JP4953296B2 - Hull frictional resistance reduction device - Google Patents

Hull frictional resistance reduction device Download PDF

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JP4953296B2
JP4953296B2 JP2006332486A JP2006332486A JP4953296B2 JP 4953296 B2 JP4953296 B2 JP 4953296B2 JP 2006332486 A JP2006332486 A JP 2006332486A JP 2006332486 A JP2006332486 A JP 2006332486A JP 4953296 B2 JP4953296 B2 JP 4953296B2
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gas
hull
pressure gas
gas chamber
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JP2008143345A (en
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英幹 川島
久宣 川島
宗彦 日夏
良明 児玉
雅彦 牧野
利文 堀
将史 大縄
我行 迫田
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National Maritime Research Institute
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Description

本発明は、航行中の船体の船底部外面に沿う水の摩擦抵抗を低減させるための装置に関する。   The present invention relates to a device for reducing the frictional resistance of water along the outer surface of the bottom of a hull during navigation.

航行中の船舶では、一般に船底部の没水表面に水の摩擦抵抗を受けており、特に大型船の場合には船体抵抗の大部分が船底部における外水の相対流により生じる摩擦抵抗で占められている。
そこで、航行時に船底面を気泡流で覆うことにより船体摩擦抵抗の低減を図る技術が、古くから提案されている。そして、上記気泡流が船底面から側方へ拡散するのを抑制できるように、船底面に沿い船長方向へ延在する複数の拡散抑制板を設けたものも開発されている。
特許第3692398号公報 特開2002−68073号公報 特開2000−296797号公報
In navigating vessels, the submerged surface of the bottom of the ship generally receives frictional resistance of water, and in the case of large ships in particular, most of the hull resistance is occupied by the frictional resistance generated by the relative flow of outside water at the bottom of the ship. It has been.
Therefore, a technique for reducing the hull frictional resistance by covering the bottom of the ship with a bubble flow during navigation has been proposed for a long time. And what provided the some diffusion suppression board extended in the ship length direction along the ship bottom so that the said bubble flow can suppress spreading | diffusion from the ship bottom to the side is also developed.
Japanese Patent No. 3692398 JP 2002-68073 A JP 2000-296797 A

一般に、船舶は航行中に風や波浪により船体の動揺を生じやすく、このため摩擦抵抗低減用の気泡で常時船底面を一様に包むことは困難とされ、特に船側に近い船底面では、船体の横揺れに伴い傾斜して上昇した際に、気泡が船体から離れてしまうという不具合がある。
また、船底部の全面にわたって気泡噴出口を設けることは、大幅なコスト上昇を招くことになる。
そこで本発明者らは、試験水槽において約6m/secで走らせる大型模型船(長さ50メートル)の船首船底部に、底板の無い気体室を設けて、同気体室を高圧気体供給源に接続するとともに、同気体室から下方へ放出されて船底外面に沿い後方へ相対的に流れる気体が、船底部の側方へ逸脱するのを防止できるように、気体保持板を船底両側部に設けて実験を行ったところ、上記気体室の底部から噴出し層状の流れとなった気体が、自動的に気泡流に変化して船底下面に沿い後方へ効率よく流れるという結果が得られた。
上述の知見に基づき、本発明は、航行時に船底下面に沿い気泡流を後方へ流すための手段として、従来用いられていた多数の小孔を有する底板やメッシュなどによる気泡発生部を設けることなく、船首船底部における気体室の底板の無い底部開口から水中へ圧入され後方へ相対的に流れる気体と船底両側部に沿う気体保持板との相乗作用により、船体摩擦抵抗低減用の気泡流を船底外板の外面に沿い効率よく後方へ流せるようにした、船体摩擦抵抗低減装置を提供することを課題とする。
In general, a ship is likely to be shaken by wind and waves during navigation, so it is difficult to always wrap the bottom of the ship uniformly with bubbles for reducing frictional resistance, especially on the bottom of the ship close to the ship side. There is a problem that the bubbles are separated from the hull when they are tilted and lifted along with the rolling motion.
In addition, providing the bubble ejection port over the entire surface of the ship bottom causes a significant cost increase.
Therefore, the present inventors provide a gas chamber without a bottom plate at the bottom of the bow of a large model ship (length: 50 meters) that runs at about 6 m / sec in a test water tank, and uses the gas chamber as a high-pressure gas supply source. Gas holding plates are provided on both sides of the bottom of the ship so that the gas can be prevented from deviating to the side of the bottom of the ship while being connected and released from the gas chamber downward and flowing relatively backward along the outer surface of the ship. As a result of the experiment, it was found that the gas ejected from the bottom of the gas chamber into a laminar flow automatically changed into a bubble flow and efficiently flowed rearward along the bottom of the ship bottom.
Based on the above-mentioned knowledge, the present invention provides a means for flowing the bubble flow backward along the bottom surface of the ship bottom during navigation, without providing a bubble generating part using a bottom plate or mesh having a number of small holes that has been conventionally used. The bubble flow for reducing the hull frictional resistance is generated by the synergistic action of the gas that flows into the water from the bottom opening without the bottom plate of the gas chamber at the bottom of the bow and flows into the water relatively and the gas holding plates along both sides of the bottom of the ship. It is an object of the present invention to provide a hull frictional resistance reduction device capable of efficiently flowing backward along the outer surface of the outer plate.

