JP5328632B2 - Underground soil collection method - Google Patents

Underground soil collection method Download PDF

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JP5328632B2
JP5328632B2 JP2009288263A JP2009288263A JP5328632B2 JP 5328632 B2 JP5328632 B2 JP 5328632B2 JP 2009288263 A JP2009288263 A JP 2009288263A JP 2009288263 A JP2009288263 A JP 2009288263A JP 5328632 B2 JP5328632 B2 JP 5328632B2
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soil
excavation
intake hole
pipe
opening
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JP2011127370A (en
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伸行 門倉
則雄 渡邊
静郎 佐々木
修三 土路生
順也 村上
伸一 宮本
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Kumagai Gumi Co Ltd
YBM Co Ltd
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YBM Co Ltd
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Description

本発明は、自由曲線掘削機を用いて地中の土壌採取目標位置の土壌を採取する方法に関する。   The present invention relates to a method for collecting soil at a soil sampling target position in the ground using a free curve excavator.

自由曲線掘削機を用いて土壌採取目標位置まで掘削し、掘削ヘッド内に土壌採取目標位置の土壌を取り込んで採取する方法(例えば、特許文献1参照)や、掘削ヘッドの前方の土壌にサンプリング管を貫入して土壌採取目標位置の土壌をサンプリング管内に取り込んで採取する方法(例えば、特許文献2参照)が知られている。   A method of excavating to a soil sampling target position using a free curve excavator and taking the soil at the soil sampling target position into the excavation head (see, for example, Patent Document 1), or a sampling pipe in the soil in front of the excavation head There is known a method (see, for example, Patent Document 2) in which the soil at the target position for soil collection is taken in and collected in a sampling tube.

特開2001−64957号公報JP 2001-64957 A 特開2007−270608号公報JP 2007-270608 A

しかしながら、特許文献1では、掘削ヘッド内において水圧によりピストンを掘削ヘッドの先端側に押圧するとともに、掘削ヘッドの先端から掘削ヘッドの前方に水を噴射しながら掘削し、土壌採取目標位置に到達した場合に、水圧を解除して、水により泥水化した土壌を掘削ヘッドの先端から掘削ヘッド内に取り込む構成であり、掘削ヘッド内に取り込まれる土壌は水分含有量の多い泥水状となってしまうので、土壌成分の調査を正確に行えない場合がある。特許文献2では、地中において掘削ヘッドの先端から前方に真っ直ぐな管を突出させるので、曲線掘削経路で土壌を採取できない。また、特許文献1;2のいずれにおいても、採取した土壌を掘削ヘッド内やサンプリング管内から取り出しにくいという課題があった。
本発明は、上記課題に鑑みてなされたもので、自由曲線掘削機による曲線掘削経路でも土壌を採取できて、かつ、土壌成分の調査を正確に行え、さらに、採取した土壌を容易に取り出せる採取方法を提供する。
However, in Patent Document 1, the piston is pushed toward the tip side of the excavation head by water pressure in the excavation head, and excavated while jetting water from the tip of the excavation head to the front of the excavation head to reach the soil collection target position. In this case, the water pressure is released and the soil muddy with water is taken into the excavation head from the tip of the excavation head, and the soil taken into the excavation head becomes muddy water with a high water content. In some cases, it is not possible to accurately survey soil components. In patent document 2, since a straight pipe | tube protrudes ahead from the front-end | tip of an excavation head in the ground, soil cannot be extract | collected by a curved excavation path | route. In both Patent Documents 1 and 2, there is a problem that it is difficult to take out the collected soil from the excavation head or the sampling pipe.
The present invention has been made in view of the above problems, and can collect soil even in a curved excavation route by a free-curve excavator, and can accurately investigate the soil component, and can easily extract the collected soil. Provide a method.

本発明に係る地中土壌採取方法は、自由曲線掘削機のロッド部の先端に設けられた掘削ビットにより、掘削始点から土壌採取目標位置を経由して地中を掘り抜いて掘削ビットを地上に出した後、ロッド部の先端より掘削ビットを取り外して、ロッド部の先端に土壌採取管装置を取り付け、地中を掘り抜いた掘削孔内経由で土壌採取管装置を土壌採取目標位置まで戻して土壌採取管装置の内部に土壌採取目標位置の土壌を取り込んでから、当該土壌採取管装置を、掘削孔の掘削始点まで引き戻して地上に出すか、あるいは、掘り抜いた掘削孔の掘削終点まで押し込んで地上に出すことにより、土壌採取管装置の内部に取り込まれている土壌を取り出すようにした地中土壌採取方法であって、土壌採取管装置は、周面に開口部を有しロッド部を介した回転駆動力を受けて中心軸線を回転中心として回転可能な外管と、外管の中心軸線と同軸に外管内に設置されて周面に土壌取込孔を有した内管と、内管の土壌取込孔における内管の中心軸線に沿った方向に延長する孔縁より外管の開口部を経由して外管の外周面より外側に突出するように設けられた土壌取込孔塞体と、外管の両端開口を塞ぐ蓋体とを備え、地中で外管を一方方向に回転させた場合には、土壌取込孔が開口部を介して地中と連通し、地中で外管を他方方向に回転させた場合には、外管の開口部における外管の中心軸線に沿った方向に延長する開口縁と土壌取込孔塞体とが接触して土壌取込孔が塞がれるように構成されたので、地上から真下に掘削することのできない現場において土壌を採取することができ、土壌採取管装置の内管内に採取された土壌を、土壌取込孔塞体を操作して内管を回転させることにより、容易に取り出せる。また、自由曲線掘削機による曲線掘削経路でも土壌を採取できて、かつ、土壌成分の調査を正確に行える。
本発明に係る地中土壌採取方法は、自由曲線掘削機のロッド部の先端に設けられた掘削ビットにより、掘削始点から土壌採取目標位置まで掘削してから掘削ビットを掘削始点に戻して地上に出した後、ロッド部の先端より掘削ビットを取り外して、ロッド部の先端に土壌採取管装置を取り付けるとともに、土壌採取管装置の先端に掘削ビットを取り付け、掘削ビット及び土壌採取管装置を掘削孔内経由で土壌採取目標位置まで戻して土壌採取管装置の内部に土壌採取目標位置の土壌を取り込んでから土壌採取管装置を掘削始点まで戻して土壌採取管装置の内部の土壌を取り出す地中土壌採取方法において、上記土壌採取管装置を用いることで、地上から真下に掘削することのできない現場や、地中を掘り抜くことができない現場においても土壌を採取することができ、かつ、上述した効果が得られる。
また、土壌採取管装置は、土壌取込孔塞体と外管の開口部の開口縁とが接触して土壌取込孔が塞がれた状態を維持するロック部を備えた構成とすれば、土壌採取管装置の移動中に土壌取込孔が開いてしまうようなことを防止できる。よって、土壌採取目標位置以外の地中の土壌を内管内に取り込んでしまったり、土壌採取目標位置において内管内に取り込んだ汚染土壌を土壌採取目標位置以外の地中に撒き散らして汚染を拡大させてしまうようなことを防止できる。
The underground soil sampling method according to the present invention is to excavate the ground from the starting point of the excavation through the soil sampling target position using the excavation bit provided at the tip of the rod portion of the free-curved excavator to bring the excavation bit to the ground. After removal, remove the excavation bit from the tip of the rod part, attach a soil sampling pipe device to the tip of the rod part, and return the soil sampling pipe device to the soil sampling target position via the inside of the excavation hole dug out of the ground After taking the soil at the soil collection target position inside the soil sampling pipe device, pull the soil sampling pipe device back to the drilling start point of the excavation hole and put it on the ground, or push it to the excavation end point of the excavated drilling hole The soil sampling pipe device is configured to take out the soil taken into the soil sampling pipe device by taking it out to the ground, and the soil sampling pipe device has an opening on the peripheral surface and a rod portion. Through An outer tube that can rotate around the central axis by receiving the rotational driving force, an inner tube that is installed in the outer tube coaxially with the central axis of the outer tube, and has a soil intake hole on the peripheral surface, and an inner tube The soil intake hole clogging provided to protrude outward from the outer peripheral surface of the outer pipe through the opening of the outer pipe from the hole edge extending in the direction along the central axis of the inner pipe in the soil intake hole Body and a lid that closes the openings at both ends of the outer pipe, and when the outer pipe is rotated in one direction in the ground, the soil intake hole communicates with the ground through the opening, When the outer pipe is rotated in the other direction, the opening edge extending in the direction along the central axis of the outer pipe at the opening of the outer pipe comes into contact with the soil intake hole and the soil intake hole Since it is configured to be closed, soil can be collected at a site that cannot be excavated directly from the ground. Soil taken into the inner tube of a, by rotating the inner tube by operating the soil intake hole 塞体 easily taken out. In addition, soil can be collected even on a curved excavation route by a free-curve excavator, and the soil component can be surveyed accurately.
The ground soil sampling method according to the present invention is to excavate from the excavation start point to the soil sampling target position by using the excavation bit provided at the tip of the rod portion of the free curve excavator, and then return the excavation bit to the excavation start point and put it on the ground. After removing the excavation bit from the tip of the rod part, attach the soil sampling pipe device to the tip of the rod part, attach the excavation bit to the tip of the soil sampling pipe apparatus, and drill the excavation bit and soil sampling pipe device into the excavation hole Return to the soil sampling target position via the inside, take the soil at the soil sampling target position into the soil sampling pipe device, return the soil sampling pipe device to the excavation start point, and take out the soil inside the soil sampling pipe device In the sampling method, by using the soil sampling pipe device, soil can be removed even at sites that cannot be excavated directly from the ground or sites that cannot be excavated underground. It can be collected, and the above-mentioned effects can be obtained.
In addition, if the soil sampling tube device is configured to include a lock portion that maintains a state where the soil intake hole is closed by contact of the soil intake hole blockage body and the opening edge of the opening of the outer tube. It is possible to prevent the soil intake hole from being opened during the movement of the soil sampling tube device. Therefore, the soil in the ground other than the soil collection target position is taken into the inner pipe, or the contaminated soil taken in the inner pipe at the soil collection target position is scattered in the ground other than the soil collection target position to expand the pollution. Can be prevented.

