USRE24531E - Discontinuous wire-wound resistance - Google Patents
Discontinuous wire-wound resistance Download PDFInfo
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- USRE24531E USRE24531E US24531DE USRE24531E US RE24531 E USRE24531 E US RE24531E US 24531D E US24531D E US 24531DE US RE24531 E USRE24531 E US RE24531E
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- 238000004519 manufacturing process Methods 0.000 description 14
- 239000002184 metal Substances 0.000 description 14
- 229910052751 metal Inorganic materials 0.000 description 14
- 239000000463 material Substances 0.000 description 13
- 239000007921 spray Substances 0.000 description 12
- 238000000034 method Methods 0.000 description 8
- 238000004804 winding Methods 0.000 description 8
- 239000000203 mixture Substances 0.000 description 5
- 210000003414 Extremities Anatomy 0.000 description 3
- 238000010276 construction Methods 0.000 description 2
- 230000000694 effects Effects 0.000 description 2
- 230000004048 modification Effects 0.000 description 2
- 238000006011 modification reaction Methods 0.000 description 2
- 239000003973 paint Substances 0.000 description 2
- 238000007747 plating Methods 0.000 description 2
- 238000005507 spraying Methods 0.000 description 2
- 230000015556 catabolic process Effects 0.000 description 1
- 238000004140 cleaning Methods 0.000 description 1
- 238000007906 compression Methods 0.000 description 1
- 230000000875 corresponding Effects 0.000 description 1
- 230000001186 cumulative Effects 0.000 description 1
- 238000006073 displacement reaction Methods 0.000 description 1
- 238000009413 insulation Methods 0.000 description 1
- 210000001699 lower leg Anatomy 0.000 description 1
- 230000000873 masking Effects 0.000 description 1
- 238000010422 painting Methods 0.000 description 1
- 238000007790 scraping Methods 0.000 description 1
- 238000005476 soldering Methods 0.000 description 1
- 239000007787 solid Substances 0.000 description 1
- 229920001187 thermosetting polymer Polymers 0.000 description 1
- HCHKCACWOHOZIP-UHFFFAOYSA-N zinc Chemical compound [Zn] HCHKCACWOHOZIP-UHFFFAOYSA-N 0.000 description 1
- 229910052725 zinc Inorganic materials 0.000 description 1
- 239000011701 zinc Substances 0.000 description 1
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Classifications
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01C—RESISTORS
- H01C10/00—Adjustable resistors
- H01C10/30—Adjustable resistors the contact sliding along resistive element
- H01C10/301—Adjustable resistors the contact sliding along resistive element consisting of a wire wound resistor
- H01C10/303—Adjustable resistors the contact sliding along resistive element consisting of a wire wound resistor the resistor being coated, e.g. lubricated, conductive plastic coated, i.e. hybrid potentiometer
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- Y—GENERAL 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
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10T—TECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
- Y10T29/00—Metal working
- Y10T29/49—Method of mechanical manufacture
- Y10T29/49002—Electrical device making
- Y10T29/49082—Resistor making
Definitions
- This invention relates to improvements in discontinuous wire wound resistances and, particularly to improved means for accurately shortingout one or more selected sections of the windings of such devices and to an in1- proved method of manufacture thereof.
- a general solution to this type of problem is known wherein the resistance wire is wound on a card and a plurality of adjacent turns are bonded together by a metal spray to form a shorted out section slightly less than the length of the desired constantresistance secion. vThe wire is then cut at the junction of the constant and variable resistance sections, and the lirst turn of lthe variable resistance section is soldered to the bonded wires; wherebythe transition point between the constant and variable resistance sections is defined with a high degree of accuracy.
- the combination of two substantially parallel strips of sprayed metal, extending to a point just short of the end of the desired constant resistance section, and a separate dot or island of sprayed metal that is arranged either above or below the level of such'strips and overlaps the junction of the constant and variable resistance sections provides an eiective shorting bond that eliminates the crowding of the wires of the adjacent variable resistance section.
- the spray metal dot or island can conveniently be trimmed after application to the exact junction of the constant and variable resistance sections to provide an extremely accurate manufacturing control.
- a hookshaped strip of sprayed metal or any other configuration thereof that permits relative movement of the wires within the shorted-out section, is also highly eiecive to absorb the pile-up of the resistance wire.
- the principal object of the invention is to provide a discontinuous wire wound resistance card, having extremely closely wound turns, wherein the wire of the constant resistance section is effectively bonded to eliminate crowding of adjacent variable resistance sections, and the junction of the constant and variable resistance sections is determined to a high degree of accuracy, and to provide an improved method of manufacturing such a resistance card.
- a further object is to provide a discontinuous wire wound resistance card in which one or more selected portions of the windings may be conveniently and accurately shorted out.
- a still further object is to provide a resistance card to produce a discontinuous resistance output having stable variable resistance characteristics.
- Another object of the invention is to provide an improved construction for a discontinuous wire wound resistance card whereby a compact and economical product can readily be produced by conventional high production techniques.
