JPS61283109A - Manufacture of laminate capacitor - Google Patents

Manufacture of laminate capacitor

Info

Publication number
JPS61283109A
JPS61283109A JP12498385A JP12498385A JPS61283109A JP S61283109 A JPS61283109 A JP S61283109A JP 12498385 A JP12498385 A JP 12498385A JP 12498385 A JP12498385 A JP 12498385A JP S61283109 A JPS61283109 A JP S61283109A
Authority
JP
Japan
Prior art keywords
capacitor
electrodes
green sheet
internal
external
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
JP12498385A
Other languages
Japanese (ja)
Inventor
池田 正男
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.)
Murata Manufacturing Co Ltd
Original Assignee
Murata Manufacturing Co Ltd
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 Murata Manufacturing Co Ltd filed Critical Murata Manufacturing Co Ltd
Priority to JP12498385A priority Critical patent/JPS61283109A/en
Publication of JPS61283109A publication Critical patent/JPS61283109A/en
Pending legal-status Critical Current

Links

Landscapes

  • Fixed Capacitors And Capacitor Manufacturing Machines (AREA)

Abstract

(57)【要約】本公報は電子出願前の出願データであるた
め要約のデータは記録されません。
(57) [Summary] This bulletin contains application data before electronic filing, so abstract data is not recorded.

Description

【発明の詳細な説明】 〈産業上の利用分野〉 この発明は積層コンデンサの製造方法に関するものであ
る。
DETAILED DESCRIPTION OF THE INVENTION <Industrial Application Field> The present invention relates to a method for manufacturing a multilayer capacitor.

〈従来の技術〉 第7図と第8図は積層コンデンサの基本的な構造を示し
ており、セラミック等を用いて焼成した誘電体1の内部
に複数の内部電極2を並べて設け、誘電体1の両端部に
外部電極3.3を設け1.各内部電極2を外部電極3.
3と交互に接続して形成されている。
<Prior art> Figures 7 and 8 show the basic structure of a multilayer capacitor, in which a plurality of internal electrodes 2 are arranged in a row inside a dielectric 1 fired using ceramic or the like. External electrodes 3.3 are provided at both ends of 1. Each internal electrode 2 is connected to an external electrode 3.
3 are connected alternately.

上記のような積層コンデンサの従来の製造方法は、第8
図のように、グリーンシート4の一面側に内部電極2を
設け、このグリーンシート4を必要枚数積重ねてプレス
圧をかけ、この積層体を焼成してコンデンサ素体1を形
成し、この後この素体1の両端部に外部電極3.3を塗
布して焼付けることにより完成品を得るものである。
The conventional manufacturing method for multilayer capacitors as described above is as follows:
As shown in the figure, an internal electrode 2 is provided on one side of a green sheet 4, a required number of green sheets 4 are stacked, press pressure is applied, and this laminate is fired to form a capacitor body 1. A finished product is obtained by applying external electrodes 3.3 to both ends of the element body 1 and baking them.

〈発明が解決しようとする問題点〉 ところで、グリーンシートを重ねて積層コンデンサを製
造する従来の方法には、以下に列挙するいくつかの問題
点がある。
<Problems to be Solved by the Invention> By the way, the conventional method of manufacturing a multilayer capacitor by stacking green sheets has several problems listed below.

CI)  セラミック焼成時にグリーンシートと内部電
極の収縮率のちがいにより、内部電極がより収縮して誘
電体の内側に引込まれ、外部電極との接合が不十分にな
り、容量落ちが生じる。
CI) Due to the difference in shrinkage rate between the green sheet and the internal electrode during ceramic firing, the internal electrode shrinks more and is drawn into the dielectric, resulting in insufficient bonding with the external electrode and a drop in capacity.

(It)  外部電極はリード端子半田付時の耐熱性を
もたせるため、銀にパラジウムなどの貴金属を混合した
ものを用いるが、この外部電極に電界がかかると、マイ
グレイジョンにより、銀が誘電体の内部に浸入し、他の
内部電極との短絡が発生する危険性が必り、これを防止
するため、第7図のように、内部電極2の端部と誘電体
1の端部との間に一定の距離Sを確保する必要があり、
その分だけ容量が小さくなり、小型化に適さない。
(It) The external electrode is made of a mixture of silver and noble metals such as palladium in order to provide heat resistance when soldering lead terminals, but when an electric field is applied to this external electrode, migration causes the silver to become dielectric. In order to prevent this, there is a risk that the end of the internal electrode 2 and the end of the dielectric 1 are It is necessary to secure a certain distance S between
The capacity is reduced accordingly, making it unsuitable for miniaturization.

