Sensing Winding Configuration for Electromagnetic Inductive Encoders
The electromagnetic induction encoder optimizes signal modulating and sensing element dimensions to achieve improved signal-to-noise ratio and reduced errors, addressing the challenges of size, resolution, and contamination robustness in electromagnetic induction encoders.
Patent Information
- Application Number
- JP2021207532
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-12-31
- Filing Date
- 2021-12-21
- Publication Date
- 2025-12-05
- Estimated Expiration
- 2041-12-21
AI Technical Summary
Existing electromagnetic induction encoders face challenges in achieving a combination of small size, high resolution, accuracy, and robustness to contamination while maintaining low cost.
The electromagnetic induction encoder incorporates a scale with a periodic pattern of conductive plates or loops, a magnetic field generating coil, and sensing elements configured to optimize signal modulating and sensing element dimensions, such as average dimensions of 0.55*W1 to 0.8*W1 and 0.285*W1 to 0.315*W1, respectively, to enhance signal-to-noise ratio and reduce errors.
This configuration improves detection signal characteristics, providing better signal-to-noise ratio and reduced error components, enhancing accuracy and accuracy, effectively addressing the limitations of prior art designs.
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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to measurement instruments, and more particularly to electromagnetic induction encoders that may be utilized in precision measurement instruments. [Background technology]
[0002] Various encoder configurations may include various types of optical, capacitive, magnetic, inductive, movement and / or position transducers that measure movement between the readhead and the scale using various geometric configurations of transmitters and receivers within the readhead.
[0003] U.S. Patent No. 6,011,389 (the '389 patent) and U.S. Patent No. 6,124,708 (the '708 patent) describe electromagnetic induction transducers that can be used for high-precision applications. U.S. Patent No. 5,973,494 (the '494 patent) and U.S. Patent No. 6,002,250 (the '250 patent) describe electromagnetic induction incremental calipers and linear scales that include signal generation and processing circuitry. U.S. Patent No. 5,886,519 (the '519 patent), U.S. Patent No. 5,841,274 (the '274 patent), and U.S. Patent No. 5,894,678 (the '678 patent) describe electromagnetic induction absolute calipers and electronic tape measures that use electromagnetic induction transducers. U.S. Patent Nos. 10,520,335 (the '335 patent), 10,612,943 (the '943 patent), and 10,775,199 (the '199 patent) disclose improvements in winding configurations useful for increasing the accuracy, robustness, and ease of alignment of electromagnetic inductive encoders. All of the foregoing are incorporated herein by reference in their entireties. As described in these patents and applications, electromagnetic inductive transducers can be manufactured using printed circuit board technology and are largely insensitive to contamination. Summary of the Invention [Problem to be solved by the invention]
[0004] However, these systems may be limited in their ability to provide a particular combination of features desired by users, such as a combination of small size, high resolution, accuracy, low cost, robustness to contamination, etc. Encoder configurations that provide improved combinations of such features are desired. [Means for solving the problem]
[0005] This Summary is provided to introduce a selection of concepts in a simplified form that are further described below in the Detailed Description. This Summary is not intended to identify key features of the claimed subject matter, nor is it intended to be used as an aid in determining the scope of the claimed subject matter.
[0006] An electromagnetic induction encoder is provided that can be used to measure the relative position between two elements along a measurement axis. In various embodiments, the electromagnetic induction encoder includes a scale, a detector, and a signal processor.
[0007] The scale includes a periodic scale pattern extending along a measurement axis direction and including at least a first type of signal modulating element. The periodic scale pattern has a spatial wavelength W1. The first type of signal modulating element comprises a plurality of conductive plates or a plurality of conductive loops arranged along the measurement axis direction corresponding to the spatial wavelength W1. The detector is mounted proximate to the periodic scale pattern and configured to move along the measurement axis direction relative to the periodic scale pattern. In various embodiments, the detector includes a magnetic field generating coil and a set of sensing elements. The magnetic field generating coil is affixed to the substrate and surrounds an interior region that is aligned with the periodic scale pattern of the signal modulating elements during operation. As used herein, the term "surround" can mean completely surrounding or partially surrounding in various embodiments. The only constraint is that the magnetic field generating coil be configured to generate a magnetic flux change in the interior region in response to a coil drive signal to support operation according to the principles disclosed and claimed herein. The set of sensing elements is arranged along the measurement axis direction and affixed to the substrate. The members of the sensing element set are comprised of conductive loops or conductive loop portions defining a sensing element effective area EffASEN corresponding to the portion of the sensing element that is aligned with or overlaps the interior region surrounded by the magnetic field generating coil. The sensing element set is configured to provide a detection signal responsive to local influences on magnetic flux changes provided by adjacent signal modulating elements of the scale pattern. The signal processing unit may be operatively connected to the sensing unit to provide a coil drive signal and to determine the relative position of the sensing unit and the scale pattern based on the detection signal input from the sensing unit.
