US2382654A - Magnetic materials - Google Patents

Magnetic materials Download PDF

Info

Publication number
US2382654A
US2382654A US416221A US41622141A US2382654A US 2382654 A US2382654 A US 2382654A US 416221 A US416221 A US 416221A US 41622141 A US41622141 A US 41622141A US 2382654 A US2382654 A US 2382654A
Authority
US
United States
Prior art keywords
per cent
permanent magnet
temperature
properties
phase
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.)
Expired - Lifetime
Application number
US416221A
Inventor
Ethan A Nesbitt
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.)
AT&T Corp
Original Assignee
Bell Telephone Laboratories Inc
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 Bell Telephone Laboratories Inc filed Critical Bell Telephone Laboratories Inc
Priority to US416221A priority Critical patent/US2382654A/en
Application granted granted Critical
Publication of US2382654A publication Critical patent/US2382654A/en
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

Links

Classifications

    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C38/00Ferrous alloys, e.g. steel alloys
    • C22C38/18Ferrous alloys, e.g. steel alloys containing chromium
    • C22C38/40Ferrous alloys, e.g. steel alloys containing chromium with nickel
    • 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
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10STECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10S29/00Metal working
    • Y10S29/028Magnetic recording digest

Definitions

  • This invention relates to permanent magnet alloys and to magnets produced therefrom which are caused to have more desirable properties as permanent magnets by a cold working treatment.
  • the invention also relates to and includes methods of treating and producing such improved alloys and permanent magnets.
  • An object of the invention is the production of better and more efllcient permanent magnet materials.
  • a feature of the present invention is the discovery that permanent magne compositions, such as those described hereinafter, may be improved by reduction of the cross section thereof by a stage of cold working during their preparation and prior to the final heat treatment. Such working is preferably accomplished by methods which produce elongation and prevent lateral spreading. Methods that have been found beneficial include swaging, rolling with grooved rolls and wire drawlng. It appears that the result of improved permanent magnet properties is manifested chiefly in the direction of elongation. Reduction of thickness by such rolling of a metal sheet as permits the material to spread laterally is only partially effective.
  • materials of or produced according to the present invention generally are anisotropic and their improved properties are manifested chiefly in the direction in which the elongation takes place.
  • This method of forming permanent magnet materials is dumblerent and seemingly involves a diflerent principle than that heretofore employed with respect to many others, such as alloys of iron, cobalt and molybdenum; in that, in the present instance the material is converted intoa low temperature alpha phase and thereafter has a small amount of the high temperature gamma phase precipitated therein in a fine and dispersed state.
  • the high temperature phase is preserved and a small amount of the low temperature phase is precipitated.
  • the alloys After the alloys are brought into the "alpha phase by the combination of cooling and cold working they are raised to a temperature which brings them to the temperature which causes the precipitation in finely dispersed particles of some of the "gamma phase.
  • a frequently used criterion of the desirability of permanent magnet materials is the product of "coercive force” and "residual induction.”
  • a more accurate figure of merit is that of maximum energy product, which on the demagnetization portion or the hysteresis loop, is the product of induction B and magnetizing force H at a point where this product is the greatest. See Wahl, "Applied Magnetism,” pages 42 to 45, inclusive.
  • Among objects of the present invention are to provide better permanent magnets at little or no increase in cost; to produce useful permanent magnets from materials not hitherto known to possess permanent magnet properties to a useful extent; to improve the properties of compositions known to have useful permanent magnet properties; to produce useful permanent magnets from cheap or readily available raw materials; to increase either the product of coercive force and residual induction or the maximum energy product of magnetic materials; to provide elongated tapes or strips of magnetic material having useful "maximum energy products and to provide useful magnets from materials which may be worked with facility.
