JPS61141103A - Driving circuit for solenoid - Google Patents

Driving circuit for solenoid

Info

Publication number
JPS61141103A
JPS61141103A JP26353084A JP26353084A JPS61141103A JP S61141103 A JPS61141103 A JP S61141103A JP 26353084 A JP26353084 A JP 26353084A JP 26353084 A JP26353084 A JP 26353084A JP S61141103 A JPS61141103 A JP S61141103A
Authority
JP
Japan
Prior art keywords
solenoid
power supply
current
transistor
currents
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Pending
Application number
JP26353084A
Other languages
Japanese (ja)
Inventor
Kazuyoshi Anzai
安西 一義
Akira Shibayama
明 芝山
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
ANZAI SEISAKUSHO KK
Original Assignee
ANZAI SEISAKUSHO KK
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by ANZAI SEISAKUSHO KK filed Critical ANZAI SEISAKUSHO KK
Priority to JP26353084A priority Critical patent/JPS61141103A/en
Publication of JPS61141103A publication Critical patent/JPS61141103A/en
Pending legal-status Critical Current

Links

Classifications

    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01FMAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
    • H01F7/00Magnets
    • H01F7/06Electromagnets; Actuators including electromagnets
    • H01F7/08Electromagnets; Actuators including electromagnets with armatures
    • H01F7/18Circuit arrangements for obtaining desired operating characteristics, e.g. for slow operation, for sequential energisation of windings, for high-speed energisation of windings
    • H01F7/1805Circuit arrangements for holding the operation of electromagnets or for holding the armature in attracted position with reduced energising current

Abstract

PURPOSE:To reduce power consumption while maintaining the speeding-up properties of the speed of response by using a first power supply having high voltage when a solenoid is driven and flowing holding currents through the solenoid by employing a second power supply lower than the first power supply after the solenoid is operated once. CONSTITUTION:When a driving signal D is transmitted, Tr1-Tr3 are all turned ON, currents flow through a first power supply E1, the transistor Tr2, a solenoid L, R, the transistor Tr1 and a resistor RS, and currents flowing through the solenoid rapidly increase. When currents flowing through the solenoid reach a fixed value, the transistor Tr2 is turned OFF by the working of a comparator 1 and an AND gate 2, and currents flow through a second power supply E2, the transistor Tr3, a diode D1, the solenoid L, R, the transistor Tr1 and the resistor RS. Currents gradually reduce owing to a resistance section made to be contained in the solenoid, a current value finally reach E2/R (where RS is neglected because of a small value), and only the holding currents of the solenoid flow.

Description

【発明の詳細な説明】 〔産業上の利用分野〕 本発明はソレノイド駆動回路に関するものである。[Detailed description of the invention] [Industrial application field] The present invention relates to a solenoid drive circuit.

〔従来の技術〕[Conventional technology]

ソレノイドは種々な用途に用いられ、たとえばリレーあ
るいはプランジャ付きの電磁弁、その抽選別器のエアー
銃等が知られている。ところでソレノイドの駆動回路に
おいては、応答速度、保持電流、消費電力および切断時
の過渡電圧等が問題となる。応答速度を高めるためには
L/R時定数を小さくするかあるいは電源電圧を上げれ
ばよい。
Solenoids are used for various purposes, and are known, for example, as electromagnetic valves with relays or plungers, and as air guns with a drawer. However, in a solenoid drive circuit, problems include response speed, holding current, power consumption, and transient voltage during disconnection. In order to increase the response speed, the L/R time constant may be reduced or the power supply voltage may be increased.

このため、電源電圧を上げるとともに保持電流を制限す
るために抵抗Rを外付けして大きくしている。
Therefore, in order to increase the power supply voltage and limit the holding current, a resistor R is externally attached to increase the size.

このため、抵抗Rでの電力損失が太き(駆動回路の消費
電力の増大および発熱が問題となる。さらに、ソレノイ
ドの電流が遮断されるときの高電圧を吸収する消弧回路
は種々提案されているが、いずれもソレノイドの電磁エ
ネルギを過渡的に減衰吸収させるものであり、このエネ
ルギを積極的に利用するというものではない。
For this reason, the power loss in the resistor R is large (increased power consumption and heat generation in the drive circuit become a problem).Furthermore, various arc extinguishing circuits have been proposed to absorb the high voltage when the solenoid current is cut off. However, all of them temporarily attenuate and absorb the electromagnetic energy of the solenoid, and do not actively utilize this energy.

