JP2009271042A - Probe for continuous wave hf band magnetic resonance apparatus detector - Google Patents

Probe for continuous wave hf band magnetic resonance apparatus detector Download PDF

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JP2009271042A
JP2009271042A JP2008145096A JP2008145096A JP2009271042A JP 2009271042 A JP2009271042 A JP 2009271042A JP 2008145096 A JP2008145096 A JP 2008145096A JP 2008145096 A JP2008145096 A JP 2008145096A JP 2009271042 A JP2009271042 A JP 2009271042A
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probe
magnetic field
coil bobbin
magnetic resonance
frequency coil
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Etsuo Ban
悦夫 伴
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Abstract

<P>PROBLEM TO BE SOLVED: To provide a probe for an HF band magnetic resonance apparatus detector which is mechanically stable and securely obtains orthogonality of a magnetic field generation axis, in a continuous wave HF band magnetic resonance apparatus. <P>SOLUTION: Three grooves, which are semicircular in cross section, are formed on wall surfaces of a pair of right and left coil bobbins for modulated magnetic field. A first groove reaches both ends of an outer circumference, a second groove is orthogonal to the first groove and reaches the first groove from one end of the outer circumference, and a third groove is formed from one end of the outer circumference on an opposite side to a middle of the wall surface. Bobbins are integrated by a tenon and mortise formed on the pair of the coil bobbins for modulated magnetic field respectively, and the three types of the grooves form cylindrical holes. A high frequency coil bobbin is housed in a first hole, and both ends are fixed by metal fittings screwed from upper and lower parts of a probe body frame. A high frequency coil lead-out wire is laid on a second hole. A deflection prevention pin is screwed from a tip end part of the body frame into a third hole. An opening part for inserting a sample tube as like to fit to the high frequency coil bobbin is formed on the metal fitting screwed from an upper part of the body frame. <P>COPYRIGHT: (C)2010,JPO&INPIT

Description

本発明は連続波HF帯磁気共鳴装置検出器用プローブに関わる。  The present invention relates to a probe for a continuous wave HF band magnetic resonance apparatus detector.

凝縮体の核磁気共鳴、NMRが第二次大戦直後にPurcell、Blochのグループより報告された。数年の間に、基本的な問題が理論、実験両面で解明された。電子スピン共鳴ESRも同様である。技術の進歩は分子構造を決定する化学研究の要求に沿ったものであった。
E.M.Purcell,H.C.Torrey and R.V.Pound,Phys.Rev.,53,318,1946. F.Bloch,W.W.Hansen and M.Packard,Phys.Rev.,70,474,1946. D.J.E.Ingram,Spectroscopy at Radio and Microwave Frequencies Butterworth Sscientific Publications,1955.
Nuclear magnetic resonance and NMR of the condensate were reported by the Purcell and Bloch groups immediately after the Second World War. Over the course of several years, basic problems were solved both theoretically and experimentally. The same applies to electron spin resonance ESR. Advances in technology were in line with chemical research requirements to determine molecular structure.
E. M.M. Purcell, H.M. C. Torrey and R.M. V. Pound, Phys. Rev. 53, 318, 1946. F. Bloch, W.M. W. Hansen and M.M. Packard, Phys. Rev. , 70, 474, 1946. D. J. et al. E. Ingram, Spectroscopy at Radio and Microwave Frequenties Butterworth Scientific Publications, 1955.