前述の課題を解決するため、本発明の船体摩擦抵抗低減装置は、航行時に船首部から後方へ向けて船底下面に沿い相対的に流れる気泡流を形成すべく、船首船底部において下方へ気体を放出しうる気体室が船幅方向に設けられるとともに、同気体室へバルブを介し接続された高圧気体供給源を備え、上記気体室から水中へ圧入されて船底下面に沿う層状の流れから上記気泡流に変化すべき気体および同気泡流の船体側方への逸脱を防止するための左右一対の気体保持板が、船底両側部に沿いそれぞれ船首部から船尾部へ向けて船底下面に突設されており、航行中における上記気体の放出を促進すべく上記気体室の内部が同気体室の底板の無い底部開口を通じ水中へ開放されるとともに、航行中における上記船体の対水速度に応じて上記気体室からの気体噴出量を制御すべく、船速計で検出された船速に基づき上記気体室へ供給される高圧気体供給量を上記高圧気体供給管に接続された上記高圧気体供給源の制御あるいは上記バルブの開度により調整するための制御系が設けられ、上記船速計で検出された船速が低い場合は上記制御系で気体の噴出を抑制するように調整することを特徴としている。 In order to solve the above-described problems, the hull frictional resistance reduction device of the present invention is configured to allow gas to flow downward at the bow bottom to form a bubble flow that flows relatively along the bottom bottom surface from the bow toward the rear during navigation. A gas chamber that can be discharged is provided in the width direction of the ship and includes a high-pressure gas supply source connected to the gas chamber via a valve, and the bubbles are formed from a layered flow along the bottom surface of the ship bottom that is press-fitted into the water from the gas chamber. A pair of left and right gas retaining plates that protrude from the bow to the stern along the sides of the bottom of the ship are projected on the bottom of the bottom of the ship along both sides of the bottom it has been open interior of the gas chamber in order to facilitate the release of the gas during sailing is into water through a free bottom opening of the bottom plate of the gas chamber Rutotomoni, the depending on to water speed of the boat during sailing Gas chamber In order to control the gas ejection amount from the above, the high-pressure gas supply amount connected to the high-pressure gas supply pipe is controlled by the high-pressure gas supply amount supplied to the gas chamber based on the ship speed detected by the ship speedometer, or A control system for adjusting according to the opening degree of the valve is provided, and when the ship speed detected by the ship speedometer is low, the control system is adjusted so as to suppress gas ejection .

また、本発明の船体摩擦抵抗低減装置は、上記気体室の頂壁に上記高圧気体供給源から導かれる高圧気体供給管が接続されるとともに、同高圧気体供給管の上記頂壁への接続部開口から下方へやや離隔した位置において、上記気体室の内部に高圧気体流を受けるためのバッフルプレートが設けられていることを特徴としている。   Further, the hull frictional resistance reducing device of the present invention is connected to the top wall of the gas chamber with a high-pressure gas supply pipe led from the high-pressure gas supply source, and connected to the top wall of the high-pressure gas supply pipe A baffle plate for receiving a high-pressure gas flow is provided inside the gas chamber at a position slightly spaced downward from the opening.

さらに、本発明の船体摩擦抵抗低減装置は、複数の上記気体室が、船幅方向に列をなして設けられており、航行中における上記気泡流の船幅方向での均一化を図るべく、上記制御系が、船体の横揺れセンサで検出される船体横傾斜角に基づいて船体の横傾斜により喫水の浅くなる側の上記気体室への高圧気体の供給量を喫水の深くなる側の上記気体室への高圧気体の供給量よりも減少させるように上記バルブを制御することを特徴としている。 Furthermore, in the hull frictional resistance reduction device of the present invention, a plurality of the gas chambers are provided in a row in the ship width direction, and in order to make the bubble flow uniform in the ship width direction during navigation, The control system determines the supply amount of high-pressure gas to the gas chamber on the side where the draft becomes shallow due to the lateral inclination of the hull based on the hull lateral inclination angle detected by the hull roll sensor. than the supply amount of the high-pressure gas to the gas chamber is characterized and Turkey controls the valve to reduce.

