JPS6194230A - Magnetic recording medium - Google Patents

Magnetic recording medium

Info

Publication number
JPS6194230A
JPS6194230A JP59215280A JP21528084A JPS6194230A JP S6194230 A JPS6194230 A JP S6194230A JP 59215280 A JP59215280 A JP 59215280A JP 21528084 A JP21528084 A JP 21528084A JP S6194230 A JPS6194230 A JP S6194230A
Authority
JP
Japan
Prior art keywords
magnetic
magnetic powder
powder
weight
parts
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
JP59215280A
Other languages
Japanese (ja)
Inventor
Tsutomu Yashiro
八代 勉
Koichi Moriizumi
森泉 弘一
Akira Horiguchi
晃 堀口
Isao Sasaki
功 佐々木
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.)
Victor Company of Japan Ltd
Original Assignee
Victor Company of Japan 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 Victor Company of Japan Ltd filed Critical Victor Company of Japan Ltd
Priority to JP59215280A priority Critical patent/JPS6194230A/en
Publication of JPS6194230A publication Critical patent/JPS6194230A/en
Pending legal-status Critical Current

Links

Abstract

PURPOSE:To improve the color S/N and C/N by forming a magnetic layer contg. magnetic powder and magnetic powder of hexagonal ferrite having <=600Oe coercive force, <=5 aspect ratio and a regulated particle size in a specified mixing ratio. CONSTITUTION:A magnetic layer contg. 100pts.wt. magnetic powder having >=70emu/g saturation magnetization and 5-100pts.wt. magnetic powder of hexagonal ferrite having an axis of easy magnetization in the direction of the c-axis, <=600Oe coercive force, <=5 aspect ratio and 0.2-0.5mum particle size is formed. The resulting magnetic recording medium can attain high reproduction output when a ringlike magnetic head of ferrite is used, and the medium is suitable for high density recording. The reproduction output of a magnetic recording medium in a high frequency region is improved by using magnetic powder of hexagonal ferrite mixed with needlelike ferromagnetic powder, and the medium can be adapted to high density recording. The reproduction output in a low frequency region is improved by the horizontally magnetizable component of the needlelike ferromagnetic powder. The medium has improved color S/N, C/N, carrier output, still characteristics, traveling performance, reproduction output and erasing characteristics.

Description

【発明の詳細な説明】 〔産業上の利用分野〕 本発明は、例えばオーディオテープ、ビデオテープ等の
磁気テープ、又はフロッピーディスク、ハードディスク
等の磁気ディスクといった磁気記録媒体に関するもので
ある。
DETAILED DESCRIPTION OF THE INVENTION [Field of Industrial Application] The present invention relates to a magnetic recording medium such as a magnetic tape such as an audio tape or a video tape, or a magnetic disk such as a floppy disk or a hard disk.

〔従来技術とその問題点〕[Prior art and its problems]

従来、磁気記録媒体としては、針状γ−Fermi磁性
粉を含む磁性塗料を非磁性基体上に塗布し、そして機械
配向あるいは磁場配向といった配向処理によって磁化を
面内長手方向に配向させた、いわゆる水平磁気記録方式
のものが主でらる◎しかし、この種の水平磁気記録方式
の磁気記録媒体は、記録信号が短波長のものであると、
自己減磁作用が大きくなって再生出力が低下するので、
高密度記録には適していない。
Conventionally, magnetic recording media have been produced by coating a magnetic paint containing acicular γ-Fermi magnetic powder on a non-magnetic substrate, and then oriented the magnetization in the in-plane longitudinal direction by an orientation treatment such as mechanical orientation or magnetic field orientation. Horizontal magnetic recording is the main type of recording medium.However, with this type of horizontal magnetic recording magnetic recording medium, if the recording signal is of a short wavelength,
Since the self-demagnetizing effect increases and the reproduction output decreases,
Not suitable for high density recording.