上記現象発見に用いられた検出器はPurcellらによるタンク回路のQ値の共鳴吸収による低下を検出する高周波ブリッジ方式、Blochらによる共鳴時に静磁界方向に直交する方向に生ずる誘導起電力を検出するクロスコイル方式を用いた連続波法によるもので、初期にはそれらを一部改良した各種のプローブが開発された。しかし上記化学研究には分光器としての高分解能が要求され、測定に長時間を要するので程へずしてパルス法が開発され、連続波法は磁場測定器、磁場安定器等の用途に限定使用されている。検出方式には上記Purcellらのブリッジ方式に代えて自励LCマージナル発振器が開発され簡便性により汎用されている。上記限定された用途においては、装置の構成、ハードウエア、動作パラメータ、試料の種類等はこれらの目的に最も適するように選ばれ固定される。また使用される試料は密封される。
W.Kempf,NMR in Chemistry,Macmillan Publishers,1986. 特願 2007−327998 特願 2008−64884
The detector used to find the above phenomenon is a high-frequency bridge method that detects a decrease due to resonance absorption of the tank circuit Q value by Purcell et al., And detects an induced electromotive force generated in a direction orthogonal to the static magnetic field direction at the time of resonance by Bloch et al. The probe was based on the continuous wave method using a cross coil system, and various probes were developed in the early stages. However, the above chemical research requires high resolution as a spectroscope, and it takes a long time to measure, so the pulse method was developed soon, and the continuous wave method was limited to applications such as magnetic field measuring instruments and magnetic field stabilizers. in use. As a detection method, a self-excited LC marginal oscillator has been developed in place of the above-mentioned Purcell et al. Bridge method and is widely used for simplicity. In the limited applications described above, the apparatus configuration, hardware, operating parameters, sample type, etc. are selected and fixed to best suit these purposes. The sample used is also sealed.
W. Kempf, NMR in Chemistry, McCillan Publishers, 1986. Japanese Patent Application No. 2007-327998 Japanese Patent Application No. 2008-64884

しかしながら、磁気共鳴現象観測法としての連続波法は固有の利点を有し、特にHF帯での電子スピン共鳴現象観測には、特殊で高価な電磁石を必要とせず現象観測のためのハードウエアも高度な技術を必要としないので、性能及び機能は限定されるとしても、安価で汎用性のある機器の構成が容易である(上記特許文献5,6)。そのためには装置全体は試料の性質を調べることを目的として構成、設計されなければならない。この目的に応ずる連続波HF帯磁気共鳴装置用自励LCマージナル発振器方式の検出器に用いるプローブは、その目的に即した構造を有するように設計されなければならない。本発明は上記の要求を満たす連続波HF帯磁気共鳴装置検出器用のプローブを提供する。  However, the continuous wave method as a magnetic resonance phenomenon observation method has an inherent advantage. In particular, observation of an electron spin resonance phenomenon in the HF band does not require a special and expensive electromagnet, and hardware for observation of the phenomenon is also required. Since advanced technology is not required, even if the performance and function are limited, it is easy to construct an inexpensive and versatile device (Patent Documents 5 and 6). For this purpose, the entire apparatus must be constructed and designed for the purpose of examining the properties of the sample. A probe used for a self-excited LC marginal oscillator type detector for a continuous wave HF band magnetic resonance apparatus that meets this purpose must be designed to have a structure suitable for that purpose. The present invention provides a probe for a continuous wave HF band magnetic resonance apparatus detector that satisfies the above requirements.

本発明の課題は上記自励LCマージナル発振器方式検出器と組み合わせて連続波HF帯磁気共鳴装置を構成する機械的に安定で磁界発生軸方向の直交性が確実に得られるプローブを得ることである。  An object of the present invention is to obtain a mechanically stable probe that can reliably obtain orthogonality in the magnetic field generation axis direction, which constitutes a continuous wave HF band magnetic resonance apparatus in combination with the self-excited LC marginal oscillator type detector. .