[0008] The first type signal modulating element (SME) includes an SME effective area EffRSME that is aligned with or overlaps the internal region during operation. In various embodiments, the electromagnetic inductive encoder is configured according to a combination of the following features: The SME effective area EffRSME is configured so that an average dimension DSME along the measurement axis direction is at least 0.55*W1 and at most 0.8*W1. The sensing element effective area EffASEN that is aligned with or overlaps the internal region has an effective y-axis dimension EffYSEN along a y-axis direction orthogonal to the measurement axis direction and a maximum dimension DSENmax along the measurement axis direction, and is configured so that the sensing element average dimension DSENavg=(EffASEN / EffYSEN) along the measurement axis direction is at least 0.285*W1 and at most 0.315*W1. Such a configuration provides advantageous detection signal characteristics (e.g., by providing a better signal-to-noise (S / N) ratio and / or reduced error components in the detection signal) in accordance with the principles disclosed herein.
[0009] In some embodiments, the sensing element average dimension DSENavg is at least 0.29*W1 and at most 0.31*W1.
[0010] In some embodiments, DSENmax may be at least 0.285*W1 and at most 0.5*W1. In some such embodiments, the conductive loops or conductive loop portions defining the effective area EffASEN comprise y-direction segments spaced apart from one another by a maximum dimension DSENmax, extending straight along the y-axis direction, and having a y-direction segment dimension YSEG that is at least 0.14*EffYSEN. In some such embodiments, DSENmax is nominally 0.5*W1. In other such embodiments, the y-direction segment dimension YSEG spans the entire interior area along the -y-axis direction, and the y-direction segments are spaced apart from one another by a maximum dimension DSENmax along the measurement axis, where DSENavg=DSENmax, and DSENmax is at least 0.285*W1 and at most 0.315*W1.
[0011] In some embodiments, the average dimension DSME is at least 0.6*W1, or 0.66*W1, or 0.7*W1 (e.g., a larger value of DSME may be advantageous when using a large operating gap between the detection portion and the scale and / or when the first type of signal modulating element comprises multiple conductive plates).
[0012] In various embodiments, the first type of signal modulating element can include a plurality of conductive plates. In various embodiments, the first type of signal modulating element can include a plurality of conductive loops.
[0013] In various embodiments, the second type signal modulating elements are disposed between the first type signal modulating elements along the measurement axis direction. The second type signal modulating elements are configured to have relatively less effect on magnetic flux changes compared to the first type signal modulating elements. In some embodiments, the second type signal modulating elements include regions of non-conductive material. In some such embodiments, the second type signal modulating elements include regions of a non-conductive scale substrate, and the first type signal modulating elements are affixed to the non-conductive scale substrate.
[0014] In various embodiments, the sensing element and scale may comprise a substantially planar substrate, and the sensing element may be configured to be mounted substantially parallel to the periodic scale pattern such that the nominal operating gap between the respective conductors is at least 0.075*W1, hi some such embodiments, the nominal operating gap may be at least 0.15*W1.
[0015] In some embodiments, the plurality of conductive plates or plurality of conductive loops of the first type of signal modulating element can each comprise substantially parallel plate edges or substantially parallel conductive loop segments oriented perpendicular to the measuring axis direction. These parallel plate edges or parallel conductive loop segments define the boundaries of the active areas of their associated signal modulating elements. In such embodiments, these parallel plate edges or parallel conductive loop segments are spaced apart along the measuring axis direction by an average dimension DSM.