また、本発明の船体摩擦抵抗低減装置は、上記高圧気体供給制御系が、上記船体の横傾斜の際に、喫水の最も浅くなる側の上記気体室への高圧気体供給を停止すべく、同気体室に対応する上記バルブを閉じるように設定されていることを特徴としている。   Further, the hull frictional resistance reduction device of the present invention is configured so that the high-pressure gas supply control system stops the high-pressure gas supply to the gas chamber on the side where the draft is shallowest when the hull is laterally inclined. The valve is set to close the valve corresponding to the gas chamber.

さらに、本発明の船体摩擦抵抗低減装置は、上記左右一対の気体保持板の相互間における船底下面に、船首部から船尾部へ向けて延在する中間気体保持板が突設されていることを特徴としている。   Further, in the hull frictional resistance reduction device of the present invention, an intermediate gas holding plate extending from the bow portion toward the stern portion is projected on the bottom surface of the bottom between the pair of left and right gas holding plates. It is a feature.

上述の本発明の船体摩擦抵抗低減装置では、航行時に、船首船底部において船幅方向に設けられた気体室の底板の無い底部開口を通じ効率よく水中へ圧入された気体が、船体の進行に伴い船底下面に沿う層状の流れから大量の気泡流に変化して船底下面を蔽うようになるので、同気泡流の船体側方への逸脱が左右一対の気体保持板により防止されることと相まって、船体の相対水流による摩擦抵抗の大幅な軽減に寄与できるようになる。
また、船舶の対水速度が小さい場合は船体の外水による摩擦抵抗も小さくなるので、航行中における船体の対水速度に応じて上記気体室からの気体噴出量を制御できるように、上記制御系が船速計で検出された船速に基づき上記気体室へ供給される高圧気体供給量を上記バルブの開度により調整できるように設定されていると、船速の低い場合は気体の噴出を抑制できるようにして高圧気体供給量の節減を図ることができる。
さらに、航行中における船体の対水速度に応じて上記気体室からの気体噴出量を制御できるように、船速計で検出された船速に基づき、上記気体室へ供給される高圧気体供給量を上記高圧気体供給管に接続された上記高圧気体供給源の制御により調整するための制御系が設けられている場合も、船速の低いときに気体の噴出を抑制して、高圧気体供給量の節減を図ることができる。
In the above-described hull frictional resistance reduction device of the present invention, during navigation, the gas that is efficiently injected into the water through the bottom opening without the bottom plate of the gas chamber provided in the ship width direction at the bow bottom is accompanied by the progress of the hull. Since it changes from a laminar flow along the bottom surface of the ship to a large amount of bubble flow and covers the bottom surface of the ship bottom, coupled with the fact that the deviation of the bubble flow to the side of the hull is prevented by a pair of left and right gas holding plates, This will contribute to a significant reduction in frictional resistance due to the relative water flow of the hull.
In addition, when the water speed of the ship is low, the frictional resistance due to the outside water of the hull is also reduced, so that the above control is performed so that the amount of gas jetted from the gas chamber can be controlled according to the water speed of the hull during navigation. When the system is set so that the supply amount of the high-pressure gas supplied to the gas chamber can be adjusted by the opening of the valve based on the ship speed detected by the ship speed meter, if the ship speed is low, the gas is blown out. It is possible to reduce the amount of high-pressure gas supply.
Further, the high-pressure gas supply amount supplied to the gas chamber based on the ship speed detected by the ship speedometer so that the gas ejection amount from the gas chamber can be controlled according to the water speed of the hull during navigation. In the case where a control system for adjusting the pressure by controlling the high-pressure gas supply source connected to the high-pressure gas supply pipe is provided, the high-pressure gas supply amount is suppressed by suppressing gas ejection when the boat speed is low. Can be saved.

そして、上記気体室の頂壁に接続された高圧気体供給管から同気体室内へ噴入する高圧気体を受けるためのバッフルプレートが設けられていると、同バッフルプレートの作用で上記気体室に充満した高圧気体が、同気体室の底板の無い底部開口から水中へほぼ一様な状態で圧入されるようになり、このようにして効率よく船底面に沿い相対的に後方へ流れる気泡流の発生が可能になる。   And when the baffle plate for receiving the high pressure gas injected into the gas chamber from the high pressure gas supply pipe connected to the top wall of the gas chamber is provided, the gas chamber is filled by the action of the baffle plate. The high-pressure gas is injected into the water from the bottom opening without the bottom plate of the gas chamber into the water in a substantially uniform state. Is possible.