上記磁場測定器、磁場安定器等の限定された用途における磁気共鳴検出用プローブは高周波磁界と低周波の変調磁界を直交して発生し試料に印加するが変調磁界に重畳する静磁界は測定あるいは安定化されるべき対象として外部より変調磁界と平行な方向に印加される。上記3種の磁界は1つの磁界系を形成する。このような用途における試料は上記磁界系内に密封、固定されていて外部より上記磁界系へのアクセスを必要としない。一方本発明が対象とする磁気共鳴装置検出器用としてのプローブにおいては試験すべき種々の試料の外部より上記磁界系中心へのアクセスが必須である。また試料の性質に応じて上記検出器の各種動作パラメータを適宜に設定する必要がある。プローブの基本的形態は両者に共通しているが上記アクセスの必要性の有無により両者の具体的形態は大きく異なる。本発明では上記課題を解決して連続波HF帯磁気共鳴装置検出器用プローブの製作を可能とし、それを用いて連続波HF帯磁気共鳴装置が実現するように上記アクセスを可能とするためプローブのすべての要素を一体的、有機的に構成する。  Magnetic resonance detection probes in limited applications such as magnetic field measuring instruments and magnetic field stabilizers generate a high-frequency magnetic field and a low-frequency modulated magnetic field at right angles and apply them to the sample. The object to be stabilized is applied from the outside in a direction parallel to the modulation magnetic field. The three types of magnetic fields form one magnetic field system. Samples in such applications are sealed and fixed in the magnetic field system and do not require access to the magnetic field system from the outside. On the other hand, in the probe for a magnetic resonance apparatus detector to which the present invention is applied, access to the center of the magnetic field system from the outside of various samples to be tested is essential. In addition, it is necessary to appropriately set various operating parameters of the detector according to the properties of the sample. The basic form of the probe is common to both, but the specific form of both differs greatly depending on the necessity of the access. In the present invention, a probe for a detector of a continuous wave HF band magnetic resonance apparatus can be manufactured by solving the above-described problems, and the probe can be accessed using the probe so as to realize the continuous wave HF band magnetic resonance apparatus. All elements are structured in an integrated and organic manner.

本発明によるプローブの基本図を図1に示す。以下の説明において同軸ケーブル9を上に、2芯ケーブル10を下にしてケーブルがある側を背面、反対側を先端面、背面からみて右、左と呼ぶ。図1は完成したプローブの右の側板を紙面上に置いて左の側板を取り外したときの内部の模式図である。1はプローブの本体をなす枠組みで上記変調磁界用コイルボビン6a、6bを格納するための円形の抜き孔、高周波コイル5、変調磁界コイルの引き出し線を上記同軸ケーブル、2芯ケーブルに接続するための空所を作る角型の抜き孔、背面側に上記同軸ケーブル、2芯ケーブルを導入するための半円形断面の溝、先端面側にフレ止めピン用ネジ孔、両側面に側板を取り付けるためのネジ孔を有する。  A basic diagram of a probe according to the present invention is shown in FIG. In the following description, the side where the cable is located with the coaxial cable 9 facing up and the two-core cable 10 facing down is referred to as the back surface, the opposite side as the front end surface, and the right and left as viewed from the back. FIG. 1 is a schematic diagram of the inside of a completed probe when the right side plate is placed on the paper surface and the left side plate is removed. Reference numeral 1 denotes a frame that forms the main body of the probe. A circular punch hole for storing the modulation magnetic field coil bobbins 6a and 6b, a high frequency coil 5, and a lead wire for the modulation magnetic field coil are connected to the coaxial cable and the two-core cable. Square hole for creating a void, the above-mentioned coaxial cable on the back side, a groove with a semicircular cross section for introducing a 2-core cable, the screw hole for the anti-fretting pin on the tip side, and the side plate for attaching the side plate on both sides Has screw holes.

