JPH0324232A - Method for induction hardening of gear - Google Patents

Method for induction hardening of gear

Info

Publication number
JPH0324232A
JPH0324232A JP1157553A JP15755389A JPH0324232A JP H0324232 A JPH0324232 A JP H0324232A JP 1157553 A JP1157553 A JP 1157553A JP 15755389 A JP15755389 A JP 15755389A JP H0324232 A JPH0324232 A JP H0324232A
Authority
JP
Japan
Prior art keywords
hardening
induction heating
gear
depth
gears
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
JP1157553A
Other languages
Japanese (ja)
Inventor
Hiroaki Iwasaki
岩崎 弘明
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.)
Nissan Motor Co Ltd
Original Assignee
Nissan Motor 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 Nissan Motor Co Ltd filed Critical Nissan Motor Co Ltd
Priority to JP1157553A priority Critical patent/JPH0324232A/en
Publication of JPH0324232A publication Critical patent/JPH0324232A/en
Pending legal-status Critical Current

Links

Classifications

    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02PCLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
    • Y02P10/00Technologies related to metal processing
    • Y02P10/25Process efficiency

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  • Heat Treatment Of Articles (AREA)

Abstract

PURPOSE:To execute the hardening of plural kinds of gears in a common equipment by setting the frequency of a high frequency current flowing in a coil to the lowest hardening depth and, in case of a gear having a high hardening depth, repeatedly subjecting it to induction heating with air-cooling. CONSTITUTION:At the time of subjecting gears to hardening by utilizing induction heating, the frequency of a high frequency current flowing in a coil is set to the value in accordance with the lowest hardening depth. In case of a gear having the lowest hardening depth, it is hardened by single induction heating according to the conventional method. In case of a gear having a high hardening depth, it is subjected to induction heating for a time and is air cooled for prescribed time; in the meanwhile, the heat that the tip part holds is transmitted to the dedendum part. Then, the gear is subjected to induction heating once more and is almost uniformly heated to the dedendum part. Hereafter, induction heating is similarly repeated to obtain a sufficient hardened layer. In this way, there is no need for preparing separate hardening equipments or changing the frequency conditions, and set-up change man-hours can be reduced as well as the equipment cost can be reduced.

Description

【発明の詳細な説明】 産業上の利用分野 本発明は、コイル中に置かれた歯車を高周波電流による
誘導加熱を利用して焼入れを行う方法に関し、さらに詳
しくは歯部の焼入深さが異なる複数種類の歯車の焼入れ
を共通の焼入装置により行う方法に関する。
DETAILED DESCRIPTION OF THE INVENTION Field of Industrial Application The present invention relates to a method for hardening a gear placed in a coil using induction heating using a high-frequency current, and more specifically, it relates to a method for hardening a gear placed in a coil using induction heating using a high-frequency current. The present invention relates to a method for hardening a plurality of different types of gears using a common hardening device.

従来の技術とその課題 リングギャの歯部に高周波焼入れを施す方法としては例
えば第5図および第6図に示す方法がある。この方法は
、環状のコイル1の中に治具2に位置決めされたリング
ギャ3を置き、リングギャ3を治具2とともに回転させ
る一方でコイル1に高周波電流を流してその誘導加熱作
用によりリングギャ3の歯部7を中心に加熱する。そし
て、所定時間加熱したならば第6図に仮想線で示すよう
にコイルlを上昇させ、直ちにウォータジャケット4の
噴射口5から焼入水を噴射して冷却することによって焼
入れが施される。6はコイルl内に設けられた冷却水通
路を示す。また、l2は冷却水ポート、l3は焼入水ポ
ートをそれぞれに示す。
2. Prior Art and its Problems As a method of induction hardening the teeth of a ring gear, there is a method shown in FIGS. 5 and 6, for example. In this method, a ring gear 3 positioned on a jig 2 is placed inside an annular coil 1, and while the ring gear 3 is rotated together with the jig 2, a high frequency current is passed through the coil 1, and the ring gear 3 is heated by induction heating. The tooth portion 7 is heated mainly. After heating for a predetermined period of time, the coil 1 is raised as shown by the imaginary line in FIG. 6, and quenching water is immediately injected from the injection port 5 of the water jacket 4 to cool it, thereby performing quenching. Reference numeral 6 indicates a cooling water passage provided within the coil l. Further, 12 indicates a cooling water port, and 13 indicates a quenching water port.

