JP2011199144A - Magnetism controlling device and method - Google Patents

Magnetism controlling device and method Download PDF

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JP2011199144A
JP2011199144A JP2010066312A JP2010066312A JP2011199144A JP 2011199144 A JP2011199144 A JP 2011199144A JP 2010066312 A JP2010066312 A JP 2010066312A JP 2010066312 A JP2010066312 A JP 2010066312A JP 2011199144 A JP2011199144 A JP 2011199144A
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JP5597421B2 (en
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Keiichi Takita
圭一 瀧田
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Toshiba Mitsubishi Electric Industrial Systems Corp
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Abstract

PROBLEM TO BE SOLVED: To provide a magnetism controlling device and method controlling the magnetic waveform formed by magnetism generated from a structure to be the same as a simulatively set magnetic waveform of a different structure.SOLUTION: The magnetism controlling device includes a magnetic detection unit 10 detecting the magnetism generated from the structure, a storage unit 20 storing in advance magnetic waveforms according to the kinds of a plurality of different structures as samples of simulation targets, a differential arithmetic operation unit 30 arithmetically operating a magnetic difference between the magnetic waveform formed by the magnetism generated from the structure and the magnetic waveform set as the simulation target of the structure, a control unit 40 controlling power supply to generate the magnetism of the difference operated by the differential arithmetic operation unit, a power supply unit 50 supplying the power under the control of the control unit, and a magnetic generation unit 60 generating the magnetism with the power supplied from the power supply unit.

Description

本発明は、構造物が発生する磁気を制御する磁気制御装置及び方法に関する。   The present invention relates to a magnetic control apparatus and method for controlling magnetism generated by a structure.

船艇は、地磁気の影響によって船体に磁気を帯び、また磁界を発生する。さらに、搭載する電気機器を流れる電流によっても磁界を発生する。船体が発生する磁気には、(1)誘導磁気、(2)永久磁気、(3)渦電流磁界、(4)漂遊磁界がある。   Ships magnetize the hull due to the influence of geomagnetism and generate a magnetic field. Furthermore, a magnetic field is also generated by the current flowing through the mounted electrical equipment. The magnetism generated by the hull includes (1) induction magnetism, (2) permanent magnetism, (3) eddy current magnetic field, and (4) stray magnetic field.

(1)誘導磁気は、磁性材からなる船体が地磁気に反応して発生する磁気であり、磁力線に対して船体の方向が変わると、発生する磁気が変わる。   (1) Inductive magnetism is a magnetism generated in response to geomagnetism in a hull made of a magnetic material, and the generated magnetism changes when the direction of the hull changes with respect to the lines of magnetic force.

(2)永久磁気は、船体の建造中や修理中に衝撃や熱、応力によって船体を構成する磁性材が磁化し、発生するものである。永久磁気は、建造地及び船体の地磁気に対する向きにより大きさが決定される。   (2) Permanent magnetism is generated when the magnetic material constituting the hull is magnetized by impact, heat or stress during construction or repair of the hull. The magnitude of the permanent magnetism is determined by the orientation of the building site and the hull with respect to the geomagnetism.

(3)渦電流磁界は、銅やアルミニウムなどの非磁性材が地磁気の中を動くことで、非磁性材に渦電流が流れて発生する磁界であり、発電機と同じ原理である。   (3) An eddy current magnetic field is a magnetic field generated when an eddy current flows in a nonmagnetic material by moving a nonmagnetic material such as copper or aluminum in the geomagnetism, and has the same principle as a generator.

これら(1)〜(3)は、地磁気によって発生する。   These (1) to (3) are generated by geomagnetism.

これに対して、(4)漂遊磁界は、船艇に搭載した電気機器の電線に流れる直流電流によって電線の周りに発生する磁界であり、流れる電流の大きさによって磁界が変わる。   On the other hand, (4) stray magnetic field is a magnetic field generated around a wire by a direct current flowing through the wire of an electric device mounted on a boat, and the magnetic field changes depending on the magnitude of the flowing current.