〔発明が解決しようとする問題点〕[Problem that the invention seeks to solve]

したがって、本発明は、応答速度の高速性を維持しつつ
消費電力を低減させた高能率なソレノイド駆動回路を提
供することを目的とするものである。
Therefore, an object of the present invention is to provide a highly efficient solenoid drive circuit that reduces power consumption while maintaining high response speed.

〔問題点を解決するための手段〕[Means for solving problems]

本発明のソレノイド駆動回路は、ソレノイドを駆動させ
る時には高い電圧を有した第1の電源を用い、いったん
作動すると、これよりも低い第2の電源を用いてソレノ
イドに保持電流を流すようにしている。このため、ソレ
ノイドを駆動してこの電流路を開閉するための第1のス
イッチと、前記第1および第2の電源を各々切換え使用
するための第2および第3のスイッチを有している。外
部からのソレノイド駆動信号は第1のスイッチを直接作
動させる。さらにソレノイド駆動信号に応じて第1の電
源をソレノイドに供給するよう第2のスイッチが備えら
れている。ソレノイドに流れる電流を検出する電流検出
手段からの信号と前記ソレノイド駆動信号とに応じて第
2の電源をソレノイドに供給するよう第3のスイッチが
備えられ    ゛ている。
The solenoid drive circuit of the present invention uses a first power source with a high voltage when driving the solenoid, and once activated, uses a second power source with a lower voltage to flow a holding current through the solenoid. . For this reason, it has a first switch for driving the solenoid to open and close this current path, and second and third switches for switching and using the first and second power sources, respectively. An external solenoid drive signal directly actuates the first switch. Further, a second switch is provided to supply the first power to the solenoid in response to the solenoid drive signal. A third switch is provided to supply the second power source to the solenoid in response to a signal from a current detection means for detecting a current flowing through the solenoid and the solenoid drive signal.

さらに、ソレノイドの電流が切断された時にその電磁エ
ネルギを第1の電源およびまたは第2の電源に戻す消弧
回路が備えられている。
Additionally, an arc extinguishing circuit is provided which returns the electromagnetic energy to the first power source and/or the second power source when the solenoid current is disconnected.

〔作 用〕[For production]

駆動信号が入ると第1および第2のスイッチを介して、
高電圧の第1の電流電源がソレノイドに供給される。高
電圧であるための所要のソレノイド駆動回路が流れるま
での時間は短い。このため回路の高速性が維持される。
When the drive signal is input, it passes through the first and second switches,
A high voltage first current power source is provided to the solenoid. Due to the high voltage, the time required for the solenoid drive circuit to flow is short. Therefore, the high speed of the circuit is maintained.

前記電流検出手段からの信号が所定のレベルに達すると
この信号と前記駆動信号とによって、前記第3のスイッ
チによる第2の直流電源がソレノイドに供給される。そ
して、この第2の直流電源によってソレノイドの保持電
流が確保される。このように、第1および第2の直流電
源を用いているので、外付けの大きな抵抗を用いること
なく高速性を維持し消費電力を低減できる。
When the signal from the current detection means reaches a predetermined level, this signal and the drive signal cause the third switch to supply the second DC power to the solenoid. A holding current for the solenoid is ensured by this second DC power supply. In this way, since the first and second DC power supplies are used, high speed can be maintained and power consumption can be reduced without using a large external resistor.

さらに、ソレノイドに備えた消弧回路は第1およびまた
は第2の直流電源にその電磁エネルギを戻すようにして
いるので、極めて高能率なソレノイド駆動回路となる。
Furthermore, since the arc-extinguishing circuit provided in the solenoid returns its electromagnetic energy to the first and/or second DC power source, the solenoid drive circuit becomes extremely efficient.

〔実施例〕〔Example〕

以下、本発明のソレノイド駆動回路の実施例を第1図お
よび第2図を参照して説明する。
Embodiments of the solenoid drive circuit of the present invention will be described below with reference to FIGS. 1 and 2.

図において符号り、Rはソレノイドのインダクタンスお
よび内部抵抗を示す、第1、第2、および第3スイツチ
は各々TrlsTrzおよびT、。
In the figure, R indicates the inductance and internal resistance of the solenoid; the first, second, and third switches are TrlsTrz and T, respectively.

