CUTTING WHEEL FOR A CUTTING BORING MACHINE
20240151142 ยท 2024-05-09
Inventors
Cpc classification
E21D9/06
FIXED CONSTRUCTIONS
E21D9/003
FIXED CONSTRUCTIONS
International classification
E21D9/00
FIXED CONSTRUCTIONS
Abstract
In a cutting wheel (103) for a tunnel boring machine, a tool condition monitoring device is provided to monitor the condition of at least one mining tool (112, 115, 118) during removal of a geological structure present, during tunneling, at the cutting wheel (103) in a tunneling direction. At least one support part (121, 124, 127) is installed separately and at a distance from the or a relevant mining tool (112, 115, 118). In the relevant support part (121, 124, 127), a current conductor element is embedded, which is interrupted in terms of its ability to carry current after a wear limit which is characteristic of the condition of the relevant mining tool (112, 115, 118) has been reached. In this way, the condition of mining tools (112, 115, 118) can be reliably determined during a relatively simple maintenance operation or retrofitting with a support part (121, 124, 127).
Claims
1: A cutting wheel for a tunnel boring machine with a number of mining tools (112, 115, 118) for removal of an upcoming geology structure present, during tunneling, at the cutting wheel (103) in a tunneling direction, and with a tool condition monitoring device for monitoring the state of wear of mining tools (112, 115, 118), wherein the tool condition monitoring device has at least one support part (121, 124, 127) assigned to a mining tool (112, 115, 118) and/or a group of mining tools (112, 115, 118), which support part is connected, removably and at a spatial distance from the one or any one of the mining tools (112, 115, 118) or the one or any one of the groups of mining tools (112, 115, 118), to a frame structure (203), and wherein, in the or each support part (121, 124, 127), at least one electrically conductive current conductor element (515) is embedded in such a way that after an abrasion of the one or of any support part (121, 124, 127) that is characteristic of a predetermined state of wear of the one or of any one of the mining tools (112, 115, 118) and/or of the one or any one of the groups of mining tools (112, 115, 118), the or a current conductor element (515) can be interrupted, wherein the or a support part is designed as an intermediate part (121, 124) which is located between a mining tool (112, 115) and/or a group of mining tools (112, 115) and the frame structure (203), and wherein the intermediate part (121, 124) follows a geometrically similar contour of the front side, in the tunneling direction, of a corresponding mining tool (112, 115) or of a corresponding group of mining tools (112, 115), and wherein the front side in the tunneling direction of the intermediate part (121, 124) is recessed with respect to the contour of the respective front side of the corresponding mining tool (112, 115) and/or of the group of mining tools (112, 115) against the tunneling direction, and wherein the intermediate part (121, 124) has, at a distance from the front side, a cable-receiving recess (518), which extends, in the tunneling direction, on the rear side of an outer material wall (521) of the intermediate part (121) and in which the current-conductor element (515) is arranged.
2-14. (canceled)
15. The cutting wheel according claim 1, wherein the current-conductor element (515) is arranged at a distance from the front side of the or a support part (121, 124, 127) which is at the front side in the tunneling direction.
16. The cutting wheel of claim 1, wherein the or a current conductor element is an insulated current conductor cable (515).
17. The cutting wheel of claim 1, wherein the support part (121, 124, 127) is connected to a line guide arrangement of the tool condition monitoring device, which guide is removably connected to the frame structure (203).
18. The cutting wheel according to claim 17, wherein the line guide arrangement is encapsulated against external mechanical influences.
19. The cutting wheel according to claim 19, wherein the line guide arrangement is connected to a line connection box (209) on its side facing away from a support part (121, 124, 127), in which box tubular connections (206) end.
20. The cutting wheel according to claim 19, wherein the line connection box (209) is connected via a line tube (212) to an interconnection box (215), in which a removable plug connection (221) of the tool condition monitoring device is located, and in that the interconnection box (215) is connected to a data transmission unit.