ところで、例えば自動車の駆動系に用いられるリングギ
ャにおいては、たとえ同一サイズのものであっても車種
あるいは仕様等に応じて歯部7に対する応力の負荷状態
が異なるために、その車種等に応じて歯部7の焼入硬化
層のパターンを第2図(A),(B)および第3図(A
),(B)に示すように変化させたい場合がある。
By the way, in ring gears used in the drive system of automobiles, for example, even if they are of the same size, the stress load state on the tooth portion 7 differs depending on the car model or specifications. The pattern of the quenched hardened layer of part 7 is shown in Fig. 2 (A), (B) and Fig. 3 (A).
), (B).

例えば第3図(A).(B)のリングギャ23の場合に
は、歯先面から歯元部までの歯部7全体が焼入硬化層8
である必要があるのに対し、第2図(A).(B)のリ
ングギャ33の場合には歯すじ方向の一端の歯先部に比
較的浅い焼入硬化層9が必要とされるような場合である
For example, Figure 3 (A). In the case of the ring gear 23 in (B), the entire tooth portion 7 from the tooth tip to the tooth root is covered with the quenched hardened layer 8.
Figure 2 (A). In the case of the ring gear 33 shown in (B), a relatively shallow quenched hardened layer 9 is required at the tooth tip at one end in the tooth trace direction.

このような場合、高周波電流の周波数が低いほどより大
きな焼入深さが得られるという装置の一般的特性を考慮
すると、第2図(A),(B)の焼入れパターンの場合
には第3図(A),(B)のパターンに比べて数倍(ギ
ヤのサイズ等にもよるが一般的には5〜8倍)の高い周
波数が必要とされ、したがって上記のように焼入深さに
大きな差がある二種類のリングギャ23.33を周波数
が一定した共通の焼入装置で焼入れすることはきわめて
困難である。その結果、各焼入れパターンごとに別個の
焼入装置が必要になり、設備費の高騰を招く結果となっ
て好ましくない。
In such a case, considering the general characteristic of the equipment that the lower the frequency of the high-frequency current, the greater the quenching depth can be obtained, in the case of the quenching patterns shown in Figs. 2(A) and 2(B), the third Compared to the patterns in Figures (A) and (B), a frequency several times higher (generally 5 to 8 times higher, depending on the gear size, etc.) is required, and therefore the quenching depth is reduced as shown above. It is extremely difficult to harden two types of ring gears 23, 33 that have a large difference in temperature using a common hardening device with a constant frequency. As a result, a separate hardening device is required for each hardening pattern, resulting in an undesirable increase in equipment costs.

また、一つの焼入装置の周波数をリングギャの種類に応
じてその都度切り換えることも可能であるが、その場合
には設備の改造および段取り替えに多大な工数と時間を
要し、設備稼動率の低下と併せて上記と同様に設備費の
高騰を招くことになる。
It is also possible to change the frequency of one hardening device each time depending on the type of ring gear, but in that case, it would take a lot of man-hours and time to modify and change the equipment, and the equipment operating rate would be reduced. In combination with the decline, equipment costs will rise similarly to the above.

本発明は以上のような問題点に鑑みてなされたもので、
その目的とするところは、上記のように焼入深さの異な
る複数種類の歯車の焼入れを、周波数を変化させること
なく共通の設備で行えるようにした方法を提供すること
にある。
The present invention was made in view of the above problems.
The purpose is to provide a method that enables hardening of a plurality of types of gears having different hardening depths as described above using common equipment without changing the frequency.