また、複数の上記気体室が船幅方向に列をなして設けられて、船体の横揺れセンサで検出される船体横傾斜角に基づいて、同船体の横傾斜により喫水の浅くなる側の上記気体室への高圧気体供給量を喫水の深くなる側の上記気体室への気体供給量よりも減少させるように、上記バルブの開度制御を行う高圧気体供給制御系を備えていると、船底部下面を覆うための気泡の配分が無駄なく適切に行われるようになる。   In addition, a plurality of the gas chambers are provided in a row in the width direction of the ship, and based on the hull lateral inclination angle detected by the hull roll sensor, the side of the draft becomes shallower due to the horizontal inclination of the hull. A ship equipped with a high-pressure gas supply control system for controlling the opening of the valve so as to reduce the amount of high-pressure gas supplied to the gas chamber to be less than the amount of gas supplied to the gas chamber on the deeper side of the draft; Distribution of the bubbles for covering the bottom surface of the bottom portion is appropriately performed without waste.

さらに、上記高圧気体供給制御系が、上記船体の横傾斜の際に、喫水の最も浅くなる側の上記気体室への高圧気体供給を停止すべく、同気体室に対応する上記バルブを閉じるように設定されていると、航行中の船舶の旋回時などに船体が大きく横傾斜した際にも、船底部外面への気体供給量の配分が無駄なく適切に行われるようになる。   Further, the high-pressure gas supply control system closes the valve corresponding to the gas chamber so as to stop the high-pressure gas supply to the gas chamber on the side where the draft is shallowest when the hull is inclined sideways. When the vessel is set to, even when the hull is largely tilted when turning a marine vessel that is navigating, the gas supply amount is appropriately distributed to the outer surface of the bottom of the vessel without waste.

また、上記左右一対の気体保持板の相互間における船底下面に、船首部から船尾部へ向けて延在する中間気体保持板が突設されていると、船底下面に沿う気流および気泡群の保持が一層適切に行われるようになって、航行時における船体摩擦抵抗の低減に寄与できるようになる。   Further, when an intermediate gas holding plate extending from the bow portion toward the stern portion is provided on the bottom surface of the ship bottom between the pair of left and right gas holding plates, the airflow and the bubble group are maintained along the bottom surface of the ship bottom. Is more appropriately performed, and can contribute to the reduction of the hull frictional resistance during navigation.

図1は本発明の一実施例としての船体摩擦抵抗低減装置を備えた船舶の側面図、図2は図1のA−A矢視線における船体底面図、図3は図1のB−B線に沿う拡大断面図、図4は図3のC−C矢視断面図、図5は上記装置の制御系を示す系統図、図6は図3に対応させて本発明の変形例を示す船体横断面図である。   FIG. 1 is a side view of a ship provided with a hull frictional resistance reducing device as one embodiment of the present invention, FIG. 2 is a hull bottom view taken along the line AA in FIG. 1, and FIG. 3 is a BB line in FIG. 4 is a sectional view taken along the line CC of FIG. 3, FIG. 5 is a system diagram showing a control system of the above apparatus, and FIG. 6 is a hull showing a modification of the present invention corresponding to FIG. It is a cross-sectional view.

図1,2に示すように、大型船として構成された船舶の船底部1において、図2,3に示すごとく船首部の底部の船内で船幅方向に形成された気体室2が設けられている。   As shown in FIGS. 1 and 2, a gas chamber 2 formed in the ship width direction is provided in the bottom of the bow as shown in FIGS. Yes.

気体室2は船底部1の幅方向にわたって隔壁2bにより3個の気体室2aに分割されており、図4に示すように各気体室2aに対応する船底外板部分は切り欠かれて、底板の無い底部開口1aが形成されている。このようにして各気体室2aは、気体放出部としての機能を具備している。   The gas chamber 2 is divided into three gas chambers 2a by a partition wall 2b over the width direction of the ship bottom portion 1, and as shown in FIG. 4, the ship bottom outer plate portion corresponding to each gas chamber 2a is cut off, A bottom opening 1a without a gap is formed. Thus, each gas chamber 2a has a function as a gas discharge part.

すなわち、図3〜5に示すように、各気体室2aへ通じる高圧気体供給管3が船内に配設され、各高圧気体供給管3には、図5に示すように、気体流量制御部D(図3参照)を構成するためのバルブ5および流量計6が介装されていて、その本管3Aは元栓7を介し1.5〜5気圧程度の高圧気体の発生源としてのエア・コンプレッサ(またはエア・ブロワ)8に接続されている。なお、図3に示すように、エア・コンプレッサ8と元栓7との間には高圧空気室8aを介在させるようにしてもよい。   That is, as shown in FIGS. 3 to 5, a high-pressure gas supply pipe 3 leading to each gas chamber 2a is disposed in the ship, and each high-pressure gas supply pipe 3 has a gas flow rate control unit D as shown in FIG. A valve 5 and a flow meter 6 for constituting (see FIG. 3) are provided, and the main pipe 3A is an air compressor as a source of high-pressure gas of about 1.5 to 5 atm via a main plug 7. (Or air blower) 8 is connected. As shown in FIG. 3, a high-pressure air chamber 8 a may be interposed between the air compressor 8 and the main plug 7.

