The present invention relates to a shield tunneling machine that excavates a tunnel or other similar passage while crushing obstacles encountered during excavation.
There has heretofore been known a shield tunneling machine having water jet spray nozzles provided on a cutter head that is provided at the forward end of a shield body in the excavation direction and rotatable relative to the shield body to excavate a tunnel or the like while crushing obstacles encountered during excavation [see Japanese Patent Application Unexamined Publication (KOKAI) No. Hei 10-280880].
However, the conventional shield tunneling machine still has a problem to be solved. That is, because the spray nozzles are immovable, it is impossible to properly control the spray nozzles according to the size and configuration of each particular obstacle encountered during excavation, and hence difficult to break it into easily removable pieces with high cutting quality.
In view of the above-described circumstances, an object of the present invention is to provide a shield tunneling machine capable of breaking obstacles effectively with high cutting quality by properly controlling movable abrasive jet spray nozzles according to the size and configuration of each particular obstacle.
To attain the above-described object, the present invention provides a shield tunneling machine including a shield body and a cutter head provided at the forward end of the shield body in the excavation direction. The cutter head is rotatable relative to the shield body. An abrasive jet spray nozzle for spraying abrasive jet water is movably provided on the cutter head.
Preferably, the abrasive jet spray nozzle is radially movable and thus capable of cutting an obstacle encountered during excavation into a round shape and further cutting it radially.
Preferably, the abrasive jet spray nozzle is oscillatable to allow the spray direction to be changed.
Preferably, a slurry is mixed in the abrasive jet water sprayed from the abrasive jet spray nozzle.
Preferably, a fixed spray nozzle for spraying high-pressure jet water is provided on the cutter head, and the obstacle is searched for on the basis of reflected sound of high-pressure jet water sprayed from the fixed spray nozzle.
The fixed spray nozzle may be used for cleaning cutter bits provided on the cutter head.
Preferably, cutter bits are provided in proximity to the abrasive jet spray nozzle to protect it.
Preferably, a drive mechanism for the abrasive jet spray nozzle is a hydraulic cylinder drive system comprising a cylinder and a piston rod.
The drive mechanism for the abrasive jet spray nozzle may be a threaded rod drive system comprising a drive motor and a threaded rod.
The drive mechanism for the abrasive jet spray nozzle may be a rack-and-pinion drive system comprising a drive motor, a rack and a pinion.
Preferably, at least two radially spaced abrasive jet spray nozzles are provided as the above-described abrasive jet spray nozzle. Each abrasive jet spray nozzle is supported by a nozzle head and radially movable.
Preferably, the nozzle head is provided in a radially extending enclosure. The enclosure is always supplied with cleaning water. The nozzle head is immersed in the cleaning water and radially movable.
Preferably, each abrasive jet spray nozzle is swivelable.
Preferably, the swivelable abrasive jet spray nozzle is decentered with respect to the swivel axis.
In the shield tunneling machine according to the present invention, the abrasive jet spray nozzles are movable relative to the cutter head. Therefore, obstacles encountered during excavation can be broken effectively with high cutting quality by properly controlling the movable abrasive jet spray nozzles according to the configuration and size of each particular obstacle.
Thus, according to the present invention, abrasive jet spray nozzles are provided on the cutter head. While the cutter head is being rotated, abrasive jet water is sprayed from the nozzles to cut an obstacle into ring shapes. Then, while the abrasive jet spray nozzles are being moved radially, abrasive jet water is sprayed therefrom, thereby breaking a large obstacle into fan-shaped pieces.
The above and other objects, features and advantages of the present invention will become more apparent from the following description of the preferred embodiments thereof, taken in conjunction with the accompanying drawings.
Embodiments of the shield tunneling machine according to the present invention will be described below in detail with reference to the accompanying drawings.
The mounting plates 4 and 5 intersect each other at the rotating shaft 3. The mounting plates 4 and 5 are provided with center bits 6, cutter bits 7, leading bits 8 and trimming bits 9 appropriately.
In this embodiment, the mounting plate 4 is provided with nozzle heads 10 on both lateral sides thereof. Each nozzle head 10 has abrasive jet spray nozzles 10a. Cutter bits 11 are provided at both sides of each abrasive jet spray nozzle 10a to protect it.
The nozzle head 10 is driven by a drive mechanism (drive system) 10A as shown in parts (a) and (b) of
The piston rod 12 is formed with a passage 12a for supplying ultra-high pressure water from the rotating shaft 3. The passage 12a communicates with the abrasive jet spray nozzles 10a through a supply pipe 12b.
The piston rod 12 has a space 12c for allowing the supply pipe 12b to advance and retract in the piston rod 12.
As shown in
With the abrasive jet spray nozzles 10a, because a slurry is mixed into high-pressure jet water, it is possible to cut and break the obstacle 18 efficiently while minimizing the wear of the abrasive jet spray nozzles 10a.
The drive mechanism 10A for the abrasive jet spray nozzles 10a according to the present invention is not limited to that shown in
(First Modification)
For example, as shown in
(Second Modification)
For example, as shown in parts (a) and (b) of
(Third Modification)
It is desirable from the viewpoint of protecting the drive mechanism 10A from sludge and other contamination that the nozzle head 10 according to the present invention should be arranged as shown in
With the above-described arrangement, it is possible to prevent adhesion of contamination to the drive mechanism 10A. Hence, it is possible to allow the nozzle head 10 to reciprocate smoothly and to minimize the incidence of failure. It should be noted that in
(Fourth Modification)
In the foregoing embodiment, the nozzle heads are provided on both lateral sides of the mounting plate 4 as shown schematically in (a) of
Further, the arrangement may be such that, as shown in (a) to (c) of
The fixed spray nozzle 31 may be provided on the mounting plate 5, which intersects the mounting plate 4 perpendicularly, as shown in (d) of
Although in this embodiment the fixed spray nozzle 31 is used to search for an obstacle 18, it may be used for cleaning the cutter bits 7.
(Fifth Modification)
Although in the foregoing embodiment the nozzle heads 10 are radially movable, the arrangement may be as follows. As shown in
The shield tunneling machine according to the present invention is usable in construction work of tunnels, underground passages, trenches for piping of water supply and sewerage systems, manholes, and so forth.
It should be noted that the present invention is not limited to the foregoing embodiments but can be modified in a variety of ways.
Number | Date | Country | Kind |
---|---|---|---|
329441/2003 | Sep 2003 | JP | national |