で示すNPN )ランジスタである。’r、、)ランジ
スタのエミッタと接地間には小さい値の抵抗R6が接続
され、ソレノイドの電流検出手段として作用している。
It is an NPN (NPN) transistor. A resistor R6 having a small value is connected between the emitter of the transistor ('r, , ) and ground, and serves as a current detection means for the solenoid.

この抵抗R8の電圧が比較器、である、たとえばシュミ
ット回路の一方の入力端子に入力され、他方の入力端子
には基準電圧E0が入力されている。比較器1の出力と
駆動信号りとはANDゲート2に入力され、その出力が
Trt トランジスタのベースに入力されている。また
駆動信号りはそれぞれ’r、、 、T、t  l−ラン
ジスタのベースに入力されている。
The voltage of this resistor R8 is input to one input terminal of a comparator, for example, a Schmitt circuit, and the reference voltage E0 is input to the other input terminal. The output of the comparator 1 and the drive signal R are input to an AND gate 2, and the output thereof is input to the base of the Trt transistor. Further, drive signals are input to the bases of the 'r, , T, and tl transistors, respectively.

Tw、tトランジスタのコレクタには第1の直流電源E
、が接続され、Tr3のコレクタにはそれより低い電圧
の第2の直流電源E2が接続されている。Tri  ト
ランジスタのエミッタは直接ソレノイドに接続され、T
rj  )ランジスタのエミッタはダイオードD1を介
してソレノイドに接続されている。ダイオードD2、D
3はソレノイドの両端に接続され、切断時の電磁エネル
ギを第1の電源E、に戻している。
A first DC power supply E is connected to the collectors of the Tw and t transistors.
, is connected to the collector of the Tr3, and a second DC power source E2 having a lower voltage is connected to the collector of the Tr3. The emitter of the Tri transistor is directly connected to the solenoid and T
rj) The emitter of the transistor is connected to the solenoid via a diode D1. Diode D2, D
3 is connected to both ends of the solenoid, and returns the electromagnetic energy at the time of disconnection to the first power source E.

以上の構成を有する実施例の動作を説明する。The operation of the embodiment having the above configuration will be explained.

駆動信号りが入るとT rl 、Tri 、Trjとも
ONになり、まず、第1の電源E、、T、、  トラン
ジスタ、ソレノイドL、R,T□ トランジスタ、抵抗
R3に電流が流れ、ソレノイドに流れる電流が急速に増
加してゆく。この時の電流変化は第2図の0部分に相当
する。
When the drive signal R is applied, T rl , Tri , and Trj all turn ON, and first, current flows through the first power supply E, T, transistor, solenoid L, R, T□ transistor, resistor R3, and then to the solenoid. The current increases rapidly. The current change at this time corresponds to the 0 portion in FIG.

ソレノイドに流れる電流が所定の値に達すると比較器1
、ANDゲート2の働きでTr2 トランジスタがOF
Fとなり、次に第2の電源E2、Trj トランジスタ
、ダイオードDisソレノイドL、R,T、l  )ラ
ンジスタ、抵抗R8に電流が流れる(第2図の0部分に
相当)。ソレノイドに含まれる抵抗骨のため電流はしだ
いに減少し、最終的に電流値はEt/R(ただし、R8
は小さいので無視)となり(第2図の0部分に相当)、
ソレノイドの保持電流だけが流れる。
When the current flowing through the solenoid reaches a predetermined value, comparator 1
, Tr2 transistor is turned off by the action of AND gate 2
Then, current flows through the second power source E2, Trj transistor, diode Dis solenoid L, R, T, l) transistor, and resistor R8 (corresponding to the 0 part in FIG. 2). The current gradually decreases due to the resistance bone contained in the solenoid, and the current value eventually becomes Et/R (however, R8
is small, so ignore it) (corresponds to the 0 part in Figure 2),
Only the holding current of the solenoid flows.

次に駆動信号が切れるとT rl s Trz % T
’r3トランジスタともOFFになり第1および第2の
直流電源E+、Exよりソレノイドに電流が供給されな
くなる。このとき、ダイオードD2、ソレノイドL、R
、ダイオードD3、第1の直流電源に電流が流れ、ソレ
ノイドのL分に蓄積されたエネルギはE。
Next, when the drive signal is cut off, T rl s Trz % T
Both the 'r3 transistors are turned off, and no current is supplied to the solenoid from the first and second DC power supplies E+ and Ex. At this time, diode D2, solenoids L, R
, diode D3, and the first DC power supply, and the energy stored in the L portion of the solenoid is E.