図1において2aは左右両側板、2bは背面板で上記本体枠組み1にネジ止めされ内部に格納される部品類を機械的に保護するとともに電気的に遮蔽する。3aは上部固定金具で先端部を上記本体枠組み1の上面よりネジ込み上記高周波コイルボビン4aの上部に嵌合して突き当たり上記高周波コイルボビン4aの上部を拘束する。3bは下部固定金具で先端部を上記本体枠組み1の下面よりネジ込み上記高周波コイルボビン4aの下部に嵌合して突き当たり上記高周波コイルボビン4aの下部を拘束する。5は上記高周波コイルで上記高周波コイルボビン4aの中央部に捲き回されている。4bは右側の変調磁界コイルボビン6aに設けられた第二の溝で上記高周波コイル引き出し線を通線するための空所を形成する。4cは上記右側の変調磁界コイルボビン6aに設けられた第三の溝で変調磁界用コイルボビンふれ止めピン8の先端が入る。7a、7bは上記右側の変調磁界コイルボビン6aに設けられたホゾおよびホゾ孔である。  In FIG. 1, reference numeral 2a denotes left and right side plates, and 2b denotes a back plate that is screwed to the main body frame 1 and mechanically protects and electrically shields components housed therein. Reference numeral 3a denotes an upper fixing bracket which is screwed into the upper end of the high-frequency coil bobbin 4a by screwing the front end portion thereof from the upper surface of the main body frame 1 to constrain the upper portion of the high-frequency coil bobbin 4a. Reference numeral 3b denotes a lower fixing metal fitting whose front end is screwed into the lower surface of the main body frame 1 and is fitted into the lower portion of the high-frequency coil bobbin 4a so as to abut against the lower portion of the high-frequency coil bobbin 4a. The high frequency coil 5 is wound around the central portion of the high frequency coil bobbin 4a. Reference numeral 4b denotes a second groove provided in the right modulation magnetic field coil bobbin 6a, which forms a space for passing through the high-frequency coil lead wire. Reference numeral 4c denotes a third groove provided in the right modulation magnetic field coil bobbin 6a, into which the tip of the modulation magnetic field coil bobbin anti-spin pin 8 enters. Reference numerals 7a and 7b denote a side wall and a side hole provided on the right modulation magnetic field coil bobbin 6a.

6bは左側の変調磁界コイルボビンで上記右側の変調磁界コイルボビン6aに紙面上部より重ね合わせ鏡像関係の位置にある一対のホゾおよびホゾ孔によって位置決めされ同じく鏡像関係の位置にある3つの溝によって円筒形の空孔が作られる。第一の溝による上記円筒形の空孔は上記高周波コイルボビン4aのための空孔になる。第二の溝による上記円筒形の空孔は上記高周波コイル引き出し線を通線するための空孔になる。第三の溝による上記円筒形の空孔は上記左右変調磁界コイルボビンが一体化した変調磁界コイルボビンのふれ止めピン8の先端が入る空孔になる。上記左右一体化された変調磁界コイルの2対の引き出し線は発生磁界が加極性になるように直列に接続される。9は高周波用同軸ケーブルで上記高周波コイル引き出し線に接続される。10は低周波用2芯ケーブルで上記直列に接続された変調コイル引き出し線端末に接続される。11は側板2aを上記本体枠組み1にネジ止めして完成したプローブ上部固定金具3aの上部の開口部に挿入される試料管である。上記試料管は上記高周波コイルボビンの内周に同軸嵌合する。12は上記試料管の底部にある試料の中心を上記磁界系の中心に合わせるために摺動固定される試料位置調整リングである。  A modulation magnetic field coil bobbin 6b is a left modulation magnetic field coil bobbin which is positioned on the right modulation magnetic field coil bobbin 6a from the upper part of the paper by a pair of ridges and horn holes positioned in a mirror image relationship, and is formed into a cylindrical shape by three grooves which are also in a mirror image relationship position. Holes are created. The cylindrical hole formed by the first groove becomes a hole for the high-frequency coil bobbin 4a. The cylindrical hole formed by the second groove is a hole for passing the high-frequency coil lead wire. The cylindrical hole by the third groove is a hole into which the tip of the anti-spin pin 8 of the modulation magnetic field coil bobbin in which the left and right modulation magnetic field coil bobbins are integrated. The two pairs of lead wires of the left and right modulated magnetic field coils are connected in series so that the generated magnetic field is a polar. Reference numeral 9 denotes a high-frequency coaxial cable connected to the high-frequency coil lead wire. Reference numeral 10 denotes a low-frequency two-core cable connected to the modulation coil lead wire terminal connected in series. Reference numeral 11 denotes a sample tube that is inserted into the upper opening of the probe upper fixing bracket 3a completed by screwing the side plate 2a to the main body frame 1. The sample tube is coaxially fitted to the inner periphery of the high-frequency coil bobbin. Reference numeral 12 denotes a sample position adjusting ring that is slidably fixed so that the center of the sample at the bottom of the sample tube is aligned with the center of the magnetic field system.