船艇は、動きにより船体の磁気や磁界が外部の磁場に乱れを生じさせるので、船体の磁気的な探知が可能になるため、消磁処理システムにより建造時に船体磁気を消磁し、また、建造後においては一定周期で船体磁気を消磁している。   The ship's magnetism and magnetic field of the hull cause disturbance to the external magnetic field due to movement, so that the hull's magnetic detection becomes possible. Is demagnetizing the ship's magnetism at regular intervals.

従来、船艇の消磁処理システムには、船艇の船体磁気から消磁要素の設定値を求め、この設定値を用いて船体外部に生じる磁気変化を減少させるように消磁するものがある。   2. Description of the Related Art Conventionally, there is a ship demagnetization processing system that obtains a set value of a demagnetizing element from a ship's hull magnetism and demagnetizes the set value to reduce a magnetic change generated outside the hull.

例えば、船艇の船体磁気から船体に配置した消磁要素である消磁コイルに流す消磁電流の設定値を求め、この求められた設定値の消磁電流を消磁コイルに流すことにより、誘導磁気を消磁する船艇の消磁処理システムが提案されている(例えば、特許文献1参照)。   For example, a set value of a demagnetizing current that is passed through a degaussing coil that is a degaussing element disposed on the hull is obtained from the hull magnetism of a ship, and the induced magnetism is demagnetized by passing the degaussing current of the obtained set value through the degaussing coil. A ship degaussing system has been proposed (see, for example, Patent Document 1).

このような船艇の消磁処理システムは、磁性体からなる船体の外部磁界を打ち消すために船体内に複数個の消磁コイルと複数個の磁気検知器を設置し、各磁気検知器が測定した船内磁気に基づいて算出した船外磁気モーメントと、予め測定、算出した各消磁コイル効果による船外磁気モーメントとから、外部磁界を最小にする消磁電流を決定して、各消磁コイルに通電することにより、常時最適な消磁状態に維持するものである。   Such a degaussing system for a ship is provided with a plurality of degaussing coils and a plurality of magnetic detectors installed in the hull to cancel the external magnetic field of the hull made of a magnetic material. By determining the demagnetizing current that minimizes the external magnetic field from the outboard magnetic moment calculated based on magnetism and the outboard magnetic moment due to each demagnetizing coil effect measured and calculated in advance, and by energizing each degaussing coil In this case, the optimum demagnetization state is always maintained.

ところで、従来の船艇の消磁処理システムにおいては、船艇の形状・構造から船体磁気を計算し、この船体磁気から消磁要素の設定値を求め、この消磁要素の設定値を用いて船体外部に生じる磁気変化を減少させるように消磁している。しかし、従来の船舶の消磁処理システムにおいては、上部に船橋などの構造物を備え、且つ、内部にエンジンなどの様々な機器を搭載した船体について、船体の各部分毎に複雑な形状・構造を考慮して船体磁気を計算しているため、船体磁気の計算が煩雑になる問題があり、消磁処理に時間を要することから、消磁性能の低下を招くという問題がある。また、消磁状態を保つためには、コイルに通電しなければならず、消磁コイル通電により、電流発生のコストが発生する。すなわち、コイル電流発生のために発電する必要があり、特に潜水艦においては、バッテリの消磁につながるという問題がある。さらに、消磁コイルの配置に制限があり、消磁ムラが発生する。すなわち、選定内の隔壁及び構造物等により、消磁コイルの配置できる空間及び位置に制約があり、設計段階で消磁コイルは理想的な配置で設定できない。したがって、必然的に消磁においてデッドポイントが発生し、船体が発生する磁界を完全には消磁できないという問題がある。   By the way, in a conventional degaussing processing system for a ship, the hull magnetism is calculated from the shape and structure of the ship, the set value of the demagnetizing element is obtained from the hull magnetism, and the set value of the demagnetizing element is used to external Demagnetization is performed to reduce the magnetic change that occurs. However, in a conventional ship demagnetization processing system, a complex shape and structure is provided for each part of the hull, which has a structure such as a bridge in the upper part and a variety of equipment such as an engine inside. Since the hull magnetism is calculated in consideration, there is a problem that the calculation of the hull magnetism becomes complicated, and it takes time for the degaussing process, so that there is a problem that the degaussing performance is lowered. Moreover, in order to maintain a demagnetization state, it is necessary to energize the coil, and current deduction coil energies generate the cost of current generation. That is, it is necessary to generate electric power to generate a coil current. In particular, in a submarine, there is a problem that it leads to demagnetization of the battery. Furthermore, there is a limitation on the arrangement of the degaussing coils, and demagnetization unevenness occurs. That is, there are restrictions on the space and position where the demagnetizing coil can be arranged due to the partition walls and structures in the selection, and the degaussing coil cannot be set in an ideal arrangement at the design stage. Therefore, there is a problem that dead points are inevitably generated in demagnetization and the magnetic field generated by the hull cannot be completely demagnetized.