[0016] In some embodiments, W1 is up to 2 millimeters. In some embodiments, W1 is up to 1.5 millimeters. [Brief explanation of the drawings]
[0017] [Figure 1] FIG. 1 is an exploded isometric view of a hand tool type vernier caliper that utilizes an electromagnetic induction encoder including a detector and a scale. [Figure 2] FIG. 1 is a plan view diagrammatically illustrating certain features of a representative prior art electromagnetic inductive encoder, presented as background information related to various principles disclosed herein. [Figure 3] FIG. 2 is a plan view of an embodiment of a detector and scale pattern usable in an electromagnetic inductive encoder such as that shown in FIG. 1 , showing signal modulating elements according to principles disclosed herein in combination with known “less desirable” sensing elements, along with various dimensions that may characterize their characteristics according to principles disclosed herein. [Figure 4] FIG. 4 is an enlarged isometric view of a portion of the sensing element and scale pattern shown in FIG. 3, including a qualitative representation of magnetic flux and flux coupling characteristics that may be associated with the operation of a signal modulating element in an electromagnetic inductive encoder. [Figure 5A] 4A-4C are plan views schematically illustrating certain aspects of embodiments of respective signal modulating and sensing elements similar to those shown in FIG. 3, including additional examples of certain exemplary dimensions that may characterize those features in accordance with the principles disclosed herein. [Figure 5B] 4A-4C are plan views schematically illustrating certain aspects of embodiments of respective signal modulating and sensing elements similar to those shown in FIG. 3, including additional examples of certain exemplary dimensions that may characterize those features in accordance with the principles disclosed herein. [Figure 6] FIG. 2 is a plan view illustrating certain aspects of a first exemplary embodiment of combined sensing elements and signal modulating elements constructed in accordance with principles disclosed herein for use with a detector and scale pattern in an electromagnetic inductive encoder such as that shown in FIG. 1 , along with additional examples of various dimensions by which their features may be characterized in accordance with principles disclosed herein. [Figure 7] FIG. 10 is a plan view illustrating certain aspects of a second exemplary embodiment of combined sensing elements and signal modulating elements constructed in accordance with principles disclosed herein for use with detectors and scale patterns in an electromagnetic inductive encoder, along with additional examples of various dimensions by which their features may be characterized in accordance with principles disclosed herein. [Figure 8] FIG. 10 is a plan view illustrating certain aspects of a third exemplary embodiment of a combined sensing element and signal modulating element constructed in accordance with principles disclosed herein for use with a detector and scale pattern in an electromagnetic inductive encoder, along with additional examples of various dimensions by which their features may be characterized in accordance with principles disclosed herein. DETAILED DESCRIPTION OF THE INVENTION
[0018] FIG. 1 is an exploded isometric view of a hand tool caliper 100 including a scale member 172 and a slider assembly 120. The scale member 172 may comprise a main scale of a generally rectangular cross section including a scale 170 disposed within a groove. The slider assembly 120 may include a base 140, an electronic assembly 160, and a cover 150, which are described in more detail below. The electronic assembly 160 may include a sensing portion 167 and a signal processing portion 166 disposed on a substrate 162. An elastic seal (not shown) may be compressed between the cover 150 and the substrate 162 to exclude contaminants from the electronic circuitry and connections. The scale 170, sensing portion 167, and signal processing portion 166 cooperate to provide an electromagnetic induction encoder usable to measure the relative position between two elements (e.g., between the scale member 172 and the slider assembly 120) along a measurement axis direction MA.
[0019] In various embodiments, scale 170 extends along a measurement axis direction MA (e.g., corresponding to the x-axis direction) and includes a signal modulation scale pattern 180 including signal modulating elements SME fabricated on a scale substrate (e.g., using known printed circuit fabrication methods). In various embodiments shown herein, signal modulation scale pattern 180 may alternatively be referred to as a periodic scale pattern 180, which is shown in FIG. 1 as having a spatial wavelength W1. In the illustrated embodiment, a cover layer 174 of a known type (e.g., 100 μm thick) covers scale 170 (as shown cut away in FIG. 1).
[0020] In various embodiments, the mechanical structure and operation of caliper 100 may be similar to that of certain conventional electronic calipers, such as those described in commonly assigned U.S. Pat. No. 5,901,458, U.S. Pat. No. 6,400,138, and / or U.S. Reissue Pat. No. 37490 (each of which is incorporated by reference herein in its entirety). Jaws 176 and 178 near a first end of scale member 172 and movable jaws 146 and 148 on slider assembly 120 are used to measure a dimension of an object in a known manner. The measured dimension can be displayed on a digital display 158 mounted within cover 150 of electronic assembly 160. Cover 150 may also include an on / off switch 154 and other optional control buttons, as needed, to activate circuits or elements contained in electronic assembly 160. The base 140 of the slider assembly 120 may include various known elements configured to guide the slider assembly 120 along the mating edge of the scale member 172 to ensure proper alignment for measurement while moving the slider assembly 120 relative to the scale 170.