  • the subject-matter of the invention or discovery comprises a range or group of magnetic alloys which by appropriate combined heat treatment and cold rolling or elongating treatment will have one or the other of the above-named magnetic products or the coercive force or residual induction increased in the direction of elongation by from one hundred to several hundred per cent as compared to the material in the cast or unsuitably heat treated or unsuitably worked condition.
  • a feature of the invention or discovery is the lack of any necessity for quenching the material at any time in order to improve its properties: however, quenching or rapid ooling upon casting may be practiced.
  • One of the beneficial aspects of the discovery is that the cooling rate may vary widely as convenience or necessity demands.
  • the alloys may be prepared in the form of rods, bars, wire or tapes.
  • a suitable treatment for any specimen is first to give it the desired amount of cold working plus a low temperature bake. No other heat treatment is necessary. Satisfactory results have been obtained with reductions in area of 75 per cent, although this exact amount is by no means critical.
  • the material is cast, which gives it the necessary high temperature treatment; it may be given a further or special heat treatment at aroimd 800 C. to 1300' C.
  • cooled material which may be cooled to room temperature slowly or rapidly, and must be cooled substantially below about 600' C., is forcibly elongated by rolling with grooved rolls, swaging', drawing through dies or by combinations of these methods or by any similar method or methods so as to reduce the cross section in one or several steps over a range from a small amount to a reduction to a small fraction of the original cross section.
  • the material is then heated to a temperature generally in the region 500' C. to 800 C. and maintained for a substantial time it treated at the lower part of the temperature range, one to several hours in the middle range but much less if, the temperature is at the top of the range. Too high a temperature destroys the elect of the cold rolling and too low a temperatureor too short a time is not adequately effective. A quenching treatment is unnecessary.
  • Percent Percent Percent Percent iron nickel chromium to 5 to 15 8 to 16
  • a specific example consists of 78 per cent iron, 10 per cent nickel and 12 per cent chromium. Small amounts if impurities other than carbon may be present.
  • These compositions exhibit substantial permanent magnet properties and are notably improved in properties by a treatment of the kind described. They may be prepared from raw materials which are ordinarily cheap and readily available. They respond to the described treatment-and exhibit magnetic properties increased around per cent or more as a result of the heat treatment described as compared with identical compositions as cast. In some cases the increase in energy product due 46 to cold rolling alone is much over 100 per cent as compared to the same material heat treated but not cold rolled.
  • the apparatus illustrated in the above-noted copending application may be used to perform the cold rolling process.
  • the finished magnets are magnetized by the usual methods.
  • a permanent magnet consisting of an alloy of 70 to 80 per cent iron, 5 to 15 per cent nickel, and 8 to 16 per cent chromium.
  • An article having properties adapted for permanent magnet use composed of an alloy comprising as essential constituents 70 to 80 per cent iron, 5 to 15 per cent nickel, and 8 to 16 per cent chromium, produced by causing the alloy to pass through or into the temperature range oi from 800 C. to 1300 C., cooling it substantially below 600 C., forcibly elongating the material in the cold condition, and thereafter maintaining it in the range 500' C. to 800' C. without exceedins about 800 C., whereby the material is caused to have increased ability to retain permanent magnetism in the direction oiflelongation.
  • the method of producing a permanent magnet which comprises composing an alloy of 70 to 80 per cent iron, 5 to 15 per cent nickel, and 8 to 16 per cent chromium, passing it into or through the temperature range 800 C. to 1300 C., cooling the material to the general region or room temperature, forcibly enlongating the material while cold, and thereafter maintaining it at 500 C. to 800 C., cooling it, and strongly magnetizing it along the general axis of the direction of elongation.
  • An article having properties adapted for permanent magnet use composed of an alloy comprising as essential constituents 78 per cent iron, 10 per cent nickel, and 12 per cent chromium, produced by causing the alloy to pass through or into the temperature range of from 800 C. to 1300 C., cooling it substantially below 600 C forcibly elongating the material in the cold condition, and thereafter maintaining it in the range 500 C. to 800 0. without exceeding about 800 0., whereby the material is caused to have increased ability to retain permanent magnetism in the direction of elongation.

