JP4809741B2 - manhole - Google Patents

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JP4809741B2
JP4809741B2 JP2006250598A JP2006250598A JP4809741B2 JP 4809741 B2 JP4809741 B2 JP 4809741B2 JP 2006250598 A JP2006250598 A JP 2006250598A JP 2006250598 A JP2006250598 A JP 2006250598A JP 4809741 B2 JP4809741 B2 JP 4809741B2
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manhole
ground
housing
drainage
inner cylinder
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JP2008069589A (en
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糺茲 河合
隆 人見
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中川ヒューム管工業株式会社
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Description

本発明は、地中に埋設された上下水道管等を点検、保守する目的等により地中に設けられるマンホールに関し、より具体的には、地震等により発生する地盤の液状化現象によりマンホールが浮き上がるのを防止するための水抜部を備えたマンホールに関する。   The present invention relates to a manhole provided in the ground for the purpose of inspecting and maintaining a water and sewer pipe buried in the ground, and more specifically, the manhole is lifted by a ground liquefaction phenomenon caused by an earthquake or the like. It is related with the manhole provided with the drain part for preventing.

地中に埋設された上下水道管等を点検、保守する目的等により地中に設けられるマンホールの一例を図7に示す。
このような従来のマンホールは一般に、地面から地中を必要な深さに根堀し、その底部に砕石による基礎砕石層23を設ける。この基礎砕石層23の上にコンクリートの基礎底盤24を設ける。この基礎底盤24の上に、プレキャストコンクリート製品である円筒形のマンホール用ブロック22を1段以上積み上げ、必要に応じて高さ調整した上で最上段のマンホール用ブロック22を積み上げ、マンホール躯体21を構築する。このマンホール躯体21の上端開口部は地面GLの高さに設定し、その上端開口部に設けた蓋枠29に蓋28を嵌め込むことにより、上端開口部を開閉可能とする。また、マンホール躯体21の中の前記基礎底盤24には、インバートと呼ばれる水路溝付の底盤25を設け、このインバート25の水路溝を通して水が流れるようにマンホール躯体21の壁面に流入管や流出管31等の配管を接続する。その後、根堀した部分を埋め戻してマンホール躯体21を地中に埋設する。図7の例では、流入管は断面した部分の手前にあり、図示されていない。
FIG. 7 shows an example of a manhole provided in the ground for the purpose of inspecting and maintaining a water and sewage pipe buried in the ground.
In general, such a conventional manhole is dug from the ground to a necessary depth, and a basic crushed stone layer 23 made of crushed stone is provided at the bottom. A concrete foundation bottom 24 is provided on the foundation crushed stone layer 23. One or more cylindrical manhole blocks 22 that are precast concrete products are stacked on the foundation bottom plate 24, the height is adjusted as necessary, and the uppermost manhole block 22 is stacked. To construct. The upper end opening of the manhole housing 21 is set to the height of the ground GL, and the upper end opening can be opened and closed by fitting the lid 28 into the lid frame 29 provided in the upper end opening. Further, the base bottom plate 24 in the manhole housing 21 is provided with a bottom plate 25 with a water channel groove called invert, and an inflow pipe and an outflow pipe are formed on the wall surface of the manhole housing 21 so that water flows through the water channel groove of the invert 25. Connect pipes such as 31. Thereafter, the dug portion is backfilled and the manhole housing 21 is buried in the ground. In the example of FIG. 7, the inflow pipe is in front of the cross section and is not shown.

このようなマンホールでは、地震の発生によって地下地盤が液状化したような場合に、地下水圧が上昇することにより、基礎底盤24を含むマンホール躯体21が地盤から浮き上がってしまうことが問題視されている。このため図7に示すように、マンホール躯体21の基礎底盤24の近傍の地盤中から地面GLに達する水抜部26を埋設することが提案されている。或いはマンホール躯体21の周囲に、礫材からなる地表面GLに達する埋め戻し層を形成することも提案されている。これらの対策により、地震の際に起こる地盤の液状化現象に伴ってマンホール躯体21の底部近傍の地盤中に発生する地下水圧を、前記水抜部26或いは埋戻層を通じて地上へ開放し、マンホールの浮き上がりの防止を図るものである。   In such a manhole, when the underground ground has been liquefied due to the occurrence of an earthquake, it has been regarded as a problem that the manhole housing 21 including the foundation bottom 24 is lifted from the ground due to an increase in the groundwater pressure. . For this reason, as shown in FIG. 7, it has been proposed to bury a drainage portion 26 that reaches the ground GL from the ground in the vicinity of the base bottom 24 of the manhole housing 21. Alternatively, it has also been proposed to form a backfill layer that reaches the ground surface GL made of gravel material around the manhole housing 21. By these measures, the groundwater pressure generated in the ground near the bottom of the manhole housing 21 due to the liquefaction phenomenon of the ground that occurs in the event of an earthquake is released to the ground through the drainage part 26 or the backfill layer, and the manhole It is intended to prevent lifting.