以上、本発明による上記プローブはその上記構成諸要素のもつ諸機能が上記説明のように有機的に結合し果たされていれば、それらの具体的形状、寸法は要求される仕様による技術的、経済的な理由に応じて適宜に変更されてよい。  As described above, if the functions of the constituent elements of the probe according to the present invention are organically combined as described above, their specific shapes and dimensions are technical according to the required specifications. It may be changed as appropriate according to economic reasons.

本発明による上記請求項6によるプローブを用いることにより上記自励LCマージナル発振器を用いた検出器において周波数、発振レベルの可変性、安定性、雑音レベルなど連続波HF帯磁気共鳴装置用検出器として実用し得る機能、性能を有することが確認された(上記特許文献5,6)。  By using the probe according to claim 6 according to the present invention, the detector using the self-excited LC marginal oscillator as a detector for a continuous wave HF band magnetic resonance apparatus, such as frequency, oscillation level variability, stability, noise level, etc. It has been confirmed that it has a function and performance that can be put to practical use (Patent Documents 5 and 6).

本発明の上記請求項6によるプローブと上記請求項7によるプローブ使用法を用いた実施例を図2に示す。図の上方の正弦波は上記変調磁界コイル端の電圧で周波数350Hz、平均値524mV、ピーク値358mVである。図の下方は17MHzの電子スピン共鳴信号の観測例である。平均値は静磁界Hに対応し、ピーク値は変調磁界ピーク値Hに対応する。Hを共鳴磁界Hに設定すれば図示のように半周期毎に等間隔で信号が現れる。この信号はスプリアス除去平均化法によって得たものである(上記特許文献5)。17MHzに対応する静磁界Hは約0.6mT で、これをスケールとして算定すればHは約0.4mTである。An embodiment using the probe according to claim 6 of the present invention and the probe usage according to claim 7 of the present invention is shown in FIG. The upper sine wave in the figure is the voltage at the end of the modulation magnetic field coil, and has a frequency of 350 Hz, an average value of 524 mV, and a peak value of 358 mV. Below the figure is an example of observation of an electron spin resonance signal at 17 MHz. Average value corresponds to the static magnetic field H o, peak values correspond to the modulated magnetic field peak value H m. H o signal appears at the resonance magnetic field H r equal intervals every half cycle as shown is set to. This signal is obtained by the spurious removal averaging method (Patent Document 5). The static magnetic field H o corresponding to 17 MHz is about 0.6 mT, and if calculated as a scale, H m is about 0.4 mT.

本発明によるプローブの基本図である。1 is a basic view of a probe according to the present invention. 本発明によるプローブおよびその使用法を用いた磁気共鳴の観測例である。It is an example of observation of magnetic resonance using the probe according to the present invention and the method of using the probe.