Description

Patented Aug. 14, 1945 MAGNETIC MATERIALS Ethan A. Nesbitt, Brooklyn, N. Y., assignor to Bell Telephone Laboratories,
Incorporated,
New York, N. Y., a corporation of New York No Drawing. Application October 23, 1941,
Serial No. 416,221
6 Claims.
This invention relates to permanent magnet alloys and to magnets produced therefrom which are caused to have more desirable properties as permanent magnets by a cold working treatment. The invention also relates to and includes methods of treating and producing such improved alloys and permanent magnets.
An object of the invention is the production of better and more efllcient permanent magnet materials.
In my copending application Serial No. 311,735, filed December 30, 1939, of which this application is a continuation-in-part certain phases of the present invention were disclosed Or claimed or both disclosed and claimed but were divided therefrom because of requirements for division, requirements for election, or alleged indefinite ness of generic claims; nevertheless the benefit of the filing date of said application is claimed for the present application to whatever extent and unger whatever provisions of law maybe applica le.
A feature of the present invention is the discovery that permanent magne compositions, such as those described hereinafter, may be improved by reduction of the cross section thereof by a stage of cold working during their preparation and prior to the final heat treatment. Such working is preferably accomplished by methods which produce elongation and prevent lateral spreading. Methods that have been found beneficial include swaging, rolling with grooved rolls and wire drawlng. It appears that the result of improved permanent magnet properties is manifested chiefly in the direction of elongation. Reduction of thickness by such rolling of a metal sheet as permits the material to spread laterally is only partially effective.
The evidence is that materials of or produced according to the present invention generally are anisotropic and their improved properties are manifested chiefly in the direction in which the elongation takes place.
In the said copending application it is pointed out that there are classes of materials which, if maintained at a certain high temperature but below the melting point, assume a form known as the gamma phase, and if the material is thereafter cooled to around room temperature, it tends to assume the "alpha phase and thereafter if maintained at around 500 C. to 800 0., a finely dispersed small amount of the "gamma phase forms in the alpha phase. This brief statement is to be read in the light of the information,-
diagrams, and discussion of said copending application.
'As pointed out in the application hereinbefore mentioned, now Patent No. 2,298,225, dated October 6, 1942, a suitable procedure for preparing permanent magnet material is to melt the material and cool it to room temperature to produce formation of the alpha? phase and thereafter elevate the material to a higher temperature between 500 C. to 800 C. for a length of time such as is necessary to allow a small amount of the gamma" phase to precipitate in-a highly dispersed form in the alpha phase. dispersion hardening in the material and produces a very eflective permanent magnet material. This method of forming permanent magnet materials is diilerent and seemingly involves a diflerent principle than that heretofore employed with respect to many others, such as alloys of iron, cobalt and molybdenum; in that, in the present instance the material is converted intoa low temperature alpha phase and thereafter has a small amount of the high temperature gamma phase precipitated therein in a fine and dispersed state. In the usual case of permanent magnets hardened by precipitation the high temperature phase is preserved and a small amount of the low temperature phase is precipitated.
In some alloys of the type under discussion the "gamma to alpha transformation tends to occur at low temperatures at which the transformation becomes sluggish and non-equilibrium conditions exist.
Whether this is the case or not, cold rolling these alloys in grooved rolls or working them mechanically by any equivalent method causes or expedites the formation at room temperature of the alpha phase and brings them into equilibrium. Some alloys of this type may not change completely to the alpha phase at room temperature unless given the above treatment. By the rolling treatment others are changed to alpha" phase only partially. Whether complete or partial this result is one beneficial aspect of the present invention. However, there isv a second beneficial aspect which is due to crystal orientation. X-ray measurements confirm this and magnetic tests show the best permanent magnet properties in the direction of elongation. Either or both of these effects may be present in some degree in a particular case.
After the alloys are brought into the "alpha phase by the combination of cooling and cold working they are raised to a temperature which brings them to the temperature which causes the precipitation in finely dispersed particles of some of the "gamma phase. This results in the production of magnetic material having efiective and This produces I desirable properties as permanent magnets in the direction of elongation. In every case care must be used not to raise the material to too high a temperature in order not to lose the effect of cold working.
A frequently used criterion of the desirability of permanent magnet materials is the product of "coercive force" and "residual induction." A more accurate figure of merit is that of maximum energy product, which on the demagnetization portion or the hysteresis loop, is the product of induction B and magnetizing force H at a point where this product is the greatest. See Wahl, "Applied Magnetism," pages 42 to 45, inclusive.
The above criterion is independent of the matter of cost, ease or difilculty of preparation rolling or drawing, brittleness, availability of raw materials and other factors which must receive consideration for many practical purposes and applications. Thus a permanent magnet composition which has an absolute maximum energy product less than some other which is less available or suitable from some one or more of the above aspects may be a valuable contribution to the art, if, for example, it may be made to possess a considerably greater "maximum energy product."