しかしながら、図7に示すような水抜部26や礫材の埋戻層内には、常に地盤中の地下水位GWLと同レベルまで地下水が存在している。このため、地震による液状化現象が起きたときの水圧を抜くための抵抗が大きく、マンホールの浮き上がりを有効に防止し得る排水作用を期待することが出来ないという課題がある。   However, in the drainage part 26 and the backfill layer of gravel material as shown in FIG. 7, groundwater always exists to the same level as the groundwater level GWL in the ground. For this reason, there is a problem that the resistance for releasing the water pressure when a liquefaction phenomenon due to an earthquake occurs is large, and it is impossible to expect a drainage action that can effectively prevent the manhole from rising.

この問題を解決する手段として、特開平8−92984号公報、特開平8−165665号公報、特開平8−165667号公報に示されたように、水抜管や埋戻層を通してマンホール躯体21の基礎底盤24の近傍から抜く水を地面GL上にではなく、マンホール躯体21の中に流入させるものも提案されている。これにより、液状化現象が発生したときに水を抜くときの排水抵抗を小さくし、且つマンホール躯体の中に水を流入させることによって、マンホール躯体に周囲の地盤から加えられる浮力を抑え、マンホールの浮き上がりを防止するものである。   As means for solving this problem, as disclosed in JP-A-8-92984, JP-A-8-165665, and JP-A-8-165667, the basics of the manhole housing 21 are passed through a drain pipe or a backfill layer. It has also been proposed to allow water drawn from the vicinity of the bottom plate 24 to flow into the manhole housing 21 instead of onto the ground GL. This reduces drainage resistance when draining water when liquefaction occurs, and reduces the buoyancy applied to the manhole housing from the surrounding ground by allowing water to flow into the manhole housing. This is to prevent lifting.

しかしながら、これらの水抜部をマンホール躯体の外に設けたり、マンホール躯体の周囲に礫材からなる埋戻層を設ける手段では、既設のマンホールに施工する場合、マンホール躯体の周囲を掘り返さなければならない。そのためには、舗装層の破砕、重機等を使用した縦穴掘削を必要とし、その後はさらに埋め戻しや再舗装等の工程を必要とする。   However, when these drainage parts are provided outside the manhole housing or a backfill layer made of gravel material is provided around the manhole housing, the surroundings of the manhole housing must be dug when constructing the existing manhole. To that end, crushing of the pavement layer, vertical hole excavation using heavy machinery, etc. are required, and thereafter, processes such as backfilling and re-paving are required.

また、地震で起こる地盤の液状化現象では、地下水が土砂を含んで液状化するため、水抜部や礫材からなる埋戻層が目詰まりするおそれもある。そこで、特開平8−92984公報に示されたように、水抜部のマンホール躯体に接続した流入口側にフィルター等を取り付ける必要もある。しかし、このフィルターを水抜部のマンホール躯体に接続した流入口側に設けても、そのフィルターの部分で水が詰まってしまう結果となり、有効な水抜効果は達成し得ない。   In addition, in the ground liquefaction phenomenon caused by an earthquake, groundwater liquefies including earth and sand, which may clog the drainage layer and the backfill layer made of gravel material. Therefore, as shown in Japanese Patent Laid-Open No. 8-92984, it is necessary to attach a filter or the like to the inlet side connected to the manhole housing of the drainage portion. However, even if this filter is provided on the inlet side connected to the manhole housing of the drainage portion, it results in clogging of water at the filter portion, and an effective drainage effect cannot be achieved.

特開平8−92984公報JP-A-8-92984 特開平8−165665号公報JP-A-8-165665 特開平8−165666号公報JP-A-8-165666 特開平8−165667号公報JP-A-8-165667

本発明は、前記従来のマンホールの特に地震による地盤の液状化現象による浮き上がり防止技術の課題に鑑み、既設のマンホールにも容易に施工することが出来、しかもフィルター等を用いなくても目詰まりの起こらない水抜部の設置を可能にし、これにより、地震による地盤の液状化現象によりマンホールが浮き上がることを容易且つ確実に防止することを目的とする。   In view of the problem of the above-described conventional manhole, in particular, lifting prevention technology due to the liquefaction phenomenon of the ground due to an earthquake, the present invention can be easily applied to an existing manhole, and clogging is possible without using a filter or the like. The purpose is to make it possible to install a drainage portion that does not occur, thereby easily and reliably preventing the manhole from rising due to the liquefaction phenomenon of the ground due to an earthquake.