そこで、この−ような欠点を解決するものとして、いわ
ゆる垂直磁気記録方式の磁気記録媒体が提案されておシ
、例えば強磁性粉末と六方晶系フェライト磁性粉末、特
に平均粒径0.2μm以下の六方晶系フェライト粉末5
〜100重量部と、飽和磁化70e m u/g 以上
で平均粒径が該六方晶系フェライト粉末の平均粒径よシ
大きい強磁性粉末とを、樹脂バインダー中に分散させて
なる磁気記録媒体が提案(特開昭58−203625号
)されている。
Therefore, as a solution to these drawbacks, so-called perpendicular magnetic recording magnetic recording media have been proposed. Hexagonal ferrite powder 5
~100 parts by weight of ferromagnetic powder having a saturation magnetization of 70 e m u/g or more and an average particle size larger than the average particle size of the hexagonal ferrite powder are dispersed in a resin binder. It has been proposed (Japanese Unexamined Patent Publication No. 58-203625).

すなわち、この提案の技術思想は、単に強磁性粉末と六
方晶系フェライト磁性粉末を用いたのみでは、磁性塗料
の分散性が悪いことがら磁気特性−の低下をもたらして
いるので、上記提案のように構成すれば磁性塗料の分散
性が向上し、よって磁気特性良好な磁気記録媒体が得ら
れると述べているのである。
In other words, the technical concept of this proposal is that simply using ferromagnetic powder and hexagonal ferrite magnetic powder would result in a decrease in magnetic properties due to poor dispersibility of the magnetic paint. It is stated that if the structure is configured as follows, the dispersibility of the magnetic coating material will be improved, and a magnetic recording medium with good magnetic properties can therefore be obtained.

ところが、本発明者の研究によれば、この提案の磁気記
録媒体でも高密度記録用としては充分満足できるもので
もないことがわかってきた。
However, according to research conducted by the present inventors, it has been found that even this proposed magnetic recording medium is not fully satisfactory for high-density recording.

〔発明の開示〕[Disclosure of the invention]

本発明者は、現在記録再生装置等に組み込まれているリ
ング型のフェライト磁気ヘッドによって大きな再生出力
を得ることができ、かつ高密度記録にも対応できる磁気
記録媒体の研究を進めているうちに、飽和磁化70em
u/g以上の磁性粉末と、イズが0.2〜0.5μmの
六方晶系フェライト磁性粉末とを磁性層中に含み、前記
磁性粉末100重量部に対し前記六方晶系フェライト磁
性粉末が5〜100重量部の割合よりなる磁気記録媒体
は、リング型フェライト磁気ヘッドによって大きな再生
出力を得ることの出来るものであシ、かつ高密度記録に
も適したものであることを見い出した。
The present inventor has been conducting research on magnetic recording media that can obtain large playback output using ring-shaped ferrite magnetic heads that are currently incorporated in recording and playback devices, and can also handle high-density recording. , saturation magnetization 70em
The magnetic layer contains a magnetic powder of 0.2 to 0.5 μm and a hexagonal ferrite magnetic powder of 0.2 to 0.5 μm, and the hexagonal ferrite magnetic powder is It has been found that a magnetic recording medium having a proportion of ~100 parts by weight is capable of obtaining a large reproduction output with a ring-type ferrite magnetic head, and is also suitable for high-density recording.

つまり、六方晶系フェライト磁性粉を針状強磁性粉に混
入して用いることにより、六方晶系フェライト磁性物の
垂直磁化成分が有効に利用できて高周波領域での再生出
力が向上し、高密度記録に対応できるものとなり、又、
針状強磁性粉の水平磁化成分が有効に利用できて低周波
領域での再生出力は向上する。
In other words, by mixing hexagonal ferrite magnetic powder with acicular ferromagnetic powder, the perpendicular magnetization component of the hexagonal ferrite magnetic powder can be effectively used, improving the reproduction output in the high frequency range and increasing the density. It can be used for recording, and
The horizontal magnetization component of the acicular ferromagnetic powder can be effectively used, and the reproduction output in the low frequency region is improved.

そして、特に例えばバリウムフェライト磁性粉、ストロ
/チウムフェライト磁性粉、カルシウムフェライト磁性
粉、鉛フェライト磁性粉あるいは置換型バリウムフェラ
イト磁性粉といった六方晶系フェライト磁性粉末の板状
比が約5以下、より一層好ましくは約1以上で5未満で
あるものを用いることによって、磁性塗料の分散性が向
上し、カラー8/Nといった磁気特性も向上することよ
り、六方晶系フェライト磁性粉の板状比は約5以下であ
ることが望ましい。
In particular, when the plate ratio of hexagonal ferrite magnetic powder such as barium ferrite magnetic powder, stro/thium ferrite magnetic powder, calcium ferrite magnetic powder, lead ferrite magnetic powder or substituted barium ferrite magnetic powder is about 5 or less, Preferably, by using powder with a ratio of about 1 or more and less than 5, the dispersibility of the magnetic paint is improved and the magnetic properties such as color 8/N are also improved. Therefore, the plate ratio of the hexagonal ferrite magnetic powder is about It is desirable that it is 5 or less.