[0021] 1 , the detection unit 167 may include a magnetic field generating coil FGC and a set of sensing elements SETSEN arranged along the measurement axis direction MA. In one specific illustrative example, the detection unit 167 may be arranged parallel to and facing the scale 170, and the front surface of the detection unit 167 facing the scale 170 may be separated from the scale 170 (and / or the scale pattern 180) by a gap of approximately 0.5 mm along the Z-axis direction. The front surface of the detection unit 167 (e.g., its constituent conductors) may be covered with an insulating coating. The structure and operation of the magnetic field generating coil FGC and the set of sensing elements SETSEN are described in more detail below.
[0022] It will be appreciated that the caliper 100 shown in FIG. 1 is one of a variety of applications that typically implement electromagnetic inductive encoders, which have evolved over the years to provide a relatively optimized combination of compact size, low-power operation (e.g., for long battery life), high-resolution and high-precision measurement, low cost, robustness to contamination, etc. Other applications that are perhaps even more challenging in terms of advanced accuracy improvements, cost-effective design, and manufacture include medium- and high-precision digital “dial” indicators (which provide, for example, accuracies on the order of 10 micrometers and 1 micrometer, respectively). Even modest improvements in any of these factors in any of these applications are highly desirable, but difficult to achieve, especially in light of the design constraints imposed to achieve commercial success in various applications. The principles disclosed and claimed herein provide improvements in many of these factors for a variety of applications.
[0023] FIG. 2 is a plan view diagrammatically illustrating certain features of a representative prior art electromagnetic inductive encoder shown in the '389 patent, presented as background information related to various principles disclosed elsewhere herein. FIG. 2 further includes reference numerals to indicate equivalent reference numerals or symbols used to indicate equivalent elements in other figures included herein. In the following abbreviated description based on the disclosure of the '389 patent, equivalent reference numerals in other figures of the present disclosure are shown in parentheses following the original reference numerals from the '389 patent. A complete description of prior art FIG. 2 can be found in the '382 patent. Therefore, only the abbreviated description, including teachings from the '382 patent relevant to the present disclosure, is included herein. To the best of the inventor's knowledge, the teachings outlined below with reference to FIG. 2 represent conventional theory and conventional design approaches known in the art and / or used in commercially available electromagnetic inductive encoders.
[0024] As disclosed in the '389 patent, a transducer such as that shown in FIG. 2 includes at least two substantially coplanar paths of wire or winding. The transmitter winding 102 (FGC) forms a large planar loop. The receiver winding 104 (SETSEN), which is substantially in the same plane as the transmitter winding 102, is arranged in one direction, as indicated by the arrows, in a zigzag or sinusoidal pattern, and then the winding is arranged in the opposite direction, as indicated by the arrows, to form loops 106 (SEN+) and 108 (SEN−), which are alternately arranged between each other. As a result, each of the alternating loops 106 (SEN+) and 108 (SEN−) of the receiver winding 104 (SETSEN) has a different winding direction compared to adjacent loops. By applying an alternating (varying) current to the transmitter winding 102 (FGC), the transmitter winding generates a time-varying magnetic field that penetrates the loops 106 (SEN+) and 108 (SEN-) of the receiver winding 104 (SETSEN).
[0025] When a scale or scale pattern 112 (180) (segments of which are outlined in FIG. 2 by alternating long-dotted and short-dotted edges) including a conductive object (e.g., conductive plates 114 (SME) (some of which are outlined using dashed lines on the scale pattern 112 in FIG. 2)) is moved near the transducer, the varying magnetic field generated by the transmitter winding 102 (FGC) induces eddy currents in the conductive object, which in turn produces a magnetic field from the conductive object that cancels the fluctuations in the transmitter magnetic field. As a result, the magnetic flux received by the receiver winding 104 (SETSEN) is changed or disturbed, causing the receiver winding to output a non-zero EMF signal (voltage) at the output terminals V+ and V− of the receiver winding 104, which changes polarity as the conductive object moves between the “+” loop 106 (SEN+) and the “−” loop 108 (SEN−).