前記の目的を達成するため、本発明では、マンホール躯体1の基礎底盤4の下の地盤に通じる水抜部6をマンホール躯体1の壁部に設けることにより、既設のマンホールにも容易に施工出来るようにすると共に、マンホール躯体1の浮き上がり防止に最も効果のある基礎底盤4の直下の水圧を抜くことを可能とした。また、基礎底盤4の下にある基礎砕石層3をフィルターとして利用出来るようにした。   In order to achieve the above-described object, in the present invention, the drainage portion 6 leading to the ground below the foundation bottom base 4 of the manhole housing 1 is provided in the wall portion of the manhole housing 1 so that it can be easily applied to an existing manhole. In addition, it is possible to release the water pressure immediately below the foundation bottom 4 which is most effective in preventing the manhole housing 1 from being lifted. In addition, the basic crushed stone layer 3 under the basic bottom plate 4 can be used as a filter.

すなわち、本発明によるマンホールは、マンホールの底盤を形成するインバート5の下に台座板12を設け、この台座板12の下に基礎底盤4の下の地盤に通じる水溜部14を形成し、前記台座板12に内筒15を立設することにより、この内筒15の内部又は内筒15とコンクリート躯体1との間に水抜部6を形成し、この水抜部6の下端を前記台座板12の下の水溜部14に通じさせると共に、同水抜部6の上端をマンホール躯体1の中に配置したものである。
例えば、水抜部6は、マンホール躯体1の壁部に設けたステップ7の両側に設けられている。
That is, the manhole according to the present invention is provided with a pedestal plate 12 under the invert 5 that forms the bottom plate of the manhole, and under the pedestal plate 12, a water reservoir portion 14 that communicates with the ground under the base bottom plate 4 is formed. By standing the inner cylinder 15 on the plate 12, a drainage portion 6 is formed in the inner cylinder 15 or between the inner cylinder 15 and the concrete casing 1, and the lower end of the drainage portion 6 is connected to the base plate 12. The upper water drainage portion 6 is disposed in the manhole housing 1 while being communicated with the lower water reservoir portion 14 .
For example, the drainage portions 6 are provided on both sides of the step 7 provided on the wall portion of the manhole housing 1.

このような本発明によるマンホールでは、マンホールの底盤を形成するインバート5の下に予め台座板12を設け、この台座板12の下に基礎底盤4の下の地盤に通じる水溜部14を形成し、前記台座板12に内筒15を立設することで水抜部6を設けるので、既設のマンホールでも、人がマンホール躯体1の中に入って前記台座板15の上に内筒15を立設することで水抜部6を設置出来る。そのため、マンホール躯体1の周囲の掘削が不要であり、既設のマンホールにも容易に設置出来る。もちろん新設のマンホールにも設置は可能である。 In such a manhole according to the present invention, a pedestal plate 12 is provided in advance under the invert 5 that forms the bottom plate of the manhole, and a water reservoir portion 14 is formed under the pedestal plate 12 so as to communicate with the ground below the base bottom plate 4. Since the drainage portion 6 is provided by standing the inner cylinder 15 on the pedestal plate 12 , even in an existing manhole, a person enters the manhole housing 1 and stands the inner cylinder 15 on the pedestal plate 15. Thus, the drainage part 6 can be installed. Therefore, excavation around the manhole housing 1 is not required, and it can be easily installed in an existing manhole. Of course, it can also be installed in a new manhole.

さらに、地震による地盤の液状化現象が起こったときに、マンホールの浮き上がりに最も影響する基礎底盤4の下の地盤の水を水抜部6を通してマンホール躯体1の中に抜き上げることが出来るので、マンホールの浮き上がりを効果的に防止することが出来る。また、水抜部6に通じる地盤の最上層は通常基礎砕石層3であることが多く、従って、地下水はこの基礎砕石層3を通って水抜部6に流入する。このとき基礎砕石層3がフィルターとして機能し、地盤から水だけを水抜部6で抜き上げることが出来る。これにより、水抜部6への土砂の流入を防止することが出来、水抜部6やマンホールに接続した配管が土砂で目詰まりすることが防止出来る。   Furthermore, when the ground liquefaction phenomenon occurs due to the earthquake, the ground water under the foundation bottom 4 that has the greatest influence on the manhole lift can be drawn into the manhole housing 1 through the drainage 6. Can be effectively prevented. Further, the uppermost layer of the ground leading to the drainage section 6 is usually the basic crushed stone layer 3, and therefore groundwater flows into the drainage section 6 through the basic crushed stone layer 3. At this time, the basic crushed stone layer 3 functions as a filter, and only the water can be extracted from the ground by the drainage portion 6. Thereby, inflow of the earth and sand to the drainage part 6 can be prevented, and it can prevent that the piping connected to the drainage part 6 and a manhole is clogged with earth and sand.