地中土壌採取方法を示す図(実施形態1)。The figure which shows the underground soil collection method (embodiment 1). 土壌採取管装置を示す斜視図(実施形態1)。A perspective view showing a soil sampling pipe device (embodiment 1). 土壌採取管装置の分解斜視図(実施形態1)。1 is an exploded perspective view of a soil sampling tube device (Embodiment 1). FIG. 土壌採取管装置の中心軸線に沿った縦断面図(実施形態1)。The longitudinal cross-sectional view along the center axis line of the soil sampling pipe apparatus (Embodiment 1). 地中土壌採取方法を示す図(実施形態2)。The figure which shows the underground soil collection method (embodiment 2). 土壌採取管装置の中心軸線に沿った縦断面図(実施形態2)。The longitudinal cross-sectional view along the center axis line of the soil sampling pipe device (Embodiment 2). 土壌採取管装置の分解斜視図(実施形態3)。An exploded perspective view of a soil sampling tube device (Embodiment 3). 土壌採取管装置の中心軸線に沿った縦断面図(実施形態3)。The longitudinal cross-sectional view along the center axis line of the soil sampling pipe device (Embodiment 3). 土壌採取管装置の分解斜視図(実施形態4)。An exploded perspective view of a soil sampling pipe device (embodiment 4).

実施形態1
図1を参照し、土壌採取方法に使用する土壌採取装置1を説明する。土壌採取装置1は、自由曲線掘削機2と土壌採取管装置3とにより構成される。
Embodiment 1
With reference to FIG. 1, the soil collection apparatus 1 used for the soil collection method is demonstrated. The soil collection device 1 is composed of a free curve excavator 2 and a soil collection pipe device 3.

図1(a);(b);図6に示すように、自由曲線掘削機2は、ロッド部5と、ロッド部5の先端5tに設けられた掘削ビット6と、ロッド部5の先端部あるいは掘削ビット6に設けられた磁気センサやジャイロセンサなどの位置検出センサ7と、ロッド部5を前後動させたり回転させたりするための駆動装置8とを備える。掘削ビット6は、先端に、中実の円柱の一端開口部が斜めに切り落とされたような楕円傾斜面9を備え、楕円傾斜面9に図外の削岩ビットを有した構成である。また、掘削ビット6は、先端に掘削液噴射孔6dを備え、内部には、掘削液噴射孔6dとロッド部5の内部空間5uとを連通させる掘削液供給路6eを備える。ロッド部5は、掘削が進むに伴って例えば金属円管により形成されるロッド5aを複数個順次継ぎ足して構成される。ロッド5a同士の連結は、例えば、ネジ継手のような図外の連結部材が用いられる。位置検出センサ7は、掘削ビット6の後端側に形成された中空部に埋設される。   As shown in FIG. 1 (a); (b); FIG. 6, the free-curved excavator 2 includes a rod portion 5, a drill bit 6 provided at the tip 5t of the rod portion 5, and a tip portion of the rod portion 5. Alternatively, a position detection sensor 7 such as a magnetic sensor or a gyro sensor provided in the excavation bit 6 and a drive device 8 for moving the rod portion 5 back and forth or rotating it are provided. The excavation bit 6 has a configuration in which an elliptical inclined surface 9 in which one end opening of a solid cylinder is cut off obliquely is provided at the tip, and a rock drill bit (not shown) is provided on the elliptical inclined surface 9. The excavation bit 6 includes an excavation fluid injection hole 6d at the tip, and an excavation fluid supply path 6e that communicates the excavation fluid injection hole 6d with the internal space 5u of the rod portion 5 therein. The rod portion 5 is configured by sequentially adding a plurality of rods 5a formed of, for example, a metal circular pipe as excavation progresses. For the connection between the rods 5a, for example, a connection member (not shown) such as a screw joint is used. The position detection sensor 7 is embedded in a hollow portion formed on the rear end side of the excavation bit 6.

図2に示すように、土壌採取管装置3は、外管11と、内管12と、土壌取込孔塞体13と、連結部材14と、引出部材15とを備える。   As shown in FIG. 2, the soil sampling tube device 3 includes an outer tube 11, an inner tube 12, a soil intake hole blocking body 13, a connecting member 14, and a drawing member 15.

図3;図4に示すように、外管11及び内管12は、外管11の中心軸線aと直交する断面が円環状の例えば鋼管のような金属製の円管により形成される。外管11は、円管の周面の一部に内周面と外周面とに貫通する開口部16を備えるとともに、両方の端部開口25;25aの内周面には雌ねじ部17;17を備える。内管12は、円管の周面の一部に内周面と外周面とに貫通する土壌取込孔18を備える。内管12は外管11の内側に設置され、内管12及び外管11は、内管12と外管11とで共通の中心軸線aを回転中心として回転可能に構成される(図4参照)。即ち、外管11は、ロッド部5を介した回転駆動力を受けて中心軸線aを回転中心として回転可能であり、内管12は、外管11の中心軸線aと同軸に外管内に設置され、中心軸線aを回転中心として回転可能である。このように内管12と外管11とが中心軸線aを回転中心として回転可能に設けられ、かつ、内管12が中心軸線aに対して傾かないように、外管11の内径寸法と内管12の外径寸法とが互いに近似した適性値に設定される(例えば、内管12の外径寸法が外管11の内径寸法よりも数mm小さい程度に設定される)。開口部16は、周面において周方向に沿って湾曲する矩形形状の孔に形成される。即ち、当該矩形形状の孔は、外管11の中心軸線aに沿って延長して互いに平行に対向する2つの長辺縁16a;16bと外管11の周方向に沿って延長して互いに平行に対向する2つの短辺縁とによる湾曲長方形状の開口縁を備えた孔である。土壌取込孔18は、例えば、開口部16の孔寸法よりも一回り小さい孔寸法で、かつ、開口部16と同じ形状に形成される。   3; As shown in FIG. 4, the outer tube 11 and the inner tube 12 are formed of a metal circular tube such as a steel tube whose cross section perpendicular to the central axis a of the outer tube 11 is annular. The outer tube 11 is provided with an opening 16 penetrating the inner peripheral surface and the outer peripheral surface in a part of the peripheral surface of the circular tube, and female screw portions 17; 17 on the inner peripheral surface of both end openings 25; 25a. Is provided. The inner pipe 12 includes a soil intake hole 18 penetrating the inner peripheral surface and the outer peripheral surface in a part of the peripheral surface of the circular pipe. The inner tube 12 is installed inside the outer tube 11, and the inner tube 12 and the outer tube 11 are configured to be rotatable about a central axis a common to the inner tube 12 and the outer tube 11 (see FIG. 4). ). That is, the outer tube 11 is rotatable about the central axis a by receiving a rotational driving force via the rod portion 5, and the inner tube 12 is installed in the outer tube coaxially with the central axis a of the outer tube 11. And can be rotated about the central axis a. As described above, the inner tube 12 and the outer tube 11 are provided so as to be rotatable about the central axis a, and the inner diameter and inner diameter of the outer tube 11 are set so that the inner tube 12 does not tilt with respect to the central axis a. Appropriate values are set such that the outer diameter dimension of the tube 12 is close to each other (for example, the outer diameter dimension of the inner tube 12 is set to be a few mm smaller than the inner diameter dimension of the outer tube 11). The opening 16 is formed in a rectangular hole that curves along the circumferential direction on the circumferential surface. In other words, the rectangular hole extends along the central axis a of the outer tube 11 and extends along the circumferential direction of the two outer side edges 16a; Is a hole having a curved rectangular opening edge with two short side edges facing each other. The soil intake hole 18 has a hole size that is slightly smaller than the hole size of the opening 16 and is formed in the same shape as the opening 16, for example.

土壌取込孔18の一方の長辺縁19側には、ブレードと呼ばれる土壌取込孔塞体13が設けられる。土壌取込孔塞体13は、内管12の中心軸線aに沿って延長するとともに当該中心軸線aと直交する方向(内管12の径に沿った方向)に延長する例えば四角形板により形成される。当該四角形板は、土壌取込孔18における中心軸線aに沿った方向に延長する孔縁である一方の長辺縁19の長さと同じ長さに形成された互いに平行に対向する一対の辺縁21;22とこの一対の辺縁21;22の端部同士を連結する他方の一対の辺縁21a;22aとを有した形状に形成される。この土壌取込孔塞体13の一対の辺縁21;22のうちの一方の辺縁21側と土壌取込孔18の一方の長辺縁19側とが溶接又は連結手段(例えば、土壌取込孔塞体13の一方の辺縁21に設けたブラケットをボルトなどで内管12の周面に固定する連結手段)により連結されることにより、土壌取込孔塞体13が土壌取込孔18の一方の長辺縁19より外管11の開口部16を経由して外管11の外周面より外側に突出するように設けられる。   A soil intake hole blocking body 13 called a blade is provided on one long edge 19 side of the soil intake hole 18. The soil intake hole blocking body 13 is formed by, for example, a rectangular plate that extends along the central axis a of the inner tube 12 and extends in a direction orthogonal to the central axis a (direction along the diameter of the inner tube 12). The The rectangular plate is a pair of edges facing each other in parallel and formed in the same length as one long edge 19 which is a hole edge extending in the direction along the central axis a in the soil intake hole 18. 21; 22 and the other pair of side edges 21a; 22a that connect the ends of the pair of side edges 21; 22 to each other. One side 21 side of the pair of side edges 21; 22 of the soil intake hole blocking body 13 and one long side edge 19 side of the soil intake hole 18 are welded or connected to each other (for example, soil collection By connecting the bracket provided on one edge 21 of the insertion hole closing body 13 to the peripheral surface of the inner tube 12 with a bolt or the like), the soil intake hole closing body 13 is connected to the soil intake hole. It is provided so as to protrude outward from the outer peripheral surface of the outer tube 11 through the opening 16 of the outer tube 11 from one long side edge 19 of 18.