又、研磨性に優れ、さらには滑剤の吸着量を少なくして
、磁気記録媒体の走行性及び耐久性の改善を図るには、
板状比が5以下の六方晶系フェライト磁性粉末の平均粒
径が約0.2〜0.5μmのものであることが望ましい
In addition, in order to improve the running performance and durability of magnetic recording media by having excellent polishing properties and reducing the amount of lubricant adsorbed,
It is desirable that the average particle size of the hexagonal ferrite magnetic powder having a plate ratio of 5 or less is about 0.2 to 0.5 μm.

°特に、この場合の板状比が5以下で平均粒径が0.2
〜0.5μmの六方晶系フェライト磁性粉末の含有C/
Nの向上といった面から望ましい。
° In particular, in this case, the platelet ratio is 5 or less and the average particle size is 0.2
~0.5μm hexagonal ferrite magnetic powder content C/
This is desirable from the standpoint of improving N.

又、上記のような六方晶系フェライト磁性粉末の保磁力
は約600エルステッド以下のものを用いることによっ
て、良好な消去特性の得られるものとなる。
Further, by using the above-mentioned hexagonal ferrite magnetic powder having a coercive force of about 600 Oe or less, good erasing characteristics can be obtained.

又、飽和磁化的70 emu/ g以上の磁性粉末とし
ては、例えばr−Fetos 、 Co被着r−Fe倉
Os、Fe5O4、Crys 、 Fe I)るいは合
金粉末等の針状(針状比が好ましくは約5〜15)強磁
性粉がありJこのような磁性粉末の飽和磁化は約70e
mu/g以上のものでなければ低周波領域での再生出力
は低下するものとなる。
Examples of magnetic powders with a saturation magnetization of 70 emu/g or more include acicular powders (acicular ratio is Preferably, there is a ferromagnetic powder of about 5 to 15), and the saturation magnetization of such magnetic powder is about 70e.
Unless it is greater than mu/g, the reproduction output in the low frequency region will decrease.

゛〔実施例1〕 六方晶系バリウムフェライト磁性粉(飽和磁化Ms約5
4emu/g、保磁力Hc約5850e、平均粒径的0
.3μm、板状比的4)20重量部、CO含有r−Fe
tos磁性粉(Ms約75 emu/g、 Hc約62
0Qe、平均粒径的0.2μm、針状比的10) 80
重量部、塩化ビニル−ビニルアルコール共重合体15重
量部、ポリウレタンエラストマー20重量部、レシチン
1重量部、カーボンブラック6重量部、オレイン酸3重
量部、トルエンとメチルエチルケトンの等量混合溶剤3
00重量部の混合物をサンドミルで所定時間混合分散し
て磁性塗料を作る。
[Example 1] Hexagonal barium ferrite magnetic powder (saturation magnetization Ms approximately 5
4 emu/g, coercive force Hc approximately 5850e, average particle size 0
.. 3 μm, plate-like ratio 4) 20 parts by weight, CO-containing r-Fe
TOS magnetic powder (Ms approx. 75 emu/g, Hc approx. 62
0Qe, average particle diameter 0.2μm, needle-like ratio 10) 80
Parts by weight, 15 parts by weight of vinyl chloride-vinyl alcohol copolymer, 20 parts by weight of polyurethane elastomer, 1 part by weight of lecithin, 6 parts by weight of carbon black, 3 parts by weight of oleic acid, 3 parts by weight of a mixed solvent of equal amounts of toluene and methyl ethyl ketone.
A magnetic paint is prepared by mixing and dispersing 00 parts by weight of the mixture in a sand mill for a predetermined period of time.