Among objects of the present invention are to provide better permanent magnets at little or no increase in cost; to produce useful permanent magnets from materials not hitherto known to possess permanent magnet properties to a useful extent; to improve the properties of compositions known to have useful permanent magnet properties; to produce useful permanent magnets from cheap or readily available raw materials; to increase either the product of coercive force and residual induction or the maximum energy product of magnetic materials; to provide elongated tapes or strips of magnetic material having useful "maximum energy products and to provide useful magnets from materials which may be worked with facility.
The subject-matter of the invention or discovery comprises a range or group of magnetic alloys which by appropriate combined heat treatment and cold rolling or elongating treatment will have one or the other of the above-named magnetic products or the coercive force or residual induction increased in the direction of elongation by from one hundred to several hundred per cent as compared to the material in the cast or unsuitably heat treated or unsuitably worked condition.
A feature of the invention or discovery is the lack of any necessity for quenching the material at any time in order to improve its properties: however, quenching or rapid ooling upon casting may be practiced. One of the beneficial aspects of the discovery is that the cooling rate may vary widely as convenience or necessity demands.
The alloys may be prepared in the form of rods, bars, wire or tapes. A suitable treatment for any specimen is first to give it the desired amount of cold working plus a low temperature bake. No other heat treatment is necessary. Satisfactory results have been obtained with reductions in area of 75 per cent, although this exact amount is by no means critical.
In greater detail, the material is cast, which gives it the necessary high temperature treatment; it may be given a further or special heat treatment at aroimd 800 C. to 1300' C. The
cooled material, which may be cooled to room temperature slowly or rapidly, and must be cooled substantially below about 600' C., is forcibly elongated by rolling with grooved rolls, swaging', drawing through dies or by combinations of these methods or by any similar method or methods so as to reduce the cross section in one or several steps over a range from a small amount to a reduction to a small fraction of the original cross section. The material is then heated to a temperature generally in the region 500' C. to 800 C. and maintained for a substantial time it treated at the lower part of the temperature range, one to several hours in the middle range but much less if, the temperature is at the top of the range. Too high a temperature destroys the elect of the cold rolling and too low a temperatureor too short a time is not adequately effective. A quenching treatment is unnecessary. e
A range of -compositions within the scope of this invention is:
Percent Percent Percent iron nickel chromium to 5 to 15 8 to 16 A specific example consists of 78 per cent iron, 10 per cent nickel and 12 per cent chromium. Small amounts if impurities other than carbon may be present. These compositions exhibit substantial permanent magnet properties and are notably improved in properties by a treatment of the kind described. They may be prepared from raw materials which are ordinarily cheap and readily available. They respond to the described treatment-and exhibit magnetic properties increased around per cent or more as a result of the heat treatment described as compared with identical compositions as cast. In some cases the increase in energy product due 46 to cold rolling alone is much over 100 per cent as compared to the same material heat treated but not cold rolled.
The apparatus illustrated in the above-noted copending application may be used to perform the cold rolling process.
The finished magnets are magnetized by the usual methods.
What is claimed is:
' 1. A permanent magnet consisting of an alloy of 70 to 80 per cent iron, 5 to 15 per cent nickel, and 8 to 16 per cent chromium.
2. A magnetic body having such high coercive force and such high retentivity in at least one direction as will produce a useful permanent magnet and intended for use as such consisting of 78 per cent iron, 10 per cent nickel, and 12 per cent chromium.
3. An article having properties adapted for permanent magnet use composed of an alloy comprising as essential constituents 70 to 80 per cent iron, 5 to 15 per cent nickel, and 8 to 16 per cent chromium, produced by causing the alloy to pass through or into the temperature range oi from 800 C. to 1300 C., cooling it substantially below 600 C., forcibly elongating the material in the cold condition, and thereafter maintaining it in the range 500' C. to 800' C. without exceedins about 800 C., whereby the material is caused to have increased ability to retain permanent magnetism in the direction oiflelongation.
4. The method of producing a permanent magnet which comprises composing an alloy of 70 to 80 per cent iron, 5 to 15 per cent nickel, and 8 to 16 per cent chromium, passing it into or through the temperature range 800 C. to 1300 C., cooling the material to the general region or room temperature, forcibly enlongating the material while cold, and thereafter maintaining it at 500 C. to 800 C., cooling it, and strongly magnetizing it along the general axis of the direction of elongation.
5. An article having properties adapted for permanent magnet use composed of an alloy comprising as essential constituents 78 per cent iron, 10 per cent nickel, and 12 per cent chromium, produced by causing the alloy to pass through or into the temperature range of from 800 C. to 1300 C., cooling it substantially below 600 C forcibly elongating the material in the cold condition, and thereafter maintaining it in the range 500 C. to 800 0. without exceeding about 800 0., whereby the material is caused to have increased ability to retain permanent magnetism in the direction of elongation.
6. The method of producing a permanent ETHAN A. NESBI'I'I.
US416221A 1941-10-23 1941-10-23 Magnetic materials Expired - Lifetime US2382654A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
US416221A US2382654A (en) 1941-10-23 1941-10-23 Magnetic materials