(■)°シートの積み重ね時に、重ねずれが起こって容
量にばらつきが生じる。
(■)°When sheets are stacked, misalignment occurs, causing variations in capacity.

■ シートの積み重ねに手間がかかり、製作コストが高
くつく。
■ Stacking sheets takes time and production costs are high.

(Vl  内部電極の端面に外部電極が接合するため、
両者の接合面積が極めて少なく、接合部分の信頼性が低
い。
(Vl Because the external electrode is bonded to the end surface of the internal electrode,
The bonding area between the two is extremely small, and the reliability of the bonded portion is low.

この発明は、上記のような各問題点を解決するためにな
されたものであり、容量のばらつきがなく、内部電極と
外部電極の確実な接合が1qられる積層コンデンサの製
造方法を提供することを目的とする。
This invention was made to solve the above-mentioned problems, and it is an object of the present invention to provide a method for manufacturing a multilayer capacitor in which there is no variation in capacitance and reliable bonding between internal and external electrodes is achieved. purpose.

く問題点を解決するための手段〉 上記のような問題点を解決するため、この発明は、帯状
グリーンシートの表裏両面に内部電極を設け、このグリ
ーンシートを、得ようとするコンデンサの両外部電極方
向の誘電体寸法に近い寸法に折りたたみ、この折りたた
み体を重なり方向に加圧成形した後、焼成してコンデン
サ素体を形成し、この素体の両端に外部電極を設けるよ
うにしたものである。
Means for Solving the Problems> In order to solve the above problems, the present invention provides internal electrodes on both the front and back sides of a strip-shaped green sheet, and uses this green sheet to connect both external and external electrodes of the capacitor to be obtained. The capacitor is folded to a size close to that of the dielectric in the direction of the electrodes, and this folded body is press-formed in the overlapping direction, then fired to form a capacitor body, and external electrodes are provided at both ends of this body. be.

〈作用〉 表裏両面に内部電極を塗布印刷したグリーンシートを得
ようとするコンデンサの両外部電極方向の誘電体寸法に
略近い寸法でジグザグ状に折りたたみ、これをプレスで
加圧成形した後、焼成してコンデンサ素体を形成する。
<Operation> To obtain a green sheet with internal electrodes coated and printed on both the front and back sides, the capacitor is folded in a zigzag shape with dimensions approximately close to the dimensions of the dielectric material in the direction of both external electrodes, then pressure-formed using a press, and then fired. to form a capacitor body.

次に、コンデンサ素体の折りたたみ方向の両端部に外部
電極を付与すれば、内部電極に対してその折り返し部分
で外部電極が接合した積層コンデンサができ上る。
Next, by applying external electrodes to both ends of the capacitor body in the folding direction, a multilayer capacitor in which the external electrodes are joined to the internal electrodes at the folded portions is completed.

〈実施例〉 以下、この発明の実施例を添付図面の第1図ないし第6
図にもとづいて説明する。
<Embodiments> Examples of the present invention will be described below with reference to FIGS. 1 to 6 of the accompanying drawings.
This will be explained based on the diagram.

先ず、第1図と第2図のように、長い帯状のグリーンシ
ーl〜11を形成し、このシート11の表裏両面にペー
スト状の内部電極12.13を塗布印刷する。
First, as shown in FIGS. 1 and 2, long strip-shaped green sheets 1 to 11 are formed, and paste-like internal electrodes 12 and 13 are coated and printed on both the front and back surfaces of this sheet 11.

次に、内部電極を塗布したグリーンシート11を第3図
のように順次ジグザグ状に折りたたみ、これを第4図の
如く、折りたたみ方向からプレスで加圧成形し、矩形状
のジグザグ状積層体14を形成する。
Next, the green sheets 11 coated with internal electrodes are sequentially folded into a zigzag shape as shown in FIG. form.

なあ、グリーンシート11のジグザグ状折りたたみ時に
おける折りたたみ寸法L′は第5図で示した得ようとす
るコンデンサの両外部電極方向の誘電体寸法りに略近い
寸法になるよう設定される。
Incidentally, the folding dimension L' when the green sheet 11 is folded in a zigzag pattern is set to be substantially close to the dielectric dimension in the direction of both external electrodes of the desired capacitor shown in FIG.

前記ジグザグ状積層体14は炉で焼成し、コンデンサ素
体15とし、この素体15の折りたたみ方向の両端部に
外部電極16.16を塗布してこれを焼付け、第5図の
如き積層コンデンサを得るものでおる。
The zigzag-shaped laminate 14 is fired in a furnace to form a capacitor body 15, and external electrodes 16, 16 are coated on both ends of the body 15 in the folding direction and baked to form a multilayer capacitor as shown in FIG. It's what you get.