また、台座板12に内筒15を立設することで水抜部6が設けられるため、マンホール躯体1の中に人が入って作業をする空間を容易に確保することが出来、既設のマンホールへの水抜部6の設置が容易である。 Further, draining unit 6 is provided by erecting the inner cylinder 15 to the base plate 12 because, it is possible to easily secure a space for the working person enters into the manhole skeleton 1, the existing manhole It is easy to install the water draining part 6 in the water.

以上説明した通り、本発明によるマンホールでは、既設、新設を問わず、水抜部6を設置出来る。そして、地震による地盤の液状化現象が起こったときに、マンホールの浮き上がりに最も影響する基礎底盤4の下の地盤の水を水抜部6を通してマンホール躯体1の中に抜き上げるので、基礎底盤4の下の水圧を低下させることが出来、マンホールの浮き上がりを効果的に防止することが出来る。   As described above, in the manhole according to the present invention, the drainage portion 6 can be installed regardless of whether the manhole is existing or newly installed. And when the liquefaction phenomenon of the ground due to the earthquake occurs, the water of the ground under the foundation bottom 4 that has the greatest influence on the lift of the manhole is drawn into the manhole housing 1 through the drainage part 6, so The lower water pressure can be reduced, and the manhole can be effectively prevented from rising.

本発明では、マンホール躯体1の基礎底盤4の下の地盤に通じる水抜部6をマンホール躯体1の中に立設することにより、既設のマンホールにも容易に施工出来るようにすると共に、マンホール躯体1の浮き上がり防止に最も効果のある基礎底盤4の直下の水を、目詰まりすることなく抜くことを可能とした。
以下、本発明を実施するための最良の形態について、実施例をあげて詳細に説明する。
In the present invention, the drainage portion 6 leading to the ground below the foundation bottom 4 of the manhole housing 1 is erected in the manhole housing 1 so that it can be easily constructed in an existing manhole and the manhole housing 1 The water immediately below the foundation bottom 4 that is most effective in preventing the lifting of water can be removed without clogging.
Hereinafter, the best mode for carrying out the present invention will be described in detail with reference to examples.

図1は、本発明の第一の実施例であるマンホールを示す縦断側面図、図2は、そのA−A’線断面図、図3は、その縦断正面図である。
マンホールは、地面から地中に必要な深さに立坑を根堀し、その底部に砕石による基礎砕石層3を設ける。この基礎砕石層3の上に予め工場で成型したプレキャスト製の基礎底盤4を設置するか、或いは現場でコンクリートを打設して基礎底盤4を設ける。この基礎底盤4の上に、プレキャスト製品である円筒形のマンホール用ブロック2を1段以上積み上げ、必要に応じて高さ調整した上で最上段のマンホール用ブロック2を積み上げ、マンホール躯体1を構築する。
1 is a longitudinal side view showing a manhole according to the first embodiment of the present invention, FIG. 2 is a sectional view taken along line AA ′, and FIG. 3 is a longitudinal front view thereof.
A manhole digs up a shaft from the ground to a necessary depth into the ground, and a basic crushed stone layer 3 made of crushed stone is provided at the bottom. On this basic crushed stone layer 3, a precast foundation bottom board 4 molded in advance at a factory is installed, or concrete is cast on site to provide the foundation bottom board 4. On top of this foundation base 4, stack one or more cylindrical manhole blocks 2, which are precast products, and adjust the height as necessary, then stack the uppermost manhole blocks 2 to construct the manhole housing 1 To do.

