US3614704A - Sliding member and electrodes for measuring instruments - Google Patents

Sliding member and electrodes for measuring instruments Download PDF

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US3614704A
US3614704A US867542A US3614704DA US3614704A US 3614704 A US3614704 A US 3614704A US 867542 A US867542 A US 867542A US 3614704D A US3614704D A US 3614704DA US 3614704 A US3614704 A US 3614704A
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resistance
slider
electrodes
contacts
contact
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US867542A
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Tatsuo Fujii
Yutaka Watano
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Nikon Corp
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Nippon Kogaku KK
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Assigned to NIKON CORPORATION, 2-3, MARUNOUCHI 3-CHOME, CHIYODA-KU, TOKYO, JAPAN reassignment NIKON CORPORATION, 2-3, MARUNOUCHI 3-CHOME, CHIYODA-KU, TOKYO, JAPAN CHANGE OF NAME (SEE DOCUMENT FOR DETAILS). EFFECTIVE APR. 1, 1988 Assignors: NIPPON KOGAKU, K.K.
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    • GPHYSICS
    • G01MEASURING; TESTING
    • G01RMEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
    • G01R1/00Details of instruments or arrangements of the types included in groups G01R5/00 - G01R13/00 and G01R31/00
    • G01R1/20Modifications of basic electric elements for use in electric measuring instruments; Structural combinations of such elements with such instruments
    • G01R1/203Resistors used for electric measuring, e.g. decade resistors standards, resistors for comparators, series resistors, shunts
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01CRESISTORS
    • H01C10/00Adjustable resistors
    • H01C10/06Adjustable resistors adjustable by short-circuiting different amounts of the resistive element
    • H01C10/08Adjustable resistors adjustable by short-circuiting different amounts of the resistive element with intervening conducting structure between the resistive element and the short-circuiting means, e.g. taps
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01CRESISTORS
    • H01C10/00Adjustable resistors
    • H01C10/30Adjustable resistors the contact sliding along resistive element
    • H01C10/32Adjustable resistors the contact sliding along resistive element the contact moving in an arcuate path
    • H01C10/34Adjustable resistors the contact sliding along resistive element the contact moving in an arcuate path the contact or the associated conducting structure riding on collector formed as a ring or portion thereof
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01CRESISTORS
    • H01C10/00Adjustable resistors
    • H01C10/46Arrangements of fixed resistors with intervening connectors, e.g. taps
    • H01C10/48Arrangements of fixed resistors with intervening connectors, e.g. taps including contact movable in an arcuate path

