RESISTOR WITH TEMPERATURE COEFFICIENT OF RESISTANCE (TCR) COMPENSATION
20230343495 · 2023-10-26
Assignee
Inventors
- Clark L. Smith (Columbus, NE, US)
- Thomas L. Bertsch (Norfolk, NE, US)
- Todd L. Wyatt (Columbus, NE, US)
- Thomas L. Veik (Columbus, NE, US)
Cpc classification
G01R1/203
PHYSICS
H01C7/06
ELECTRICITY
Y10T29/49101
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
H01C1/148
ELECTRICITY
H01C17/232
ELECTRICITY
International classification
H01C7/06
ELECTRICITY
H01C1/148
ELECTRICITY
H01C17/232
ELECTRICITY
G01R1/20
PHYSICS
G01R19/00
PHYSICS
Abstract
A current sense resistor and a method of manufacturing a current sensing resistor with temperature coefficient of resistance (TCR) compensation are disclosed. The resistor has a resistive strip disposed between two conductive strips. A pair of main terminals and a pair of voltage sense terminals are formed in the conductive strips. A pair of rough TCR calibration slots is located between the main terminals and the voltage sense terminals, each of the rough TCR calibration slots have a depth selected to obtain a negative starting TCR value observed at the voltage sense terminals. A fine TCR calibration slot is formed between the pair of voltage sense terminals.
Claims
1-20. (canceled)
21. A resistor having temperature coefficient of resistance (TCR) compensation, comprising: a resistive element; a first conductive portion connected to a first side of the resistive element, the first conductive portion having a first sensing portion adjacent to a first slot extending through the first conductive portion, the first sensing portion being located at least in part between the first slot and the resistive element, the first slot being formed in an interior area of the first conductive portion bounded on all sides by the interior area, the first slot comprising a first portion and a second portion which are located at different positions relative to the first sensing portion, the first portion and the second portion connected with each other, the first portion extending along a first path and ending with a closed end, the second portion extending along a second path in a direction at least partially toward the resistive element and ending with a closed end, and the second path is different than the first path; and a second conductive portion connected to a different side of the resistive element than the first conductive portion, the second conductive portion having a second sensing portion.
22. The resistor according to claim 21, wherein the at least a portion of the first sensing portion is located adjacent a position where the first portion and the second portion connect.
23. The resistor according to claim 21, wherein the first conducive portion and the second conductive portion each define a main current path, wherein the first portion has at least a portion that extends generally orthogonal to a main current path of the resistor, and the second portion has at least a portion that extends generally perpendicular to a main current path of the resistor.
24. The resistor according to claim 21, wherein the first slot has a portion that is generally C-shaped or L-shaped.
25. The resistor according to claim 21, wherein at least one of the first portion or the second portion has at least a portion that is generally rounded.
26. The resistor according to claim 21, wherein the first sensing portion is located between at least a portion of the first slot and the resistive element.
27. The resistor according to claim 21, wherein the second conductive portion has a second slot, and the second sensing portion is located between the second slot and the resistive element.
28. The resistor according to claim 27, wherein the second slot comprises a third portion and a fourth portion which are located adjacent the second sensing portion, the third portion and the fourth portion connected with each other, the third portion extending along a third path at least partially toward the resistive element, and the fourth portion extending along a fourth path in a direction at least partially different than the third path.
29. The resistor according to claim 28, wherein the at least a portion of the second sensing portion is located adjacent a position where the third portion and the fourth portion connect.
30. The resistor according to claim 28, wherein the first conducive portion and the second conductive portion each define a main current path, wherein the third portion has at least a portion that extends generally orthogonal to a main current path of the resistor, and the fourth portion has at least a portion that extends generally perpendicular to a main current path of the resistor.
31. The resistor according to claim 27, wherein the second slot has a portion that is generally C-shaped or L-shaped.
32. The resistor according to claim 28, wherein at least one of the third portion or the fourth portion has at least a portion that is generally rounded.
33. The resistor according to claim 28, wherein at least one of the first slot or the second slot is configured to adjust a TCR value of the resistor.