符号の説明Explanation of symbols

図1において
1 プローブ本体枠組み
2a 側板
2b 背面板
3a 上部固定金具
3b 下部固定金具
4a 第一の溝と高周波コイルボビン
4b 第二の溝と高周波コイル引き出し線
4c 第三の溝と変調磁界用コイルボビンふれ止めピン
5 高周波コイル
6a 左変調磁界コイルボビン
6b 右変調磁界コイルボビン
7a ホゾ
7b ホゾ孔
8 フレ止めピン用ネジ
9 同軸ケーブル
10 2芯ケーブル
11 試料管
12 試料位置調整リング
x 水平軸
y 垂直軸(高周波磁界軸)
z 水平軸(静磁界および変調磁界軸)
T プローブ厚
In FIG. 1, 1 probe body frame 2a side plate 2b back plate 3a upper fixing bracket 3b lower fixing bracket 4a first groove and high frequency coil bobbin 4b second groove and high frequency coil lead wire 4c third groove and coil bobbin for modulation magnetic field Pin 5 High-frequency coil 6a Left modulation magnetic field coil bobbin 6b Right modulation magnetic field coil bobbin 7a Hozo 7b Eaves hole 8 Screw for fretting pin 9 Coaxial cable 10 2-core cable 11 Sample tube 12 Sample position adjustment ring x Horizontal axis y Vertical axis (High-frequency magnetic field axis )
z Horizontal axis (static magnetic field and modulation magnetic field axis)
T Probe thickness

Claims (8)