Definitions

  • the invention includes tap electrodes comprising a plurality of resistance layers connected in series but different in width before and after the joint portions, and a sliding contacting member comprising a great number of small contacts. Either or both of the elongated directions of the electrodes and contacting member are relatively inclined. By this arrangement the variation in resistance is ideally stepwise and this stepwise variation is held stable regardless of the increase in the number ofsliding operations of the slider.
  • This invention relates to a sliding member and electrodes for measuring instruments, and more particularly to tap electrodes consisting of resistive bodies capable of forming low-resistance layers on a thin film sliding variable resistor and sliding contacts therefore.
  • FIGS. 3 through 7 A conventional contacting mechanism between tap electrodes and a slider of a thin film sliding resistor for measuring instruments is shown in FIGS. 3 through 7, in which 8 is a slider, 9 are tap electrodes, and is a baseplate.
  • the tap electrodes 9 are fixed on the baseplate 10 by means of evaporation etc.
  • the slider makes, contact with and slides on the tap electrodes along a guide (not indicated).
  • the transversal width of the sliding surface of the slider is so designed that the surface is wide enough to make contact with at least two adjacent tap electrodes regardless of its position. With the increase in the number of sliding times the surfaces of the slider and tap electrodes become worn out, and the shape of their cross section becomes that as shown in FIG. 4.
  • the slider makes contact with two tap electrodes at the position shown in FIG.
  • the object of this invention is to overcome the above-mentioned defects of the conventional structure and to provide a set of tap electrodes of thin film resistors for measuring instruments having a plurality of resistance layers connected in series, different in width before and after each junction and a slider comprising numerous of small slider contacts provided in parallel.
  • the aforementioned tap electrodes are provided in parallel within the track of the slider.
  • the direction of the contact train formed by each contact of the aforementioned small contacts and the direction of the electrode train are such that the contacts near the low resistance in the direction perpendicular to the direction in which the slider advances extend farther from the resistance layers within the track of the said slider and the contacts near the high resistance are closer to the resistance layers.
  • the directions of the contact train and the electrode train are made relatively inclined to each other by tilting one or both of them. By this inclination, one of the parallel smaller contacts on the slider are always maintained on two or more than two adjacent electrodes, making contact with them.
  • FIG. 1 is a plan view of an embodiment of this invention
  • FIGS. 2A and B show a plan and side views, respectively of an embodiment of slider according to this invention
  • FIGS. 3 to 7 show explanatory cross-sectional views of a conventional slider contacting with electrodes
  • FIG. 8 is a graph showing the relationship between the positions of electrodes and the resistance value.
  • FIG. 9 is a graph showing the relationship between the positions of slider and the resistance value.
  • l is a contact train comprising contacts 11 through 17; 4 and 2 are the electrode sections comprising lowresistance layers, and the electrode section 2 comprises tapped electrodes a through 0; 3 and 3' are high-resistance layers, on which the layer 3has a lower surface resistance than the layer 3' has and each of them connecting electrodes, and 5 is a baseplate that holds electrodes and resistance layers.
  • the single dotted lines show the tracks of individual contacts.
  • the slider rotates around the center 0, of the baseplate.
  • the slider consists of spring wire material held by the holding part 7 as shown in FIG. 2.
  • a part A of the are at the tip of the spring wire 6 forms a train of contacts 1 1 through 17.
  • the direction of electrodes of tapped electrode sections a through 0 of the electrode section 2 is inclined within the slider tracks 18 and 19 against the slider contact train 1 as shown in FIG. 1.
  • the angle of inclination is so set that one of the contacts 11 through 17 is always maintainedon three or more than three electrodes to make contact with them.
  • the contacts are so arranged that between the contact 17 which is positioned closer to the highest resistance side of the parallel contacts of the slider and the contact 11 which is closer to the lowest resistance there exist three or four electrodes depending on the position of the slider, including the electrode which is making contact with the contact 17 or I 1.
  • resistance decreases temporarily when the slider slides in the direction to increase the resistance and increases temporarily when the slider slides in the direction to decrease the resistance, depending on whether the contact 17 on the high-resistance side makes or breakes contact with the electrode j.
  • the indicated resistance is dependent on each contact and is more dependent on the contacts closer to the electrode 4 such as the contacts 11 and 12
  • the shift in the resistance can be made negligibly small in such a construction by selecting the number of contacts and the inclination between the contact train and the electrode train according to the electrode and the resistance value of the resistance layer.
  • the aforementioned phenomena does not take place even when the electrode 2 itself has a significant resistance, because when one contact makes contact with the next electrode in case the slider slides in the resistanceincreasing direction, the preceeding contact has already made contact with the contact, and in the case in which the slider slides in the resistance-decreasing direction, when a contact leaves an electrode, the succeeding contact has made contact with the electrode.
  • FIG. 8 is a graph representing the resistance of this example.
  • the vertical axis represents the resistance and the horizontal axis represents the electrode position.
  • FIG. 9 is a graph representing the resistance of this example where the vertical axis shows the resistance and the horizontal axis represents the slider current flows through a narrow path between g and h, and a wide path between i and j, and the aforementioned phenomenon appears near the midway between these two paths.
  • the arrangement of the contacts as shown in FIG. 1 for an example of this invention is advantageous.
  • the contact 11 positioned closer to the low resistance side is placed apart from the resistance layers
  • the contact 17 positioned closer to the high-resistance side is placed near the resistance layers
  • the contacts in between them are placed sequentially between the contacts 11 and 17.
  • the resistance varies along a gentle slope as indicated by 21 in FIG. 8.
  • the change indicated by the line 22 of FIG. 9 becomes like the one shown by the line 23. It is of course permissible to move each of the contacts 11 through 17 along direction of the electrode, as long as some of the contacts are making contact with at least three electrodes and at least two contacts are present on and between two adjacent electrodes.
  • tap electrodes capable of forming low resistance layers of thinfilm sliding variable resistors for use in measuring instruments comprising a plurality of resistance layers connected in series and having different widths before and after their junctions, and a slider which has the property of: not increasing the resistance temporarily when the slider slides in the resistancedecreasingdirection; not decreasing the resistance temporarily when the slider slides in the resistance-increasing direction; changing the resistance'ideally stepwise without any rapid change at the junction of two resistance layers; and holding a steady stepwise resistance change over a long period of time against the increase in the number of times the slider is rotated. There is no increase in production cost and manufacturing is easy.
  • a variable electrical resistor which comprises:
  • a main resistance consisting of a plurality of thin film resistance layers, said thin film-resistance layers having widths which are varied along the track of movement of said contacts on said slider and being connected in series for obtaining a wide range of resistance;
  • a plurality of tap electrodes extending from said main resistance into the track of said slider, said tap electrodes being of stripe shape and made from a thin film layer of relatively low resistance, the direction of the contact train formed by said contacts and the extending direction of electrodes forming an electrode train almost parallely provided within the track of said slider being inclined relatively to each other so as to change the contacting point of said electrodes and said contacts in accordance with the movement of said slider whereby at least three contacts on said slider are simultaneously engageable with respective electrodes, with the contact closest to said main resistance being engaged with a tap electrode extending from the higher resistance portion of said main resistance and the contact furthest from said main resistance being engaged with a tap electrode extending from a lower resistance portion of said main resistance.