そして、この磁性塗料にポリインシアネート(コロネー
トL1日本ポリウレタン製)15重量部を添加し、これ
をポリエステルフィルムに塗布乾燥後、カレンダー処理
を施し、1インチ幅にスリットしてビデオ用磁気テープ
及び5.25インチの径で打ち抜いてフロッピーディス
クを構成した。
Then, 15 parts by weight of polyincyanate (Coronate L1 manufactured by Nippon Polyurethane) was added to this magnetic paint, and this was applied to a polyester film, dried, calendered, and slit into 1-inch widths to be used as video magnetic tapes. A floppy disk was constructed by punching out a 25-inch diameter piece.

〔実施例2〕 六方晶系置換型バリウムフェライト磁性粉(Ms約54
 emu 7g 、Hc約5500e、平均粒径的0.
45μm。
[Example 2] Hexagonal substituted barium ferrite magnetic powder (Ms approx. 54
emu 7g, Hc about 5500e, average particle size 0.
45μm.

板状比約4.5)25重量部、Cre2磁性粉(Ms約
70emu/g s H’約6300e、平均粒径約Q
、2pm、針状比的10) 75重量部、ニトロセルロ
ース17重量部、ポリウレタンエラストマー23重量部
、レシチン1重量部、カーボンブラック4重量部、オレ
イン酸3重量部、メチルエチルケトンとメチルイソブチ
ルケトンの等量混合溶剤320重量部の混合物をサンド
ミルで所定時間混合分散して磁性塗料を作シ、以下実施
例1と同様にしてビデオ用磁気テープ及びフロッピーデ
ィスクを構成した。
Plate ratio approximately 4.5) 25 parts by weight, Cre2 magnetic powder (Ms approximately 70 emu/g s H' approximately 6300e, average particle size approximately Q
, 2 pm, acicular (10) parts by weight, 17 parts by weight of nitrocellulose, 23 parts by weight of polyurethane elastomer, 1 part by weight of lecithin, 4 parts by weight of carbon black, 3 parts by weight of oleic acid, equivalent amounts of methyl ethyl ketone and methyl isobutyl ketone. A magnetic coating material was prepared by mixing and dispersing 320 parts by weight of the mixed solvent in a sand mill for a predetermined period of time, and a video magnetic tape and a floppy disk were constructed in the same manner as in Example 1.

〔実施例3〕 六方晶系バリウムフェライト磁性粉(Ms約54emu
/g、 Hc約5700e、平均粒径的0.25μm、
板状比約4)6重量部、F e s O4磁性粉(Ms
約82emu / g 、 Hc約6000e、平均粒
径的Q、2μm、針状比的10)94重量部、ニトロセ
ルロース13重量部、ポリウレタンエラストマー22重
量部、レシチン1重量部、カーボンブラック4重量部、
オレイン酸3重量部、トルエンとメチルインブチルケト
ンの等量混合溶剤300重量部の混合物をサンドミルで
所定時間混合分散して磁性塗料を作シ、以下実施例1と
同様にしてビデオ用磁気テープ及びフロッピーディスク
を構成した。
[Example 3] Hexagonal barium ferrite magnetic powder (Ms approximately 54 emu
/g, Hc approximately 5700e, average particle size 0.25 μm,
Plate ratio approximately 4) 6 parts by weight, Fe s O4 magnetic powder (Ms
Approximately 82 emu / g, Hc approximately 6000 e, average particle size Q, 2 μm, acicular specificity 10) 94 parts by weight, 13 parts by weight of nitrocellulose, 22 parts by weight of polyurethane elastomer, 1 part by weight of lecithin, 4 parts by weight of carbon black,
A mixture of 3 parts by weight of oleic acid and 300 parts by weight of a mixed solvent of equal amounts of toluene and methyl imbutyl ketone was mixed and dispersed in a sand mill for a predetermined period of time to prepare a magnetic paint. Configured a floppy disk.