上記積層コンデンサにおいて、内部電極12.13は第
6図に拡大断面図で示す如く、折りたたみ方向の両端部
の全面で露出することになり、外部電極16.16との
接合面積が大幅に増大すると共に、グリーンシートを焼
成したとき、収縮率のちがいによる内部電極の引込みが
全く発生せず、内部電極と外部電極の確実な接合状態が
得られることになる。
In the above multilayer capacitor, the internal electrodes 12.13 are exposed on the entire surface of both ends in the folding direction, as shown in the enlarged cross-sectional view in FIG. 6, and the bonding area with the external electrodes 16.16 is significantly increased. In addition, when the green sheet is fired, the internal electrodes do not pull in due to the difference in shrinkage rate, and a reliable bonding state between the internal electrodes and the external electrodes can be obtained.

また、コンデンサ素体の両端面が内部電極によって覆わ
れるため、外部電極16.16がマイグレイジョンによ
り誘電体内に浸入し、対向する内部電極と短絡が生じる
ようなことがない。
Furthermore, since both end surfaces of the capacitor body are covered by the internal electrodes, there is no possibility that the external electrodes 16, 16 will migrate into the dielectric and cause a short circuit with the opposing internal electrodes.

なお、コンデンサ素体の形成は、第1図に一点鎖線で示
すように、広幅のグリーンシートに複数の内部電極を一
定の間隔で両面に一括印刷し、これをジグザグ状に折り
たたんでプレスによる加圧成形後に、所定の幅に切り離
すようにしてもよい。
The capacitor body is formed by printing a plurality of internal electrodes on both sides of a wide green sheet at regular intervals, folding it into a zigzag shape, and pressing it as shown by the dashed line in Figure 1. After pressure forming, it may be cut into a predetermined width.

〈効果〉 以上のように、この発明によると、上記のような構成で
あるので、以下に示す効果がある。
<Effects> As described above, according to the present invention, since it has the above configuration, it has the following effects.

(A>  両面に内部電極を設【プた帯状のグリーンシ
ートを折りたたんで加圧成形し、これを焼成した俄雨端
部に外部電極を付与するようにしたので、内部電極が素
体の両端面において全面に露出し、グリーンシートの焼
成時に内部電極の引込み発生がなく、外部電極との接合
が十分になり、容量落ちがなくなる。
(A> A strip-shaped green sheet with internal electrodes on both sides was folded and pressure-formed, and then the external electrodes were attached to the ends of the sheet after firing, so the internal electrodes were attached to both ends of the element body. Since the inner electrodes are fully exposed on the surface, there is no pull-in of the internal electrodes when the green sheet is fired, and the bonding with the external electrodes is sufficient, eliminating loss of capacity.

(B)  素体の両端面全面が内部電極で覆われている
ので、外部電極がマイグレイジョンにより誘電体内に浸
入するというようなことがなく、外部電極が対向内部電
極と短絡するのを防止できる。
(B) Since both end faces of the element body are entirely covered with internal electrodes, the external electrodes do not migrate into the dielectric material, and short circuits between the external electrodes and the opposing internal electrodes are prevented. can.

(C)  外部電極が対向内部電極と短絡するようなこ
とがないので、外部電極と対向内部電極の距離を短かく
でき、コンデンサ全体の小型化が実現できるとともに、
外部電極材料に高価なパラジウムなどの貴金属をあえて
混入させる必要もなくなる。
(C) Since the external electrode does not short-circuit with the opposing internal electrode, the distance between the external electrode and the opposing internal electrode can be shortened, and the entire capacitor can be made smaller.
There is no need to intentionally mix expensive noble metals such as palladium into the external electrode material.

(D)  外部電極と対向内部電極の距離を短かくでき
るので、内部電極の対向面積を広くでき、容量を大きく
することができる。
(D) Since the distance between the external electrode and the opposing internal electrode can be shortened, the opposing area of the internal electrodes can be increased, and the capacitance can be increased.

(E)  内部電極の端部全面に内部電極が露出するの
で、外部電極との接合面積が広くなり、両電極接合部の
信頼性が著しく向上する。
(E) Since the internal electrode is exposed over the entire end portion of the internal electrode, the bonding area with the external electrode is widened, and the reliability of the bonded portion of both electrodes is significantly improved.

(F)  帯状のグリーンシートを折りたたむので、内
部電極の対向位置精度が向上し、容量のばらつき発生が
なくなる。
(F) Since the strip-shaped green sheet is folded, the accuracy of the opposing positions of the internal electrodes is improved and variations in capacitance are eliminated.