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  • Engineering & Computer Science (AREA)
  • Microelectronics & Electronic Packaging (AREA)
  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Adjustable Resistors (AREA)
  • Apparatuses And Processes For Manufacturing Resistors (AREA)

Abstract

The invention includes tap electrodes comprising a plurality of resistance layers connected in series but different in width before and after the joint portions, and a sliding contacting member comprising a great number of small contacts. Either or both of the elongated directions of the electrodes and contacting member are relatively inclined. By this arrangement the variation in resistance is ideally stepwise and this stepwise variation is held stable regardless of the increase in the number of sliding operations of the slider.

Description

United States Patent Inventors Tatsuo Fujii;
Yutaka Watano, both of Tokyo, Japan Appl. No. 867,542 Filed Oct. 20, 1969 Patented Oct. 19, 1971 Assignee Nippon Kogaku K.K.
Tokyo, Japan Priority Oct. 23, 1968 Japan 43/191932 SLIDING MEMBER AND ELECTRODES FOR MEASURING INSTRUMENTS 1 Claim, 10 Drawing Figs.
US. Cl 338/140, 338/ I 90 Int. Cl H0lc 9/04 Field ofSearch 338/72, 95,
97,122,l23,138,l40,142,185, 190,191,192, l93;323/43.5;336/l50 [56] References Cited UNITED STATES PATENTS 297,324 4/1884 Weston 338/192 432,131 7/1890 Flemming... 338/142 743,607 11/1903 Wright 338/192 2,632,831 3/1953 Pritikin et al. 338/140 3,111,639 1l/l963 Ploke 338/140 3,270,135 8/1966 Schaeffer et al. 338/95 X Primary Examiner-E. A. Goldberg Assistant ExaminerD. A. Tone AttorneyWard, McElhannon, Brooks & Fitzpatrick ABSTRACT: The invention includes tap electrodes comprising a plurality of resistance layers connected in series but different in width before and after the joint portions, and a sliding contacting member comprising a great number of small contacts. Either or both of the elongated directions of the electrodes and contacting member are relatively inclined. By this arrangement the variation in resistance is ideally stepwise and this stepwise variation is held stable regardless of the increase in the number ofsliding operations of the slider.
PATENTEUnm 19 I971 SHEET 1 0F 2 FIG. I
FIG. 2B
SLIDING MEMBER AND ELECTRODES FOR MEASURING INSTRUMENTS This invention relates to a sliding member and electrodes for measuring instruments, and more particularly to tap electrodes consisting of resistive bodies capable of forming low-resistance layers on a thin film sliding variable resistor and sliding contacts therefore.
A conventional contacting mechanism between tap electrodes and a slider of a thin film sliding resistor for measuring instruments is shown in FIGS. 3 through 7, in which 8 is a slider, 9 are tap electrodes, and is a baseplate. The tap electrodes 9 are fixed on the baseplate 10 by means of evaporation etc. The slider makes, contact with and slides on the tap electrodes along a guide (not indicated). The transversal width of the sliding surface of the slider is so designed that the surface is wide enough to make contact with at least two adjacent tap electrodes regardless of its position. With the increase in the number of sliding times the surfaces of the slider and tap electrodes become worn out, and the shape of their cross section becomes that as shown in FIG. 4. Although the slider makes contact with two tap electrodes at the position shown in FIG. 4, it is in the state of making contact with only one tap electrode at the position shown in FIG. 5. At the position as shown in FIG. 6, the projection of the slider that has been produced by the deformation due to wear makes contact with the baseplate and the slider is prevented from making contact with any tap electrode. Thus an unstable change in resistance occurs at a comparatively early stage. This is particularly true in the case in which the slider is designed to make contact with three or more than three tap electrodes as shown in FIG. 7, and the aforementioned deformations are produced in very earlier stage. i In the case of electrodes having resistance, if the slider is not constructed to make contact with two or more than two electrodes, or with three or more than three electrodes simultane- 0usly, a temporary increase in resistance appears when the slider slides in resistance decreasing direction by making or breaking its contact with the electrode on the higher resistance side; and a temporary decrease in resistance is observed when the slider slides in a resistance-increasing direction. Similarly, when the electrode itself possesses a resistance, a smooth resistance change is hard to get near the junction of two series-connected resistance layers.