〔実施例4〕 六方晶系置換型バリウムフェライト磁性粉(Ms約54
 emu/g 、 Hc約5800e、平均粒径的0.
35μm、板状比約3.5)33重量部、強磁性鉄粉末
(Ms約125 emu/g、 Hc約12500e、
平均粒径的0.2μm、針状比的10 ) 67重量部
、塩化ビニル−酢酸ビニル共重合体20重量部、ポリウ
レタンエラストマー20重量部、レシチン3重量部、カ
ーボンブラック2重量部、オレイン酸3重量部、トルエ
ンとメチルエチルケトンの等量混合溶剤360重量部の
混合物をサンドミルで所定時間混合分散して磁性塗料を
作シ、以下実施例1と同様にしてビデオ用磁気テープ及
びフロッピーディスクを構成した。
[Example 4] Hexagonal substituted barium ferrite magnetic powder (Ms approx. 54
emu/g, Hc approximately 5800e, average particle size 0.
35 μm, plate ratio approximately 3.5) 33 parts by weight, ferromagnetic iron powder (Ms approximately 125 emu/g, Hc approximately 12500e,
Average particle size: 0.2 μm, needle shape: 10) 67 parts by weight, 20 parts by weight of vinyl chloride-vinyl acetate copolymer, 20 parts by weight of polyurethane elastomer, 3 parts by weight of lecithin, 2 parts by weight of carbon black, 3 parts by weight of oleic acid A magnetic coating material was prepared by mixing and dispersing a mixture of 360 parts by weight of an equal amount mixed solvent of toluene and methyl ethyl ketone in a sand mill for a predetermined period of time, and then a video magnetic tape and a floppy disk were constructed in the same manner as in Example 1.

〔実施例5〕 実施例1において、Ms飽%emu/g 、 Hc約5
500e、平均粒径的0.25μm、板状比約3.5の
六方晶系バリウムフェライト磁性粉を用いて同様に行い
、ビデオ用磁気テープ及びフロッピーディスクを構成し
た。
[Example 5] In Example 1, Ms saturation %emu/g, Hc about 5
The same procedure was carried out using hexagonal barium ferrite magnetic powder having an average particle size of 0.25 μm and a platelet ratio of about 3.5 to construct a video magnetic tape and a floppy disk.

〔比較例1〕 実施例1において、Ms約54 emu/g、 Hc約
5850e、平均粒径的0.3μm、板状比約7の六方
晶系バリウムフェライト磁性粉を用いて同様に行い、ビ
デオ用磁気テープ及びフロッピーディスクを構成した。
[Comparative Example 1] The same procedure as in Example 1 was carried out using hexagonal barium ferrite magnetic powder having an Ms of about 54 emu/g, a Hc of about 5850e, an average particle size of 0.3 μm, and a plate ratio of about 7. magnetic tape and floppy disk.

〔比較例2〕 実施例2において、’Ms約54 emu/g、 Hc
約5500e、平均粒径的0,45μm、板状比約9.
5の六方晶系バリウムフェライト磁性粉を用いて同様に
行い、ビデオ用磁気テープ及びフロッピーディスクを構
成した。
[Comparative Example 2] In Example 2, 'Ms about 54 emu/g, Hc
Approximately 5500e, average grain size 0.45 μm, plate ratio approximately 9.
A video magnetic tape and a floppy disk were constructed in the same manner using the hexagonal barium ferrite magnetic powder No. 5.

〔比較例3〕 実施例1において、Ms約54 emu/g、 Hc約
5850e、平均粒径0.7μm、板状比4の六方晶系
バリウムフェライト磁性粉を用いて同様に行い、ビデオ
用磁気テープ及びフロッピーディスクを構成した。
[Comparative Example 3] The same procedure as in Example 1 was carried out using hexagonal barium ferrite magnetic powder with Ms approximately 54 emu/g, Hc approximately 5850e, average particle size 0.7 μm, and plate ratio 4, and a video magnetic Constructed tape and floppy disk.

〔比較例4〕 実施例2において、Ms約54 emu/g、 Hc約
5500e、平均粒径的0.8μm、板状比6の六方晶
系バリウムフェライト磁性粉を用いて同様に行い、ビデ
オ用磁気テープ及びフロッピーディスクを構成した。
[Comparative Example 4] The same procedure as in Example 2 was carried out using hexagonal barium ferrite magnetic powder with Ms approximately 54 emu/g, Hc approximately 5500 e, average particle diameter 0.8 μm, and plate ratio 6, and Constructed magnetic tape and floppy disk.

〔比較例5〕 実施例1において、大方晶系バリウムフェライト磁性粉
3重量部、CO含含有−Fe*Os磁性粉97重量部を
用いて同様に行い、ビデオ用磁気テープ及びフロッピー
ディスクを構成した。
[Comparative Example 5] The same procedure as in Example 1 was carried out using 3 parts by weight of the macrogonal barium ferrite magnetic powder and 97 parts by weight of the CO-containing -Fe*Os magnetic powder to construct a video magnetic tape and a floppy disk. .