土壌取込孔塞体13における一対の辺縁21;22のうち外管11の外周面より外側に突出する他方の辺縁22側には、他方の辺縁22より一方の辺縁21に向かって延長する複数のスリット(溝)23;23…が形成される。
また、土壌取込孔塞体13の辺縁22と辺縁21a;22aとの境界部分は、面取り部20b;20bに形成される。
このスリット23及び面取り部20bは、図2(a)のように土壌取込孔塞体13の一方の板面13aが開口部16の長辺縁16aに接触して土壌取込孔18が全開放された土壌取込孔全開状態から当該土壌取込孔全開状態を維持する方向(一方方向A)に外管を回転させる場合や、図2(b)のように土壌取込孔塞体13の他方の板面13bが開口部16の長辺縁16bに接触して土壌取込孔18が閉塞された土壌取込孔全閉状態から当該土壌取込孔全閉状態を維持する方向(他方方向B)に外管11を回転させる場合に、土壌取込孔塞体13が受ける土抵抗を低減させる構成である。
Of the pair of edges 21; 22 in the soil intake hole blocking body 13, the other edge 22 projecting outward from the outer peripheral surface of the outer tube 11 is directed toward the one edge 21 from the other edge 22. A plurality of slits (grooves) 23;
Moreover, the boundary part of the edge 22 and the edge 21a; 22a of the soil intake hole obstruction | occlusion body 13 is formed in the chamfering part 20b; 20b.
As shown in FIG. 2A, the slit 23 and the chamfered portion 20 b are configured such that one plate surface 13 a of the soil intake hole blocking body 13 contacts the long side edge 16 a of the opening portion 16 and the soil intake hole 18 is completely formed. When the outer tube is rotated in the direction (one direction A) to maintain the fully open state of the soil intake hole from the fully open state of the soil intake hole, or the soil intake hole blocking body 13 as shown in FIG. The other plate surface 13b contacts the long edge 16b of the opening 16 and the soil intake hole 18 is closed from the fully closed state of the soil intake hole 18 (the other direction in which the soil intake hole is fully closed) When rotating the outer tube 11 in the direction B), the soil resistance received by the soil intake hole blocking body 13 is reduced.

土壌取込孔塞体13の他方の一対の辺縁21a;22a側における開口部16の長辺縁16aに接触する一方の板面13a側は、他方の板面13bから一方の板面13aの中央に向けて傾斜する傾斜面20a;20aに形成される。
この傾斜面20aは、図2(b)のように土壌取込孔塞体13の他方の板面13bが開口部16の長辺縁16bに接触した土壌取込孔全閉状態から当該土壌取込孔全閉状態を維持する方向(他方方向B)に外管11を回転させる場合に、土壌取込孔塞体13が受ける土抵抗を低減させる構成である。
One plate surface 13a side that is in contact with the long side edge 16a of the opening 16 on the other pair of side edges 21a; 22a side of the soil intake hole clogging body 13 is formed from the other plate surface 13b to the one plate surface 13a. It is formed on an inclined surface 20a; 20a inclined toward the center.
As shown in FIG. 2 (b), the inclined surface 20 a is formed from the soil intake hole fully closed state in which the other plate surface 13 b of the soil intake hole closing body 13 is in contact with the long edge 16 b of the opening 16. When the outer tube 11 is rotated in a direction (the other direction B) in which the full hole closed state is maintained, the soil resistance received by the soil intake hole plug 13 is reduced.

中実な棒状に形成された連結部材14は、一端部には、外管11の一方の端部開口25を塞ぐように当該一方の端部開口25に取り付けられる連結部材側蓋体26を備え、他端部には、ロッド部5の先端に連結されるロッド連結部27を備える。連結部材側蓋体26は、連結部材14の一端から他端に向けて、内管回転支持部31、内管規制面32、外管連結部33を備える。ロッド連結部27は、連結部材14を形成する棒の他端部の端面から一端部側に延長するように棒の内側に形成されて、ロッド部5の先端5tの周面に形成された雄ねじ部34(図4参照)と螺合する雌ねじ部35により構成される。連結部材14は周面にスパナのような工具で掴むための平面部14aを備える。   The connecting member 14 formed in a solid rod shape is provided with a connecting member-side cover body 26 attached to the one end opening 25 so as to close the one end opening 25 of the outer tube 11 at one end. The other end portion includes a rod connecting portion 27 that is connected to the tip of the rod portion 5. The connecting member side lid 26 includes an inner tube rotation support portion 31, an inner tube restricting surface 32, and an outer tube connecting portion 33 from one end of the connecting member 14 to the other end. The rod connecting portion 27 is formed on the inner side of the rod so as to extend from the end surface of the other end of the rod forming the connecting member 14 to the one end side, and is formed on the peripheral surface of the tip 5t of the rod portion 5 It is comprised by the internal thread part 35 screwed together with the part 34 (refer FIG. 4). The connecting member 14 includes a flat surface portion 14a for gripping with a tool such as a spanner on the peripheral surface.

引出部材15は、一端部には、外管11の他方の端部開口25aを塞ぐように当該他方の端部開口25aに取り付けられる引出部材側蓋体36を備え、他端部には、引出部37を備える。引出部材側蓋体36は、引出部材15の一端から他端に向けて、内管回転支持部41、内管規制面42、外管連結部43を備える。引出部37は、図外の牽引ワイヤのような引き上げ材を繋ぐ孔38を備える。   The drawing member 15 is provided with a drawing member side lid 36 attached to the other end opening 25a so as to close the other end opening 25a of the outer tube 11 at one end, and the drawing member 15 is drawn to the other end. The unit 37 is provided. The drawing member side lid 36 includes an inner tube rotation support portion 41, an inner tube restriction surface 42, and an outer tube connection portion 43 from one end of the drawing member 15 toward the other end. The drawing portion 37 includes a hole 38 for connecting a lifting material such as a pulling wire (not shown).

連結部材側蓋体26と引出部材側蓋体36とは同じ構成である。これら蓋体26;36の内管回転支持部31;41は、内管12の内径寸法より小さい径寸法の円柱体により形成される。内管12と外管11が互いに回転可能となり、かつ、内管12が中心軸線aに対して傾かないように、内管回転支持部31;41を形成する円柱体の径寸法と内管12の内径寸法とが互いに近似した適性値に設定される(例えば、内管回転支持部31;41の径寸法が内管12の内径寸法よりも数mm小さい程度に設定される)。これら蓋体26;36の内管規制面32;42は、内管回転支持部31;41を形成する円柱体における連結部材14や引出部材15の端部の周回りに設けられて当該円柱体の中心軸線aと直交する円環面により形成される。当該円環面の環幅寸法は、内管12の内径寸法と外径寸法との差寸法(内管12の厚さ寸法)よりも大きく、かつ、該円環面の環幅寸法と内管12の内径寸法とが近似した適性値に設定される。上記差寸法(内管12の厚さ寸法)に形成されるこれら蓋体26;36の外管連結部33;43は、内管規制面32;42を形成する円環面の外周縁より連結部材14や引出部材15の他端方向に延長して中心軸線aが内管回転支持部31;41と同じ(同軸)に形成された円柱部と、当該円柱部の外周面に形成されて外管11の端部開口25;25aの内周面に形成された雌ねじ部17;17に螺合される雄ねじ部40;40とにより形成される。   The connecting member side lid body 26 and the drawing member side lid body 36 have the same configuration. The inner pipe rotation support portions 31; 41 of the lid bodies 26; 36 are formed of a cylindrical body having a diameter smaller than the inner diameter of the inner pipe 12. The inner tube 12 and the outer tube 11 are rotatable relative to each other, and the diameter of the cylindrical body forming the inner tube rotation support portion 31; 41 and the inner tube 12 are set so that the inner tube 12 does not tilt with respect to the central axis a. (For example, the inner tube rotation support portion 31; 41 is set to have a diameter smaller than the inner diameter of the inner tube 12 by several mm). The inner pipe regulating surfaces 32; 42 of the lid bodies 26; 36 are provided around the ends of the connecting member 14 and the extraction member 15 in the cylindrical body forming the inner pipe rotation support portion 31; 41, and the cylindrical body. Is formed by an annular surface orthogonal to the central axis a. The ring width dimension of the annular surface is larger than the difference dimension (thickness dimension of the inner tube 12) between the inner diameter dimension and the outer diameter dimension of the inner tube 12, and the ring width dimension of the annular surface and the inner tube Twelve inner diameter dimensions are set to approximate aptitude values. The outer pipe connecting portions 33; 43 of the lid bodies 26; 36 formed to have the above-described difference dimensions (thickness dimensions of the inner pipe 12) are connected from the outer peripheral edge of the annular surface forming the inner pipe regulating surfaces 32; 42. A cylindrical portion in which the central axis a is formed in the same direction (coaxially) as the inner tube rotation support portions 31 and 41 by extending in the other end direction of the member 14 and the drawing member 15 and an outer peripheral surface formed on the outer peripheral surface of the cylindrical portion. It is formed by the external thread part 40; 40 screwed by the internal thread part 17; 17 formed in the inner peripheral surface of the edge part opening 25; 25a of the pipe | tube 11. As shown in FIG.