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
US416221A US2382654A (en) 1941-10-23 1941-10-23 Magnetic materials

Publications (1)

Publication Number Publication Date
US2382654A true US2382654A (en) 1945-08-14

Family

ID=23649075

Family Applications (1)

Application Number Title Priority Date Filing Date
US416221A Expired - Lifetime US2382654A (en) 1941-10-23 1941-10-23 Magnetic materials

Country Status (1)

Country Link
US (1) US2382654A (en)

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3183126A (en) * 1960-04-19 1965-05-11 Physical Sciences Corp Method of making magnetic transducers
US4265680A (en) * 1980-03-10 1981-05-05 Astrolab Corp. Method for making hollow magnetic pipe
US4540453A (en) * 1982-10-28 1985-09-10 At&T Technologies Magnetically soft ferritic Fe-Cr-Ni alloys

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3183126A (en) * 1960-04-19 1965-05-11 Physical Sciences Corp Method of making magnetic transducers
US4265680A (en) * 1980-03-10 1981-05-05 Astrolab Corp. Method for making hollow magnetic pipe
US4540453A (en) * 1982-10-28 1985-09-10 At&T Technologies Magnetically soft ferritic Fe-Cr-Ni alloys

Similar Documents

Publication Publication Date Title
US3954519A (en) Iron-chromium-cobalt spinodal decomposition-type magnetic alloy comprising niobium and/or tantalum
US1862559A (en) Workable magnetic compositions containing principally iron and cobalt
US4171978A (en) Iron/chromium/cobalt-base spinodal decomposition-type magnetic (hard or semi-hard) alloy
JPS60116109A (en) Magnetic alloy and device including same
US2382654A (en) Magnetic materials
US3892605A (en) Method of producing primary recrystallized textured iron alloy member having an open gamma loop
US2382650A (en) Magnetic materials
US2382651A (en) Magnetic materials
US2298225A (en) Permanent magnet material and production thereof
US2382649A (en) Magnetic materials
US2382653A (en) Magnetic materials
US2317294A (en) Magnetic material
US2441588A (en) Magnetic materials
US2196824A (en) Permanent magnet consisting of iron, nickel, and copper
US2382652A (en) Magnetic materials
US2443636A (en) Magnetic materials
US2317295A (en) Permanent magnet and process of production
US2622050A (en) Process for heat-treating cobalt-platinum magnets
KR830001327B1 (en) Method of manufacturing magnetic element made of alloy
US3148092A (en) Process for producing sheets of magnetic materials
US3983916A (en) Process for producing semi-hard co-nb-fl magnetic materials
US3793092A (en) Fine-grained, completely decrystallized, annealed cobalt-iron-vanadium articles and method
US3769100A (en) Method for manufacturing semi-hard magnetic material
Pinnel et al. The metallurgy of Remendur: Effects of processing variations
US3226266A (en) Method of making permanent magnets