〔比較例6〕 実施例2において、大方晶系置換型バリウムフェライト
磁性粉52重量部、CrO*磁性粉48重量部を用いて
同様に行い、ビデオ用磁気テープ及びフロッピーディス
クを構成した。
[Comparative Example 6] The same procedure as in Example 2 was carried out using 52 parts by weight of the orthogonal substituted barium ferrite magnetic powder and 48 parts by weight of the CrO* magnetic powder to construct a video magnetic tape and a floppy disk.

〔比較例7〕 実施例3において、六方晶系バリウムフェライト磁性粉
を零、F e 104磁性粉を100重量部にして同様
に行い、ビデオ用磁気テープ及びフロッピーディスクを
構成した。
[Comparative Example 7] The same procedure as in Example 3 was carried out except that the amount of hexagonal barium ferrite magnetic powder was 0 and the amount of Fe 104 magnetic powder was 100 parts by weight to construct a video magnetic tape and a floppy disk.

〔比較例8〕 実施例1において、Ms約54 emu/g、 Hc約
5850e、平均粒径的0.15μm、板状比約4の六
方晶系バリウムフェライト磁性粉を用いて同様に行い、
ビデオ用磁気テープ及びフロッピーディスクを構成した
[Comparative Example 8] The same procedure as in Example 1 was carried out using hexagonal barium ferrite magnetic powder having an Ms of about 54 emu/g, a Hc of about 5850e, an average particle size of 0.15 μm, and a plate ratio of about 4.
Constructed video magnetic tape and floppy disk.

〔比較例9〕 実施例4において、Ms約54emu/g、 Hc約5
800e、平均粒径的0.10μm、板状比約3.5の
六方晶系置換型バリウムフェライト磁性粉を用いて同様
に行い、ビデオ用磁気テープ及びフロッピーディスクを
構成した。
[Comparative Example 9] In Example 4, Ms about 54 emu/g, Hc about 5
The same procedure was carried out using hexagonal substituted barium ferrite magnetic powder of 800e, average particle size of 0.10 μm, and platelet ratio of about 3.5 to construct video magnetic tapes and floppy disks.

〔比較例10〕 実施例2において、Ms約54 emu/g、 Hc約
6500e、平均粒径的0.45μm、板状比約4.5
の六方晶系置換型バリウムフェライト磁性粉を用いて同
様に行い、ビデオ用磁気テープ及びフロッピーディスク
を構成した。
[Comparative Example 10] In Example 2, Ms about 54 emu/g, Hc about 6500e, average particle size 0.45 μm, plate ratio about 4.5
A video magnetic tape and a floppy disk were constructed in the same manner using hexagonal substituted barium ferrite magnetic powder.

〔比較例11 ] 実施例1において、Ms約54 emu/g、 Hc約
7300e、平均粒径的0,3μm、板状比約3.5の
六方晶系バリウムフェライト磁性粉を用いて同様に行い
、ビデオ用磁気テープ及びフロッピーディスクを構成し
た。
[Comparative Example 11] The same procedure as in Example 1 was carried out using hexagonal barium ferrite magnetic powder having an Ms of about 54 emu/g, a Hc of about 7300e, an average particle size of 0.3 μm, and a plate ratio of about 3.5. , video magnetic tape and floppy disk.

〔特性〕〔Characteristic〕

上記実施例及び比較例で作成した磁性塗料の分散時間−
最大磁束密度の関係を示すと、第1図に示す通りである
Dispersion time of magnetic paints prepared in the above examples and comparative examples -
The relationship between the maximum magnetic flux density is shown in FIG. 1.

これによれば、本発明の磁気記録媒体の磁性層構成に用
いた磁性塗料の分散性は良好であることがわかる。つま
シ、六方晶系フェライト磁性粉の板状比が5以下のもの
を選ぶことによって、分散性が向上し、磁気特性の向上
が得られている。
According to this, it can be seen that the dispersibility of the magnetic paint used in the magnetic layer structure of the magnetic recording medium of the present invention is good. By selecting a hexagonal ferrite magnetic powder having a plate ratio of 5 or less, dispersibility is improved and magnetic properties are improved.