[0026] The distance between the positions of two loops of the same polarity (e.g., between the position of loop 106 (SEN+) and the position of the next loop 106 (SEN+)) is defined as the pitch or wavelength 110 (W1) of the transducer. Therefore, it can be seen that each loop 106 (SEN+) and / or 108 (SEN−) has a length or maximum dimension of 0.5*W1 along the measurement axis direction 300. When the aforementioned conductive object (e.g., conductive plate 114 (SME)) is proximate to the receiver winding 104 (SETSEN) and continuously varies in position along the measurement axis 300 (MA), the AC amplitude of the signal output from the receiver winding (SETSEN) continuously and periodically varies with the wavelength 110 (W1) due to the periodic changes in the loops 106 (SEN) and 108 (SEN) and the localized disturbances in the transmit magnetic field caused by the conductive object (e.g., conductive plate 114 (SME)).
[0027] The '389 patent emphasizes that when the conductive object (e.g., the conductive plate 114 (SME)) is much smaller or larger than the loops 106 and / or 108 (SEN+, SEN−), the amplitude of the signal output is weak and it is difficult to obtain high accuracy. When the conductive object (e.g., the conductive plate 114 (SME)) has a length equal to approximately half the wavelength 110 (W1) (i.e., when the object can be positioned exactly in line with the loops 106 or 108 (SEN+ or SEN−), the signal output has a large amplitude and is therefore most sensitive to the position of the conductive object. Therefore, the present invention (described in the '389 patent) preferably uses a conductive object (e.g., the conductive plate 114 (SME)) having a length (along the x-axis direction) equal to half the wavelength 110 (W1).
[0028] The transmitter winding 102 and receiver winding 104 (SETSEN) shown in FIG. 2 and described above are an example of a prior art embodiment of an element designated herein as a detector (e.g., detector 167 shown in FIG. 1), and the scale or scale pattern 112 (180) is an example of a prior art embodiment of an element designated herein as a scale pattern (e.g., scale pattern 180 shown in FIG. 1).
[0029] Figure 3 is a plan view of an embodiment of a sensing portion 367 and scale pattern 380 usable in an electromagnetic induction encoder such as that shown in Figure 1, showing a signal modulating element SME according to principles disclosed herein combined with a known, conventional, "less desirable" sensing element SEN for clarity of explanation. Figure 3 also introduces various dimensions that may characterize the features of the signal modulating element SME and sensing element SEN according to principles disclosed herein. A more preferred sensing element SEN according to principles disclosed herein is described in further detail below with reference to Figures 6, 7, and 8.
[0030] The various features of detector 367 and scale pattern 380 are configured to satisfy various design principles disclosed and claimed herein, particularly with respect to signal modulating element SME. It is understood that some numbered components 3XX in Figure 3 may correspond to and / or provide similar operation or functionality to similarly numbered components 1XX in Figures 1 and / or 2 (e.g., detector 367 provides similar operation or functionality as detector 167) and may be understood similarly unless otherwise indicated.
[0031] FIG. 3 can be considered partially representational and partially schematic. Enlarged portions of the sensing portion 367 and scale pattern 380 are shown at the bottom of FIG. 3. In FIG. 3, various elements described below are represented by their shapes or outlines and are shown superimposed on one another to emphasize certain geometric relationships. It will be understood that various elements may reside on different fabrication layers located in different planes along the z-axis direction, as needed, to provide various operating gaps and / or insulating layers, as will be apparent to those skilled in the art based on the following description and the cited references. Throughout the figures of this disclosure, the illustrated x-axis, y-axis, and / or z-axis dimensions of one or more elements may be exaggerated for clarity, but it will be understood that they are not intended to contradict the various dimensional design principles and relationships disclosed and claimed herein.
[0032] The depicted portion of the scale pattern 380 includes a first type of signal modulating element SME, shown with dotted fill and dashed outline. The periodic scale pattern 380 has a spatial wavelength W1. In this embodiment, the first type of signal modulating element SME comprises a plurality of conductive plates (e.g., formed by regions fabricated on a printed circuit board or by raised regions extending from a conductive substrate). However, in other embodiments, they may include a plurality of conductive loops (e.g., formed by traces on a printed circuit board), as described in more detail below. In either case, they are arranged along a measuring axis direction MA, which corresponds to the spatial wavelength W1. The scale pattern 380 is typically implemented on a scale (e.g., the scale 170 shown in FIG. 1). In the example shown in FIG. 3, the y-direction ends of most of the signal modulating elements SME are hidden beneath first and second extensions EP1 and EP2 of the field generating coil FGC (e.g., as described in the '335, '943, and '199 patents). It will be appreciated that, as shown in Figure 1, the scale pattern 380 moves relative to the detector portion 367 during operation.