高周波コイルボビンとその内周部に挿入される試料管の外周部とを公差の範囲で嵌合させる構造を有するHF帯磁気共鳴装置検出器用プローブ  HF band magnetic resonance apparatus detector probe having a structure in which a high frequency coil bobbin and an outer peripheral portion of a sample tube inserted in an inner peripheral portion thereof are fitted within a tolerance range. 上記請求項1の構造を有するHF帯磁気共鳴装置検出器用プローブにおいて、上記高周波コイルボビンは底部を半球状に封止した円筒状でその外周中央に高周波コイルが捲回され上記高周波コイルボビンの外周を上部及び下部固定金具の先端部に設けられる孔の内周に公差の範囲で嵌合させる構造を有し上記上部固定金具の上記試料管を挿入するための開口部を上記試料管の外周に公差の範囲で嵌合させる構造を有するHF帯磁気共鳴装置検出器用プローブ  2. The probe for an HF band magnetic resonance apparatus detector having the structure according to claim 1, wherein the high frequency coil bobbin has a cylindrical shape whose bottom is sealed in a hemispherical shape, and a high frequency coil is wound around the outer periphery of the high frequency coil bobbin. And an opening for inserting the sample tube of the upper fixing bracket into the outer periphery of the sample tube. Probe for HF band magnetic resonance apparatus detector having structure to be fitted in range 上記請求項2の構造を有するHF帯磁気共鳴装置検出器用プローブにおいて、上記高周波コイルボビンを収納するプローブ本体枠組みの中心面とそれに直交する平面との交線に上記高周波コイルボビンとそれに嵌合される上部及び下部固定金具の中心軸を一致させ上記上部及び下部固定金具は上記プローブ本体枠組みの上部及び下部よりねじ込み上記高周波コイルボビンと上記プローブ本体枠組みと一体化され、上記中心軸上で上記プローブ本体枠組の中心点に一致する如く高周波コイルが上記高周波コイルボビン中心点の上下対称に捲回される構造を有するHF帯磁気共鳴装置検出器用プローブ  The probe for an HF band magnetic resonance apparatus detector having the structure according to claim 2, wherein the high-frequency coil bobbin and an upper portion fitted to the high-frequency coil bobbin are arranged at the intersection of the center plane of the probe main body frame for housing the high-frequency coil bobbin and a plane perpendicular thereto. The upper and lower fixing brackets are screwed in from the upper and lower portions of the probe main body frame so as to be integrated with the high frequency coil bobbin and the probe main body frame, and the probe main body frame is integrated on the central axis. HF band magnetic resonance apparatus detector probe having a structure in which a high-frequency coil is wound symmetrically with respect to the center point of the high-frequency coil bobbin so as to coincide with the center point 上記請求項3の構造を有するHF帯磁気共鳴装置検出器用プローブにおいて、プローブ本体は上記プローブ本体枠組み、一対の左右側板および背面板より成り、上記中心点を中心とし上記上部及び下部固定金具ネジ部先端面にて界される外径を有する左右一対の変調磁界用コイルボビンを収納する抜き孔を上記プローブ本体枠組みに有するHF帯磁気共鳴装置検出器用プローブ  The probe for an HF band magnetic resonance apparatus detector having the structure according to claim 3, wherein the probe main body includes the probe main body frame, a pair of left and right side plates and a back plate, and the upper and lower fixing bracket screw portions centered on the central point. A probe for an HF band magnetic resonance apparatus detector having a hole in the probe body frame for accommodating a pair of left and right modulation magnetic field coil bobbins having an outer diameter bounded by the distal end surface 上記請求項4の構造を有するHF帯磁気共鳴装置検出器用プローブにおいて、上記左右一対の変調磁界用コイルボビンの内径は上記高周波コイルボビンに捲回される高周波コイルの外径より大きく、それぞれ片方の壁板の厚さは上記高周波コイルボビンの外半径より大きい。上記高周波コイルボビンの外半径より大きな厚さを有する中央側壁板とこれに対向し薄い厚さの側板側壁板と上記両壁板を連結する内周筒により上記変調磁界用コイルボビンが形成される。上記中央側壁板の外面には中心を通る直径線に沿い、上記高周波コイルボビンの外半径より公差の範囲で大きな半径の断面が半円の第一の溝を有する。第一の溝の中心軸線に直交し中心を通る直径線に沿い、外周より内周の空所までの間に第二の溝を有する。第二の溝と同一の直径線上に沿い反対側の外周より中央側壁板中央付近まで第三の溝を有する。中心を通り第一の溝と第二の溝に半直角で斜向する直径線に沿い中心振り分けで中央側壁板の中央付近に一対のホゾ、ホゾ孔を有する。左右変調磁界用コイルボビンそれぞれ中央側壁板の三個の溝および一対のホゾ、ホゾ孔は鏡面対称の位置にある。左右のボビンを重ねあわせ二対のホゾ、ホゾ孔によってボビンを一体化したとき、上記三種の溝が円筒状の空孔を形成する如き構造の変調磁界用コイルボビンが上記プローブ本体枠組みと同一の厚さを有するHF帯磁気共鳴装置検出器用プローブ  5. An HF band magnetic resonance apparatus detector probe having the structure of claim 4, wherein an inner diameter of the pair of left and right modulation magnetic field coil bobbins is larger than an outer diameter of a high-frequency coil wound around the high-frequency coil bobbin, Is greater than the outer radius of the high frequency coil bobbin. The modulation magnetic field coil bobbin is formed by a central side wall plate having a thickness larger than the outer radius of the high frequency coil bobbin, a side plate side wall plate having a small thickness opposite to the central side wall plate, and an inner peripheral cylinder connecting the both wall plates. The outer surface of the central side wall plate has a first groove having a semicircular cross section having a radius larger than the outer radius of the high frequency coil bobbin along a diameter line passing through the center. A second groove is provided