- Another object of this invention is to provide a discontinuous resistance card which is bowed 0r bent into cylindrical shape and has non-crowding metal spray patterns drawings, in which:
- Fig. l is a side elevation of a wire wound resistance card having a center section of resistance shorted out in accordance with the invention
- Fig. 2 is a sectional View taken along the line 2-2 of Fig. l;
- Fig. 3 i-s a plan view of a resistance card formed vfor assembly in a potentiometer
- Fig. 4 is a sectional view of a portion of a resistance card, formed for assembly in a potentiometer, illustrating the piling-up of turns that occurs between sections of conventionally bonded wire;
- Fig. 5 is a sectional View, similar to Fig. 4, in which the wire is bonded in accordance with the invention
- Fig. 6 is a side elevation of a wire wound resistance card having an end section shorted out in accordance with the invention.
- Fig. 7 is a side elevation of a wire wound resistance card having two end sections shorted out in accordance with a modification lof the invention.
- a conventional type of potentiometer resistance card assembly that comprises a resistance card 10 on which a continuous resistance wire 11 s Wound.
- Card 10 is usually made of a flat strip of thermosetting material which mayconveniently be inserted in a Winding machine for the purpose of applying the resistance wire, and is provided with at least one straight edge 12. whereby the wire wound thereon forms a smooth and continuous contact edge 13.
- one surface of card I0 is designated generally by the numeral 10a and can be referred to as the internal surface of the card and the other surface of the card is designated generally by the numeral 10b and can be referred to as the external surface of the card.
- the surface of wire 11 which is formed by the outer surface of that portion of the resistance wire which lies adjacent the internal surface of the cardV is designated generally by the numeral 11a and can be referred to as the second internal surface while the surface of .wire 11 which is formed by the outer surface of that portion of the resistance wire which Vlies adjacent the external surface of the card is designated generally by the numeral 11b and can be referred to as the second external surface.
- the assembled coil is heated in a suitable manner and bent into a circular form, as shown in Fig. 3, for assembly in a potentiometer frame wherein contact edge ⁇ 13 is traversed by a contact wiper fixed on a suitable shaft of the potentiometer.
- a resistance card of this type is designed to provide increasing resistance as the wiper of the associated potentiometer is moved over contact edge 13 as, for example, from left to right in Fig. l.
- a constant resistance output be provided that corresponds to a predetermined degree of rotation of the potentiometer shaft.
- a speciiic application as illustrated in Fig. 1, wherein it is assumed that the potentiometer is to produce variable resistance outputs during the period that its wiper contact traverses the sections A and C of the resistance card, and is to produce a constant resistance output, corresponding to the resistance of the last turn of section A, while the wiper Contact is traversing section B.
- the potentiometer is to produce variable resistance outputs during the period that its wiper contact traverses the sections A and C of the resistance card, and is to produce a constant resistance output, corresponding to the resistance of the last turn of section A, while the wiper Contact is traversing section B.
- To prepare such a shorted out section all the turns in section B and a small portion of the adjoining ends of sections A and C are thoroughly cleaned to expose the bare wire.
- the resistance card is then suitably masked and a metal spray is applied in such manner that two parallel strips 14 and 15 and two auxiliary dots or islands 16 and 17 are formed on the surface of the wire.
- The-dots or islands 16 and 17 may be of any desired configuration but are preferably round since this form is usually the easiest to make.
- the masking operation is so performed that strips 14 and 15 are positioned within the limits of the constant resistance section, and islands 16 and 17, respectively, overlap the junctions of the constant resistance section with each of the adjoining variable resistance sections.
- the spray metal employed may be of any suitable type, such as zinc, that forms a good electrical bond with each of the individual turns of resistance wire 11 [(]-as in Fig. 2-'[)] and at the same time forms a continuous conductive path over the entire area of strips 14, 15 and islands 16, 17
- the resistance of a section of wire slightly in excess of the proposed constant resistance section B, is elfectively shorted out. Thereafter, an operator with the aid of a microscope and precision instruments determines the exact location of the ends of the constant resistance section and removes the shorting material, by
- a constant resistance section can be defined with a high degree of accuracy in a maner that can be accomplished with conventional high production metal spray techniques.
- the only requirement being that the spray mask must be applied with suicient accuracy that one or more turns of wire of the proposed constant resistance section at each end of strips 14 and 15 remain exposed, and that islands 16 and 17 overlap at least one turn of the adjoining variable resistance section.
- islands 16 and 17 are effectively Vernier adjustments to permit the constant resistance sections to be limited precisely to their required dimensions.
- strips 14, 15 and islands 16, 17 also serve to minimize crowding of adjacent unbonded wires, especially in the case of extremely closely Wound coils. In such instances, it is found that if a conventional spraying, painting, or plating technique is employed, the adjacent wires tend to pile up next to bonded sections, in the manner indicated in Fig. 4, when card 10 is formed for assembly in a potentiometer frame. However, by the use of parallel strips, in which the upper strip 14 is located relatively close to contact edge 13, it is found that any piling up of Wire that occurs is localized between the strips or below strip 15 and within the extremities of islands 76 and J 7, whereas the portions of the turns covered by strips 14 and 15 remain in contact with the card, as illustrated in Fig.
- a single strip 14 may be all that is required to obtain the above results in many instances.