このマンホール躯体1の上端開口部は地面GLの高さに設定し、その上端開口部に設けた蓋枠9に蓋8を嵌め込むことにより、上端開口部を開閉可能とする。また、マンホール躯体1の中の前記基礎底盤4には、インバートと呼ばれる水路溝付の底盤を設け、このインバート5の水路に水が流れ込むようにマンホール躯体1の壁面に流入管10(図1参照)と流出管11とを接続する。その後、根堀した部分を埋め戻してマンホール躯体1を地中に埋設する。マンホール躯体1の内壁面には、人が足を掛けてマンホール内を昇降出来るように上下に適当な間隔でステップ7が設けられている。   The upper end opening of the manhole housing 1 is set to the height of the ground GL, and the upper end opening can be opened and closed by fitting the lid 8 into the lid frame 9 provided in the upper end opening. Further, the foundation bottom plate 4 in the manhole housing 1 is provided with a bottom plate with a water channel groove called invert, and an inflow pipe 10 (see FIG. 1) is formed on the wall surface of the manhole housing 1 so that water flows into the water channel of the invert 5. ) And the outflow pipe 11 are connected. Thereafter, the dug out portion is backfilled and the manhole housing 1 is buried in the ground. Steps 7 are provided on the inner wall surface of the manhole housing 1 at appropriate intervals in the vertical direction so that a person can step up and down the manhole.

以上は、図7により前述した従来例と同じである。但し、最近のマンホールの設置工事では、円筒形のマンホール用ブロック2の下端に圧入推進用の鋼製の刃を設け、マンホール用ブロック2を地盤に圧入しながら推進すると共に、マンホール用ブロック2の中の土砂を地面上に排出し、これによりマンホール躯体1を地中に構築する立坑推進工法も行われている。
但し本発明は、ここに例示された工法の他、何れの工法で構築されるマンホールにも適用が可能であることはもちろんである。
The above is the same as the conventional example described above with reference to FIG. However, in recent manhole installation work, a steel blade for press-fitting propulsion is provided at the lower end of the cylindrical manhole block 2, and the manhole block 2 is propelled while being pressed into the ground. A shaft propulsion method is also performed in which the earth and sand inside is discharged onto the ground, thereby building the manhole housing 1 in the ground.
However, it goes without saying that the present invention can be applied to manholes constructed by any method other than the method exemplified here.

さらに本発明では、マンホール躯体1の基礎底盤4の下の地盤に通じる水抜部6をマンホール躯体1の壁部に設ける。この第一の実施例では、マンホール躯体1の内壁面に設けたステップ7の両側に内筒15を2本立設し、この内筒15の中を水抜部6としている。この内筒15は、ステンレス等の金属或いは塩化ビニル等の合成樹脂等からなる。その形状は、マンホール躯体1の内壁面と同じ径の部分円筒面を有する筒状のもので、その部分円筒面をマンホール躯体1の内壁面に固定した状態でステップ7の両側に対称に取り付けられ、ステップ7が両側の内筒15の間に架設されて取り付けられている。この内筒15の下端はインバート5を貫通し、水抜部6が次に述べる台座板12の水溜部14を通して基礎底盤4の下の基礎砕石層3に通じている。また、この内筒15の上端の高さは地下水位GWLより高くなるように設けられており、それより上のステップ7は通常のものが用いられる。 Further, in the present invention, the drainage portion 6 that leads to the ground below the foundation bottom 4 of the manhole housing 1 is provided on the wall portion of the manhole housing 1. In this first embodiment , two inner cylinders 15 are erected on both sides of the step 7 provided on the inner wall surface of the manhole housing 1, and the inside of the inner cylinder 15 serves as a drainage portion 6. The inner cylinder 15 is made of a metal such as stainless steel or a synthetic resin such as vinyl chloride. Its shape is a cylindrical shape having a partial cylindrical surface having the same diameter as the inner wall surface of the manhole housing 1, and is attached symmetrically to both sides of step 7 with the partial cylindrical surface fixed to the inner wall surface of the manhole housing 1. Step 7 is installed between the inner cylinders 15 on both sides. The lower end of the inner cylinder 15 penetrates the invert 5, and the drainage portion 6 communicates with the basic crushed stone layer 3 below the foundation bottom 4 through a water reservoir portion 14 of the base plate 12 described below. Further, the height of the upper end of the inner cylinder 15 is provided so as to be higher than the groundwater level GWL, and a normal step 7 is used.

基礎底板4の上に台座板12を設け、この台座板12に内筒15を貫通して立設し、その上にインバート5を施工している。台座板12は、カップを上下逆向きにしたような無底のプレキャストコンクリート部材であり、その下面には補強のための十字状のリブ13が設けられている。内筒15の下端を嵌め込む孔が図示の例では4つ予め設けられている。 A pedestal plate 12 is provided on the base bottom plate 4, the inner cylinder 15 is erected on the pedestal plate 12, and the invert 5 is constructed thereon. The base plate 12 is a bottomless precast concrete member in which a cup is turned upside down, and a cross-shaped rib 13 for reinforcement is provided on the lower surface thereof. In the illustrated example, four holes for fitting the lower end of the inner cylinder 15 are provided in advance.