課題を解決するための手段 本発明は、コイルに流れる高周波電流の周波数を最も小
さい焼入深さに応じた値に設定し、この焼入深さの最も
小さい歯車の焼入れに際しては常法により1回の誘導加
熱で焼入れする一方、焼入深さの大きいほうの歯車の焼
入れに際しては、所定の空冷時間をはさんでコイルによ
る誘導加熱を少なくとも2回繰り返して行うことを特徴
とじている。
Means for Solving the Problems In the present invention, the frequency of the high-frequency current flowing through the coil is set to a value corresponding to the smallest hardening depth, and when hardening a gear with the smallest hardening depth, 1. While hardening is performed by induction heating twice, when hardening gears with a larger hardening depth, induction heating by a coil is repeated at least twice with a predetermined air cooling time in between.

作用 この方法によると、焼入深さの最も小さい歯車の場合に
は、予めその焼入深さに応じた周波数に設定されている
ために、例えば、誘導加熱→空冷→水冷、という常法通
りの手順で焼入れされる。
Function According to this method, in the case of a gear with the smallest hardening depth, the frequency is set in advance according to the hardening depth. It is hardened using the following steps.

一方、焼入深さの大きい歯車の場合には、その焼入深さ
に対して周波数条件が合致していない(周波数が高すぎ
る)ため、上記と同様の手順で焼入れすると歯先面のみ
が加熱されるために焼入深さが小さすぎて必要十分な焼
入硬化層が得られない。
On the other hand, in the case of gears with a large hardening depth, the frequency conditions do not match the hardening depth (the frequency is too high), so if the gear is hardened using the same procedure as above, only the tooth tip surface will be Due to heating, the quenching depth is too small and a necessary and sufficient quenching hardened layer cannot be obtained.

そこで、一旦誘導加熱したならば所定時間空冷し、その
間に歯先部が保有している熱を歯元部まで伝達させ、そ
の上で再度誘導加熱すると歯元部までほぼ均一に加熱さ
れるようになる。そして、以降は上記と同様に、空冷→
水冷、という手順を経ることで必要十分な焼入硬化層が
得られる。
Therefore, once induction heating is performed, it is air cooled for a predetermined period of time, during which time the heat held by the tooth tip is transmitted to the tooth root, and then induction heating is performed again to ensure that the tooth root is heated almost uniformly. become. Then, as above, air cooling →
By going through the water cooling procedure, a necessary and sufficient quenched layer can be obtained.

実施例 下記に示す諸元のリングギャ23,33を、第5図およ
び第6図の焼入装置を用いて第2図(A),(B)およ
び第3図(A),(B)の焼入れパターンとなるように
焼入れを行った。
Example Ring gears 23, 33 having the specifications shown below were processed using the hardening equipment shown in FIGS. 5 and 6 as shown in FIGS. Hardening was performed to obtain a hardening pattern.

リ  ン  グ  ギ  ャ  諸  元外     
  径       284.015MM内     
  径       254.OJIJI厚     
     さ            10,Ou+歯
       数       1 1 1圧   力
   角         20°転  位   M 
        −0.5ダイヤメトラルビッチ   
10/12(モジュール)        (2.54
)第2図(A),(B)に示す焼入深さの小さいパター
ンのリングギャ33については、出力9.9KV,周波
数200KHZの条件のもとで第1図(A)に示すよう
に8秒間誘導加熱を行い、そののち2.5秒の空冷(放
冷)時間をおいてウォータジャケット4(第6図)より
30〜34゜Cの焼入水を噴射して水冷した。ただし、
リングギャ33に対するコイル■の位置は第4図に示す
ように第3図(A),  (B)の焼入れノ《ターンの
場合よりも所定量βだけ高い位置に設定した。
Ring gear specifications not included
Diameter within 284.015MM
Diameter 254. OJIJI thickness
Size 10, Ou + number of teeth 1 1 1 pressure angle 20° shift M
-0.5 Diamond Lubitch
10/12 (module) (2.54
) Regarding the ring gear 33 having a pattern with a small hardening depth shown in FIGS. 2(A) and (B), the ring gear 33 as shown in FIG. 1(A) is Induction heating was performed for 2 seconds, and after 2.5 seconds of air cooling (cooling), quenching water at a temperature of 30 to 34° C. was injected from the water jacket 4 (FIG. 6) for water cooling. however,
As shown in FIG. 4, the position of the coil (2) relative to the ring gear 33 was set to be a predetermined amount β higher than in the case of the hardening turn shown in FIGS. 3(A) and (B).