を充電する形で放出される。is released in the form of a charge.

従って、消弧動作を行うとともにエネルギの消費をも防
いでいる。
Therefore, the arc extinguishing operation is performed and energy consumption is also prevented.

〔効 果〕〔effect〕

ソレノイドの作動初期のみに、高電圧の第1の直流電源
を用い多くの電流を流し、そのあとは保持電流を流すた
めの低電圧の第2の直流電源を用いている。従って高速
応答性であって、かつ、従来のように、大きな外付けの
抵抗を用いることもなく低消費  ゛電力であるという
効果を有する。
Only in the initial stage of operation of the solenoid, a high voltage first DC power source is used to flow a large amount of current, and thereafter a low voltage second DC power source is used to flow a holding current. Therefore, it has the advantage of high-speed response and low power consumption without using a large external resistor as in the conventional case.

さらに、基準電圧を適宜余裕をもって設定することによ
り、ソレノイドの安定な動作を確保できる。
Furthermore, by setting the reference voltage with an appropriate margin, stable operation of the solenoid can be ensured.

また、消弧回路において電磁エネルギを電源側に戻す構
成としているので一層の低消費電力化、高効率化をはか
れるという効果が得られる。
Further, since the arc extinguishing circuit is configured to return electromagnetic energy to the power source side, it is possible to achieve the effects of further reducing power consumption and increasing efficiency.

以上本発明を実施例にもとづき具体的に説明したが、本
発明は上記実施例に限定されるものではなくその要旨を
逸脱しない範囲で種々変更可能であることはいうまでも
ない。
Although the present invention has been specifically described above based on examples, it goes without saying that the present invention is not limited to the above-mentioned examples and can be modified in various ways without departing from the gist thereof.

【図面の簡単な説明】[Brief explanation of drawings]

第1図は本発明のソレノイド駆動回路の実施例を示す回
路図、第2図はソレノイドの電流変化を示す図である。 Trl、Tr2、Trj ・・・トランジスタ、D I
、  D z、D3・ ・ ・ダイオード、E、・ ・
 ・第1の直流電源、Eよ・・・第2の直流電源、R3
・・・抵抗(電流検出手段) 、L、R1・・・各々ソ
レノイドのインダクタンスおよび抵抗、1・・・コンパ
レータ、2・・・ANDゲート、D・・・駆動信号、E
o・・・基準電圧。 第1図 り 第2図
FIG. 1 is a circuit diagram showing an embodiment of the solenoid drive circuit of the present invention, and FIG. 2 is a diagram showing changes in solenoid current. Trl, Tr2, Trj...transistor, DI
, D z, D3... Diode, E,...
・First DC power supply, E...Second DC power supply, R3
...Resistance (current detection means), L, R1...Inductance and resistance of each solenoid, 1...Comparator, 2...AND gate, D...Drive signal, E
o...Reference voltage. 1st diagram 2nd diagram

Claims (5)