各気体室2aには、その頂壁に接続された高圧気体供給管3の上記頂壁への接続開口から下方へやや離隔した位置において、高圧気体流を受けるためのバッフルプレート16がアーム16aを介し支持されるようにして設けられている。   In each gas chamber 2a, a baffle plate 16 for receiving a high-pressure gas flow is attached to the arm 16a at a position slightly spaced downward from the connection opening to the top wall of the high-pressure gas supply pipe 3 connected to the top wall. It is provided so that it may be supported.

そして、図4に示すように、航行中に各気体室2aの底部開口1aから噴出し船底部1の外面に沿って流れる層状の気流および同気流の変化した気泡流の分布の均一化を図るため、図5に示すごとく、船体の横揺れセンサ9と、同横揺れセンサ9で検出される船体横傾斜角に基づいて各気体室2aへの高圧気体供給量を制御する高圧気体供給制御系10とが設けられている。   Then, as shown in FIG. 4, the distribution of the laminar air flow flowing from the bottom opening 1 a of each gas chamber 2 a along the outer surface of the ship bottom portion 1 during the navigation and the changed bubble flow of the air flow is made uniform. Therefore, as shown in FIG. 5, a hull roll sensor 9 and a high-pressure gas supply control system for controlling the amount of high-pressure gas supplied to each gas chamber 2a based on the hull lateral tilt angle detected by the roll sensor 9 And 10 are provided.

すなわち、高圧気体供給制御系10は、横揺れセンサ9からの検出情報に基づき、船体の横傾斜の際に、喫水の浅くなる側の気体室2aへの高圧気体供給量を、喫水の深くなる側の気体室2aへの高圧気体供給量よりも減少させるべく、バルブ5の開度を制御できるように構成されている。   In other words, the high-pressure gas supply control system 10 increases the draft of the high-pressure gas supply amount to the gas chamber 2a on the side where the draft becomes shallow, when the hull is inclined, based on the detection information from the roll sensor 9. The opening degree of the valve 5 can be controlled so as to reduce the amount of the high-pressure gas supplied to the gas chamber 2a on the side.

また、高圧気体供給制御系10は、横揺れセンサ9からの検出情報に基づき、船体の横傾斜の際に、喫水の最も浅くなる側の気体室2aへの高圧気体供給を停止すべく、同気体室2aに対応するバルブ5を閉じるように設定されている。   The high-pressure gas supply control system 10 is configured to stop the high-pressure gas supply to the gas chamber 2a on the side where the draft is shallowest when the hull is inclined, based on the detection information from the roll sensor 9. The valve 5 corresponding to the gas chamber 2a is set to be closed.

さらに、航行中における船体の対水速度に応じて各気体室2aの底部開口1aからの気体噴出量を制御できるように、高圧気体供給制御系10が船速計11で検出された船速に基づき気体室2aへ供給される高圧気体供給量をバルブ5の開度によって調節できるように設定されている。   Further, the high-pressure gas supply control system 10 adjusts the ship speed detected by the ship anemometer 11 so that the gas ejection amount from the bottom opening 1a of each gas chamber 2a can be controlled according to the water speed of the hull during navigation. It is set so that the amount of high-pressure gas supplied to the gas chamber 2 a can be adjusted based on the opening of the valve 5.

また、航行中における船体の対水速度に応じて、底部開口1aからの気体噴出量を制御できるように、船速計11で検出された船速に基づき気体室2aへ供給される高圧気体供給量を高圧気体発生源としてのエア・コンプレッサ8の制御により調節するための制御系として、エア・コンプレッサ制御系12も設けられている。   Further, a high-pressure gas supply that is supplied to the gas chamber 2a based on the ship speed detected by the ship speedometer 11 so that the gas ejection amount from the bottom opening 1a can be controlled according to the water speed of the hull during navigation. An air compressor control system 12 is also provided as a control system for adjusting the amount by controlling the air compressor 8 as a high-pressure gas generation source.

本実施例では、特に航行時において船首船底部の気体室2aの底部開口1aから水中へ圧入されて船底下面に沿い後方へ流れる気体の層状の流れおよび気泡流が、船体側方へ逸脱するのを防止できるように、図1〜3に示すごとく、左右一対の気体保持板15,15が、船底両側部に沿い、それぞれ船首部から船尾部へ向けて船底下面に突設されている。   In this embodiment, particularly during navigation, the laminar flow and bubble flow of gas that are press-fitted into the water from the bottom opening 1a of the gas chamber 2a at the bow bottom and flow backward along the bottom surface of the ship bottom deviate to the side of the hull. 1 to 3, a pair of left and right gas holding plates 15, 15 are provided on the bottom surface of the bottom of the ship from the bow to the stern along the sides of the bottom of the ship.