また、基礎砕石層3と前記台座板12との間に設けられた基礎底盤4はリング状のものであり、中央部が空いている。これにより、この基礎底盤4と前記台座板12の下側との間に地下水を溜める水溜部14が形成される。この基礎底盤4はプレキャスト製のものを設置しても、或いは現場でコンクリート打設により成型してもどちらでもよい。   Moreover, the foundation bottom board 4 provided between the foundation crushed stone layer 3 and the said base board 12 is a ring-shaped thing, and the center part is vacant. As a result, a water reservoir 14 is formed between the foundation base 4 and the lower side of the pedestal plate 12 for storing groundwater. The foundation bottom 4 may be either precast or may be molded by concrete placement on site.

例えば、新設のマンホールでプレキャスト製の基礎底盤4を施工する場合は、基礎砕石層3の上に水平を取って基礎底盤4を設置する。そしてこの基礎底盤4の上にマンホール用ブロック2を積み上げ、マンホール躯体1を構築する。またこれと前後して基礎底盤4の上の中央部分に台座板12を載せ、これに内筒15を立設し、これをマンホール躯体1の内壁面に固定する。マンホール躯体1の内壁面にはステップ7も設ける。さらにマンホール用ブロック2の最も底の部分に生コンクリートを打設し、インバート5を成型し、その上面の形を整える。台座板12と内筒15はこのインバート5の打設時に完全に固定される。 For example, in the case of constructing a precast foundation bottom 4 in a new manhole, the foundation bottom 4 is installed horizontally on the foundation crushed stone layer 3. Then, manhole blocks 2 are stacked on the foundation bottom 4 to construct a manhole housing 1. Also, before and after this, a base plate 12 is placed on the center portion on the foundation bottom board 4, and an inner cylinder 15 is erected on this, and this is fixed to the inner wall surface of the manhole housing 1. Step 7 is also provided on the inner wall surface of the manhole housing 1. Further, ready-mixed concrete is cast on the bottommost part of the manhole block 2, the invert 5 is molded, and the shape of the upper surface thereof is adjusted. The base plate 12 and the inner cylinder 15 are completely fixed when the invert 5 is driven.

他方、インバート5がプレキャスト製の場合は、それに台座板12に合わせて内筒15を通す孔を設けておく。台座板12と孔の位置を合わせてインバート5を設置した後、インバート5側から台座板12に内筒15を差し込む。内筒15の差込深さはその下端が台座板12の下面と面一になる深さとし、孔の隙間にモルタルを充填して目詰めをする。 On the other hand, when the invert 5 is made of precast, a hole through which the inner cylinder 15 passes is provided in accordance with the base plate 12. After installing the invert 5 by aligning the positions of the base plate 12 and the holes, the inner cylinder 15 is inserted into the base plate 12 from the invert 5 side. The insertion depth of the inner cylinder 15 is set so that the lower end thereof is flush with the lower surface of the pedestal plate 12, and the gap between the holes is filled with mortar for clogging.

また例えば、既設のマンホールに施工する場合は、既設のインバートを破砕した後、コンクリート穿孔機を使用し、基礎底盤4の中央部に基礎底盤4の直径の半分程の直径の孔を開ける。その上に台座板12を載せ、プレキャスト製のインバート5を使用する場合は、前述の新設工事と同様にしてそれを台座板12の上に載せる。これらインバート5と台座板12に内筒15を立設し、これをコンクリート躯体1の内壁面に固定する。他方、インバート5を現場でコンクリートを打設して施工する場合は、台座板12に内筒15を立設して固定した後、マンホール用ブロック2の最も底の部分に生コンクリートを打設し、インバート5を再施工する。 For example, when constructing in an existing manhole, after crushing the existing invert, a concrete drilling machine is used, and a hole having a diameter about half the diameter of the foundation bottom base 4 is formed in the center of the foundation bottom base 4. When the pedestal plate 12 is placed thereon and the precast invert 5 is used, it is placed on the pedestal plate 12 in the same manner as the above-described new construction. An inner cylinder 15 is erected on the invert 5 and the base plate 12, and is fixed to the inner wall surface of the concrete frame 1. On the other hand, when constructing the invert 5 by placing concrete on site, after placing and fixing the inner cylinder 15 on the pedestal plate 12, the concrete is cast on the bottommost part of the manhole block 2. Invert 5 is reconstructed.