【特許請求の範囲】[Claims] (1)ソレノイドに電流を供給するための第1の直流電
源および第1の直流電源電圧よりも低い電圧を有する第
2の直流電源と、外部からの駆動信号を受けて、前記ソ
レノイドに流れる電流の流路を開閉する第1のスイッチ
と、前記流路に備えられ前記ソレノイドに流れる電流を
検出する電流検出手段と、前記駆動信号に応じて、前記
第1の直流電源を前記ソレノイドに供給するための第2
のスイッチと、前記駆動信号と前記電流検出手段が検出
する電流が所定レベルに達したことを指示する信号とに
応じて、前記第2の直流電源を前記ソレノイドに供給す
るための第3のスイッチと、前記第1のスイッチが開成
されたとき、前記ソレノイドが有する電磁エネルギを前
記第1の直流電源およびまたは前記第2の直流電源に戻
す消弧回路とより成るソレノイド駆動回路。
(1) A first DC power supply for supplying current to the solenoid, a second DC power supply having a voltage lower than the first DC power supply voltage, and a current flowing to the solenoid in response to an external drive signal. a first switch for opening and closing a flow path; a current detection means provided in the flow path for detecting a current flowing through the solenoid; and supplying the first DC power source to the solenoid in accordance with the drive signal. second for
and a third switch for supplying the second DC power source to the solenoid in response to the drive signal and a signal indicating that the current detected by the current detection means has reached a predetermined level. and an arc extinguishing circuit that returns electromagnetic energy of the solenoid to the first DC power source and/or the second DC power source when the first switch is opened.
(2)前記第1、第2および第3のスイッチがトランジ
スタである前記特許請求の範囲第1項記載のソレノイド
駆動回路。
(2) The solenoid drive circuit according to claim 1, wherein the first, second and third switches are transistors.
(3)前記駆動信号は第1および第3のスイッチのベー
スに供給され、前記電流検出手段が出力する信号はコン
パレータに入力され、このコンパレータ出力と前記駆動
信号との論理積が第2のスイッチのベースに供給される
前記特許請求の範囲第2項記載のソレノイド駆動回路。
(3) The drive signal is supplied to the bases of the first and third switches, the signal output by the current detection means is input to a comparator, and the logical product of the comparator output and the drive signal is applied to the base of the second switch. The solenoid drive circuit according to claim 2, which is supplied to the base of the solenoid drive circuit.
(4)前記電流検出手段は、前記ソレノイドの電流の流
路に介挿された抵抗である前記特許請求の範囲第1項記
載のソレノイド駆動回路。
(4) The solenoid drive circuit according to claim 1, wherein the current detection means is a resistor inserted in the current flow path of the solenoid.
(5)前記消弧回路は、前記ソレノイド両端に接続され
るダイオードにより形成される前記特許請求の範囲第1
項記載のソレノイド駆動回路。
(5) The arc extinguishing circuit is formed by a diode connected to both ends of the solenoid.
Solenoid drive circuit described in section.
JP26353084A 1984-12-13 1984-12-13 Driving circuit for solenoid Pending JPS61141103A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
JP26353084A JPS61141103A (en) 1984-12-13 1984-12-13 Driving circuit for solenoid

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
JP26353084A JPS61141103A (en) 1984-12-13 1984-12-13 Driving circuit for solenoid

Publications (1)

Publication Number Publication Date
JPS61141103A true JPS61141103A (en) 1986-06-28

Family

ID=17390814

Family Applications (1)

Application Number Title Priority Date Filing Date
JP26353084A Pending JPS61141103A (en) 1984-12-13 1984-12-13 Driving circuit for solenoid

Country Status (1)

Country Link
JP (1) JPS61141103A (en)

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0727566A2 (en) * 1995-02-15 1996-08-21 Toyota Jidosha Kabushiki Kaisha A valve driving apparatus using an electromagnetic coil to move a valve body with reduced noise
JP2010508491A (en) * 2006-11-02 2010-03-18 コンチネンタル・テベス・アーゲー・ウント・コンパニー・オーハーゲー Proportional control valve

Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS5945209A (en) * 1982-09-03 1984-03-14 Nippon Soken Inc Warming water pass system for diesel engine

Patent Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS5945209A (en) * 1982-09-03 1984-03-14 Nippon Soken Inc Warming water pass system for diesel engine

Cited By (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0727566A2 (en) * 1995-02-15 1996-08-21 Toyota Jidosha Kabushiki Kaisha A valve driving apparatus using an electromagnetic coil to move a valve body with reduced noise
EP0727566A3 (en) * 1995-02-15 1996-10-16 Toyota Motor Co Ltd A valve driving apparatus using an electromagnetic coil to move a valve body with reduced noise
EP0816644A2 (en) * 1995-02-15 1998-01-07 Toyota Jidosha Kabushiki Kaisha A valve driving apparatus using an electromagnetic coil to move a valve body with reduced noise
EP0816644A3 (en) * 1995-02-15 1998-06-10 Toyota Jidosha Kabushiki Kaisha A valve driving apparatus using an electromagnetic coil to move a valve body with reduced noise
US5915347A (en) * 1995-02-15 1999-06-29 Toyota Jidosha Kabushiki Kaisha Valve driving apparatus using an electromagnetic coil to move a valve body with reduced noise
JP2010508491A (en) * 2006-11-02 2010-03-18 コンチネンタル・テベス・アーゲー・ウント・コンパニー・オーハーゲー Proportional control valve

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