伺、最大磁束密度Bmは、それぞれの分散時間における
磁性塗料をブレードでポリエステルフィルムに塗布して
作成したサンプルを用いて、印加磁場2KOeで測定し
たものである。
The maximum magnetic flux density Bm was measured at an applied magnetic field of 2 KOe using samples prepared by applying the magnetic paint to a polyester film with a blade at each dispersion time.

又、カラーS/Nを測定すると、実施例1のものでは3
.7dB、実施例2のものでは3.4dBであるのに対
し、比較例1のものでは、−0,2dB、 比較例2の
ものでは−0,8dB、比較例3のものでは一〇、3d
B、比較例4のものでは−3,OdBといったように、
板状比及び平均粒径によってカラーS/Nは大きく左右
され、六方晶系フェライト磁性粉の板状比が5以下で平
均粒径が0.5μm以下の場合の良好なことがわかる。
Also, when measuring the color S/N, it was 3 in Example 1.
.. 7 dB and 3.4 dB in Example 2, -0.2 dB in Comparative Example 1, -0.8 dB in Comparative Example 2, and 10.3 dB in Comparative Example 3.
B, Comparative Example 4 -3, OdB, etc.
It can be seen that the color S/N is greatly influenced by the plate ratio and the average particle size, and is good when the plate ratio of the hexagonal ferrite magnetic powder is 5 or less and the average particle size is 0.5 μm or less.

同、カラーS/Nは、日本ビクター■製のHR−330
0で測定したものである。
The color S/N is HR-330 manufactured by Victor Japan.
It was measured at 0.

又、磁気テープのスチル特性(−5℃でポーズ再生した
際におけるスチルアウトまでの時間)、動摩擦係数、ビ
デオ変調ノイズ(キャリア出力は、4MHzの単一信号
を記録再生した際の再生出力レベルで表わし、又、C/
Nは、キャリアから1MHz離れた周波数におけるノイ
ズ−レベルとキャリア出力の比で表わす)を測定すると
、表に示す通シである。
In addition, the still characteristics of the magnetic tape (time until still out when paused and played back at -5℃), dynamic friction coefficient, video modulation noise (carrier output is the playback output level when recording and playing back a 4MHz single signal) Representation, also, C/
When N is the ratio of the noise level to the carrier output at a frequency 1 MHz away from the carrier, the results are as shown in the table.

これによれば、六方晶系フェライト磁性粉が針状強磁性
粉100重量部に対して約5〜100重量部の場合に4
MHzの出力レベルの向上、ノイズレベルの低減、さら
にはC/Nの向上がもたらされるようになシ、そして六
方晶系フェライト磁性粉の平均粒径が約0.2μm以上
の場合に耐メチル性及び動摩擦係数の向上がもたらされ
ることがわかる。
According to this, when the hexagonal ferrite magnetic powder is about 5 to 100 parts by weight per 100 parts by weight of the acicular ferromagnetic powder,
Improvement in MHz output level, reduction in noise level, and further improvement in C/N are achieved, and methyl resistance is improved when the average particle size of the hexagonal ferrite magnetic powder is approximately 0.2 μm or more. It can be seen that this results in an improvement in the coefficient of dynamic friction.

又、フロッピーディスクの2F出力とモジュレーション
を測定すると、実施例1のものでは2F出力カ360 
mVp−p、モジュレーションが3%、実施例3のもの
では2F出力が345mVp−p、モジュレーションが
2%であるのに対し、比較例1のものでは2F出力が3
10mVp−p、モジュレーションが7%、比較例7の
ものでは2F出力が300 mVp−p、モジュレーシ
ョンが5%であり、このような点からも板状比が約5以
下の六方晶系フェライト磁性粉を含むものは良好なこと
がわかる。
Also, when measuring the 2F output and modulation of the floppy disk, the 2F output power of Example 1 was 360.
mVp-p, modulation is 3%, and in Example 3 the 2F output is 345mVp-p and modulation is 2%, whereas in Comparative Example 1, the 2F output is 3%.
10 mVp-p and modulation of 7%, and in Comparative Example 7, the 2F output was 300 mVp-p and modulation of 5%, and from these points of view, the hexagonal ferrite magnetic powder with a plate ratio of about 5 or less. It can be seen that those containing .

又、ビデオテープの消去特性を測定すると、第2図に示
す通りである。
Furthermore, when the erasing characteristics of the videotape were measured, the results were as shown in FIG.