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

第1図はグリーンシートに電極を設けた斜視図、第2図
は同上の側面図、第3図は同上の折りたたみ途中を示す
斜視図、第4図は同上の折りたたみ状態を示す斜視図、
第5図は完成したコンデンサの斜視図、第6図は同上要
部の拡大断面図、第7図は従来のコンデンサを示す断面
図、第8図は同上に用いるグリーンシートの斜視図でお
る。 11・・・グリーンシート12.13・・・内部電極1
4・・・ジクザグ状積層体   15・・・コンデンサ
素体出願人代理人  弁理士  和 1)昭第2図 TG6図
FIG. 1 is a perspective view of the green sheet provided with electrodes, FIG. 2 is a side view of the same, FIG. 3 is a perspective view of the same in the middle of folding, and FIG. 4 is a perspective view of the same in the folded state.
FIG. 5 is a perspective view of a completed capacitor, FIG. 6 is an enlarged sectional view of the main parts of the same, FIG. 7 is a sectional view of a conventional capacitor, and FIG. 8 is a perspective view of a green sheet used in the same. 11... Green sheet 12.13... Internal electrode 1
4... Zigzag-shaped laminate 15... Capacitor body applicant's agent Patent attorney Kazu 1) Showa 2 figure TG6 figure

Claims (1)

【特許請求の範囲】[Claims]  帯状グリーンシートの表裏両面に内部電極を設け、こ
のグリーンシートを、得ようとするコンデンサの両外部
電極方向の誘電体寸法に近い寸法に折りたたみ、この折
りたたみ体を重なり方向に加圧成形した後、焼成してコ
ンデンサ素体を形成し、このコンデンサ素体の両端に外
部電極を設けることを特徴とする積層コンデンサの製造
方法。
Internal electrodes are provided on both the front and back sides of a strip-shaped green sheet, this green sheet is folded to a size close to the dielectric dimension in the direction of both external electrodes of the capacitor to be obtained, and this folded body is press-formed in the overlapping direction. 1. A method for manufacturing a multilayer capacitor, which comprises firing to form a capacitor body, and providing external electrodes at both ends of the capacitor body.
JP12498385A 1985-06-07 1985-06-07 Manufacture of laminate capacitor Pending JPS61283109A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
JP12498385A JPS61283109A (en) 1985-06-07 1985-06-07 Manufacture of laminate capacitor

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
JP12498385A JPS61283109A (en) 1985-06-07 1985-06-07 Manufacture of laminate capacitor

Publications (1)

Publication Number Publication Date
JPS61283109A true JPS61283109A (en) 1986-12-13

Family

ID=14899021

Family Applications (1)

Application Number Title Priority Date Filing Date
JP12498385A Pending JPS61283109A (en) 1985-06-07 1985-06-07 Manufacture of laminate capacitor

Country Status (1)

Country Link
JP (1) JPS61283109A (en)

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2003203820A (en) * 2002-01-07 2003-07-18 Rohm Co Ltd Chip capacitor
US20160035489A1 (en) * 2014-08-04 2016-02-04 Point Engineering Co., Ltd. Multi-layered aluminum oxide capacitor

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2003203820A (en) * 2002-01-07 2003-07-18 Rohm Co Ltd Chip capacitor
US20160035489A1 (en) * 2014-08-04 2016-02-04 Point Engineering Co., Ltd. Multi-layered aluminum oxide capacitor
US10163567B2 (en) * 2014-08-04 2018-12-25 Point Engineering Co., Ltd. Multi-layered aluminum oxide capacitor

Similar Documents

Publication Publication Date Title
US4322698A (en) Laminated electronic parts and process for making the same
JPS61283109A (en) Manufacture of laminate capacitor
JP2000150289A (en) Layered ceramic capacitor
JP2000277382A (en) Multi-laminated ceramic capacitor and manufacturing method of the same
JP2888020B2 (en) Negative multilayer thermistor
JPS6133625Y2 (en)
JPH0115159Y2 (en)
JPH0563007B2 (en)
JPH10223470A (en) Multilayer ceramic capacitor
JP2002343640A (en) Laminated ceramic electronic component
JP3089956B2 (en) Multilayer ceramic capacitors
JPS6031242Y2 (en) LC composite parts
JPH04117808A (en) Lc filter
JPH0945830A (en) Chip electronic component
JPS60254608A (en) Laminated ceramic condenser
JPS6152969B2 (en)
JPH0316249Y2 (en)
JPH0338812A (en) Laminated capacitor
JPS6228740Y2 (en)
JPS5934114Y2 (en) multilayer capacitor
JPH0316250Y2 (en)
JPH0316248Y2 (en)
JP2000114100A (en) Multiple electronic part
JPH0316246Y2 (en)
JPH0316247Y2 (en)