- the second strip 15 is employed to insure continuous shorting.
- strip 14 is placed close to contact edge 13 to minimize the effect of intermittent resistance.
- islands 16, 17 may be placed closest to the contact edge, should theV nature of a particular problem so require, to obtain more critical control at the hop-olf points.
- spray metal shorting strips are advantageous to lessen piling up of the wire within a shorted area when formed in the shape of a hook or loop 19, as yshown in Fig. 7.
- this arrangement when the resistance card is curved and crowding occurs, no difl'culty is experienced because the loops which tend to override each other shift into the slot of the hook or pile up along its shank in the middle of the card.
- no overriding occurs in the variable resistance section of the card since the over-crowded winding will not go beyond the extremities of the shorting material. As can be seen in Fig.
- the hook 19 defines a slot 20 which may be described as a recess in a longitudinal edge of the metal strip forming the constant resistance section, said recess providing in said constant resistance section an uncovered portion of the internal surface of the wire windings extending laterally into the strip to allow bunching of the wire within the recess.
- hook 19 may be used in combination with an island 16, as ldescribed in connection with Figs. l and 6, to obtain a high degree of accuracy in defining such a shorted out section.
- the bonding material may be appliedV as a series of overlapping dots, or in a woven or zig-zag pattern, as long as there is sufficient room to permit some overriding of the bonded wires at points intermediate the ends of the bonded section.
- the invention as shown is applied to a linear resistance.
- potentiometers are frequently 'employed to [represents] represent non-linear [fucntions] functions simply by varying the gauge and/or spacing of the resistance wire or by varying the shape of the card on which the wire is wound, it is apparent that the present invention may also be applied to non-linear equipment.
- a discontinuous resistance card including a section of constant resistance and a section of variable resistance
- the method of manufacturing a discontinuous resistance card including a section of constant resistance and a section of variable resistance comprising the steps of forming a resistance card of a length to accommodate such sections, winding said card with a resistance wire over the entire length occupied by both said resistance sections, forming an electrical bond between adjacent turns of the constant resistance section over the portion extending from the first turn of said section to a point at least one turn short of its junction with the variable resistance section, forming a Vernier electrical bond between adjacent turns of wire at the junction of said sections,
- said vernier bond including a plurality of turns of the constant resistance section and at least one turn of the adjacent variable resistance section to extend the bonded section of wire slightly in excess of the constant resistance section, determining the exact junction of the two sections, and removing the Vernier electrical bond from all turns of the variable resistance section [except the first turn thereof] 2.
- the method of manufacturing a discontinuous resistance including a section of constant resistance arranged between two sections of variable resistance comprising the steps of forming a resistance card of a length to accommodate such sections, winding said card with a resistance wire over the entire length occupied by said resistance sections, forming an electrical bond between adjacent turns of the constant resistance section over the portion extending between points at least one turn short of each of its junctions with the variable resistance sections, forming Vernier electrical bonds between adjacent turns of wire at each end of said constant resistance section, each of said Vernier bonds including a plurality of turns of the constant resistance section and at least one turn of the adjacent variable resistance section to extend the bonded section of wire slightly in excess of the constant resistance section, determining the exact junction of the constant resistance section with each of the variable re-4 sistance sections, and removing the vernier electrical bond from all turns of the variable resistance sections [except the first turn of each of said sectionsl 3.
- the method of manufacturing a discontinuous resistance card including a section of constant resistance and a section of variable resistance comprising the steps of forming a resistance card of a length to accommodate such sections, winding said card with a resistance wire over the entire length occupied by both said resistance sections, forming an electrical bond between adjacent turns of the constant resistance section over the portion extending from the first turn of said section to a point at least one turn short of its junction with the variable resistance section, said electrical bond comprising a pair of spaced metallic strips substantially parallel to one another and perpendicular to the individual turns of said resistance wire, forming a second electrical bond between adjacent turns of wire at the junction of said sections, said vernier bond comprising a metallic island in contact with a plurality of turns of the constant resistance section and at least one turn of the variable resistance section, determining the exact junction of the two sections to extend the bonded section of wire slightly in excess of the constant resistance section, and removing the electrical bond from all turns of the variable resistance section [except the first turn thereofjl.
- a discontinuous resistance card including a section of constant resistance and a section of variable resistance comprising a resistance card of a length to accommodate such sections, a resistance wire wound over the entire length occupied by both said resistance sections, an electrical bond connecting adjacent turns of the constant resistance section over the portion extending from the first turn Vof said section to a point at least one turn short of its junction with the variable resistance section, and a Vernier electrical bond [connecting adjacent turns of wire at the junction of said sections], said Vernier bond connecting a plurality of turns of the constant resistance section [and at least the first turn of the variable resistance section to extend the bonded section of wire slightly in excess of the constant resistance section], up to and including the first turn of the constant resistance section adjacent the variable resistance section.