なお、気体保持板15のほかに、図3に対応させて図6に示す変形例のように、各気体室2aの相互の隔壁2bの位置においても、中間気体保持板15Aを船首部から船尾部へ向けて船底下面に突設してもよい。図6において、図3と同じ符号は同様のものを示す。   In addition to the gas holding plate 15, the intermediate gas holding plate 15A is also provided from the bow portion to the stern at the position of the partition wall 2b of each gas chamber 2a as in the modification shown in FIG. 6 corresponding to FIG. You may project on the bottom of the bottom of the ship. In FIG. 6, the same reference numerals as those in FIG.

また、図4に示すごとく、各気体室2aの底部開口には、本船の停泊時にフジツボなどの海洋生物が侵入して付着するのを防止できるように、遠隔操作の可能なスライド式の開閉蓋17を設けておくことが望ましい。   In addition, as shown in FIG. 4, a slide-type opening / closing lid that can be operated remotely so as to prevent marine organisms such as barnacles from entering and adhering to the bottom opening of each gas chamber 2 a when the ship is anchored. 17 is desirable.

上述の本実施例の船体摩擦抵抗低減装置では、航行時に、船首船底部において船幅方向に列設された気体室2の底板の無い底部開口1aを通じ効率よく水中へ圧入された気体が、船体の進行に伴い船底下面に沿う層状の流れから大量の気泡流に変化して船底下面を蔽うようになるので、同気泡流の船体側方への逸脱が左右一対の気体保持板15,15により防止されることと相まって、船体の相対水流による摩擦抵抗の大幅な軽減に寄与できるようになる。   In the hull frictional resistance reduction device of the above-described embodiment, during navigation, the gas efficiently injected into the water through the bottom opening 1a without the bottom plate of the gas chamber 2 arranged in the ship width direction at the bottom of the bow is hull. As the flow progresses, the laminar flow along the bottom surface of the ship changes to a large amount of bubble flow, covering the bottom surface of the ship bottom. Coupled with being prevented, the frictional resistance due to the relative water flow of the hull can be greatly reduced.

そして、各気体室2aの頂壁に接続された高圧気体供給管3から同気体室2a内へ噴入する高圧気体を受けるためのバッフルプレート16が設けられているので、同バッフルプレート16の作用で気体室2aに充満した高圧気体が、同気体室2aの底板の無い底部開口1aから水中へほぼ一様な状態で圧入されるようになり、このようにして効率よく船底面に沿い相対的に後方へ流れる気泡流の発生が可能になる。   And since the baffle plate 16 for receiving the high pressure gas injected into the gas chamber 2a from the high pressure gas supply pipe 3 connected to the top wall of each gas chamber 2a is provided, the action of the baffle plate 16 In this way, the high-pressure gas filled in the gas chamber 2a is pressed into the water in a substantially uniform state from the bottom opening 1a without the bottom plate of the gas chamber 2a in this manner, and in this way, the gas chamber 2a is efficiently aligned along the bottom of the ship. It is possible to generate a bubble flow that flows backward.

また、複数の気体室2aが船幅方向に列をなして設けられて、船体の横揺れセンサ9で検出される船体横傾斜角に基づいて、同船体の横傾斜により喫水の浅くなる側の気体室2aへの高圧気体供給量を喫水の深くなる側の気体室2aへの気体供給量よりも減少させるように、バルブ5の開度制御を行う高圧気体供給制御系10を備えているので、船底部下面を覆うための気泡の配分が無駄なく適切に行われるようになる。   A plurality of gas chambers 2a are provided in a row in the width direction of the ship, and on the side where the draft becomes shallow due to the horizontal inclination of the hull based on the horizontal inclination angle of the hull detected by the roll sensor 9 of the hull. Since the high-pressure gas supply control system 10 that controls the opening degree of the valve 5 is provided so that the high-pressure gas supply amount to the gas chamber 2a is reduced more than the gas supply amount to the gas chamber 2a on the deeper draft side. The air bubbles for covering the bottom surface of the ship bottom are appropriately distributed without waste.

さらに、高圧気体供給制御系10が、船体の横傾斜の際に、喫水の最も浅くなる側の気体室2aへの高圧気体供給を停止すべく、同気体室2aに対応するバルブ5を閉じるように設定されているので、航行中の船舶の旋回時などに船体が大きく横傾斜した際にも、船底部外面への気体供給量の配分が無駄なく適切に行われるようになる。   Further, the high-pressure gas supply control system 10 closes the valve 5 corresponding to the gas chamber 2a so as to stop the high-pressure gas supply to the gas chamber 2a on the side where the draft is shallowest when the hull is inclined. Therefore, even when the hull is largely inclined at the time of turning of the marine vessel that is being navigated, the distribution of the gas supply amount to the outer surface of the bottom of the vessel is appropriately performed without waste.