特開平8−78234号公報JP-A-8-78234

上記問題点を鑑み、本発明は、構造物が発生する磁気によって形成される磁気波形を、模擬的に設定した異なる構造物の磁気波形と同一になるよう制御する磁気制御装置及び方法を提供することを目的とする。   In view of the above problems, the present invention provides a magnetic control device and method for controlling a magnetic waveform formed by magnetism generated by a structure to be the same as a magnetic waveform of a different structure set in a simulated manner. For the purpose.

上記目的を達成するために、本発明の様態は、磁気制御装置が、(イ)構造物が発生する磁気を検出する磁気検出部と、(ロ)複数の異なる構造物の種類に応じた磁気波形を模擬目標のサンプルとして予め記憶する記憶装置と、(ハ)構造物が発生する磁気によって形成される磁気波形と、構造物が模擬目標とする磁気波形との磁気の差分を演算する差分演算部と、(ニ)差分演算部が演算した差分の磁気が発生するように電力の供給を制御する制御部と、(ホ)制御部の制御により電力を供給する電力供給部と、(へ)電力供給部が供給した電力により磁気を発生する磁気発生部とを備えること要旨とする。   In order to achieve the above object, according to an aspect of the present invention, a magnetic control device includes: (a) a magnetic detection unit that detects the magnetism generated by a structure; and (b) a magnetic according to a plurality of different types of structures. A storage device that pre-stores a waveform as a sample of a simulation target, and (c) a difference calculation that calculates a magnetic difference between a magnetic waveform formed by magnetism generated by the structure and a magnetic waveform targeted by the structure. (D) a control unit that controls the supply of power so that the difference magnetism calculated by the difference calculation unit is generated, (e) a power supply unit that supplies power under the control of the control unit, and (f) And a magnetism generating unit that generates magnetism by the power supplied by the power supply unit.

また、本発明の別の様態は、磁気制御方法が、(イ)磁気検出部が、構造物が発生する磁気を検出するステップと、(ロ)記憶装置が、複数の異なる構造物の種類に応じた磁気波形を模擬目標のサンプルとして予め記憶するステップと、(ハ)差分演算部が、構造物が発生する磁気によって形成される磁気波形と、構造物が模擬目標とする磁気波形との磁気の差分を演算するステップと、(ニ)制御部が、差分演算部が演算した差分の磁気が発生するように電力の供給を制御するステップと、(ホ)電力供給部が、制御部の制御により電力を供給するステップと、(ヘ)磁気発生部が、電力供給部が供給した電力により磁気を発生するステップとを含むことを要旨とする。   According to another aspect of the present invention, there is provided a magnetic control method comprising: (a) a step in which a magnetism detecting unit detects magnetism generated by a structure; and (b) a storage device having a plurality of different types of structures. A step of preliminarily storing the corresponding magnetic waveform as a sample of a simulation target, and (c) a magnetic field formed by the magnetism generated by the structure by the difference calculation unit and the magnetic waveform of the structure as the simulation target And (d) the control unit controls the supply of power so that the difference magnetism calculated by the difference calculation unit is generated, and (e) the power supply unit controls the control unit. And (f) the magnetism generating unit includes a step of generating magnetism by the power supplied by the power supplying unit.

本発明によれば、構造物が発生する磁気によって形成される磁気波形を、模擬的に設定した異なる構造物の磁気波形と同一になるよう制御する磁気制御装置及び方法を提供することができる。   ADVANTAGE OF THE INVENTION According to this invention, the magnetic control apparatus and method which control so that the magnetic waveform formed with the magnetism which a structure generate | occur | produces may become the same as the magnetic waveform of the different structure set in simulation can be provided.