34. The resistor according to claim 28, wherein the second slot is formed in an interior area of the second conductive portion, and wherein the second slot is bounded on all sides by the interior area.
35. The resistor according to claim 27, wherein the second sensing portion is located between at least a portion of the second slot and the resistive element.
36. A resistor having temperature coefficient of resistance (TCR) compensation, comprising: a resistive element; a first conductive portion connected to a side of the resistive element; a first slot formed in an interior area of the first conductive portion, the first slot having a first portion and a second portion extending in different directions, the first portion and the second portion defining a first sensing portion, and a second conductive portion connected to another side of the resistive element; and a second slot formed in an interior area of the second conductive portion, the second slot having a third portion and a fourth portion extending in different directions, the third portion and the fourth portion defining a second sensing portion; wherein the first slot and the second slot are on opposite sides of the resistive element, and wherein the at least one of the first slot or the second slot is configured to adjust a TCR value of the resistor.
37. The resistor according to claim 36, wherein at least a portion of the first slot or the second slot is at least partially rounded.
38. The resistor according to claim 36, wherein the first slot is formed in an interior area of the first conductive portion, and wherein the first slot is bounded on all sides by the interior area, and wherein the second slot is formed in an interior area of the second conductive portion, and wherein the second slot is bounded on all sides by the interior area.
39. The resistor according to claim 36, wherein the first conducive portion and the second conductive portion each define a main current path, wherein the first portion has at least a portion that extends generally orthogonal to a main current path of the resistor, the second portion has at least a portion that extends generally perpendicular to a main current path of the resistor, the third portion has at least a portion that extends generally orthogonal to a main current path of the resistor, and the fourth portion has at least a portion that extends generally perpendicular to a main current path of the resistor.
40. The resistor according to claim 36, wherein the first sensing portion and the second sensing portion are aligned along a longitudinal axis of the resistor.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0008]
[0009]
[0010]
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0014]
[0015]
[0016] Returning to
[0017] The pair of first slots 24, 26 partition off a portion of the conductive strips 12, 14 and create a four terminal device. The size and location of the pair of first slots 24, 26 generally define the dimensions of the main terminals 16, 18 and the voltage sense terminals 20, 22. The pair of first slots 24, 26 is generally located towards one edge of the resistor. In this example, the pair of first slots 24, 26 are located a distance Y measured from the upper edge of the device. The Y distance is generally selected to yield appropriately sized voltage sense terminals. For example, the Y distance can be selected to provide voltage sense terminals of sufficient width to withstand punching or machining operations during manufacture and to have sufficient strength during installation and use.
[0018] The first slots 24, 26 each have a depth generally shown as distance A in
[0019] In the following example, conductive strips 12, 14 are formed of copper. As noted above, copper has a TCR of 3900 ppm/° C. In contrast, the resistive strip 13 may have a TCR of less than 100 ppm/° C. In absence of the pair of first slots 24, 26, the resistor 10 would typically have a very high, positive TCR due to the large amount of copper disposed in the current path. It is generally desirable to minimize the TCR (i.e., a TCR having an absolute value approaching zero). A typical range for a given current sense resistor may be ±25 ppm/° C. Assume for this example that a given device has a target resistance value of 200μΩ (i.e., 0.00020). Also assume that the initial design without the pair of first slots 24, 26 yields a device with a TCR of approximately 800 ppm/° C.
[0020] The thickness of the copper conductive strips 12, 14 is selected as discussed above. The dimensions of the resistive strip 13 are selected to yield a resistance that is close to but below the target resistance value. This is done because the final resistance value will be set by a subsequent trimming operation (which will increase the resistance value of the resistor).
[0021] Aside from defining the dimensions of the voltage sense terminals, the pair of first slots 24, 26 causes the TCR at the voltage sense terminals 20, 22 to become more negative. The deeper the pair of first slots 24, 26, the more negative the TCR at the voltage sense terminals 20, 22 becomes. The pair of first slots 24, 26 does not significantly alter the TCR of the resistor itself, rather the pair of first slots 24, 26 alter the TCR observed at the voltage sense terminals 20, 22.