一方、第3図(A).(B)に示す焼入深さの大きいパ
ターンのりングギャ23については、出力9,QKV,
周波数200KHzの条件のもとて第1図(B)に示す
ように6秒間誘導加熱を行い、そののち2.5秒間の空
冷(放冷)時間をおいて再び上記と同条件で7.5秒間
誘導加熱を行った。そして、加熱後に、4.5秒間の空
冷(放冷)時間をおいてウオータジャケット4より30
〜34℃の焼入水を噴射して水冷した。
On the other hand, Fig. 3(A). For the ring gear 23 with a large hardening depth pattern shown in (B), the output is 9, QKV,
Induction heating was performed for 6 seconds as shown in Figure 1 (B) under the condition of a frequency of 200 KHz, and then after 2.5 seconds of air cooling (cooling) time, heating was performed again under the same conditions as above for 7.5 seconds. Induction heating was performed for seconds. After heating, after 4.5 seconds of air cooling (cooling),
Water cooling was performed by spraying quenching water at ~34°C.

その結果、第2図(A).(B)の焼入れノく夕一ンの
場合、ロックウエル硬さHaC50の焼入硬化層9が、
歯先面の仮想工・ノジ部10を中心とした半径(R)3
〜5imの範囲まで形成された。
As a result, Figure 2 (A). In the case of the hardened layer 9 of (B), the hardened layer 9 has a Rockwell hardness of HaC50.
Virtual machining of the tooth tip surface/Radius (R) 3 centered on the nozzle part 10
It was formed up to a range of ~5 mm.

また、第3図(A).(B)の焼入れノくターンの場合
、HRC50の焼入硬化層8が歯底面11よりも1〜3
MII深い位置まで形成されたことが確認された。
Also, Fig. 3(A). In the case of the hardened turn of (B), the hardened layer 8 of HRC50 is 1 to 3 times lower than the tooth bottom surface 11.
It was confirmed that it was formed deep into MII.

発明の効果 本発明によれば、コイルに流れる高周波電流の周波数を
最も小さい焼入深さに応じた値に設定し、この焼入深さ
の最も小さい歯車は1回の誘導加熱で焼入れする一方、
焼入深さの大きい歯車は所定の空冷時間をはさんで誘導
加熱を少なくもと2回繰り返して焼入れするようにした
ことにより、焼入深さの異なる複数種類の歯車を周波数
条件を変更することなく共通の焼入装置で焼入処理でき
ることから、従来のように焼入深さに応じた個別の焼入
装置を用意したり、その都度周波数条件を変更する必要
がなくなり、設備費の抑制と併せて段取り替え工数を大
幅に削減できる効果がある。
Effects of the Invention According to the present invention, the frequency of the high-frequency current flowing through the coil is set to a value corresponding to the smallest quenching depth, and the gear with the smallest quenching depth is quenched by one induction heating. ,
Gears with large quenching depths are quenched by repeating induction heating at least twice with a predetermined air cooling time in between, making it possible to change the frequency conditions for multiple types of gears with different quenching depths. Since the hardening process can be performed using a common hardening device without any hardening, there is no need to prepare separate hardening devices depending on the hardening depth or change the frequency conditions each time, which is required in the past, reducing equipment costs. In addition, this has the effect of significantly reducing the number of man-hours required for setup changes.