本発明の実施の形態に係る磁気制御装置のブロック図である。1 is a block diagram of a magnetic control device according to an embodiment of the present invention. 本発明の実施の形態に係る船艇が発生する磁気波形の概要図である。It is a schematic diagram of the magnetic waveform which a boat concerning an embodiment of the invention generates. 本発明の実施の形態に係る異なる複数の船艇におけるサンプルとしての磁気波形の概要図である。It is a schematic diagram of a magnetic waveform as a sample in a plurality of different ships according to an embodiment of the present invention. 本発明の実施の形態に係る船艇の磁気波形とサンプルの磁気波形との差分に関する概要図である。It is a schematic diagram regarding the difference of the magnetic waveform of the ship which concerns on embodiment of this invention, and the magnetic waveform of a sample. 本発明の実施の形態に係る磁気制御装置が磁気の模擬制御実施後における船艇の磁気波形の概要図である。It is a schematic diagram of the magnetic waveform of a ship after the magnetic control apparatus which concerns on embodiment of this invention implements the simulation control of magnetism. 本発明の実施の形態に係る磁気制御方法のフローチャート図である。It is a flowchart figure of the magnetic control method which concerns on embodiment of this invention.

次に、図面を参照して、本発明の実施の形態を説明する。以下の図面の記載において、同一または類似の部分には同一または類似の符号を付している。但し、図面は模式的なものであり、装置やシステムの構成等は現実のものとは異なることに留意すべきである。したがって、具体的な構成は以下の説明を参酌して判断すべきものである。また、図面相互間においても互いの構成の異なる部分が含まれていることは勿論である。   Next, embodiments of the present invention will be described with reference to the drawings. In the following description of the drawings, the same or similar parts are denoted by the same or similar reference numerals. However, it should be noted that the drawings are schematic and the configuration of the apparatus and system is different from the actual one. Therefore, a specific configuration should be determined in consideration of the following description. In addition, it is a matter of course that portions having different configurations are included between the drawings.

また、以下に示す本発明の実施の形態は、本発明の技術的思想を具体化するための装置や方法を例示するものであって、本発明の技術的思想は、構成部品の材質、形状、構造、配置等を下記のものに特定するものではない。本発明の技術的思想は、特許請求の範囲に記載された技術的範囲内において、種々の変更を加えることができる。   The following embodiments of the present invention exemplify apparatuses and methods for embodying the technical idea of the present invention, and the technical idea of the present invention is the material and shape of the component parts. The structure, arrangement, etc. are not specified as follows. The technical idea of the present invention can be variously modified within the technical scope described in the claims.

(実施の形態)
<磁気制御装置の構成>
本発明の実施の形態に係る磁気制御装置は、図1に示すように、構造物が発生する磁気を検出する磁気検出部10と、複数の異なる構造物の種類に応じた磁気波形を模擬目標のサンプルとして予め記憶する記憶装置20と、構造物が発生する磁気によって形成される磁気波形と、構造物が模擬目標とする磁気波形との磁気の差分を演算する差分演算部30と、差分演算部が演算した差分の磁気が発生するように電力の供給を制御する制御部40と、制御部の制御により電力を供給する電力供給部50と、電力供給部が供給した電力により磁気を発生する磁気発生部60とを備える。
(Embodiment)
<Configuration of magnetic control device>
As shown in FIG. 1, the magnetic control device according to the embodiment of the present invention simulates a magnetic detection unit 10 that detects magnetism generated by a structure and a magnetic waveform corresponding to a plurality of different types of structures. A storage device 20 stored in advance as a sample, a difference calculation unit 30 for calculating a magnetic difference between a magnetic waveform formed by magnetism generated by the structure and a magnetic waveform targeted by the structure, and a difference calculation The control unit 40 that controls the supply of power so that the difference magnetism calculated by the unit is generated, the power supply unit 50 that supplies power under the control of the control unit, and the magnetism is generated by the power supplied by the power supply unit And a magnetic generator 60.