土壌採取管装置3の組み付け構造を説明する。蓋体26;36のうちの一方の蓋体26と外管11の一方の端部開口25とがねじ連結される。外管11の他方の端部開口25aから挿入された内管12の挿入側先端の管内側に一方の蓋体26の内管回転支持部31の円柱を入れる(はめ込む)。内管12の後端の管内側に他方の蓋体36の内管回転支持部41の円柱を入れた(はめ込んだ)状態で当該他方の蓋体36と外管の他方の端部開口25aとがねじ連結される。土壌取込孔塞体13が内管12の土壌取込孔18の一方の長辺縁19に取り付けられる。以上により、地中に設置された場合に、土壌取込孔塞体13が地中に設置されることで内管12の回転が規制されるとともに外管11に回転力を加えることで外管11が土壌取込孔18を開閉可能に回転する。   The assembly structure of the soil sampling tube device 3 will be described. One lid body 26 of the lid bodies 26; 36 and one end opening 25 of the outer tube 11 are screw-connected. The column of the inner tube rotation support portion 31 of one lid 26 is inserted (inserted) into the inner side of the tube on the insertion side tip of the inner tube 12 inserted from the other end opening 25a of the outer tube 11. In the state where the cylinder of the inner tube rotation support portion 41 of the other lid body 36 is inserted (inserted) inside the tube at the rear end of the inner tube 12, the other lid body 36 and the other end opening 25a of the outer tube Are screwed together. A soil intake hole blocking body 13 is attached to one long edge 19 of the soil intake hole 18 of the inner tube 12. As described above, when installed in the ground, the soil intake hole blocking body 13 is installed in the ground so that the rotation of the inner tube 12 is regulated and the outer tube 11 is subjected to a rotational force to apply the outer tube. 11 rotates so that the soil intake hole 18 can be opened and closed.

図2(a)に示すように、土壌採取管装置3は、地中において、ロッド部5を回転させることで外管11を一方方向Aに回転させた場合に、開口部16の一方の長辺縁16aと土壌取込孔塞体13の一方の板面13aとが接触し、土壌取込孔18の開口縁が開口部16の開口縁の内側に位置して土壌取込孔全開状態となる。その後、さらに、外管11を一方方向Aに回転させることで、外管11と内管12とが中心軸線aを回転中心として供回りする。これにより、地中の土壌が土壌取込孔塞体13の他方の板面13bに押圧されて内管12内に取り込まれる。
そして、内管12内に土壌を取り込んだ後、図2(b)に示すように、外管11を他方方向Bに回転させた場合に、開口部16の他方の長辺縁16bと土壌取込孔塞体13の他方の板面13bとが接触することで、土壌取込孔18が外管11の内周面と対向し、内管12の内部空間と外部空間との連通が土壌取込孔塞体13により遮断された土壌取込孔全閉状態となり、内管12内に取り込まれた土壌が外管11及び土壌取込孔塞体13によって外管11の内側に封じ込められた状態となって外管11の周りの地中に流出しないようになる。
As shown in FIG. 2 (a), when the soil collection tube device 3 rotates the rod portion 5 in the ground and rotates the outer tube 11 in one direction A, one length of the opening 16 is obtained. The edge 16a and one plate surface 13a of the soil intake hole blocking body 13 are in contact with each other, the opening edge of the soil intake hole 18 is located inside the opening edge of the opening 16 and the soil intake hole is fully opened. Become. Thereafter, the outer tube 11 is further rotated in one direction A, so that the outer tube 11 and the inner tube 12 are rotated around the central axis a. As a result, the soil in the ground is pressed by the other plate surface 13 b of the soil intake hole blocking body 13 and taken into the inner tube 12.
Then, after the soil is taken into the inner tube 12, when the outer tube 11 is rotated in the other direction B as shown in FIG. 2 (b), the other long side edge 16b of the opening 16 and the soil collecting are taken. When the other plate surface 13b of the insertion hole closing body 13 comes into contact, the soil intake hole 18 faces the inner peripheral surface of the outer tube 11, and the communication between the internal space of the inner tube 12 and the external space is the soil intake. A state in which the soil intake hole blocked by the inlet hole blocking body 13 is fully closed, and the soil taken into the inner pipe 12 is sealed inside the outer pipe 11 by the outer tube 11 and the soil inlet hole blocking body 13 Thus, it does not flow out into the ground around the outer tube 11.

上述した土壌採取装置1を用いて、例えば、機械工場のような建屋下の地中や廃棄物処分場跡のような更地下の地中における土壌採取目標位置50での汚染された土壌を採取する方法を説明する。
まず、図1に示すように、自由曲線掘削機2を用いて土壌採取目標位置50を通過する掘削孔51を形成する。例えば、掘削ビット6を土壌採取目標位置の深さ位置まで斜め下方向に推進させるようにして斜め下方向に地盤を掘削した後、掘削ビット6を水平方向に推進させるようにして水平方向に地盤を掘削して土壌採取目標位置50を通過する掘削孔51を形成し、その後、掘削ビット6を斜め上方向に推進させるようにして斜め上方向に地盤を掘削して掘削ビット6を地上に出す。
地盤を斜めに掘削する場合には、ロッド部5をロッド部5の中心軸線を回転中心として駆動装置8に設けられた図外のモータのような回転駆動源で回転させることで掘削ビット6を回転させながら掘削ビット6を推進させる。
掘削ビット6の推進方向を変える場合は、ロッド部5を回転させないで、駆動装置8に設けられた図外の油圧シリンダのような押圧装置でロッド部5に推進力を与えて掘削ビット6の楕円傾斜面9に土圧が作用するようにすることで、掘削ビット6の推進方向を変える。これにより、掘削ビット6及びロッド部5を水平方向に移動させることができる。
掘削の際には、ロッド部5の筒内中空部を掘削液の供給管路として利用するので、ロッド部5の後端を図外の掘削液供給装置に繋ぎ、ロッド部5を回転させるとともに、掘削液供給装置からロッド部5の筒内中空部を介して掘削ビット6に掘削液を圧送して供給する。掘削液としては、水、ベントナイト溶液、ポリマー等の安定液等を用いる。これにより、掘削ビット6の掘削液噴射孔6d(図6参照)から地盤に掘削液が噴射されながら掘削ビット6が地盤を掘削する。
そして、掘削が進むのに応じてロッド5aを順次継ぎ足していく動作を繰り返すことにより、土壌採取目標位置50を通過する掘削孔51を形成する。尚、掘削ビット6の位置は、位置検出センサ7からの位置情報により操作者が知ることができ、当該位置情報に基づいて土壌採取目標位置50を通過する掘削孔51を形成できる。
Using the soil sampling device 1 described above, for example, contaminated soil is collected at a soil collection target position 50 in a subterranean ground such as a machine factory or in a underground ground such as a waste disposal site. How to do it.
First, as shown in FIG. 1, an excavation hole 51 passing through the soil sampling target position 50 is formed using the free curve excavator 2. For example, after excavating the ground in an obliquely downward direction by propelling the excavation bit 6 to the depth position of the soil collection target position, the ground in the horizontal direction by propelling the excavation bit 6 in the horizontal direction. Is drilled to form a drilling hole 51 that passes through the soil sampling target position 50, and then the ground is excavated diagonally upward so that the drilling bit 6 is propelled upward, and the drilling bit 6 is brought out to the ground. .
When excavating the ground diagonally, the excavation bit 6 is rotated by rotating the rod portion 5 with a rotational drive source such as a motor (not shown) provided in the drive device 8 around the central axis of the rod portion 5 as the rotation center. The drill bit 6 is propelled while rotating.
When the propulsion direction of the excavation bit 6 is changed, the rod portion 5 is not rotated, and a propulsive force is applied to the rod portion 5 by a pressing device such as a hydraulic cylinder (not shown) provided in the drive device 8 to By making earth pressure act on the elliptically inclined surface 9, the propulsion direction of the excavation bit 6 is changed. Thereby, the excavation bit 6 and the rod part 5 can be moved to a horizontal direction.
At the time of excavation, since the hollow part in the cylinder of the rod part 5 is used as a supply pipe for the drilling liquid, the rear end of the rod part 5 is connected to a drilling liquid supply device (not shown) and the rod part 5 is rotated. The drilling fluid is pumped and supplied to the drilling bit 6 from the drilling fluid supply device through the hollow portion in the cylinder of the rod portion 5. As the drilling fluid, a stable fluid such as water, bentonite solution, or polymer is used. As a result, the excavation bit 6 excavates the ground while the excavation liquid is jetted from the excavation fluid injection hole 6d (see FIG. 6) of the excavation bit 6 to the ground.
And the excavation hole 51 which passes the soil sampling target position 50 is formed by repeating the operation | movement which adds the rod 5a sequentially as excavation progresses. The position of the excavation bit 6 can be known by the operator from the position information from the position detection sensor 7, and the excavation hole 51 that passes through the soil sampling target position 50 can be formed based on the position information.