このマンホールでは、平時は基礎砕石層3から水溜部14を通して水抜部6に地下水が進入し、この水抜部6に地下水位GWLと同じ高さだけ水が入っている。この状態から大きな地震が起こり、これにより地盤が液状化現象を起こし、地下水の圧力が高くなると、基礎砕石層3から水溜部14を通してマンホールの基礎底盤4の下にある地下水が水抜部6の中に流れ込み、この水抜部6から地下水がマンホール躯体1の中に流れ込む。このため、マンホールの基礎底盤4の下の地下水圧の急激な増大が抑えられると共に、マンホール躯体1の中に流入した地下水の重力によりマンホールの基礎底盤4が上から押さえられる。これにより、地下水圧により基礎底盤4が下から突き上げられるのが防止され、マンホール躯体1が浮き上がらない。   In this manhole, groundwater enters the drainage part 6 from the basic crushed stone layer 3 through the water reservoir 14 during normal times, and the drainage part 6 contains water at the same height as the groundwater level GWL. When a large earthquake occurs from this state and the ground liquefies and the pressure of the groundwater increases, the groundwater under the manhole base bottom 4 from the foundation crushed stone layer 3 through the water reservoir 14 flows into the drainage section 6. The groundwater flows into the manhole housing 1 from the drainage portion 6. Therefore, a rapid increase in the groundwater pressure under the manhole foundation bottom 4 is suppressed, and the manhole foundation bottom 4 is pressed from above by the gravity of the groundwater flowing into the manhole housing 1. Thereby, it is prevented that the foundation bottom board 4 is pushed up from the bottom by a groundwater pressure, and the manhole housing 1 does not float up.

特にこのマンホールでは、その浮き上がりを決定付ける基礎底盤4の真下の地下水をマンホール躯体1の中に抜くことが出来るので、マンホール躯体1の浮き上がりを有効に防止することが出来る。水抜部6を通してマンホール躯体1の中に流入した水は、マンホール躯体1の底近くに接続した流出管11から排水される。また、液状化現象により地下地盤が流動化したとき、地下水は多くの土砂を含むことが多い。このような場合には、地下水が基礎砕石層3を通って水溜部14に流入し、ここから地下水が水抜部6に流入するため、基礎砕石層3がフィルターの役目をし、地下水から土砂を濾過し、地下水だけが水抜部6に流入する。このため、水抜部3には多くの土砂は流れ込まず、水抜部3が詰まったり、マンホール躯体1の中に土砂が貯まって配管が詰まることも防止出来る。   In particular, in this manhole, since the ground water directly under the foundation bottom 4 that determines the rising of the manhole can be drawn into the manhole housing 1, the lifting of the manhole housing 1 can be effectively prevented. The water that has flowed into the manhole housing 1 through the drainage section 6 is drained from an outflow pipe 11 connected near the bottom of the manhole housing 1. In addition, when underground ground fluidizes due to liquefaction, groundwater often contains a lot of earth and sand. In such a case, the groundwater flows into the water reservoir 14 through the basic crushed stone layer 3, and the groundwater flows into the drainage portion 6 from here, so the basic crushed stone layer 3 serves as a filter, and the earth and sand are removed from the groundwater. Filtration is performed, and only groundwater flows into the drainage section 6. For this reason, a lot of earth and sand does not flow into the drainage part 3, and it is possible to prevent the drainage part 3 from being clogged, or to prevent clogging of the piping due to accumulation of earth and sand in the manhole housing 1.

図4は、本発明の第二の実施例であるマンホールを示す縦断側面図、図5は、B−B’線断面図、図6は、その縦断正面図である。
この第二の実施例におけるマンホールの基本構造は前述した第一の実施例のものと同じであり、同じ部分は同じ符合を付して示してある。それらの部分の説明は省略する。
4 is a longitudinal side view showing a manhole according to a second embodiment of the present invention, FIG. 5 is a sectional view taken along line BB ′, and FIG. 6 is a longitudinal front view thereof.
The basic structure of the manhole in the second embodiment is the same as that of the first embodiment described above, and the same parts are indicated by the same reference numerals. Description of these parts is omitted.

この第二の実施例が前述した第一の実施例と異なるのは、マンホール躯体1の内側に円筒形の内筒15を設け、マンホール躯体1と内筒15との間の空間を水抜部6としている点である。この内筒15の外側の水抜部6の下側はインバート5を貫通し、次に述べる台座板12の水溜部14を通して基礎底盤4の下の基礎砕石層3に通じている。   The second embodiment is different from the first embodiment described above in that a cylindrical inner cylinder 15 is provided inside the manhole casing 1 and the space between the manhole casing 1 and the inner cylinder 15 is provided as a drainage portion 6. It is a point to be. The lower side of the drainage portion 6 outside the inner cylinder 15 penetrates the invert 5 and communicates with the basic crushed stone layer 3 below the base bottom plate 4 through a water reservoir portion 14 of the base plate 12 described below.