The object of this invention is to overcome the above-mentioned defects of the conventional structure and to provide a set of tap electrodes of thin film resistors for measuring instruments having a plurality of resistance layers connected in series, different in width before and after each junction and a slider comprising numerous of small slider contacts provided in parallel. The aforementioned tap electrodes are provided in parallel within the track of the slider. The direction of the contact train formed by each contact of the aforementioned small contacts and the direction of the electrode train are such that the contacts near the low resistance in the direction perpendicular to the direction in which the slider advances extend farther from the resistance layers within the track of the said slider and the contacts near the high resistance are closer to the resistance layers. The directions of the contact train and the electrode train are made relatively inclined to each other by tilting one or both of them. By this inclination, one of the parallel smaller contacts on the slider are always maintained on two or more than two adjacent electrodes, making contact with them.
The present invention will be more apparent from the following description referring to an illustrative embodiment and conventional structure for comparison sake as shown in the accompanied drawings in which:
FIG. 1 is a plan view of an embodiment of this invention;
FIGS. 2A and B show a plan and side views, respectively of an embodiment of slider according to this invention;
FIGS. 3 to 7 show explanatory cross-sectional views of a conventional slider contacting with electrodes;
FIG. 8 is a graph showing the relationship between the positions of electrodes and the resistance value; and
FIG. 9 is a graph showing the relationship between the positions of slider and the resistance value.
In FIG. 1, l is a contact train comprising contacts 11 through 17; 4 and 2 are the electrode sections comprising lowresistance layers, and the electrode section 2 comprises tapped electrodes a through 0; 3 and 3' are high-resistance layers, on which the layer 3has a lower surface resistance than the layer 3' has and each of them connecting electrodes, and 5 is a baseplate that holds electrodes and resistance layers. The single dotted lines show the tracks of individual contacts. In this case, the slider rotates around the center 0, of the baseplate. The slider consists of spring wire material held by the holding part 7 as shown in FIG. 2. A part A of the are at the tip of the spring wire 6 forms a train of contacts 1 1 through 17. The direction of electrodes of tapped electrode sections a through 0 of the electrode section 2 is inclined within the slider tracks 18 and 19 against the slider contact train 1 as shown in FIG. 1. The angle of inclination is so set that one of the contacts 11 through 17 is always maintainedon three or more than three electrodes to make contact with them. In other words, in this embodiment the contacts are so arranged that between the contact 17 which is positioned closer to the highest resistance side of the parallel contacts of the slider and the contact 11 which is closer to the lowest resistance there exist three or four electrodes depending on the position of the slider, including the electrode which is making contact with the contact 17 or I 1. Between the aforementioned contacts 11 and17 there always are at least two contacts on andvbetween any two adjacent electrodes, and at least one contact stays on and makes contact with each electrode. With such a construction, when for example the contact train I is in the position indicated by the arrow in FIG. 1, four electrodes 3, h, i, and j exist between the contacts 11 and 17, and the three contacts ll, 12, and 13 are present between the electrodes 3 and it, four contacts l3, l4, l5, and 16 are between the electrodes h and i, and three contacts l5, l6, and 17 between electrodes 1 and j. As is clear from this example, in an arbitrary position of the slider some of the contacts 11 through 17 make contact with at least three electrodes and there exist at least two contacts on adjacent electrodes and within the space between these electrodes. As for the resistance change between the electrode 4 and the slider, when the contact train is at the same position as indicated by the arrow in FIG. I, resistance decreases temporarily when the slider slides in the direction to increase the resistance and increases temporarily when the slider slides in the direction to decrease the resistance, depending on whether the contact 17 on the high-resistance side makes or breakes contact with the electrode j. However, since the indicated resistance is dependent on each contact and is more dependent on the contacts closer to the electrode 4 such as the contacts 11 and 12, even when the electrode 2 is composed of a resistance layer having a resistance value that cannot be completely