図1(a)に示すように、自由曲線掘削機2を用いて土壌採取目標位置50を目標にして掘削を行う。そして、土壌採取目標位置50を通過した地中を掘り抜いた掘削孔51を形成し(図1(b)参照)、その後、掘削孔51の掘削終点から地上に引き出したロッド部5の先端に取り付けられていた掘削ビット6を取り外し、代わりに、ロッド部5の先端に土壌採取管装置3を取り付ける(図1(c)参照)。そして、土壌採取管装置3の土壌取込孔18を閉じた状態で、土壌採取管装置3を掘削孔51内経由で掘削始点側に戻して土壌採取目標位置50まで移動させる(図1(d)参照)。土壌採取管装置3が土壌採取目標位置50に到達したならば、土壌取込孔18を開く方向(一方方向A)に外管11を回転させることにより、土壌採取目標位置50の土壌を内管12内に取り込む(図1(d)参照)。その後、土壌取込孔18を閉じる方向(他方方向B)に外管11を回転させて土壌取込孔18を閉じて、土壌採取管装置3を掘削孔51経由で掘削始点まで戻して地上に出し、ロッド部5の先端に取り付けられていた土壌採取管装置3を取り外す。そして、土壌取込孔塞体13を掴んで、土壌取込孔18が外部に開放される方向に内管12を回転させ、内管12内の土壌を土壌取込孔18及び開口部16を介して取り出す。尚、作業者は図外のモニターに表示される位置検出センサ7からの情報(方位情報、距離情報等)を確認しながら、土壌採取目標位置50への掘削作業、及び、土壌採取目標位置50の土壌を内管12内に取り込む土壌採取作業を行う。   As shown in FIG. 1A, excavation is performed using the free-curve excavator 2 with the soil sampling target position 50 as a target. And the excavation hole 51 which dug the underground which passed the soil sampling target position 50 is formed (refer FIG.1 (b)), Then, it is on the front-end | tip of the rod part 5 pulled out from the excavation end point of the excavation hole 51 to the ground. The attached excavation bit 6 is removed and, instead, the soil sampling pipe device 3 is attached to the tip of the rod portion 5 (see FIG. 1C). Then, with the soil intake hole 18 of the soil collection tube device 3 closed, the soil collection tube device 3 is returned to the excavation start point side via the excavation hole 51 and moved to the soil collection target position 50 (FIG. 1D )reference). When the soil collection pipe device 3 reaches the soil collection target position 50, the outer pipe 11 is rotated in the direction in which the soil intake hole 18 is opened (one direction A), so that the soil at the soil collection target position 50 is taken into the inner pipe. 12 (see FIG. 1D). Thereafter, the outer tube 11 is rotated in the direction in which the soil intake hole 18 is closed (the other direction B), the soil intake hole 18 is closed, and the soil sampling tube device 3 is returned to the excavation start point via the excavation hole 51 to the ground. The soil sampling tube device 3 attached to the tip of the rod portion 5 is removed. And the soil intake hole obstruction | occlusion body 13 is grasped, the inner pipe | tube 12 is rotated in the direction in which the soil intake hole 18 is opened outside, and the soil in the inner pipe 12 is made to pass through the soil intake hole 18 and the opening 16. Take out through. The operator confirms information (azimuth information, distance information, etc.) from the position detection sensor 7 displayed on the monitor (not shown) while excavating the soil collection target position 50, and the soil collection target position 50. The soil sampling operation for taking the soil into the inner pipe 12 is performed.

実施形態1によれば、自由曲線掘削機2を用いて土壌採取目標位置50の土壌を採取する方法において、土壌取込孔塞体13を備えた土壌採取管装置3を用いたので、土壌採取管装置3で採取した土壌を、土壌取込孔塞体13を操作して内管12を回転させることにより、容易に取り出せる。
実施形態1によれば、内管回転支持部31;41を備えるので、中心軸線aに対して傾かないように内管12を回転可能に支持できるため、内管12及び外管11の回転動作を円滑にでき、土壌取込孔18の開閉動作を確実にできる。
実施形態1によれば、土壌取込孔塞体13が傾斜面20aを備えるので、土壌採取管装置3が土壌取込孔18を閉じた状態で地中を移動する際、土壌取込孔塞体13の傾斜面20aが土圧を受けて楔のように作用する。これにより、土壌取込孔塞体13には土壌取込孔18を閉塞する方向の回転力が加わるため、土壌採取管装置3が地中を移動する際に土壌取込孔全閉状態を維持できるので、土壌採取管装置3の移動中に土壌取込孔18が開いてしまうようなことを防止できる。よって、土壌採取目標位置50以外の地中の土壌を内管12内に取り込んでしまったり、土壌採取目標位置50において内管12内に取り込んだ汚染土壌を土壌採取目標位置50以外の地中に撒き散らして汚染を拡大させてしまうようことを防止できる。
実施形態1によれば、土壌取込孔塞体13がスリット23及び面取り部20bを備えるので、外管11を回転させて土壌取込孔18を開閉する際において、土壌取込孔塞体13の受ける土抵抗が低減するため、外管11の回転負荷を軽減できる。
実施形態1によれば、自由曲線掘削機2による水平掘削経路だけでなく、曲線掘削経路でも土壌を採取できる。したがって、土壌採取目標位置50がどこであっても土壌採取目標位置50の土壌を採取可能となる。
実施形態1によれば、自由曲線掘削機2による掘削を終えた後の掘削経路中における土壌採取目標位置50の土壌を採取するので、掘削による水分が少なくなった土壌を採取できることから、特許文献1に比べて、土壌成分の調査を正確に行える。
According to the first embodiment, in the method of collecting the soil at the soil collection target position 50 using the free curve excavator 2, the soil collection tube device 3 including the soil intake hole blocking body 13 is used. The soil collected by the pipe device 3 can be easily taken out by operating the soil intake hole closing body 13 and rotating the inner pipe 12.
According to the first embodiment, since the inner tube rotation support portion 31; 41 is provided, the inner tube 12 can be rotatably supported so as not to incline with respect to the central axis a. Therefore, the rotation operation of the inner tube 12 and the outer tube 11 is performed. And the opening and closing operation of the soil intake hole 18 can be ensured.
According to the first embodiment, since the soil intake hole block 13 includes the inclined surface 20a, when the soil sampling tube device 3 moves in the ground with the soil intake hole 18 closed, the soil intake hole blockage is obtained. The inclined surface 20a of the body 13 receives the earth pressure and acts like a wedge. Thereby, since the rotational force of the direction which obstruct | occludes the soil intake hole 18 is added to the soil intake hole obstruction | occlusion body 13, when the soil sampling pipe apparatus 3 moves in the ground, the soil intake hole fully-closed state is maintained. Therefore, it is possible to prevent the soil intake hole 18 from being opened during the movement of the soil sampling tube device 3. Therefore, soil in the ground other than the soil collection target position 50 is taken into the inner pipe 12, or contaminated soil taken into the inner pipe 12 at the soil collection target position 50 is put into the ground other than the soil collection target position 50. It is possible to prevent the contamination from spreading by spreading.
According to the first embodiment, since the soil intake hole covering body 13 includes the slit 23 and the chamfered portion 20b, the soil intake hole closing body 13 is rotated when the outer tube 11 is rotated to open and close the soil intake hole 18. Since the earth resistance that is received is reduced, the rotational load of the outer tube 11 can be reduced.
According to the first embodiment, the soil can be collected not only by the horizontal excavation path by the free curve excavator 2 but also by the curvilinear excavation path. Therefore, it is possible to collect the soil at the soil collection target position 50 wherever the soil collection target position 50 is.
According to the first embodiment, since the soil at the soil collection target position 50 in the excavation route after excavation by the free-curve excavator 2 is collected, the soil with reduced moisture due to excavation can be collected. Compared to 1, the soil component can be surveyed more accurately.

尚、実施形態1において、土壌取込孔塞体13の一方の辺縁21側と土壌取込孔18の一方の長辺縁19側とを、土壌取込孔塞体13の一方の辺縁21に設けたブラケットをボルトなどで内管12の周面に固定する連結手段により連結する構成とすれば、内管12内に取り込んだ土壌を取り出す場合に、土壌取込孔塞体13を取り外した後に、連結部材側蓋体26及び引出部材側蓋体36のうちの一方の蓋体を外管11より取り外すことで、外管11の端部開口を介して内管12を外管11の外部に引き出せる。よって、内管12内の土壌を内管12の両端の端部開口を介して取り出せるようになるため、土壌採取管装置3で採取した土壌を、より容易に取り出せるようになる。   In the first embodiment, one edge 21 side of the soil intake hole closing body 13 and one long edge 19 side of the soil intake hole 18 are connected to one edge of the soil intake hole closing body 13. If the bracket provided on 21 is connected to the peripheral surface of the inner tube 12 with bolts or the like, the soil intake hole blocking body 13 is removed when the soil taken into the inner tube 12 is taken out. After that, by removing one of the connecting member side lid body 26 and the drawing member side lid body 36 from the outer tube 11, the inner tube 12 is connected to the outer tube 11 through the end opening of the outer tube 11. Can be pulled out. Therefore, since the soil in the inner pipe 12 can be taken out through the end openings at both ends of the inner pipe 12, the soil collected by the soil collecting pipe device 3 can be taken out more easily.