また、船舶の対水速度が小さい場合は船体の外水による摩擦抵抗も小さくなるので、航行中における船体の対水速度に応じて気体室2aからの気体噴出量を制御できるように、高圧気体供給制御系10が船速計11で検出された船速に基づき気体室2aへ供給される高圧気体供給量をバルブ5の開度により調整できるように設定されているので、船速の低い場合は気体の噴出を抑制できるようにして高圧気体供給量の節減を図ることができる。   In addition, when the water speed of the ship is low, the frictional resistance due to the outside water of the hull is also reduced, so that the high-pressure gas can be controlled so that the gas ejection amount from the gas chamber 2a can be controlled according to the water speed of the hull during navigation. When the ship speed is low because the supply control system 10 is set so that the amount of high-pressure gas supplied to the gas chamber 2a can be adjusted by the opening of the valve 5 based on the ship speed detected by the ship speedometer 11. Can reduce the amount of high-pressure gas supply by suppressing gas ejection.

さらに、航行中における船体の対水速度に応じて気体噴出用底部開口1aからの気体噴出量を制御できるように、船速計11で検出された船速に基づき、気体室2aへ供給される高圧気体供給量を高圧気体供給管3に接続された高圧気体供給源の制御により調整するための制御系10,12が設けられているので、船速の低いときに気体の噴出を抑制して、高圧気体供給量の節減を図ることができる。   Further, based on the ship speed detected by the ship speedometer 11, the gas is supplied to the gas chamber 2a so that the amount of gas jetted from the gas jet bottom opening 1a can be controlled according to the water speed of the hull during navigation. Control systems 10 and 12 for adjusting the high-pressure gas supply amount by controlling the high-pressure gas supply source connected to the high-pressure gas supply pipe 3 are provided. Further, it is possible to reduce the amount of high-pressure gas supply.

また、左右一対の気体保持板15の相互間における船底下面に、船首部から船尾部へ向けて延在する中間気体保持板15Aが突設されていると、船底下面に沿う層状の気流および気泡群の保持が一層適切に行われるようになって、航行時における船体摩擦抵抗の低減に寄与できるようになる。   Further, when an intermediate gas holding plate 15A extending from the bow portion toward the stern portion is projected on the bottom surface of the ship bottom between the pair of left and right gas holding plates 15, layered airflow and bubbles along the bottom surface of the ship bottom The group can be held more appropriately and can contribute to the reduction of the hull frictional resistance during navigation.

本発明の一実施例としての船体摩擦抵抗低減装置を備えた船舶の側面図である。It is a side view of the ship provided with the hull frictional resistance reduction apparatus as one Example of this invention. 図1のA−A矢視線における船体底面図である。It is a ship bottom view in the AA arrow line of FIG. 図2のB−B矢視線に沿う拡大断面図である。It is an expanded sectional view which follows the BB arrow line of FIG. 図3のC−C矢視線に沿う拡大断面図である。It is an expanded sectional view which follows the CC arrow line of FIG. 上記装置の制御系を示す系統図である。It is a systematic diagram which shows the control system of the said apparatus. 図3に対応させて本発明の装置の変形例を示す船体横断面図である。FIG. 4 is a transverse cross-sectional view of a hull showing a modification of the device of the present invention corresponding to FIG. 3.

符号の説明Explanation of symbols

1 船底部
1a 底部開口
2,2a 気体室
2b 隔壁
3 高圧気体供給管
3A 本管
5 バルブ
6 流量計
7 元栓
8 エア・コンプレッサ
8a 高圧空気室
9 横揺れセンサ
10 高圧気体供給制御系
11 船速計
12 エア・コンプレッサ制御系
15 気体保持板
15A 中間気体保持板
16 バッフルプレート
16a アーム
17 開閉蓋
D 気体流量制御部
DESCRIPTION OF SYMBOLS 1 Ship bottom 1a Bottom opening 2, 2a Gas chamber 2b Bulkhead 3 High pressure gas supply pipe 3A Main pipe 5 Valve 6 Flow meter 7 Main plug 8 Air compressor 8a High pressure air chamber 9 Roll sensor
10 High-pressure gas supply control system
11 Ship speedometer
12 Air compressor control system
15 Gas retaining plate
15A Intermediate gas holding plate
16 Baffle plate
16a arm
17 Open / close lid D Gas flow control unit

Claims (5)