21. A cutting wheel for a tunnel boring machine with a number of mining tools (112, 115, 118) for removal of an upcoming geology structure present, during tunneling, at the cutting wheel (103) in a tunneling direction, and with a tool condition monitoring device for monitoring the state of wear of mining tools (112, 115, 118), wherein the tool condition monitoring device has at least one support part (121, 124, 127) assigned to a mining tool (112, 115, 118) and/or a group of mining tools (112, 115, 118), which support part is connected, removably and at a spatial distance from the one or any one of the mining tools (112, 115, 118) or the one or any one of the groups of mining tools (112, 115, 118), to a frame structure (203), and wherein in the or each support part (121, 124, 127) at least one electrically conductive current conductor element (515) is embedded, and wherein the electrically conductive current conductor element (515) is embedded in such a way that after an abrasion of the one or of any support part (121, 124, 127) that is characteristic of a predetermined state of wear of the one or of any one of the mining tools (112, 115, 118) and/or of the one or any one of the groups of mining tools (112, 115, 118), the or a current conductor element (515) can be interrupted, and in that the or a support part is designed as an elongate support bolt (127) which is arranged at a lateral distance from at least one mining tool (118).
22. The cutting wheel according to claim 21, wherein the front side of the support bolt (127), which is arranged at the front in the tunneling direction, is recessed, with respect to the tunneling direction, relative to the front side of an adjacent mining tool (118) which is at the front in the tunneling direction.
23. The cutting wheel according to claim 21, wherein the support bolt (127) has a blind hole recess (909) which extends in the longitudinal direction and in which the current conductor element (515) is arranged.
24. The cutting wheel according to claim 21, wherein the current conductor element (515) terminates at a distance from the front side of the support bolt (127).
25. The cutting wheel according claim 21, wherein the current-conductor element (515) is arranged at a distance from the front side of the or a support part (121, 124, 127) which is at the front side in the tunneling direction.
26. The cutting wheel of claim 21, wherein the or a current conductor element is an insulated current conductor cable (515).
27. The cutting wheel of claim 21, wherein the support part (121, 124, 127) is connected to a line guide arrangement of the tool condition monitoring device, which guide is removably connected to the frame structure (203).
28. The cutting wheel according to claim 27, wherein the line guide arrangement is encapsulated against external mechanical influences.
29. The cutting wheel according to claim 27, wherein the line guide arrangement is connected to a line connection box (209) on its side facing away from a support part (121, 124, 127), in which box tubular connections (206) end.
30. The cutting wheel according to claim 29, wherein the line connection box (209) is connected via a line tube (212) to an interconnection box (215), in which a removable plug connection (221) of the tool condition monitoring device is located, and in that the interconnection box (215) is connected to a data transmission unit.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] Further advantageous embodiments and advantages of the invention result from the following description of exemplary embodiments with reference to the figures of the drawing.
[0010] In the figures:
[0011]
[0012]
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
DETAILED DESCRIPTION
[0020]
[0021] In the illustrated embodiment, the cutting arms 106 are provided with a number and different types of mining tools for removing existing geology. The types of mining tools used in the cutting wheel 103 according to
[0022] As explained in more detail below, the cutting wheel 103 according to
[0023] In the exemplary embodiment according to
[0024]
[0025] The or each interconnection box 215 is in turn connected via an encapsulated cable harness 224 of the tool condition monitoring device to a transmitting unit 230 of the tool condition monitoring device, which has a transmitting antenna 227, by means of which signals from the tool condition monitoring device can be fed wirelessly via a radio link 233 to a receiving unit 239 of the tool condition monitoring device, which is provided with a receiving antenna 236. The receiving unit 239 is in turn connected wirelessly or by cable to a data processing unit 242 of the tool condition monitoring device, with which the signals from the tool condition monitoring device and thus the wear condition of the monitored mining tools 112, 115, 118 can be monitored.