実施形態2
図5に示すように、自由曲線掘削機2のロッド部5の先端5tに設けられた掘削ビット6により、掘削始点から土壌採取目標位置50まで掘削する(図5(a);(b)参照)。その後、掘削ビット6を掘削始点に戻して地上に出した後、ロッド部5の先端5tより掘削ビット6を取り外して、ロッド部5の先端5tに土壌採取管装置3を取り付けるとともに、土壌採取管装置3の先端に掘削ビット6を取り付ける(図5(c)参照)。そして、掘削ビット6及び土壌採取管装置3を掘削孔51内経由で土壌採取目標位置50まで戻して土壌採取管装置3の内管12の内部に土壌採取目標位置50の土壌を取り込む(図5(d)参照)。その後、土壌採取管装置3を掘削始点まで戻して土壌採取管装置3の内部の土壌を取り出す。この実施形態2の場合も、作業者は図外のモニターに表示される位置検出センサ7からの情報(方位情報、距離情報等)を確認しながら、土壌採取目標位置50への掘削作業、及び、土壌採取目標位置50の土壌を内管12内に取り込む土壌採取作業を行う。
尚、実施形態2で用いる土壌採取管装置3は、上述した引出部材15の代わりに、図6に示すようなビット側連結部15Aを備えたものを用いる。ビット側連結部15Aは、一端部には、外管11の他方の端部開口25aを塞ぐように当該他方の端部開口25aに取り付けられる上記引出部材側蓋体36と同様の蓋体15Xを備え、他端部には、ビット連結部55を備える。ビット連結部55は、掘削ビット6の後端部の管の内周面に形成された雌ねじ部56とねじ結合される雄ねじ部57により形成される。
また、実施形態2の場合、ロッド部5の先端5tに土壌採取管装置3及び掘削ビット6を取り付けた構成において掘削ビット6の前方地中に掘削液を供給するために、掘削ビット6の掘削液供給路6eと掘削液供給路として利用されるロッド部5の内部空間5uとを連通させるための掘削液供給路を備えた連結部材14及びビット側連結部15Aを使用する。即ち、連結部材14としては、ロッド部5の内部空間5uと内管12の内部空間とに連通する掘削液供給路14eを備えたものを用い、ビット側連結部15Aとしては、内管12の内部空間と掘削ビット6の掘削液供給路6eとに連通する掘削液供給路15eを備えたものを用いる。掘削液供給路15eの途中には、地下水が掘削ビット6の掘削液供給路6eを経由して内管12の内部空間に流入(逆流)するのを防止するための逆止弁15fが設けられる。逆止弁15fの取付容易性からすると、逆止弁15fを、ビット側連結部15Aの掘削液供給路15eの両方の端部のうちのいずれか一方に設けることが好ましいが、ビット側連結部15Aの掘削液供給路15eにおける内管12側に逆止弁15fを設けた場合、内管12の内側に取り込まれた土壌が逆止弁15f内に入り込んで逆止弁15fの故障を誘発する可能性がある。そこで、実施形態2では、ビット側連結部15Aの掘削液供給路15eにおける掘削ビット6側の端部に逆止弁取付部が設けられ、逆止弁15fが当該逆止弁取付部に取り付けられた構成とした。
以上の構成により、掘削の際には、掘削液が、ロッド部5の内部空間5u、掘削液供給路14e、内管12の内部空間、掘削液供給路15e、掘削液供給路6e、掘削液噴射孔6dを経由して掘削ビット6の前方地中に供給される。そして、掘削液が供給されていない場合には、逆止弁15fが、内管12の内部空間内への地下水の流入を防止する。
実施形態2による方法によれば、実施形態1と同じ効果が得られるとともに、地中を掘り抜くことができない現場においても土壌を採取することができる。
Embodiment 2
As shown in FIG. 5, the excavation bit 6 provided at the tip 5t of the rod portion 5 of the free curve excavator 2 excavates from the excavation start point to the soil sampling target position 50 (see FIGS. 5A and 5B). ). Then, after returning the excavation bit 6 to the excavation start point and taking it out to the ground, the excavation bit 6 is detached from the tip 5t of the rod part 5, and the soil sampling pipe device 3 is attached to the tip 5t of the rod part 5, and the soil sampling pipe A drill bit 6 is attached to the tip of the device 3 (see FIG. 5C). Then, the excavation bit 6 and the soil collection pipe device 3 are returned to the soil collection target position 50 via the excavation hole 51 and the soil at the soil collection target position 50 is taken into the inner pipe 12 of the soil collection pipe device 3 (FIG. 5). (See (d)). Thereafter, the soil sampling tube device 3 is returned to the excavation start point, and the soil inside the soil sampling tube device 3 is taken out. Also in the case of the second embodiment, the operator confirms information (azimuth information, distance information, etc.) from the position detection sensor 7 displayed on the monitor (not shown), and excavation work to the soil collection target position 50, and Then, a soil collection operation for taking the soil at the soil collection target position 50 into the inner pipe 12 is performed.
In addition, the soil sampling tube apparatus 3 used in Embodiment 2 uses what was provided with 15 A of bit side connection parts as shown in FIG. 6 instead of the drawing member 15 mentioned above. 15 A of bit side connection parts have the cover body 15X similar to the said extraction member side cover body 36 attached to the said other end part opening 25a so that the other end part opening 25a of the outer tube | pipe 11 may be plugged up in one end part. And the other end portion is provided with a bit connecting portion 55. The bit connecting portion 55 is formed by a male screw portion 57 that is screwed to a female screw portion 56 formed on the inner peripheral surface of the pipe at the rear end portion of the excavation bit 6.
In the case of the second embodiment, the excavation bit 6 is excavated in order to supply the excavation liquid into the ground in front of the excavation bit 6 in the configuration in which the soil sampling pipe device 3 and the excavation bit 6 are attached to the tip 5t of the rod portion 5. The connecting member 14 and the bit side connecting portion 15A provided with the drilling fluid supply passage for communicating the liquid supply passage 6e with the internal space 5u of the rod portion 5 used as the drilling fluid supply passage are used. In other words, the connecting member 14 is provided with a drilling fluid supply passage 14e communicating with the internal space 5u of the rod portion 5 and the internal space of the inner tube 12, and the bit side connecting portion 15A includes the inner tube 12 of the inner tube 12. The one provided with the drilling fluid supply passage 15e communicating with the internal space and the drilling fluid supply passage 6e of the drilling bit 6 is used. In the middle of the drilling fluid supply passage 15e, a check valve 15f for preventing the groundwater from flowing into the inner space of the inner pipe 12 via the drilling fluid supply passage 6e of the drilling bit 6 is provided. . From the viewpoint of ease of mounting of the check valve 15f, it is preferable to provide the check valve 15f at either one of both ends of the drilling fluid supply passage 15e of the bit side connecting portion 15A. When the check valve 15f is provided on the inner pipe 12 side in the drilling fluid supply passage 15e of 15A, the soil taken inside the inner pipe 12 enters the check valve 15f and induces a failure of the check valve 15f. there is a possibility. Therefore, in the second embodiment, a check valve mounting portion is provided at the end of the drilling fluid supply passage 15e of the bit side connecting portion 15A on the drilling bit 6 side, and the check valve 15f is mounted on the check valve mounting portion. The configuration was as follows.
With the above configuration, during excavation, the excavating liquid is supplied to the inner space 5u of the rod portion 5, the excavating liquid supply path 14e, the inner space of the inner pipe 12, the excavating liquid supply path 15e, the drilling liquid supply path 6e, the drilling liquid. It is supplied into the front ground of the excavation bit 6 via the injection hole 6d. When the drilling fluid is not supplied, the check valve 15f prevents the groundwater from flowing into the inner space of the inner pipe 12.
According to the method according to the second embodiment, the same effect as that of the first embodiment can be obtained, and soil can be collected even at a site where the underground cannot be dug.

実施形態3
実施形態1;2で用いる土壌採取管装置3として、図7;8に示すような、ロック部60を備えたものを用いる。ロック部60は、土壌取込孔塞体13と外管11の開口部16の開口縁とが接触して土壌取込孔18が塞がれた状態を維持するために、土壌取込孔塞体13の傾斜面20aに形成された辺縁部61が入り込む溝62により形成される。溝62は、開口部16の長辺縁16bと外管11の他方の端部開口25a側に位置する開口部16の短辺縁63との境界部に形成されるものであって、長辺縁16bより長辺縁16bに対して一直線状に延長する延長縁65と、当該延長縁65と平行に対向する対向縁66と、延長縁65の先端と対向縁66の先端とを繋いで溝底を形成する底縁67とにより形成される。溝62の幅寸法は、溝62に入り込んだ土壌取込孔塞体13が外管11の周方向に動いてがたつかないように、土壌取込孔塞体13の厚さ寸法に近似した適性値に設定される(例えば、溝62の幅寸法が土壌取込孔塞体13の厚さ寸法よりも数mm大きい程度に設定される)。
実施形態3によれば、外管11を他方方向Bに回転させた場合に、開口部16の他方の長辺縁16bと土壌取込孔塞体13の他方の板面13bとが接触することで、土壌取込孔全閉状態となり、この土壌取込孔全閉状態においてロッド部5を掘削始端側に引っ張って外管11を掘削始端側に引っ張ることにより、土壌取込孔塞体13の傾斜面20aに形成された辺縁部61が溝62内に入り(図8(b)参照)、土壌取込孔塞体13が外管11の周方向に回転しないようになるので、土壌採取管装置3は土壌取込孔全閉状態にロックされることになる。
実施形態3によれば、外管11がロック部60を備えるので、地中において土壌採取管装置3を移動させる際に土壌取込孔全閉状態を維持でき、土壌採取管装置3の移動中に土壌取込孔18が開いてしまうようなことを防止できる。よって、土壌採取目標位置50以外の地中の土壌を内管12内に取り込んでしまったり、土壌採取目標位置50において内管12内に取り込んだ汚染土壌を土壌採取目標位置50以外の地中に撒き散らして汚染を拡大させてしまうことを防止できる。実施形態3によれば、土壌取込孔塞体13が傾斜面20aを備えない構成であっても、当該効果を得ることができる。
尚、実施形態2で用いる土壌採取管装置3としては、土壌採取管装置3を掘削始点から土壌採取目標位置50に移動する際に土壌採取管装置3を土壌取込孔全閉状態にロックするための溝62aにより構成されたロック部60aを設けることが好ましい。この場合の溝62aは、例えば、開口部16の長辺縁16bと外管11の一方の端部開口25側に位置する開口部16の短辺縁63aとの境界部に形成されるものであって、長辺縁16bより長辺縁16bに対して一直線状に延長する延長縁65aと、当該延長縁65aと平行に対向する対向縁66aと、延長縁65aの先端と対向縁66aの先端とを繋いで溝底を形成する底縁67aとにより形成される。この場合、土壌取込孔全閉状態においてロッド部5を押して外管11を押すことにより、土壌取込孔塞体13の傾斜面20aに形成された辺縁部61aが溝62a内に入り、土壌取込孔塞体13が外管11の周方向に回転しないようになるので、土壌採取管装置3は土壌取込孔全閉状態にロックされることになる。よって、土壌採取管装置3の移動中に土壌取込孔18が開いてしまうようなことを防止できる。
尚、図7に想像線で示したように、対向縁66;66aを、延長縁65;65aに対して傾斜する傾斜縁(底縁67;67aから開口部16の中心側に向かうような傾斜縁)に形成すれば、溝62aに対する土壌取込孔塞体13の出入が容易となり、溝62aと土壌取込孔塞体13とによるロック動作及びロック解除動作の確実性が高まる。
Embodiment 3
As the soil sampling tube device 3 used in Embodiments 1 and 2, a device having a lock unit 60 as shown in FIGS. 7 and 8 is used. In order to maintain the state where the soil intake hole 18 is blocked by the contact between the soil intake hole blocking body 13 and the opening edge of the opening 16 of the outer tube 11, the lock unit 60 It is formed by a groove 62 into which an edge 61 formed on the inclined surface 20a of the body 13 enters. The groove 62 is formed at the boundary between the long side edge 16b of the opening 16 and the short side edge 63 of the opening 16 located on the other end opening 25a side of the outer tube 11, and the long side An extended edge 65 extending straight from the edge 16b to the long edge 16b, an opposing edge 66 facing in parallel with the extended edge 65, and a groove connecting the distal end of the extended edge 65 and the distal end of the opposed edge 66 And a bottom edge 67 forming the bottom. The width dimension of the groove 62 approximated the thickness dimension of the soil intake hole blocking body 13 so that the soil intake hole blocking body 13 that entered the groove 62 would not move and rattle in the circumferential direction of the outer tube 11. It is set to an appropriate value (for example, the width dimension of the groove 62 is set to be about several mm larger than the thickness dimension of the soil intake hole blocking body 13).
According to the third embodiment, when the outer tube 11 is rotated in the other direction B, the other long side edge 16b of the opening 16 and the other plate surface 13b of the soil intake hole blocking body 13 are in contact with each other. In this state, the soil intake hole is fully closed, and in this soil intake hole fully closed state, the rod portion 5 is pulled toward the excavation start end side and the outer tube 11 is pulled toward the excavation start end side. Since the edge portion 61 formed on the inclined surface 20a enters the groove 62 (see FIG. 8B), the soil intake hole blocking body 13 is prevented from rotating in the circumferential direction of the outer tube 11, and thus soil sampling The pipe device 3 is locked in the soil intake hole fully closed state.
According to the third embodiment, since the outer tube 11 includes the lock portion 60, when the soil sampling tube device 3 is moved in the ground, the soil intake hole fully closed state can be maintained, and the soil sampling tube device 3 is moving. It is possible to prevent the soil intake hole 18 from being opened. Therefore, soil in the ground other than the soil collection target position 50 is taken into the inner pipe 12, or contaminated soil taken into the inner pipe 12 at the soil collection target position 50 is put into the ground other than the soil collection target position 50. It is possible to prevent spreading and spreading the contamination. According to the third embodiment, the effect can be obtained even if the soil intake hole blocking body 13 does not include the inclined surface 20a.
In addition, as the soil sampling tube device 3 used in Embodiment 2, when the soil sampling tube device 3 is moved from the excavation start point to the soil sampling target position 50, the soil sampling tube device 3 is locked in the soil intake hole fully closed state. It is preferable to provide the lock part 60a comprised by the groove | channel 62a for this. The groove 62a in this case is formed at the boundary between the long side edge 16b of the opening 16 and the short side edge 63a of the opening 16 located on the one end opening 25 side of the outer tube 11, for example. The extended edge 65a that extends in a straight line from the long edge 16b to the long edge 16b, the opposite edge 66a that faces the extended edge 65a in parallel, the distal end of the extended edge 65a, and the distal end of the opposed edge 66a And a bottom edge 67a that forms a groove bottom. In this case, by pushing the rod portion 5 and pushing the outer tube 11 in the soil intake hole fully closed state, the edge portion 61a formed on the inclined surface 20a of the soil intake hole closing body 13 enters the groove 62a, Since the soil intake hole blocking body 13 does not rotate in the circumferential direction of the outer tube 11, the soil sampling tube device 3 is locked in the fully closed state of the soil intake hole. Therefore, it is possible to prevent the soil intake hole 18 from being opened during the movement of the soil sampling tube device 3.
In addition, as shown by the imaginary line in FIG. 7, the opposing edge 66; 66a is inclined with respect to the extended edge 65; 65a (inclination such that the bottom edge 67; 67a is directed toward the center of the opening 16). If it forms in an edge | edge, the entrance / exit of the soil intake hole obstruction | occlusion body 13 with respect to the groove | channel 62a becomes easy, and the reliability of the lock | rock operation | movement by the groove | channel 62a and the soil intake hole obstruction | occlusion body 13 and unlocking | release operation increases.