磁気検出部10は、構造物が発生する磁気を計測する磁気センサである。磁気検出部10は、構造物が発生する磁気を、X方向成分、Y方向成分及びZ方向成分にそれぞれ分解して計測し、計測結果を後述する記憶装置20に記憶する。構造物が船艇の場合、X方向成分は船首尾線方向成分、Y方向成分は船体横方向成分及びZ方向成分は船体垂直方向成分にそれぞれ対応する。なお、船首尾線方向、船体横方向及び船体垂直方向は互いに直交する。ここで、本発明の実施の形態に係る「構造物」とは、複数の部材あるいは要素から構成されているものを指す。「構造物」は移動体及び非移動体共に含み、車、船、飛行機及び建築物等が適用される。   The magnetic detection unit 10 is a magnetic sensor that measures magnetism generated by a structure. The magnetic detection unit 10 measures the magnetism generated by the structure by decomposing it into an X-direction component, a Y-direction component, and a Z-direction component, and stores the measurement result in the storage device 20 described later. When the structure is a boat, the X direction component corresponds to the bow-tail line direction component, the Y direction component corresponds to the hull lateral direction component, and the Z direction component corresponds to the hull vertical direction component. The bow-tail line direction, the hull lateral direction, and the hull vertical direction are orthogonal to each other. Here, the “structure” according to the embodiment of the present invention refers to a structure composed of a plurality of members or elements. “Structure” includes both moving and non-moving objects, and vehicles, ships, airplanes, buildings, and the like are applied.

記憶装置20は、磁気検出部10が検出した構造物の磁気によって形成される磁気波形を記憶する。また、記憶装置20は、複数の様々な種類の構造物における磁気波形をサンプルとして標本化し記憶する。例えば、構造物が船艇の場合、サンプルとしての磁気波形は、客船、貨物船及び漁船等の異なる複数の種類に対応したものを記憶することができる。また、同種類の客船においても、大きさ及び装備等の違いによって船体が発生する磁気は異なるため、それぞれに対応した磁気波形をサンプルとして記憶することもできる。記憶装置20には、不揮発性半導体メモリ及びハードディスク等が適用可能である。   The storage device 20 stores a magnetic waveform formed by the magnetism of the structure detected by the magnetic detection unit 10. The storage device 20 samples and stores magnetic waveforms in a plurality of various types of structures as samples. For example, when the structure is a boat, a magnetic waveform as a sample can be stored corresponding to a plurality of different types such as a passenger ship, a cargo ship, and a fishing boat. Also, even in the same type of passenger ship, since the magnetism generated by the hull differs depending on the size and equipment, the corresponding magnetic waveform can be stored as a sample. As the storage device 20, a nonvolatile semiconductor memory, a hard disk, or the like can be applied.

差分演算部30は、構造物本体が発生させる磁気が形成する磁気波形と、記憶装置20がサンプルとして記憶した複数の磁気波形の中から選定された特定の磁気波形とを比較し、構造物の形態に沿って磁気の差分を算出する。ここで、比較される磁気波形は、X方向成分、Y方向成分及びZ方向成分においてそれぞれ実施され、算出される磁気の差分もX方向成分、Y方向成分及びZ方向成分においてそれぞれ算出される。なお、サンプルの磁気波形は、構造物が模擬しようとする磁気波形に対して最も適切なものが選定される。   The difference calculation unit 30 compares the magnetic waveform formed by the magnetism generated by the structure main body with a specific magnetic waveform selected from a plurality of magnetic waveforms stored as samples by the storage device 20, and The magnetic difference is calculated along the form. Here, the magnetic waveforms to be compared are respectively implemented in the X direction component, the Y direction component, and the Z direction component, and the calculated magnetic differences are also calculated in the X direction component, the Y direction component, and the Z direction component, respectively. Note that the most appropriate magnetic waveform of the sample is selected for the magnetic waveform to be simulated by the structure.

制御部40は、差分演算部30が算出した磁気の差分に基づいて、構造体が模擬目標の磁気波形を形成する磁気を発生するよう電力の供給を制御する。すなわち、磁気の差分に応じた電力を供給するよう制御することで、目的の磁気波形に限りなく近い磁気波形を発生させるのである。   The control unit 40 controls the supply of electric power based on the magnetic difference calculated by the difference calculation unit 30 so that the structure generates magnetism that forms a simulated target magnetic waveform. That is, by controlling to supply power according to the magnetic difference, a magnetic waveform that is as close as possible to the target magnetic waveform is generated.