- a discontinuous resistance card including a section of constant resistance arranged between two sections of a variable resistance comprising a resistance card of a length rto accommodate such sections, a resistance wire wound over the entire length occupied by said resistance sections, an electrical bond connecting adjacent turns of the constant resistance section over the portion extending between points at least one turn short of each of its junctions with the variable resistance sections, and Vernier electrical bonds [connecting adjacent turns of wire at each end of said constant resistance section], each of said Vernier bonds connecting respectively a plurality of turns of the constant resistance section [and at least the first] up to and including the first turn of the constant resistance section adjacent the variable resistance section [turn of the adjacent variable resistance section to extend the bonded section of wire'slightly in excess of the constant resistance sectionl 6.
- a discontinuous resistance card including a section of constant resistance and a section of variable resistance comprising a resistance card of a length to accommodate such sections, a resistance wire wound over the entire length yoccupied by both said resistance section, an electrical bond connecting adjacent turns of the constant resistance section over the portion extending from the first lturn of said section to a point at least one turn short of its junction with the variable resistance section, said electrical bond comprising a plurality of metallic strips substantialy parallel to one another and perpendicular to the individual turns of said resistance wire, and a Vernier electrical bond [connecting adjacent turns of wire at the junction of said sections], said Vernier bond comprising a metallic island in contact with a plurality of turns of the constant resistance section connected by said first mentioned bond [and with at least the first turn of the variable] up to and including the first turn of the constant resistance section adjacent the variable resistance section [resistance section to extend the bonded section of the wire slightly in excess of the constant resistance section]l 7.
- the method of manufacturing a discontinuous resistance card including a section of constant resistance and a section of variable resistance comprising the steps of forming a resistance card of a length to accommodate such sections, winding said card With a reistance wire over the entire length occupied by both said resistance sections, formingan electrical bond between adjacent turns of the constantresistance section over the portion extending'ffrom the vtrst turn of said section to a point at least one turn shortof its junction with the variable resistance section, forming a Vernier electrical bond between adjacent turns of wire at the junction of said sections, .said Vernier bond including a plurality of turns of the constant resistance section and at least one turn of the adjacent variable resistance section to extend the bonded section of wire slightly in excess of the constant resistance section, determining the exact junction of the two sections, and removing the electrical bond from all windings of said wire except where such bond is touching a constant resistance winding.
- a discontinuous resistance' including in combination a resistance card bent into bowed form, an internal surface of said card, an external surface of said card, a continuous resistance' wire wound on said card, a second internal surface formedby the outer surface of that portion of the resistance wire which lies adjacent the internal surface of said card, a second external surface formed by the outer surface of that portion of the resistance wire which lies adjacent the external surface of said card, a strip of electrical shorting material covering a longitudinal area of the second internal surface and shorting adjacent turns of said wire, said electrical shorting material covering only an intermediate fraction of the second internal surface of each shorted strand to form a constant resistance section defined by the extremities of said shorting material, said strip being shaped to form a recess in a longitudinal edge thereof to provide in said constant resistance section an uncovered portion of said second internal surface extending laterally into said strip to allow bunching of said wire within said recess.
- a discontinuous resistance including in combination a resistance card bent into bowed form, an internal surface of said card, an external surface of said card, a continuous resistance wire wound on said cardJ a second internal surface formed by the outer surfacey of that porv by the 'outer .surface of that portion of the resistance wire which lies adjacent the external surface of said card, a metallic strip of electrical shorting material disposed upon the second internal surface and shorting adjacent turnsl of said wire, said electrical shorting material covering Vonly va fraction of each shorted strand, a metallic dot separated from said strip and overlapping an end thereof to form a partially parallel island 0n the second nternal surface, said strip and said island together denng a constant resistance section with uncovered portions of the second internalA surface within the constant resistance section between said end of said strip and said island so that said wire can bunch within said uncovered portions.
- a discontinuous resistance including in combination a reistance card bent into bowed form, an internal surface of said card, an external surface of said card, a continuous resistance wire wound on said card, a second internal surface formed by the outer surface of that portion of the resistance wire which lies adjacent the internal surface of said cardJ a second external surface formed by the outer surface of that portion of the resistance wire which lies adjacent the external surface of said card, an electrical shorting material covering an area of the second internal surface and shorting adjacent turns of said wire to form a constant resistance section, said electrical sh0rting material covering only a fraction of each shorted strand,v a variable resistance section formed by the unshorted turns of said wire, said shorting material comprising a metallic strip substantially perpendicular to the individual turns of said resistance wire and a portion of said shorting material forming a hook configuration at the end of said constant resistancey section contiguous to the variable resistance section so that said wire can bunch within the slot of the hook so formed.
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Description
I Sepf.9,1 958 G. J. MUCHR Re. 24,531 v `nxscou'rmuous WIRE-wom RESISTANCE AND METHOD oF MAKING gina1 Filed Sept. 16, 1954 f'l''ffiml," n llllIIIIIIIIIIIIIHIIIIIIIIIIIIuI unmumumnunnn@im /d/nc, 7' mi A ATTORNEYS United States Patent O DISCONTINUOUS WIRE-WOUND RESISTANCE AND METHOD F MAKING George J. Mucher, Rochester, N. H., assignor to Clarostat Mfg. Co., Inc., Dover, N. H., `a corporation of New York Original No. 2,783,343, dated February Z6, 1957, Serial No. 456,490, September 16, 1954. Application for reissue February 5, 1958, Serial No. 713,517
Claims. (Cyl. 201-60) 'Matter enclosed in heavy brackets appears in the original patent but forms no part of this reissue specilication; matter printed in italics indicates the additions made by reissue.