これによれば、六方晶系フェライト磁性粉の保磁力が約
6000e以下の場合には消去特性が良く、6000e
を越えると急激に消去特性の低下することがわかる。
According to this, when the coercive force of hexagonal ferrite magnetic powder is about 6000e or less, the erasing characteristics are good;
It can be seen that the erasing characteristics deteriorate rapidly when the value is exceeded.

〔効果〕〔effect〕

カラーS/N、 C/N、キャリア出力、メチル特性、
走行性、再生出力、消去特性の良いものであり、又、高
密度記録に対応できるものである。
Color S/N, C/N, carrier output, methyl characteristics,
It has good running properties, reproduction output, and erasing characteristics, and is compatible with high-density recording.

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

第1図及び第2図は、磁気記録媒体の特性説明図である
1 and 2 are explanatory diagrams of characteristics of a magnetic recording medium.

Claims (1)

【特許請求の範囲】[Claims] 飽和磁化70emu/g以上の磁性粉末と、c軸方向に
磁化容易軸をもち、かつ保磁力が600エルステッド以
下で、板状比が5以下で、粒子サイズが0.2〜0.5
μmの六方晶系フェライト磁性粉末とを磁性層中に含み
、前記磁性粉末100重量部に対して前記六方晶系フェ
ライト磁性粉末が5〜100重量部の割合であることを
特徴とする磁気記録媒体。
Magnetic powder with a saturation magnetization of 70 emu/g or more, an axis of easy magnetization in the c-axis direction, a coercive force of 600 Oe or less, a plate ratio of 5 or less, and a particle size of 0.2 to 0.5.
μm hexagonal ferrite magnetic powder in a magnetic layer, and the hexagonal ferrite magnetic powder is in a proportion of 5 to 100 parts by weight per 100 parts by weight of the magnetic powder. .
JP59215280A 1984-10-16 1984-10-16 Magnetic recording medium Pending JPS6194230A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
JP59215280A JPS6194230A (en) 1984-10-16 1984-10-16 Magnetic recording medium

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
JP59215280A JPS6194230A (en) 1984-10-16 1984-10-16 Magnetic recording medium

Publications (1)

Publication Number Publication Date
JPS6194230A true JPS6194230A (en) 1986-05-13

Family

ID=16669699

Family Applications (1)

Application Number Title Priority Date Filing Date
JP59215280A Pending JPS6194230A (en) 1984-10-16 1984-10-16 Magnetic recording medium

Country Status (1)

Country Link
JP (1) JPS6194230A (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0627729A2 (en) * 1993-05-31 1994-12-07 TDK Corporation Magnetic recording/reproducing method

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0627729A2 (en) * 1993-05-31 1994-12-07 TDK Corporation Magnetic recording/reproducing method
EP0627729A3 (en) * 1993-05-31 1995-11-02 Tdk Corp Magnetic recording/reproducing method.
EP0940803A2 (en) * 1993-05-31 1999-09-08 TDK Corporation Magnetic recording/reproducing method
EP0940803A3 (en) * 1993-05-31 2000-03-01 TDK Corporation Magnetic recording/reproducing method

Similar Documents

Publication Publication Date Title
US4699840A (en) Magnetic recording medium
JPS6194230A (en) Magnetic recording medium
JPH036574B2 (en)
JPS6194226A (en) Magnetic recording medium
JPS6194229A (en) Magnetic recording medium
JPS6194228A (en) Magnetic recording medium
JPS6196518A (en) Magnetic recording medium
JPS61123018A (en) Magnetic recording medium
JPS61123020A (en) Magnetic recording medium
JPS61123021A (en) Magnetic recording medium
JPS61123022A (en) Magnetic recording medium
JPS6194227A (en) Magnetic recording medium
JPS6194225A (en) Magnetic recording medium
JPS6196517A (en) Magnetic recording medium
JPS6194224A (en) Magnetic recording medium
JPS61123019A (en) Magnetic recording medium
JPS61233420A (en) Magnetic recording medium
JPS61217933A (en) Magnetic recording medium
JPS61233418A (en) Magnetic recording medium
JPS6194223A (en) Magnetic recording medium
JPS61123023A (en) Magnetic recording medium
JPS61217931A (en) Magnetic recording medium
JPS61217928A (en) Magnetic recording medium
JPH06295426A (en) Magnetic recording medium
JPS61233421A (en) Magnetic recording medium