[0033] 3, the scale pattern 380 has a nominal scale pattern width dimension NSPWD along the y-axis direction and comprises generally rectangular signal modulating elements SME arranged periodically (e.g., corresponding to the x-axis direction) along the measurement axis direction MA. However, more generally, the scale pattern 380 can include a variety of alternative spatial modulation patterns including alternative signal modulating element configurations, provided that the pattern has spatial characteristics that vary as a function of position along the x-axis direction to provide position-dependent detection signals (also referred to in some embodiments as detection signal components) arising within sensing elements SEN (e.g., SEN14) of sensing element sets SETSEN in the detection portion 367.
[0034] In various embodiments, the sensing portion 367 is mounted proximate the scale pattern 380 and configured to move along the measurement axis direction MA relative to the scale pattern 380. As will be appreciated by those skilled in the art, the sensing portion includes a magnetic field generating coil FGC and a set of sensing elements SETSEN, which can assume a variety of alternative configurations used in various embodiments in combination with various corresponding signal processing schemes. FIG. 3 shows a single representative set of sensing elements SEN1-SEN24, which in this embodiment comprise sensing loop elements (alternatively referred to as sensing coil elements or sensing winding elements) connected in series. In this embodiment, adjacent loop elements are connected by a configuration of conductors on various layers of a PCB (e.g., connected by feedthroughs) and are connected to have opposite winding polarities according to known methods (e.g., as shown in FIG. 4). That is, if a first loop responds to a change in the magnetic field with a sense signal contribution of positive polarity, the adjacent loop responds with a sense signal contribution of negative polarity. A loop having a sense signal contribution of positive polarity may be referred to herein as a SEN+ sensing element, and a loop having a sense signal contribution of negative polarity may be referred to as a SEN− sensing element in various contexts herein. In this embodiment, the sensing elements are connected in series so that their detection signals or signal contributions are added, and the "added" detection signals are output to a signal processing unit (not shown) on detection signal output connections SDS1 and SDS2.
[0035] While FIG. 3 shows a single set of sensing elements to avoid visual confusion, those skilled in the art will appreciate that in various embodiments it may be advantageous to configure the detector to provide one or more additional sets of sensing elements (e.g., similar to SETSEN) at different spatial phase locations (e.g., to provide orthogonal signals). However, it should be understood that the sensing element configurations described herein are exemplary only and not limiting. By way of example, individual sensing element loops may, in some embodiments, output individual signals to corresponding signal processors, as disclosed, for example, in U.S. Pat. No. 9,958,294. More generally, various known sensing element configurations may be used in various embodiments in combination with the principles disclosed and claimed herein for use in combination with various known scale patterns and signal processing schemes.
[0036] The various members of the set of sensing elements SETSEN and the set of field generating coils FGC may be fixed on a substrate (e.g., substrate 162 of FIG. 1 ). The field generating coils FGC can be described as surrounding an interior region INTA having a nominal coil area length dimension NCALD along the x-axis direction and a nominal coil area width dimension of approximately YSEP along the y-axis direction. The interior region INTA is aligned with the periodic scale pattern 380 of the signal modulating element SME during operation, approximately as shown. In the illustrated embodiment, the field generating coils FGC include a single winding surrounding the interior region INTA. However, in various other embodiments, the field generating coils FGC can include multiple turns and / or be serpentine, operatively surrounding (e.g., operatively partially surrounding) the interior region INTA aligned with the scale pattern 380, as well as operatively surrounding (e.g., operatively partially surrounding) other interior regions aligned with scale tracks containing other scale patterns, as disclosed in the references. In any event, in operation, the field generating coil FGC generates magnetic flux changes in the interior region INTA in response to a coil drive signal. In the illustrated embodiment, a first connection portion CP1 and a second connection portion CP2 can be used to couple a coil drive signal from a signal processor (e.g., signal processor 166 of FIG. 1) to the field generating coil FGC.