[0026]
[0027] The line tube 212 explained with reference to
[0028] Furthermore,
[0029]
[0030]
[0031] It can be seen from
[0032] The pairs of circuit cables 515 in the pipe connections 206 are connected to a voltage source (not shown in
[0033] This wear limit value can be determined relatively easily based on the installation position of the intermediate plate 121 in relation to the raker 112 and on the position of the cable groove 518 at its distance from the front side of the intermediate plate 121, which is normally positioned at the front in the tunneling direction. Furthermore, when the lower wear limit value of the rakers 112 is reached, which requires the replacement of the rakers 112, the worn and thus unusable intermediate plate 121 of a raker monitoring module can be replaced, as a structural unit together with the worn rakers 112 with a new raker monitoring module according to
[0034]
[0035] The base portion 606 extends continuously in the longitudinal direction of the intermediate bar 124 with a rectangular cross-section, while the abrasion portion 609 follows a contour that is set back against the tunneling direction compared to the scraper knives 115 attached to the intermediate bar 124 but which is geometrically similar, so that the abrasion portion 609 has a comb-like configuration in the longitudinal direction with projecting regions 612 formed in the region of the scraper knives 115 and is staggered in the tunneling direction with respect to recessed regions 615 set back in the tunneling direction. The recessed regions 615 are advantageously connected with the frame structure 203 at the front side.
[0036] For mechanical stabilization of the abrasion portions 609, abutment stands 618 are attached to the frame structure 203, which lie opposite the scraper knives 115, against which the undersides of the abrasion portions 609 facing away from the scraper knives 115 abut, and which slightly protrude with their front side arranged at the front in the tunneling direction opposite the corresponding front side of the abrasion portions 609 for reliable protection.
[0037]
[0038]
[0039] By arranging the abrasion portions 609 of the intermediate bars 124 in a recessed way with respect to the front side of a scraper knife 115, which is at the front in the forward direction, the abrasion portions 609 remain protected by the protruding regions of the scraper knives 115 and by the abutment bases 618 in both directions of rotation of the cutting wheel 103 until after a scraper knife 115 has fallen under a predetermined wear limit the corresponding abrasion portion 609 is subject to pronounced wear and finally the circuit cable 515 is interrupted in a certain region. As stated in connection with the explanations above, the interruption of the corresponding electrical circuit can be detected.
[0040] In this case, too, due to appropriate dimensioning of the extension of the abrasion portions 609, in particular of their extension in the tunneling direction and of the position of the cable groove 518, an adaptation to a predetermined wear limit for mining tools such as the scraper knives 115 can be set. The intermediate bar 124 can also be replaced relatively easily with the scraper knives 115 in case of maintenance, or groups of scraper knives 115 can be retrofitted by installing intermediate bars 124 to monitor their state of wear.
[0041]
[0042] The support bolt 127 has a blind hole-like blind hole recess 909 that is closed at one end and is open in the region of a foot region of the support bolt 127 that is fixed by the foot bracket 906 and ends at an abrasion distance from the front side of the support bolt 127, which front side is at the front in the tunneling direction, when used as intended.
[0043] An electrically conductive circuit cable 515 is arranged, as an embodiment of a circuit element, in the blind hole recess 909, which extends into the front region of the blind hole recess 909 in the tunneling direction and exits in the opposite foot region of the support bolt 127 via a cable gland 912 and extends in a cable duct 915 of the tool condition monitoring device, which is attached to the rear side of the frame structure 203 of the cutting arm 106 in the tunneling direction.
[0044] From
[0045] What have been described above are examples of the present invention. It is, of course, not possible to describe every conceivable combination of components or methodologies for purposes of describing the present invention, but one of ordinary skill in the art will recognize that many further combinations and permutations of the present invention are possible. Accordingly, the present invention is intended to embrace all such alterations, modifications and variations that fall within the spirit and scope of the appended claims.