[0022] Typically, the relationship between the first slot depth A, and the TCR observed at the voltage sense terminals 20, 22 is determined via a prototyping process. For example, a prototype device is manufactured and then tested using conventional methods (i.e., the voltage, current and temperature is measured through a range of conditions). The depth of the first slots 24, 26 is successively increased until a negative starting TCR value is observed at the voltage sense terminals 20, 22, for example approximately −200 ppm/° C. Thus, first and second slots 24, 26 can be thought of as rough TCR calibration slots.
[0023] A negative starting TCR value is desirable at this stage because a second slot will be used to fine tune the TCR value as discussed in more detail below. Once the proper first slot depth is determined, this depth is not altered for a particular style of product (i.e., resistors having the same physical and electrical characteristics). This is advantageous since the pair of first slots 24, 26 can be inserted early in the manufacturing process using conventional punching, end milling or other machining techniques. Subsequent slotting operations can be then carried out later in the manufacturing process and can even be accomplished via laser trimming.
[0024] Turning to
[0025] Turing to
[0026]
[0027] It is understood that the first slots 24, 26 and the second slot 28 can be formed at the same time or at separate times. It is also understood that the second slot 28 can be changed “on the fly” (e.g., if TCR is measured on a resistor by resistor basis). Thus, the TCR of each resistor could be customized to a specified value. As an added advantage, the second slot 28 can be formed using laser trimming techniques which can greatly simplify the TCR adjustment process. First slots 24, 26 and second slot 28 shown in
[0028]
[0029] The resistor 100 has main terminals 116, 118 and voltage sense terminals 120, 122. In operation, the main terminals 116, 118 carry the majority of the current passing through the resistor. The main terminals are formed with a defined internal area (e.g., spaced away from the edges of the conductive strips 112, 114). A pair of first slots 124, 126 is located between the main terminals and the voltage sense terminals. In this embodiment the voltage sense terminals are formed within the defined internal area of the main terminals. This configuration is desirable for applications requiring more compact and centrally located voltage sense terminals. First slots 124, 126 are formed with two legs. First leg 123 has a length that extends generally orthogonal to the main current path as shown by “A.” Second leg 125 has a length extends generally parallel to the main current path as shown by “B.” It is understood that first slots 124 and 126 can use the same leg lengths A and B. In the alternative, first slots can have different leg lengths. The resistor 100 also has a second slot 128 having a depth C. The relationship between these slots will be discussed below.
[0030] The pair of first slots 124, 126 partition off an internal portion of the conductive strips 112, 114 and create a four terminal device. The size and location of the pair of first slots 124, 126 generally define the dimensions of the voltage sense terminals 120, 122. In this example, the sense terminals are located generally in the junction between the first and second legs 123, 125.
[0031] As discussed above, the first leg 123 has a length A and the second leg 125 has a length B.
[0032] During manufacturing, the first leg 123 can be inserted first until a rough level of TCR compensation is achieved. First legs can be formed by a variety of methods including punching or machining. The second leg 125 can be then inserted to fine tune the TCR compensation to the desired level, Second legs can be formed by a variety of methods including laser trimming. In most applications first slots 124, 126 will have the same dimensions. It is understood that first slots 124 and 126 could each be associated with other leg configurations. Once the first slots 124 and 126 are completed, second slot 128 can be formed to fine tune the resistance value. First slots 124, 126 and first and second legs 123, 125 as shown in
[0033] Based on the foregoing it is readily apparent that a variety of modifications are possible without departing from the scope of the invention. For example the first slots 24, 26, 124, 126 can have varied spacing and depths. Similarly, variations in the location of the other slots and the shape of the various terminals are possible. Those skilled in the art will recognize that a wide variety of modifications, alterations, and combinations can be made with respect to the above described embodiments without departing from the spirit and scope of the invention, and that such modifications, alterations, and combinations are to be viewed as being within the ambit of the inventive concept. It is intended in the appended claims to cover all those changes and modifications which fall within the true spirit and scope of the present invention.