between the outer circumference and the inner circumference along a diameter line perpendicular to the center axis of the first groove and passing through the center. A third groove is formed from the outer periphery on the opposite side along the same diameter line as the second groove to near the center of the central side wall plate. A pair of ridges and ridge holes are provided near the center of the central side wall plate by distributing the center along a diameter line that is inclined at a right angle to the first groove and the second groove through the center. Each of the left and right modulation magnetic field coil bobbins has three grooves on the central side wall plate and a pair of ridges and holes, which are mirror-symmetrical. When the left and right bobbins are overlapped and the bobbin is integrated by two pairs of hozos and hozo holes, the modulated magnetic field coil bobbin having the structure in which the three kinds of grooves form a cylindrical hole has the same thickness as the probe body frame. HF band magnetic resonance apparatus detector probe 上記請求項5の構造を有するHF帯磁気共鳴装置検出器用プローブにおいて上記左右変調磁界用コイルボビンの中央側壁板と側板側壁板間にある空所に変調磁界用コイルが捲回され上記一体化され本体枠組み抜き孔に格納され上記第一の溝により形成された貫通孔に上記高周波コイルボビンが格納され上記上部及び下部固定金具により上記本体枠組みに固定され上記第三の溝により形成された有底孔に本体枠組み先端面よりふれ止めピンをねじ込み上記変調磁界用コイルボビンの回転を拘束し上記一対の左右側板を本体枠組み両側側面にねじ止めして変調磁界用コイルボビンの軸方向への移動を拘束し上記背面板より高周波用同軸ケーブルおよび低周波用2芯ケーブルを本体枠組み内に導入し上記第二の溝により形成されたボビン内周部までの貫通孔より上記高周波コイルの端末線を引き出し上記高周波用同軸ケーブルに接続し上記2つの空所に捲回された一対の変調磁界用コイルの引き出し線を両者が加極性になる如く接続し、その両端末を上記低周波用2芯ケーブルに接続する如き構造を有するHF帯磁気共鳴装置検出器用プローブ  6. A probe for an HF band magnetic resonance apparatus detector having the structure according to claim 5, wherein a modulation magnetic field coil is wound in a space between a central side wall plate and a side plate side wall plate of the left and right modulation magnetic field coil bobbin, and the integrated main body is wound. The high-frequency coil bobbin is housed in a through hole that is housed in the frame punch hole and formed by the first groove, and is fixed to the body frame by the upper and lower fixing brackets, and is formed in the bottomed hole formed by the third groove. Screw the anti-spin pin from the front end of the main body frame to constrain the rotation of the modulation magnetic field coil bobbin, and screw the pair of left and right side plates to both sides of the main body frame to constrain the movement of the modulation magnetic field coil bobbin in the axial direction and From the face plate, the high frequency coaxial cable and the low frequency two-core cable are introduced into the main body frame to the inner periphery of the bobbin formed by the second groove. The terminal wire of the high frequency coil is pulled out from the through hole, connected to the coaxial cable for high frequency, and the lead wires of the pair of modulation magnetic field coils wound around the two empty spaces are connected so that both are polarized, HF band magnetic resonance apparatus detector probe having a structure in which both terminals are connected to the low-frequency two-core cable. 上記請求項6の構造を有するHF帯磁気共鳴装置検出器用プローブにおいて、上記変調磁界用コイルに上記低周波用2芯ケーブルを通して直流電流および低周波正弦波電流を重畳通電し上記変調磁界用コイルの軸方向に同一の磁界電流変換係数にて静磁界および変調磁界を重畳発生せしめる如く使用されるHF帯磁気共鳴装置検出器用プローブ  In the probe for an HF band magnetic resonance apparatus detector having the structure according to claim 6, a direct current and a low frequency sine wave current are superposed and applied to the modulation magnetic field coil through the low frequency two-core cable. HF band magnetic resonance apparatus detector probe used to superimpose a static magnetic field and a modulated magnetic field with the same magnetic field current conversion coefficient in the axial direction 上記請求項6の構造を有するHF帯磁気共鳴装置検出器用プローブにおいて、上記上部及び下部固定金具が同一の形状を有し上記高周波コイルボビンの両端が開口し、両端開口の試験管を用いて流動試料の試験ができる如きHF帯磁気共鳴装置検出器用プローブ  The probe for an HF band magnetic resonance apparatus detector having the structure according to claim 6, wherein the upper and lower fixing brackets have the same shape, both ends of the high-frequency coil bobbin are opened, and a flow sample is formed using a test tube having both ends opened. HF band magnetic resonance detector detector probe
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CN107102248A (en) * 2017-05-09 2017-08-29 普冉半导体(上海)有限公司 A kind of wafer adds magnetic tester device and its method of testing

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