電力供給部50は、制御部40の制御の制御に基づいて、電力を供給する。例えば、フレミング法則を利用した磁界を発生させるために、直流電流を供給することができる。   The power supply unit 50 supplies power based on the control of the control of the control unit 40. For example, a direct current can be supplied to generate a magnetic field using Fleming's law.

磁気発生部60は、電力供給部50から供給された電力に基づいて、磁気を発生させる。例えば、物理法則を利用して直流電流から磁気を発生させる直流通電ケーブルが適用可能である。磁気発生部60は、構造物の外形沿って配置することも可能であり、構造物内における磁気の発生源となる特長的な場所、例えば、発電機及びエンジン等の付近に配置することも可能である。   The magnetism generator 60 generates magnetism based on the power supplied from the power supply unit 50. For example, a DC energizing cable that generates magnetism from a DC current using a physical law is applicable. The magnetism generating unit 60 can be arranged along the outer shape of the structure, and can also be arranged in a characteristic place that becomes a magnetism generation source in the structure, for example, in the vicinity of a generator and an engine. It is.

つぎに、磁気波形における模擬制御の詳細を説明する。なお以下において、構造物は船艇として説明する。船艇は、船体に隔壁、発電機、エンジン、艦橋、クレーン等の磁気源を有する。これらの磁気源が重畳して船体磁界を形成している。   Next, details of the simulation control in the magnetic waveform will be described. In the following description, the structure is described as a boat. Ships have magnetic sources such as bulkheads, generators, engines, bridges, and cranes in the hull. These magnetic sources are superimposed to form a hull magnetic field.

図2に示すように、磁気検出部10は、船艇の船体に沿って磁気を検出する。図2(a)に示す船艇の船体の船首尾線方向に沿って、船体の垂直方向へ、図2(b)に示す波形を形成する磁気が発生していることがわかる。図2に示す磁気波形は船体垂直方向成分のみであるが、磁気検出部10は、船体の磁気における船首尾線方向成分及び船体横方向成分も同時に計測する。   As shown in FIG. 2, the magnetism detection unit 10 detects magnetism along the hull of the boat. It can be seen that magnetism forming the waveform shown in FIG. 2B is generated in the vertical direction of the hull along the bow-tail direction of the hull of the boat shown in FIG. The magnetic waveform shown in FIG. 2 includes only the hull vertical direction component, but the magnetic detection unit 10 simultaneously measures the bow-tail line direction component and the hull lateral direction component in the hull magnetism.

図3に示すように、記憶装置20は、様々な種類の船艇における磁気波形をサンプルとして記憶する。図3(a)〜(c)に示すように、船艇の種類によって磁気波形は特徴を備える。したがって、磁気波形を検出することで船艇の種類を容易に推測及び認識することが可能となる。そのため、船体から発生する磁気をサンプルの磁気波形のように模擬制御することで、レーダ等が検知した磁気の波形からは、本来の船艇に対する正確な認識は不可能となる。   As shown in FIG. 3, the storage device 20 stores magnetic waveforms in various types of ships as samples. As shown in FIGS. 3A to 3C, the magnetic waveform has characteristics depending on the type of ship. Therefore, it is possible to easily estimate and recognize the type of ship by detecting the magnetic waveform. Therefore, by accurately controlling the magnetism generated from the hull like the magnetic waveform of the sample, it is impossible to accurately recognize the original ship from the magnetic waveform detected by the radar or the like.

図4に示すように、差分演算部30は、船艇の船体から発生する磁気波形とサンプル磁気波形とを比較して、磁気の差分を算出する。実線が船艇の磁気波形であり、破線が標本として記憶装置20が記憶したサンプルの磁気波形である。実線と破線との距離が、船艇と模擬目標のサンプルとの磁気力の差分である。差分の磁気を発生させ、船艇の船体に適用することで、図4に示す実線の磁気波形から破線の磁気波形に変化させることができる。   As shown in FIG. 4, the difference calculation unit 30 compares the magnetic waveform generated from the hull of the boat with the sample magnetic waveform to calculate a magnetic difference. A solid line is a magnetic waveform of a ship, and a broken line is a magnetic waveform of a sample stored in the storage device 20 as a sample. The distance between the solid line and the broken line is the difference in magnetic force between the boat and the sample of the simulated target. By generating a difference magnetism and applying it to the hull of a boat, it is possible to change from a solid magnetic waveform shown in FIG. 4 to a broken magnetic waveform.