航行時に船首部から後方へ向けて船底下面に沿い相対的に流れる気泡流を形成すべく、船首船底部において下方へ気体を放出しうる気体室が船幅方向に設けられるとともに、同気体室へバルブを介し接続された高圧気体供給源を備え、上記気体室から水中へ圧入されて船底下面に沿う層状の流れから上記気泡流に変化すべき気体および同気泡流の船体側方への逸脱を防止するための左右一対の気体保持板が、船底両側部に沿いそれぞれ船首部から船尾部へ向けて船底下面に突設されており、航行中における上記気体の放出を促進すべく上記気体室の内部が同気体室の底板の無い底部開口を通じ水中へ開放されるとともに、航行中における上記船体の対水速度に応じて上記気体室からの気体噴出量を制御すべく、船速計で検出された船速に基づき上記気体室へ供給される高圧気体供給量を上記高圧気体供給管に接続された上記高圧気体供給源の制御あるいは上記バルブの開度により調整するための制御系が設けられ、上記船速計で検出された船速が低い場合は上記制御系で気体の噴出を抑制するように調整することを特徴とする、船体摩擦抵抗低減装置。 In order to form a bubble flow that flows relatively along the bottom bottom of the ship bottom from the bow to the rear during navigation, a gas chamber capable of releasing gas downward is provided at the bow bottom in the ship width direction. A high-pressure gas supply source connected via a valve is provided, and the gas to be changed from the laminar flow along the bottom surface of the ship bottom into the water by being pressed into the water from the gas chamber and the deviation of the bubble flow to the side of the hull A pair of left and right gas retaining plates for prevention are provided on the bottom of the bottom of the ship from the bow to the stern along the sides of the bottom of the ship. internal is opened into water through a bottom without bottom opening of plate of the gas chamber Rutotomoni, to control the gas ejection amount from the gas chamber in accordance with to water speed of the boat during sailing, is detected by the boat speed meter Based on ship speed A control system for adjusting the amount of high-pressure gas supplied to the gas chamber by controlling the high-pressure gas supply source connected to the high-pressure gas supply pipe or the opening of the valve is provided. A hull frictional resistance reduction device, wherein when the detected ship speed is low, the control system is adjusted to suppress gas ejection . 上記気体室の頂壁に上記高圧気体供給源から導かれる高圧気体供給管が接続されるとともに、同高圧気体供給管の上記頂壁への接続部開口から下方へやや離隔した位置において、上記気体室の内部に高圧気体流を受けるためのバッフルプレートが設けられていることを特徴とする、請求項1に記載の船体摩擦抵抗低減装置。   A high-pressure gas supply pipe led from the high-pressure gas supply source is connected to the top wall of the gas chamber, and the gas is located at a position slightly spaced downward from the connection opening to the top wall of the high-pressure gas supply pipe. The hull frictional resistance reduction device according to claim 1, wherein a baffle plate for receiving a high-pressure gas flow is provided inside the chamber. 複数の上記気体室が、船幅方向に列をなして設けられており、航行中における上記気泡流の船幅方向での均一化を図るべく、上記制御系が、船体の横揺れセンサで検出される船体横傾斜角に基づいて船体の横傾斜により喫水の浅くなる側の上記気体室への高圧気体の供給量を喫水の深くなる側の上記気体室への高圧気体の供給量よりも減少させるように上記バルブを制御することを特徴とする、請求項1または2に記載の船体摩擦抵抗低減装置。 A plurality of the gas chambers are provided in a row in the ship width direction, and the control system detects with the roll sensor of the hull to make the bubble flow uniform in the ship width direction during navigation. The amount of high-pressure gas supplied to the gas chamber on the side where the draft becomes shallower than the amount of high-pressure gas supplied to the gas chamber on the side where the draft becomes deeper due to the horizontal inclination of the hull characterized the Turkey controls the valve so as to, ship-body frictional resistance reducing device according to claim 1 or 2. 上記高圧気体供給制御系が、上記船体の横傾斜の際に、喫水の最も浅くなる側の上記気体室への高圧気体供給を停止すべく、同気体室に対応する上記バルブを閉じるように設定されていることを特徴とする、請求項3に記載の船体摩擦抵抗低減装置。   The high-pressure gas supply control system is set to close the valve corresponding to the gas chamber in order to stop the high-pressure gas supply to the gas chamber on the side where the draft becomes the shallowest when the hull is inclined horizontally. The hull frictional resistance reduction device according to claim 3, wherein the hull frictional resistance reduction device is provided. 上記左右一対の気体保持板の相互間における船底下面に、船首部から船尾部へ向けて延在する中間気体保持板が突設されていることを特徴とする、請求項1〜のいずれか1つに記載の船体摩擦抵抗低減装置。 The ship bottom underside between each other the pair of gas holding plate, wherein the intermediate gas holding plate extending toward the bow to the stern portion is protruded, claim 1-4 The hull frictional resistance reduction device as described in one.
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CN101412435B (en) * 2002-05-07 2011-10-05 Dk集团荷属安的列斯群岛公司 Air cavity vessel

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JP2009248611A (en) * 2008-04-01 2009-10-29 National Maritime Research Institute Frictional resistance reduction device for ship
CN109641636A (en) * 2016-08-30 2019-04-16 银流技术公司 The air lubrication systems with wave deflector for ship

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