実施形態4
図9に示すように、外管11の周面に、外管11の端部開口の一方と開口部16とを連通させる連通溝70を形成した土壌採取管装置3を用いれば、土壌取込孔塞体13を取り付けた状態の内管12を外管11の端部開口の一方を介して外管11の内外に出し入れできるので、土壌採取管装置3で採取した土壌を、より容易に取り出せるようになる。
Embodiment 4
As shown in FIG. 9, if the soil collection pipe device 3 in which the communication groove 70 that communicates one end opening of the outer pipe 11 and the opening 16 is formed on the peripheral surface of the outer pipe 11, the soil uptake is used. Since the inner pipe 12 with the hole closing body 13 attached can be taken in and out of the outer pipe 11 through one of the end openings of the outer pipe 11, the soil collected by the soil collection pipe device 3 can be taken out more easily. It becomes like this.

尚、図7乃至図9で説明した実施形態3;4による土壌採取管装置3は、実施形態1;2のいずれの方法にも使用できるが、図7乃至図9では実施形態1で説明した引出部材15を備えたタイプの土壌採取管装置3を例にして図示した。   Although the soil sampling tube device 3 according to Embodiments 3 and 4 described in FIGS. 7 to 9 can be used in any of the methods of Embodiments 1 and 2, it has been described in Embodiment 1 in FIGS. An example of a soil sampling tube device 3 of the type provided with a drawing member 15 is shown.

実施形態5
実施形態1では、土壌採取目標位置50の土壌を土壌採取管装置3で採取した後に土壌採取管装置3を掘削孔51の掘削始点側に引き戻して掘削始点の開口より地上に引き出したが、土壌採取目標位置50の土壌を土壌採取管装置3で採取した後に土壌採取管装置3を掘り抜いた掘削孔51の掘削終点側に押し進めて掘削終点の開口より地上に押し出してもよい。実施形態5による方法は、土壌採取目標位置50から掘削終点までの距離が、土壌採取目標位置50から掘削始点までの距離よりも短い場合に効果的である。
Embodiment 5
In the first embodiment, after the soil at the soil collection target position 50 is collected by the soil collection pipe device 3, the soil collection pipe device 3 is pulled back to the excavation start point side of the excavation hole 51 and pulled out to the ground from the opening of the excavation start point. After the soil at the sampling target position 50 is collected by the soil sampling pipe device 3, the soil sampling pipe device 3 may be pushed forward to the excavation end point side of the excavation hole 51 and pushed out to the ground from the opening of the excavation end point. The method according to the fifth embodiment is effective when the distance from the soil collection target position 50 to the excavation end point is shorter than the distance from the soil collection target position 50 to the excavation start point.

実施形態1;2;5において、土壌取込孔塞体13が傾斜面20aを備えない構成である場合、外管11がロック部60;60aを備えない場合において、土壌採取管装置3を地中で移動させる際には、土壌採取管装置3の土壌取込孔18を閉じた状態で、土壌取込孔18を閉じる方向(他方方向B)に外管11を回転させながら、土壌採取管装置3を移動させればよい。これにより、土壌採取管装置3の移動中に土壌取込孔18が開いてしまうようなことを防止できる。   In Embodiments 1; 2; 5, in the case where the soil intake hole blocking body 13 is configured not to include the inclined surface 20a, the soil sampling tube device 3 is connected to the ground when the outer tube 11 does not include the lock portion 60; 60a. When moving in, the soil collection tube device 3 is closed with the soil intake hole 18 closed, and the outer tube 11 is rotated in the direction (the other direction B) in which the soil intake hole 18 is closed. The device 3 may be moved. Thereby, it is possible to prevent the soil intake hole 18 from being opened during the movement of the soil sampling tube device 3.

図6に示すような、掘削ビット6とロッド部5との間に土壌採取管装置3を備えた土壌採取装置1を用いて、掘削始点から土壌採取目標位置50まで掘削して土壌採取目標位置50の土壌を土壌採取管装置3で採取した後に、土壌採取装置1を掘削始点の開口まで引き戻して掘削始点の開口より土壌採取管装置3を地上に出すか、あるいは、土壌採取装置1で地中を掘り抜いて土壌採取管装置3を地上に出すようにしてもよい。この際、ロック部60;60aを備えていない土壌採取管装置3を用いる場合は、土壌採取管装置3の土壌取込孔18を閉じた状態で、土壌取込孔18を閉じる方向(他方方向B)に、ロッド部5と土壌採取管装置3と掘削ビット6との結合体を回転させながら、掘削すればよい。これにより、土壌採取管装置3の移動中に土壌取込孔18が開いてしまうようなことを防止できる。尚、この場合も、作業者は図外のモニターに表示される位置検出センサ7からの情報(方位情報、距離情報等)を確認しながら、土壌採取目標位置50への掘削作業、及び、土壌採取目標位置50の土壌を内管12内に取り込む土壌採取作業を行う。   As shown in FIG. 6, the soil collection target position is obtained by excavating from the excavation start point to the soil collection target position 50 using the soil collection device 1 having the soil collection pipe device 3 between the excavation bit 6 and the rod portion 5. After collecting 50 soils with the soil sampling pipe device 3, the soil sampling device 1 is pulled back to the opening of the excavation starting point and the soil sampling pipe device 3 is put out on the ground through the opening of the excavation starting point, or the soil sampling device 1 You may make it take out the inside and take out the soil sampling pipe apparatus 3 on the ground. At this time, in the case of using the soil collection tube device 3 that does not include the lock portion 60; 60a, the direction in which the soil intake hole 18 is closed with the soil intake hole 18 of the soil collection tube device 3 closed (the other direction). B) may be excavated while rotating the combined body of the rod part 5, the soil sampling pipe device 3 and the excavation bit 6. Thereby, it is possible to prevent the soil intake hole 18 from being opened during the movement of the soil sampling tube device 3. In this case as well, the operator confirms information (direction information, distance information, etc.) from the position detection sensor 7 displayed on the monitor (not shown), and excavation work to the soil collection target position 50 and soil A soil sampling operation for taking the soil at the sampling target position 50 into the inner pipe 12 is performed.