すなわち、本発明の実施の形態に係る磁気制御装置100は、船体が発生する磁気により形成される実線の波形を破線の波形に模擬制御するため、実線の波形を矢印の大きさ分の磁気力を、矢印の方向へ加える。そこで、制御部40は、差分の磁気を発生するための電力を供給するよう電力供給部50を制御する。   That is, the magnetic control apparatus 100 according to the embodiment of the present invention simulates and controls the solid line waveform formed by the magnetism generated by the hull into a broken line waveform. In the direction of the arrow. Therefore, the control unit 40 controls the power supply unit 50 to supply power for generating differential magnetism.

図5に示すように、磁気発生部60は、模擬制御後に船体から発生する磁気が形成する磁気波形が、模擬目標となる磁気波形に限りになく近い磁気波形となるよう磁気を発生する。図5に示す磁気制御後における模擬磁気波形と、図4に示す破線のサンプル磁気波形とは、限りなく同一の波形を示していることがわかる。   As shown in FIG. 5, the magnetism generator 60 generates magnetism so that the magnetism waveform generated by the magnet generated from the hull after the simulation control becomes a magnetic waveform that is close to the simulation target magnetic waveform. It can be seen that the simulated magnetic waveform after the magnetic control shown in FIG. 5 and the broken sample magnetic waveform shown in FIG.

<磁気制御方法>
つぎに、本発明の実施の形態に係る磁気制御装置が、船艇の船体が発生する磁気によって形成される磁気波形を他の異なる構造物の磁気波形に模擬する方法について図6のフローチャートを参照しながら説明する。
<Magnetic control method>
Next, refer to the flowchart of FIG. 6 for a method in which the magnetic control device according to the embodiment of the present invention simulates the magnetic waveform formed by the magnetism generated by the hull of a boat to the magnetic waveform of another different structure. While explaining.

(イ)ステップS101において、磁気検出部10は、船艇の船体が発生させる磁気を計測し、船体に沿った磁気の大きさを磁気波形として形成して、記憶装置20に記憶する。ステップS102において、差分演算部30は、船艇が模擬する磁気波形を記憶装置20が記憶する磁気波形の複数のサンプルの中から、目的に応じて選定し、ステップS103において、船艇の磁気波形とサンプルの磁気波形との差分を算出する。   (A) In step S101, the magnetism detection unit 10 measures the magnetism generated by the hull of the boat, forms the magnitude of magnetism along the hull as a magnetic waveform, and stores it in the storage device 20. In step S102, the difference calculation unit 30 selects a magnetic waveform simulated by the boat from a plurality of samples of the magnetic waveform stored in the storage device 20 according to the purpose, and in step S103, the magnetic waveform of the boat. And the difference between the magnetic waveform of the sample.

(ロ)ステップS104において、制御部40は、ステップS103において差分演算部30が算出した磁気波形の差分に基づいて、電力の供給を制御する。ステップS105において、電力供給部50は、制御部40の制御に応じた電力を供給する。ステップS106において、磁気発生部60は、電力供給部50が供給した電流に応じて、磁気を発生させる。   (B) In step S104, the control unit 40 controls the supply of power based on the magnetic waveform difference calculated by the difference calculation unit 30 in step S103. In step S <b> 105, the power supply unit 50 supplies power according to the control of the control unit 40. In step S <b> 106, the magnetism generation unit 60 generates magnetism according to the current supplied by the power supply unit 50.