This invention relates to improvements in discontinuous wire wound resistances and, particularly to improved means for accurately shortingout one or more selected sections of the windings of such devices and to an in1- proved method of manufacture thereof.
In the manufacture of discontinuous wire wound resistances that are subsequently to be bent in the form of an arc or circle for use in a potentiometer or the like [(]-specifically in those processes employing the well known metal spray, conductive paint or metallic plating shorting techniques-D1 appreciable difficulty is encountered in accurately Vdetermining the correct transition point between adjacent sections of constant and variable resistance, and in preventing undue displacement of the wire of the variable resistance sections when the resistance card is bent. Such difficulties are particularly severe in high resistance coils wherein fine wire on the order of .001 to .002 in diameter is [exetremely] extremely closely wound. In such cases the size and closeness of the windings renders it impractical to apply known production techniques, such as metal spraying, in thel usual manner to short out sections of the wire because the spray cannot conveniently be controlled to the degree of accuracy required. Furthermore, when the resistance card is subsequently bent, the rigid plate formed by the sprayed, painted or plated bond of a constant resistance section inevitably causes a crowding of the wires of the adjacent variable resistance section which may result in an undesirable pile-up `of wires and may even result in a breakdown of the insulation on the wires with consequent shorting out of one or more turns of the variable resistance section. In extreme cases, several turns of the winding may actually override one another, thereby changing the electrical value which is to be imparted.
A general solution to this type of problem is known wherein the resistance wire is wound on a card and a plurality of adjacent turns are bonded together by a metal spray to form a shorted out section slightly less than the length of the desired constantresistance secion. vThe wire is then cut at the junction of the constant and variable resistance sections, and the lirst turn of lthe variable resistance section is soldered to the bonded wires; wherebythe transition point between the constant and variable resistance sections is defined with a high degree of accuracy.
Although the described arrangement is highly advantageous in most applications and is readily adaptable to high production techniques, it is not entirely suitable to all applications because the soldering of individual turns isquite costly. Therefore, such a process is usually reserved for special applications in which an extremely high idegree of precision is required. As a solution to this problem that is readily adapted to high production techniques, applicant has found an improved method of application of the metal spray'tothe section to be shorted Re. 24,531 Rissued Sept. 9, 1958 out, which can readily be adjusted to provide the required high degree of accuracy in determining the transition point between the constant and variable resistance sections and, at the same time, is eective to eliminate the crowding of the wires of the adjacent variable resistance section.
Briefly, in one form of this invention, applicant has found that the combination of two substantially parallel strips of sprayed metal, extending to a point just short of the end of the desired constant resistance section, and a separate dot or island of sprayed metal that is arranged either above or below the level of such'strips and overlaps the junction of the constant and variable resistance sections, provides an eiective shorting bond that eliminates the crowding of the wires of the adjacent variable resistance section. Furthermore, in such an arrangement, the spray metal dot or island can conveniently be trimmed after application to the exact junction of the constant and variable resistance sections to provide an extremely accurate manufacturing control. In a modification of the invention, applicant has found that a hookshaped strip of sprayed metal, or any other configuration thereof that permits relative movement of the wires within the shorted-out section, is also highly eiecive to absorb the pile-up of the resistance wire.
Thus, the principal object of the invention is to provide a discontinuous wire wound resistance card, having extremely closely wound turns, wherein the wire of the constant resistance section is effectively bonded to eliminate crowding of adjacent variable resistance sections, and the junction of the constant and variable resistance sections is determined to a high degree of accuracy, and to provide an improved method of manufacturing such a resistance card.
A further object is to provide a discontinuous wire wound resistance card in which one or more selected portions of the windings may be conveniently and accurately shorted out.
A still further object is to provide a resistance card to produce a discontinuous resistance output having stable variable resistance characteristics.
Another object of the invention is to provide an improved construction for a discontinuous wire wound resistance card whereby a compact and economical product can readily be produced by conventional high production techniques.
Another object of this invention is to provide a discontinuous resistance card which is bowed 0r bent into cylindrical shape and has non-crowding metal spray patterns drawings, in which:
Fig. l is a side elevation of a wire wound resistance card having a center section of resistance shorted out in accordance with the invention;
Fig. 2 is a sectional View taken along the line 2-2 of Fig. l;
Fig. 3 i-s a plan view of a resistance card formed vfor assembly in a potentiometer;
Fig. 4 is a sectional view of a portion of a resistance card, formed for assembly in a potentiometer, illustrating the piling-up of turns that occurs between sections of conventionally bonded wire;
Fig. 5 is a sectional View, similar to Fig. 4, in which the wire is bonded in accordance with the invention;
Fig. 6 is a side elevation of a wire wound resistance card having an end section shorted out in accordance with the invention; and
Fig. 7 is a side elevation of a wire wound resistance card having two end sections shorted out in accordance with a modification lof the invention.