このマンホールでは、平時は基礎砕石層3を通して水抜部6に地下水が進入し、この水抜部6に地下水位GWLと同じ高さだけ水が入っている。この状態から大きな地震が起こり、これにより地盤が液状化現象を起こし、地下水の圧力が高くなると、基礎砕石層3を通してマンホールの基礎底盤4の下にある地下水が水抜部6の中に流れ込み、この水抜部6から地下水がマンホール躯体1の中に流れ込む。これにより、マンホールの基礎底盤4の下の地下水圧の急激な増大が抑えられると共に、マンホール躯体1の中に流入した地下水によりマンホールの基礎底盤4が上から抑えられ、マンホール躯体1が浮き上がらないことは前述した第一の実施例と同様である。   In this manhole, groundwater enters the drainage section 6 through the basic crushed stone layer 3 during normal times, and the drainage section 6 contains water at the same height as the groundwater level GWL. When a large earthquake occurs from this state and the ground liquefies, and the pressure of the groundwater increases, the groundwater under the foundation bottom 4 of the manhole flows into the drainage part 6 through the foundation crushed stone layer 3, Groundwater flows from the drainage section 6 into the manhole housing 1. As a result, the rapid increase in the groundwater pressure under the manhole foundation floor 4 is suppressed, and the manhole foundation floor 4 is suppressed from above by the groundwater flowing into the manhole chassis 1 so that the manhole chassis 1 does not rise. Is the same as in the first embodiment described above.

本発明の一実施例であるマンホールを示す縦断側面図である。It is a vertical side view which shows the manhole which is one Example of this invention. 図1のA−A’線断面図である。FIG. 2 is a cross-sectional view taken along line A-A ′ of FIG. 1. 同実施例であるマンホールを示す縦断正面図である。It is a vertical front view which shows the manhole which is the same Example. 本発明の他の実施例であるマンホールを示す縦断側面図である。It is a vertical side view which shows the manhole which is the other Example of this invention. 図1のB−B’線断面図である。FIG. 2 is a sectional view taken along line B-B ′ of FIG. 1. 同実施例であるマンホールを示す縦断正面図である。It is a vertical front view which shows the manhole which is the same Example. マンホールの従来例を示す縦断正面図である。It is a vertical front view which shows the prior art example of a manhole.

符号の説明Explanation of symbols

1 マンホール躯体
3 基礎砕石層
4 基礎底盤
6 水抜部
12 台座板
14 水溜部
GL 地面
GWL 地下水位
DESCRIPTION OF SYMBOLS 1 Manhole frame 3 Foundation crushed stone layer 4 Base bottom 6 Drainage part 12 Base plate 14 Reservoir part GL Ground GWL Groundwater level

Claims (2)

地中に設けた基礎底盤(4)の上に筒状のマンホール躯体(1)を設け、これらを地中に埋設すると共に、その開口部を地面(GL)に開口したマンホールにおいて、マンホールの底盤を形成するインバート(5)の下に台座板(12)を設け、この台座板(12)の下に基礎底盤(4)の下の地盤に通じる水溜部(14)を形成し、前記台座板(12)に内筒(15)を立設することにより、この内筒(15)の内部又は内筒(15)とコンクリート躯体(1)との間に水抜部(6)を形成し、この水抜部(6)の下端を前記台座板(12)の下の水溜部(14)に通じさせると共に、同水抜部(6)の上端をマンホール躯体(1)の中に配置したことを特徴とするマンホール。 In the manhole in which the cylindrical manhole housing (1) is provided on the foundation bottom plate (4) provided in the ground and these are buried in the ground and the opening is opened to the ground (GL), the bottom plate of the manhole A base plate (12) is provided under the invert (5) forming the base plate, and a water reservoir (14) leading to the ground under the base bottom plate (4) is formed under the base plate (12), and the base plate By erecting the inner cylinder (15) on (12), a drainage part (6) is formed inside the inner cylinder (15) or between the inner cylinder (15) and the concrete casing (1). The lower end of the drainage part (6) is connected to the water reservoir (14) under the base plate (12), and the upper end of the drainage part (6) is arranged in the manhole housing (1). Manhole to do. 水抜部(6)は、マンホール躯体(1)の壁部に設けたステップ(7)の両側に設けられていることを特徴とする請求項1に記載のマンホール。 2. The manhole according to claim 1, wherein the drainage part (6) is provided on both sides of the step (7) provided on the wall part of the manhole housing (1).
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