ignored, the shift in the resistance can be made negligibly small in such a construction by selecting the number of contacts and the inclination between the contact train and the electrode train according to the electrode and the resistance value of the resistance layer. As for the other contacts 11 through 16, the aforementioned phenomena does not take place even when the electrode 2 itself has a significant resistance, because when one contact makes contact with the next electrode in case the slider slides in the resistanceincreasing direction, the preceeding contact has already made contact with the contact, and in the case in which the slider slides in the resistance-decreasing direction, when a contact leaves an electrode, the succeeding contact has made contact with the electrode.
Special advantages brought about by the aforementioned properties to the junction of the resistance layers will be discussed in the following. Degree of change in the resistance obtained will be described referring to FIG. 8 and 9. FIG. 8 is a graph representing the resistance of this example. The vertical axis represents the resistance and the horizontal axis represents the electrode position. FIG. 9 is a graph representing the resistance of this example where the vertical axis shows the resistance and the horizontal axis represents the slider current flows through a narrow path between g and h, and a wide path between i and j, and the aforementioned phenomenon appears near the midway between these two paths. Against this, the arrangement of the contacts as shown in FIG. 1 for an example of this invention is advantageous. Here the contact 11 positioned closer to the low resistance side is placed apart from the resistance layers, the contact 17 positioned closer to the high-resistance side is placed near the resistance layers, and the contacts in between them are placed sequentially between the contacts 11 and 17. The resistance varies along a gentle slope as indicated by 21 in FIG. 8. Macroscopically, the change indicated by the line 22 of FIG. 9 becomes like the one shown by the line 23. It is of course permissible to move each of the contacts 11 through 17 along direction of the electrode, as long as some of the contacts are making contact with at least three electrodes and at least two contacts are present on and between two adjacent electrodes.
Moreover, when making the electrodes having the shapes as shown in the embodiment by evaporation, sputtering, or etching, there is of course no increase in the cost because the working time is independent of the shapes. As have been described, according to this invention, it is possible to obtain tap electrodes capable of forming low resistance layers of thinfilm sliding variable resistors for use in measuring instruments, comprising a plurality of resistance layers connected in series and having different widths before and after their junctions, and a slider which has the property of: not increasing the resistance temporarily when the slider slides in the resistancedecreasingdirection; not decreasing the resistance temporarily when the slider slides in the resistance-increasing direction; changing the resistance'ideally stepwise without any rapid change at the junction of two resistance layers; and holding a steady stepwise resistance change over a long period of time against the increase in the number of times the slider is rotated. There is no increase in production cost and manufacturing is easy.
We claim:
1. A variable electrical resistor which comprises:
a slider;
a plurality of contacts provided in parallel on said slider;
a main resistance consisting of a plurality of thin film resistance layers, said thin film-resistance layers having widths which are varied along the track of movement of said contacts on said slider and being connected in series for obtaining a wide range of resistance; and
a plurality of tap electrodes extending from said main resistance into the track of said slider, said tap electrodes being of stripe shape and made from a thin film layer of relatively low resistance, the direction of the contact train formed by said contacts and the extending direction of electrodes forming an electrode train almost parallely provided within the track of said slider being inclined relatively to each other so as to change the contacting point of said electrodes and said contacts in accordance with the movement of said slider whereby at least three contacts on said slider are simultaneously engageable with respective electrodes, with the contact closest to said main resistance being engaged with a tap electrode extending from the higher resistance portion of said main resistance and the contact furthest from said main resistance being engaged with a tap electrode extending from a lower resistance portion of said main resistance.