K Referring to Fig. 1 there is shown a conventional type of potentiometer resistance card assembly that comprises a resistance card 10 on which a continuous resistance wire 11 s Wound. Card 10 is usually made of a flat strip of thermosetting material which mayconveniently be inserted in a Winding machine for the purpose of applying the resistance wire, and is provided with at least one straight edge 12. whereby the wire wound thereon forms a smooth and continuous contact edge 13. In Fig. 5 one surface of card I0 is designated generally by the numeral 10a and can be referred to as the internal surface of the card and the other surface of the card is designated generally by the numeral 10b and can be referred to as the external surface of the card. Also the surface of wire 11 which is formed by the outer surface of that portion of the resistance wire which lies adjacent the internal surface of the cardV is designated generally by the numeral 11a and can be referred to as the second internal surface while the surface of .wire 11 which is formed by the outer surface of that portion of the resistance wire which Vlies adjacent the external surface of the card is designated generally by the numeral 11b and can be referred to as the second external surface. Subsequently the assembled coil is heated in a suitable manner and bent into a circular form, as shown in Fig. 3, for assembly in a potentiometer frame wherein contact edge `13 is traversed by a contact wiper fixed on a suitable shaft of the potentiometer.
In general, a resistance card of this type is designed to provide increasing resistance as the wiper of the associated potentiometer is moved over contact edge 13 as, for example, from left to right in Fig. l. However, in many instances it is required that a constant resistance output be provided that corresponds to a predetermined degree of rotation of the potentiometer shaft. Although a variety of methods have been proposed to eiect this result, in accordance with the present invention it is accomplished by shorting out a plurality of adjacent turns of wire 11 to form a shorted out section having a resistance equal to that of the last turn of the adjoining variable resistance section.
The manner of forming such a shorted out section can best be shown by a speciiic application, as illustrated in Fig. 1, wherein it is assumed that the potentiometer is to produce variable resistance outputs during the period that its wiper contact traverses the sections A and C of the resistance card, and is to produce a constant resistance output, corresponding to the resistance of the last turn of section A, while the wiper Contact is traversing section B. To prepare such a shorted out section, all the turns in section B and a small portion of the adjoining ends of sections A and C are thoroughly cleaned to expose the bare wire. The resistance card is then suitably masked and a metal spray is applied in such manner that two parallel strips 14 and 15 and two auxiliary dots or islands 16 and 17 are formed on the surface of the wire. The-dots or islands 16 and 17 may be of any desired configuration but are preferably round since this form is usually the easiest to make.
The masking operation is so performed that strips 14 and 15 are positioned within the limits of the constant resistance section, and islands 16 and 17, respectively, overlap the junctions of the constant resistance section with each of the adjoining variable resistance sections. The spray metal employed may be of any suitable type, such as zinc, that forms a good electrical bond with each of the individual turns of resistance wire 11 [(]-as in Fig. 2-'[)] and at the same time forms a continuous conductive path over the entire area of strips 14, 15 and islands 16, 17 Thus, the resistance of a section of wire, slightly in excess of the proposed constant resistance section B, is elfectively shorted out. Thereafter, an operator with the aid of a microscope and precision instruments determines the exact location of the ends of the constant resistance section and removes the shorting material, by
4 scraping or abrading, from each of islands 16 and 17 that overlap the adjoining variable resistance sections.
By this arrangement it is apparent that a constant resistance section can be defined with a high degree of accuracy in a maner that can be accomplished with conventional high production metal spray techniques. The only requirement being that the spray mask must be applied with suicient accuracy that one or more turns of wire of the proposed constant resistance section at each end of strips 14 and 15 remain exposed, and that islands 16 and 17 overlap at least one turn of the adjoining variable resistance section. Thus, islands 16 and 17 are effectively Vernier adjustments to permit the constant resistance sections to be limited precisely to their required dimensions.
In addition to their shorting function, strips 14, 15 and islands 16, 17 also serve to minimize crowding of adjacent unbonded wires, especially in the case of extremely closely Wound coils. In such instances, it is found that if a conventional spraying, painting, or plating technique is employed, the adjacent wires tend to pile up next to bonded sections, in the manner indicated in Fig. 4, when card 10 is formed for assembly in a potentiometer frame. However, by the use of parallel strips, in which the upper strip 14 is located relatively close to contact edge 13, it is found that any piling up of Wire that occurs is localized between the strips or below strip 15 and within the extremities of islands 76 and J 7, whereas the portions of the turns covered by strips 14 and 15 remain in contact with the card, as illustrated in Fig. 5, and there is no undue crowding of adjacent wires. This [results] result is achieved because of the fact that the parallel strips do not form an unyielding solid plate, as in conventional [practical] practice, but permit a certain degree of compression without cumulative crowding or pile-up at the ends.
It may be noticed that a single strip 14 may be all that is required to obtain the above results in many instances. However, the second strip 15 is employed to insure continuous shorting. Preferably strip 14 is placed close to contact edge 13 to minimize the effect of intermittent resistance. However, islands 16, 17 may be placed closest to the contact edge, should theV nature of a particular problem so require, to obtain more critical control at the hop-olf points.