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

第1図(A)は本発明の一実施例を示す図で、焼入深さ
の小さいり冫グギャを焼入れする際の工程説明図、第1
図(B)は同じく焼入深さの大きいリングギャを焼入れ
する際の工程説明図、第2図(A)は焼入深さの小さい
リングギャの焼入れパターンを示す要部拡大図、第2図
(B)は同図(A)のn−n線に沿う断面図、第3図(
A)は焼入深さの大きいリングギャの焼入れ,?ターン
を示す要部拡大図、第3図(B)は同図(A)の■■線
に沿う断面図、第4図はり冫グギャとコイルとの関係を
示す拡大説明図、第5図は高周波焼入装置の一例を示す
概略説明図、第6図は第5図のVI−Vl線に沿う断面
図である。 1・・・コイル、7・・・歯部、8,9・・・焼入硬化
層、23.33・・・リングギャ。 第2図 (A) (B) 第3図
FIG. 1(A) is a diagram showing an embodiment of the present invention, and is a process explanatory diagram for hardening a hardened material with a small hardening depth.
Figure (B) is an explanatory diagram of the process for hardening a ring gear with a large hardening depth, and Figure 2 (A) is an enlarged view of the main parts showing the hardening pattern of a ring gear with a small hardening depth. B) is a cross-sectional view taken along the line nn in Figure (A), and Figure 3 (
A) is the hardening of a ring gear with a large hardening depth. Figure 3 (B) is an enlarged view of the main part showing the turn, Figure 3 (B) is a sectional view taken along line A schematic explanatory diagram showing an example of an induction hardening apparatus, FIG. 6 is a sectional view taken along the line VI-Vl in FIG. 5. DESCRIPTION OF SYMBOLS 1... Coil, 7... Teeth, 8, 9... Quenched hardened layer, 23.33... Ring gear. Figure 2 (A) (B) Figure 3

Claims (1)

【特許請求の範囲】[Claims] (1)歯車の歯部に高周波焼入れを施すにあたり、焼入
深さの異なる複数種類の歯車の焼入れを共通の焼入装置
により行う方法であって、 コイルに流れる高周波電流の周波数を最も小さい焼入深
さに応じた値に設定し、 焼入深さの最も小さい歯車はコイルによる1回の誘導加
熱で焼入れする一方、 焼入深さの大きい歯車の焼入れに際しては、所定の空冷
時間をはさんでコイルによる誘導加熱を少なくとも2回
繰り返して行うことを特徴とする歯車の高周波焼入方法
(1) When induction hardening is applied to gear teeth, a common hardening device is used to harden multiple types of gears with different hardening depths, and the frequency of the high-frequency current flowing through the coil is set to the lowest The value is set according to the hardening depth, and gears with the smallest hardening depth are hardened with one induction heating using a coil, while gears with a large hardening depth are hardened with a specified air cooling time. A method for induction hardening gears, which comprises repeating induction heating using a sandwiched coil at least twice.
JP1157553A 1989-06-20 1989-06-20 Method for induction hardening of gear Pending JPH0324232A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
JP1157553A JPH0324232A (en) 1989-06-20 1989-06-20 Method for induction hardening of gear

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
JP1157553A JPH0324232A (en) 1989-06-20 1989-06-20 Method for induction hardening of gear

Publications (1)

Publication Number Publication Date
JPH0324232A true JPH0324232A (en) 1991-02-01

Family

ID=15652202

Family Applications (1)

Application Number Title Priority Date Filing Date
JP1157553A Pending JPH0324232A (en) 1989-06-20 1989-06-20 Method for induction hardening of gear

Country Status (1)

Country Link
JP (1) JPH0324232A (en)

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5335148A (en) * 1992-01-31 1994-08-02 Mitsubishi Denki Kabushiki Kaisha Illuminated knob device
US6176589B1 (en) 1996-10-15 2001-01-23 Kabushiki Kaisha Tokai Rika Denki Seisakusho Dial operating apparatus
FR2868975A1 (en) * 2004-04-19 2005-10-21 Peugeot Citroen Automobiles Sa Heat treatment of revolving mechanical components using high and medium frequency induction heating stages and quenching in a water-polymer mixture
JP2012136740A (en) * 2010-12-27 2012-07-19 Neturen Co Ltd Induction hardening device and induction hardening method

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5335148A (en) * 1992-01-31 1994-08-02 Mitsubishi Denki Kabushiki Kaisha Illuminated knob device
US6176589B1 (en) 1996-10-15 2001-01-23 Kabushiki Kaisha Tokai Rika Denki Seisakusho Dial operating apparatus
FR2868975A1 (en) * 2004-04-19 2005-10-21 Peugeot Citroen Automobiles Sa Heat treatment of revolving mechanical components using high and medium frequency induction heating stages and quenching in a water-polymer mixture
JP2012136740A (en) * 2010-12-27 2012-07-19 Neturen Co Ltd Induction hardening device and induction hardening method

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