以上説明したように、本発明の実施の形態に係る磁気制御装置は、記憶装置20が複数のサンプル磁気波形を記憶することで、目的に応じた磁気波形へ迅速容易に模擬することが可能である。記憶装置20が記憶するサンプル磁気波形のデータが増加するに従って、より多くの状況に応じた磁気波形の模擬制御を柔軟及び詳細に実施することが可能となる。   As described above, in the magnetic control device according to the embodiment of the present invention, the storage device 20 stores a plurality of sample magnetic waveforms, so that a magnetic waveform according to the purpose can be quickly and easily simulated. is there. As the sample magnetic waveform data stored in the storage device 20 increases, the simulation control of the magnetic waveform according to more situations can be performed flexibly and in detail.

(その他の実施の形態)
上記のように、本発明は本発明の実施の形態によって記載したが、この開示の一部をなす論述及び図面は本発明を限定するものであると理解すべきではない。この開示から当業者には様々な代替実施の形態、実施例及び運用技術が明らかとなろう。本発明はここでは記載していない様々な実施の形態等を含むことは勿論である。したがって、本発明の技術的範囲は上記の説明から妥当な特許請求の範囲に係る発明特定事項によってのみ定められるものである。
(Other embodiments)
As mentioned above, although this invention was described by embodiment of this invention, it should not be understood that the statement and drawing which make a part of this indication limit this invention. From this disclosure, various alternative embodiments, examples and operational techniques will be apparent to those skilled in the art. It goes without saying that the present invention includes various embodiments not described herein. Therefore, the technical scope of the present invention is defined only by the invention specifying matters according to the scope of claims reasonable from the above description.

10…磁気検出部
20…記憶装置
30…差分演算部
40…制御部
50…電力供給部
60…磁気発生部
100…磁気制御装置
DESCRIPTION OF SYMBOLS 10 ... Magnetic detection part 20 ... Memory | storage device 30 ... Difference calculating part 40 ... Control part 50 ... Electric power supply part 60 ... Magnetic generation part 100 ... Magnetic control apparatus

Claims (2)

構造物が発生する磁気を検出する磁気検出部と、
複数の異なる構造物の種類に応じた磁気波形を模擬目標のサンプルとして予め記憶する記憶装置と、
前記構造物が発生する磁気によって形成される磁気波形と、前記構造物が模擬目標とする前記磁気波形との磁気の差分を演算する差分演算部と、
前記差分演算部が演算した前記差分の磁気が発生するように電力の供給を制御する制御部と、
前記制御部の制御により電力を供給する電力供給部と、
前記電力供給部が供給した電力により磁気を発生する磁気発生部
とを備えることを特徴とする磁気制御装置。
A magnetic detector for detecting the magnetism generated by the structure;
A storage device that pre-stores magnetic waveforms corresponding to a plurality of different types of structures as simulated target samples;
A difference calculation unit that calculates a magnetic difference between a magnetic waveform formed by magnetism generated by the structure and the magnetic waveform that the structure is a simulation target; and
A control unit that controls supply of electric power so that the difference magnetism calculated by the difference calculation unit is generated;
A power supply unit that supplies power under the control of the control unit;
A magnetic control device comprising: a magnetism generating unit that generates magnetism by the power supplied from the power supply unit.
磁気検出部が、構造物が発生する磁気を検出するステップと、
記憶装置が、複数の異なる構造物の種類に応じた磁気波形を模擬目標のサンプルとして予め記憶するステップと、
差分演算部が、前記構造物が発生する磁気によって形成される磁気波形と、前記構造物が模擬目標とする前記磁気波形との磁気の差分を演算するステップと、
制御部が、前記差分演算部が演算した前記差分の磁気が発生するように電力の供給を制御するステップと、
電力供給部が、前記制御部の制御により電力を供給するステップと、
磁気発生部が、前記電力供給部が供給した電力により磁気を発生するステップ
とを含むことを特徴とする磁気制御方法。
A step of detecting the magnetism generated by the structure by the magnetic detection unit;
A step of storing a magnetic waveform corresponding to a plurality of different types of structures in advance as a simulation target sample;
A step of calculating a magnetic difference between a magnetic waveform formed by magnetism generated by the structure and the magnetic waveform that is a simulation target of the structure;
A step of controlling the supply of electric power so that the difference magnetism calculated by the difference calculation unit is generated;
A power supply unit supplying power under the control of the control unit;
And a step of generating magnetism by the electric power supplied from the power supply unit.
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