The method described above is equally adaptable to short out a resistance section at the end of the card, as indicated in Fig. 6. In this case, obviously, only a single island 16 need be employed with each pair of strips 14 and 15. Also, inasmuch as strips 14 and 15 are relatively rigid, they may conveniently be employed as connecting point areas to which a lead or tap 18 may be soldered to connect the resistance card with its associated circuit. 1
As a modilication of the invention, it is also found that spray metal shorting strips are advantageous to lessen piling up of the wire within a shorted area when formed in the shape of a hook or loop 19, as yshown in Fig. 7. In this arrangement, when the resistance card is curved and crowding occurs, no difl'culty is experienced because the loops which tend to override each other shift into the slot of the hook or pile up along its shank in the middle of the card. However, it is found that no overriding occurs in the variable resistance section of the card since the over-crowded winding will not go beyond the extremities of the shorting material. As can be seen in Fig. 7, the hook 19 defines a slot 20 which may be described as a recess in a longitudinal edge of the metal strip forming the constant resistance section, said recess providing in said constant resistance section an uncovered portion of the internal surface of the wire windings extending laterally into the strip to allow bunching of the wire within the recess. If desired, hook 19 may be used in combination with an island 16, as ldescribed in connection with Figs. l and 6, to obtain a high degree of accuracy in defining such a shorted out section.
Obviously, other patterns of spray or paint bonding may be employed to produce a similar effect. For example, the bonding material may be appliedV as a series of overlapping dots, or in a woven or zig-zag pattern, as long as there is sufficient room to permit some overriding of the bonded wires at points intermediate the ends of the bonded section.
As thus far described, the invention as shown is applied to a linear resistance. However, since [its] it is well known that potentiometers are frequently 'employed to [represents] represent non-linear [fucntions] functions simply by varying the gauge and/or spacing of the resistance wire or by varying the shape of the card on which the wire is wound, it is apparent that the present invention may also be applied to non-linear equipment.
Thus, among others, the several objects of the invention as specifically noted above are achieved. Obviously, numerous changes in construction and rearrangement of the parts may be made without departing from the scope of the invention as defined by the claims.
I claim:
l. The method of manufacturing a discontinuous resistance card including a section of constant resistance and a section of variable resistance comprising the steps of forming a resistance card of a length to accommodate such sections, winding said card with a resistance wire over the entire length occupied by both said resistance sections, forming an electrical bond between adjacent turns of the constant resistance section over the portion extending from the first turn of said section to a point at least one turn short of its junction with the variable resistance section, forming a Vernier electrical bond between adjacent turns of wire at the junction of said sections,
said vernier bond including a plurality of turns of the constant resistance section and at least one turn of the adjacent variable resistance section to extend the bonded section of wire slightly in excess of the constant resistance section, determining the exact junction of the two sections, and removing the Vernier electrical bond from all turns of the variable resistance section [except the first turn thereof] 2. The method of manufacturing a discontinuous resistance including a section of constant resistance arranged between two sections of variable resistance comprising the steps of forming a resistance card of a length to accommodate such sections, winding said card with a resistance wire over the entire length occupied by said resistance sections, forming an electrical bond between adjacent turns of the constant resistance section over the portion extending between points at least one turn short of each of its junctions with the variable resistance sections, forming Vernier electrical bonds between adjacent turns of wire at each end of said constant resistance section, each of said Vernier bonds including a plurality of turns of the constant resistance section and at least one turn of the adjacent variable resistance section to extend the bonded section of wire slightly in excess of the constant resistance section, determining the exact junction of the constant resistance section with each of the variable re-4 sistance sections, and removing the vernier electrical bond from all turns of the variable resistance sections [except the first turn of each of said sectionsl 3. The method of manufacturing a discontinuous resistance card including a section of constant resistance and a section of variable resistance comprising the steps of forming a resistance card of a length to accommodate such sections, winding said card with a resistance wire over the entire length occupied by both said resistance sections, forming an electrical bond between adjacent turns of the constant resistance section over the portion extending from the first turn of said section to a point at least one turn short of its junction with the variable resistance section, said electrical bond comprising a pair of spaced metallic strips substantially parallel to one another and perpendicular to the individual turns of said resistance wire, forming a second electrical bond between adjacent turns of wire at the junction of said sections, said vernier bond comprising a metallic island in contact with a plurality of turns of the constant resistance section and at least one turn of the variable resistance section, determining the exact junction of the two sections to extend the bonded section of wire slightly in excess of the constant resistance section, and removing the electrical bond from all turns of the variable resistance section [except the first turn thereofjl.
4. A discontinuous resistance card including a section of constant resistance and a section of variable resistance comprising a resistance card of a length to accommodate such sections, a resistance wire wound over the entire length occupied by both said resistance sections, an electrical bond connecting adjacent turns of the constant resistance section over the portion extending from the first turn Vof said section to a point at least one turn short of its junction with the variable resistance section, and a Vernier electrical bond [connecting adjacent turns of wire at the junction of said sections], said Vernier bond connecting a plurality of turns of the constant resistance section [and at least the first turn of the variable resistance section to extend the bonded section of wire slightly in excess of the constant resistance section], up to and including the first turn of the constant resistance section adjacent the variable resistance section.
