the present invention is approximately as follows:

    [0057] step 1: assembling a drilling traction robot (18) on the ground and testing, and calibrating, by a compute (17), data collected by a sensor A (5) am d a sensor B (11) to zero;

    [0058] step 2: inputting a bit pressure FP in the computer (17);

    [0059] step 3: putting the drilling traction robot into a well and starting drilling; and

    [0060] step 4: after the drilling is completed, tripping, out and extracting the velocity and displacement data from the computer (17).

    [0061] The pressure detector D should be mounted at a drill bit or a position fixedly connected with the drill bit, to ensure that the pressure detector can detect that the drill bit reaches a bottom of the well: when the data collected by the pressure detector D is continuously higher than a certain set value, it is deemed that the drill bit reaches the bottom of the well and drilling is started, which means to transmit a signal to the computer (17).

    [0062] The specific principle is as follows: when the hydraulic A (3) begins to move, the hydraulic A (3) is fixedly connected with the magnetic ring A (9) to drive the magnetic ring A (9) to move along the waveguide A (7) with the moving of the hydraulic. A (3), so that the displacement sensor A (5) measures displacement of the magnetic ring A (9), thus obtaining, the relative movement displacement data of the piston (4) and the hydraulic A(3) at an A part of the drilling traction robot.

    [0063] Same as the method of obtaining the relative movement displacement data of the piston (4) and the hydraulic A (3) at the A part of the drilling traction robot, a method of measuring relative movement displacement data of the piston (10) and the hydraulic B (16) at a B part of the drilling traction robot is as follows: when the hydraulic B (16) begins to move, the hydraulic. B (16) is fixedly connected with the magnetic ring B (15) to drive the magnetic ring B (15) to move along the waveguide B (13) with the moving of the hydraulic B (16), so that the displacement sensor B (11) measures displacement of the magnetic ring B (15), thus obtaining the relative movement displacement data of the piston (10) and the hydraulic B (16) at the B part of the drilling traction robot.

    [0064] FIGS. 7 and 8 show a specific flow for processing the data of the displacement sensor A (5) and the displacement sensor B (11) by the computer (17).