土壌取込孔全閉状態における内管12の水密性能を向上させるためのパッキンのような水密性能維持部材を設けることが好ましい。水密性能維持部材は、例えば、開口部16の他方の長辺縁16bと土壌取込孔塞体13の他方の板面13bとの接触部、外管11の開口部16の開口縁周りの外管内面、内管12の土壌取込孔18の孔縁周りの内管外面、蓋体26;36と外管11の両端開口端面との接触部等に設ければよい。   It is preferable to provide a watertight performance maintaining member such as a packing for improving the watertight performance of the inner pipe 12 in the soil intake hole fully closed state. The watertight performance maintaining member is, for example, a contact portion between the other long side edge 16b of the opening portion 16 and the other plate surface 13b of the soil intake hole blocking body 13, an outer periphery around the opening edge of the opening portion 16 of the outer tube 11. The inner surface of the pipe, the outer surface of the inner pipe around the edge of the soil intake hole 18 of the inner pipe 12, the contact portion between the lid 26;

蓋体26;36の両方、又は、一方を溶接によって外管11の開口端面に取り付けてもよい。
上述した開口部16、土壌取込孔18、土壌取込孔塞体13の形状は上記実施形態で説明した形状以外に形成してもよく、要は、土壌取込孔塞体13の他方の板面13bと他方の長辺縁16bとが接触して土壌取込孔18が塞がれる状態(全閉状態)にできる構成であればよい。
上述した雄ねじ部を雌ねじ部とし、上述した雌ねじ部と雄ねじ部としてもよい。
Both or one of the lid bodies 26; 36 may be attached to the open end surface of the outer tube 11 by welding.
The shapes of the opening 16, the soil intake hole 18, and the soil intake hole blocking body 13 described above may be formed other than the shapes described in the above embodiment. What is necessary is just the structure which can be in the state (full closed state) where the plate surface 13b and the other long side edge 16b contact, and the soil intake hole 18 is block | closed.
The male screw portion described above may be a female screw portion, and the female screw portion and the male screw portion described above may be used.

本発明は、土壌汚染された土壌を調査するため採取だけでなく、セメント等の改良材で地盤改良された場所に所定量の改良材が入っているかを確認するための調査等、土壌中の調査したい物質の量を測定するための土壌を採取する場合にも利用できる。   The present invention is not only for collecting soil-contaminated soil, but also for investigating whether or not a predetermined amount of improvement material is contained in a place where the ground has been improved by improvement material such as cement. It can also be used when collecting soil to measure the amount of the substance to be investigated.

2 自由曲線掘削機、3 土壌採取管装置、5 ロッド部、6 掘削ビット、
11 外管、12 内管、13 土壌取込孔塞体、
16 開口部、16b 他方の長辺縁(開口縁)、
26 連結部材側蓋体(蓋体)、36 引出部材側蓋体(蓋体)、
50 土壌採取目標位置、51 掘削孔、60 ロック部。
2 Free-curve excavator, 3 soil sampling pipe device, 5 rod section, 6 excavation bit,
11 Outer tube, 12 Inner tube, 13 Soil uptake block,
16 opening part, 16b other long side edge (opening edge),
26 connecting member side lid (lid), 36 drawer member side lid (lid),
50 soil sampling target position, 51 excavation hole, 60 lock part.

Claims (3)

自由曲線掘削機のロッド部の先端に設けられた掘削ビットにより、掘削始点から土壌採取目標位置を経由して地中を掘り抜いて掘削ビットを地上に出した後、ロッド部の先端より掘削ビットを取り外して、ロッド部の先端に土壌採取管装置を取り付け、地中を掘り抜いた掘削孔内経由で土壌採取管装置を土壌採取目標位置まで戻して土壌採取管装置の内部に土壌採取目標位置の土壌を取り込んでから、当該土壌採取管装置を、掘削孔の掘削始点まで引き戻して地上に出すか、あるいは、掘り抜いた掘削孔の掘削終点まで押し込んで地上に出すことにより、土壌採取管装置の内部に取り込まれている土壌を取り出すようにした地中土壌採取方法であって、
土壌採取管装置は、周面に開口部を有しロッド部を介した回転駆動力を受けて中心軸線を回転中心として回転可能な外管と、外管の中心軸線と同軸に外管内に設置されて周面に土壌取込孔を有した内管と、内管の土壌取込孔における内管の中心軸線に沿った方向に延長する孔縁より外管の開口部を経由して外管の外周面より外側に突出するように設けられた土壌取込孔塞体と、外管の両端開口を塞ぐ蓋体とを備え、地中で外管を一方方向に回転させた場合には、土壌取込孔が開口部を介して地中と連通し、地中で外管を他方方向に回転させた場合には、外管の開口部における外管の中心軸線に沿った方向に延長する開口縁と土壌取込孔塞体とが接触して土壌取込孔が塞がれるように構成されたことを特徴とする地中土壌採取方法。
The excavation bit provided at the tip of the rod part of the free-curved excavator digs into the ground from the excavation start point via the soil sampling target position and puts the excavation bit on the ground, and then the excavation bit from the tip of the rod part And attach the soil sampling pipe device to the tip of the rod part, return the soil sampling pipe device to the soil sampling target position through the excavation hole dug out of the ground, and place the soil sampling target position inside the soil sampling pipe device The soil sampling pipe device is taken out to the ground by pulling the soil sampling pipe device back to the excavation start point of the excavation hole, or pushed to the end point of excavation of the excavated drill hole and taken out to the ground. An underground soil collection method for taking out the soil taken in the interior of the soil,
The soil sampling pipe device is installed in the outer pipe that has an opening on the peripheral surface and can receive a rotational driving force via the rod part and can rotate around the central axis as the center of rotation, and coaxially with the central axis of the outer pipe The inner pipe having a soil intake hole on the peripheral surface, and the outer pipe through the opening of the outer pipe from the hole edge extending in the direction along the central axis of the inner pipe in the soil intake hole of the inner pipe When the outer pipe is rotated in one direction in the ground, with a soil intake hole plug provided so as to protrude outward from the outer peripheral surface, and lids that block the opening at both ends of the outer pipe, When the soil intake hole communicates with the ground through the opening and the outer tube is rotated in the other direction in the ground, it extends in the direction along the central axis of the outer tube at the opening of the outer tube. An underground soil collection method characterized in that an opening edge and a soil intake hole blocking body are in contact with each other to close the soil intake hole.
自由曲線掘削機のロッド部の先端に設けられた掘削ビットにより、掘削始点から土壌採取目標位置まで掘削してから掘削ビットを掘削始点に戻して地上に出した後、ロッド部の先端より掘削ビットを取り外して、ロッド部の先端に土壌採取管装置を取り付けるとともに、土壌採取管装置の先端に掘削ビットを取り付け、掘削ビット及び土壌採取管装置を掘削孔内経由で土壌採取目標位置まで戻して土壌採取管装置の内部に土壌採取目標位置の土壌を取り込んでから土壌採取管装置を掘削始点まで戻して土壌採取管装置の内部の土壌を取り出すようにした地中土壌採取方法であって、
土壌採取管装置は、周面に開口部を有しロッド部を介した回転駆動力を受けて中心軸線を回転中心として回転可能な外管と、外管の中心軸線と同軸に外管内に設置されて周面に土壌取込孔を有した内管と、内管の土壌取込孔における内管の中心軸線に沿った方向に延長する孔縁より外管の開口部を経由して外管の外周面より外側に突出するように設けられた土壌取込孔塞体と、外管の両端開口を塞ぐ蓋体とを備え、地中で外管を一方方向に回転させた場合には、土壌取込孔が開口部を介して地中と連通し、地中で外管を他方方向に回転させた場合には、外管の開口部における外管の中心軸線に沿った方向に延長する開口縁と土壌取込孔塞体とが接触して土壌取込孔が塞がれるように構成されたことを特徴とする地中土壌採取方法。
After drilling from the excavation start point to the soil sampling target position with the excavation bit provided at the tip of the rod part of the free-curved excavator, returning the excavation bit to the excavation start point and taking it out to the ground, the excavation bit from the tip of the rod part And attach the soil sampling pipe device to the tip of the rod part, attach the excavation bit to the tip of the soil sampling pipe device, return the excavation bit and the soil sampling pipe device to the soil sampling target position via the inside of the excavation hole It is an underground soil sampling method in which the soil sampling pipe device is taken back into the excavation start point after taking the soil at the soil sampling target position into the sampling tube device, and the soil inside the soil sampling tube device is taken out,
The soil sampling pipe device is installed in the outer pipe that has an opening on the peripheral surface and can receive a rotational driving force via the rod part and can rotate around the central axis as the center of rotation, and coaxially with the central axis of the outer pipe The inner pipe having a soil intake hole on the peripheral surface, and the outer pipe through the opening of the outer pipe from the hole edge extending in the direction along the central axis of the inner pipe in the soil intake hole of the inner pipe When the outer pipe is rotated in one direction in the ground, with a soil intake hole plug provided so as to protrude outward from the outer peripheral surface, and lids that block the opening at both ends of the outer pipe, When the soil intake hole communicates with the ground through the opening and the outer tube is rotated in the other direction in the ground, it extends in the direction along the central axis of the outer tube at the opening of the outer tube. An underground soil collection method characterized in that an opening edge and a soil intake hole blocking body are in contact with each other to close the soil intake hole.
土壌採取管装置は、土壌取込孔塞体と外管の開口部の開口縁とが接触して土壌取込孔が塞がれた状態を維持するロック部を備えたことを特徴とする請求項1又は請求項2に記載の地中土壌採取方法。   The soil sampling tube device includes a lock portion that maintains a state in which the soil intake hole is closed by contact between the soil intake hole blockage body and the opening edge of the opening of the outer tube. The underground soil collection method according to claim 1 or claim 2.
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