5. A discontinuous resistance card including a section of constant resistance arranged between two sections of a variable resistance comprising a resistance card of a length rto accommodate such sections, a resistance wire wound over the entire length occupied by said resistance sections, an electrical bond connecting adjacent turns of the constant resistance section over the portion extending between points at least one turn short of each of its junctions with the variable resistance sections, and Vernier electrical bonds [connecting adjacent turns of wire at each end of said constant resistance section], each of said Vernier bonds connecting respectively a plurality of turns of the constant resistance section [and at least the first] up to and including the first turn of the constant resistance section adjacent the variable resistance section [turn of the adjacent variable resistance section to extend the bonded section of wire'slightly in excess of the constant resistance sectionl 6. A discontinuous resistance card including a section of constant resistance and a section of variable resistance comprising a resistance card of a length to accommodate such sections, a resistance wire wound over the entire length yoccupied by both said resistance section, an electrical bond connecting adjacent turns of the constant resistance section over the portion extending from the first lturn of said section to a point at least one turn short of its junction with the variable resistance section, said electrical bond comprising a plurality of metallic strips substantialy parallel to one another and perpendicular to the individual turns of said resistance wire, and a Vernier electrical bond [connecting adjacent turns of wire at the junction of said sections], said Vernier bond comprising a metallic island in contact with a plurality of turns of the constant resistance section connected by said first mentioned bond [and with at least the first turn of the variable] up to and including the first turn of the constant resistance section adjacent the variable resistance section [resistance section to extend the bonded section of the wire slightly in excess of the constant resistance section]l 7. The method of manufacturing a discontinuous resistance card including a section of constant resistance and a section of variable resistance comprising the steps of forming a resistance card of a length to accommodate such sections, winding said card With a reistance wire over the entire length occupied by both said resistance sections, formingan electrical bond between adjacent turns of the constantresistance section over the portion extending'ffrom the vtrst turn of said section to a point at least one turn shortof its junction with the variable resistance section, forming a Vernier electrical bond between adjacent turns of wire at the junction of said sections, .said Vernier bond including a plurality of turns of the constant resistance section and at least one turn of the adjacent variable resistance section to extend the bonded section of wire slightly in excess of the constant resistance section, determining the exact junction of the two sections, and removing the electrical bond from all windings of said wire except where such bond is touching a constant resistance winding.
8. A discontinuous resistance'including in combination a resistance card bent into bowed form, an internal surface of said card, an external surface of said card, a continuous resistance' wire wound on said card, a second internal surface formedby the outer surface of that portion of the resistance wire which lies adjacent the internal surface of said card, a second external surface formed by the outer surface of that portion of the resistance wire which lies adjacent the external surface of said card, a strip of electrical shorting material covering a longitudinal area of the second internal surface and shorting adjacent turns of said wire, said electrical shorting material covering only an intermediate fraction of the second internal surface of each shorted strand to form a constant resistance section defined by the extremities of said shorting material, said strip being shaped to form a recess in a longitudinal edge thereof to provide in said constant resistance section an uncovered portion of said second internal surface extending laterally into said strip to allow bunching of said wire within said recess.
9. A discontinuous resistance including in combination a resistance card bent into bowed form, an internal surface of said card, an external surface of said card, a continuous resistance wire wound on said cardJ a second internal surface formed by the outer surfacey of that porv by the 'outer .surface of that portion of the resistance wire which lies adjacent the external surface of said card, a metallic strip of electrical shorting material disposed upon the second internal surface and shorting adjacent turnsl of said wire, said electrical shorting material covering Vonly va fraction of each shorted strand, a metallic dot separated from said strip and overlapping an end thereof to form a partially parallel island 0n the second nternal surface, said strip and said island together denng a constant resistance section with uncovered portions of the second internalA surface within the constant resistance section between said end of said strip and said island so that said wire can bunch within said uncovered portions.
10. A discontinuous resistance including in combination a reistance card bent into bowed form, an internal surface of said card, an external surface of said card, a continuous resistance wire wound on said card, a second internal surface formed by the outer surface of that portion of the resistance wire which lies adjacent the internal surface of said cardJ a second external surface formed by the outer surface of that portion of the resistance wire which lies adjacent the external surface of said card, an electrical shorting material covering an area of the second internal surface and shorting adjacent turns of said wire to form a constant resistance section, said electrical sh0rting material covering only a fraction of each shorted strand,v a variable resistance section formed by the unshorted turns of said wire, said shorting material comprising a metallic strip substantially perpendicular to the individual turns of said resistance wire and a portion of said shorting material forming a hook configuration at the end of said constant resistancey section contiguous to the variable resistance section so that said wire can bunch within the slot of the hook so formed.
References Cited in the le of this patent or the original patent UNITED STATES PATENTS 2,005,456 Creager June 18, 1935 2,023,603 Lodge Dec. l0, 1935 2,438,250 Moore Mar. 23, 1948
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USRE24531E true USRE24531E (en) | 1958-09-09 |
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US24531D Expired USRE24531E (en) | Discontinuous wire-wound resistance |
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