Claims (1)

1. A variable electrical resistor which comprises: a slider; a plurality of contacts provided in parallel on said slider; a main resistance consisting of a plurality of thin film resistance layers, said thin film-resistance layers having widths which are varied along the track of movement of said contacts on said slider and being connected in series for obtaining a wide range of resistance; and a plurality of tap electrodes extending from said main resistance into the track of said slider, said tap electrodes being of stripe shape and made from a thin film layer of relatively low resistance, the direction of the contact train formed by said contacts and the extending direction of electrodes forming an electrode train almost parallely provided within the track of said slider being inclined relatively to each other so as to change the contacting point of said electrodes and said contacts in accordance with the movement of said slider whereby at least three contacts on said slider are simultaneously engageable with respective electrodes, with the contact closest to said main resistance being engaged with a tap electrode extending from the higher resistance portion of said main resistance and the contact furthest from said main resistance being engaged with a tap electrode extending from a lower resistance portion of said main resistance.
US867542A 1968-10-23 1969-10-20 Sliding member and electrodes for measuring instruments Expired - Lifetime US3614704A (en)

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Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR2619911A1 (en) * 1987-09-02 1989-03-03 Jaeger IMPROVEMENTS IN MEASURING DEVICES INCLUDING A RHEOSTAT-TYPE TRANSDUCER, PARTICULARLY FOR MEASURING FUEL IN THE TANK OF A MOTOR VEHICLE
EP0806637A2 (en) * 1996-05-09 1997-11-12 CTS Corporation Fuel level indicator systems

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE102007042011B4 (en) * 2007-09-04 2022-05-05 Kostal Automobil Elektrik Gmbh & Co. Kg Variable electrical resistance

Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US297324A (en) * 1884-04-22 westgn
US432131A (en) * 1890-07-15 Current-regulator or rheostat
US743607A (en) * 1902-07-15 1903-11-10 Stanley Electric Mfg Co Resistance for electric circuits.
US2632831A (en) * 1951-05-09 1953-03-24 Pritikin Variable resistance element
US3111639A (en) * 1960-09-27 1963-11-19 Zeiss Ikon Ag Non-linear control potentiometer provided with a semi-conductive resistance layer
US3270135A (en) * 1962-06-21 1966-08-30 Univ Alberta Control means for controlling electro-mechanical phenomena

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US297324A (en) * 1884-04-22 westgn
US432131A (en) * 1890-07-15 Current-regulator or rheostat
US743607A (en) * 1902-07-15 1903-11-10 Stanley Electric Mfg Co Resistance for electric circuits.
US2632831A (en) * 1951-05-09 1953-03-24 Pritikin Variable resistance element
US3111639A (en) * 1960-09-27 1963-11-19 Zeiss Ikon Ag Non-linear control potentiometer provided with a semi-conductive resistance layer
US3270135A (en) * 1962-06-21 1966-08-30 Univ Alberta Control means for controlling electro-mechanical phenomena

Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR2619911A1 (en) * 1987-09-02 1989-03-03 Jaeger IMPROVEMENTS IN MEASURING DEVICES INCLUDING A RHEOSTAT-TYPE TRANSDUCER, PARTICULARLY FOR MEASURING FUEL IN THE TANK OF A MOTOR VEHICLE
EP0310467A1 (en) * 1987-09-02 1989-04-05 Jaeger Measuring devices comprising rheostat-type transducers
EP0806637A2 (en) * 1996-05-09 1997-11-12 CTS Corporation Fuel level indicator systems
EP0806637A3 (en) * 1996-05-09 1998-01-07 CTS Corporation Fuel level indicator systems
US6127916A (en) * 1996-05-09 2000-10-03 Cts Corporation Fuel system low current rheostat

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GB1292282A (en) 1972-10-11
JPS4726210Y1 (en) 1972-08-12
DE1953039A1 (en) 1970-05-14
DE1953039B2 (en) 1972-12-07

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