[0037] The sensing element set SETSEN (e.g., a set of sensing elements SEN1-SEN24) is arranged along an x-axis direction (e.g., corresponding to the measurement axis direction MA) and fixed on a substrate (e.g., substrate 162 in FIG. 1). As shown in FIG. 3, the members of the sensing element set are composed of conductive loops or conductive loop portions (e.g., SEN1-SEN24) that define a sensing element effective area EffASEN corresponding to the portion of the sensing element that is aligned with or overlaps the internal region INTA surrounded by the field generating coil FGC (i.e., the portion of the sensing element that is aligned with or overlaps the dimension YSEP of INTA). In various embodiments, the sensing element effective area EffASEN that is aligned with or overlaps the internal region INTA can be described as having an effective y-axis dimension EffYSEN along the y-axis direction, which is orthogonal to the measurement axis direction, and a maximum dimension DsENmax along the measurement axis direction (x-axis direction). In the particular embodiment shown in FIG. 3, the effective y-axis dimension EffYSEN is equal to YSEP. This is because each of the sensing elements SEN has a maximum sensing element dimension YSENMAX along the y-axis direction that exceeds YSEP, and therefore its effective area EffASEN spans the entire dimension YSEP. The maximum dimension DSENmax in the measuring axis direction is nominally 0.5*W1. However, these features are specific to this embodiment and are not limiting, and may be optional (or undesirable) in various embodiments, as described in more detail below with reference to Figures 5B, 6, 7, and 8.
[0038] It is useful to further characterize the detector element effective area, EffASEN, by the average detector element dimension along the measurement axis, DSENavg=(EffASEN / EffYSEN). In the particular embodiment shown in Figure 3, the detector element effective area, EffASEN, has parallel sides perpendicular to the x-axis direction, so DSENavg is equal to DSENmax. However, this need not be the case in all embodiments, as will be explained in more detail below with reference to Figures 5B, 6, 7, and 8.
[0039] The sensing elements of the sensing element set SETSEN are configured to provide detection signals responsive to local influences on magnetic flux changes provided by adjacent signal modulating elements SME (e.g., one or more signal modulating elements SME) of the scale pattern 380. A signal processing unit (e.g., signal processing unit 166 of FIG. 1 ) may be configured to determine the position of the sensing element set SETSEN relative to the scale pattern 380 based on the detection signals input from the detection unit 367. In general, the field generating coil FGC and the sensing element set SETSEN, etc., may operate according to known principles (e.g., electromagnetic induction encoders) as described in the references.
[0040] In various embodiments, the field generating coil FGC and the sensing element SEN are insulated from one another (e.g., by being disposed on different layers of a printed circuit board). In one such embodiment, the maximum y-axis sensing element dimension YSENmax of the sensing element SEN is advantageously greater than the nominal coil area width dimension YSEP and extends beyond the inner edge of the extension EP1 or EP2 by an amount defined as the overlap dimension. Furthermore, the field generating coil FGC may be advantageously configured such that the trace widths of the extensions EP1 and EP2 along the y-axis direction are greater than the corresponding overlap dimensions. In various embodiments, the extensions EP1 and EP2 may be fabricated on a first layer of the printed circuit board, and the sensing element SEN may include conductive loops fabricated in one or more layers of the printed circuit board, including layers different from the first layer, at least near the overlap dimension. However, such embodiments are illustrative and not limiting, as further described below.
[0041] As previously indicated, in some embodiments, the magnetic field generating coil FGC can include one or more conductive traces fabricated on a printed circuit board, and the sensing element SEN of the sensing element set SETSEN can include a magnetic flux sensing loop or loop portion formed by the conductive traces fabricated on the printed circuit board. As discussed above with respect to FIG. 1 , in various embodiments, the sensing unit 367 can be included in various types of measuring instruments (e.g., calipers, micrometers, gauges, linear scales, etc.). For example, the sensing unit 367 can be fixed to a sliding member, and the scale pattern 380 can be fixed to a handle or main scale whose measurement axis coincides with the x-axis direction. In such a configuration, the sliding member is movably mounted on a beam or girder member and can move along the measurement axis MA in a plane extending along the x-axis and y-axis directions, with the z-axis direction perpendicular to the plane.
[0042] The enlarged cross-section of the sensing portion 367 and scale pattern 380 shown at the bottom of FIG. 3 illustrates three exemplary sensing elements SEN14, SEN15, and SEN16 of the sensing element set SETSEN, bounded by portions of the magnetic field generating coil FGC, and two exemplary signal modulating elements SME. In this embodiment, the sensing elements may be formed by traces fabricated on the first and second layers of a circuit board with a layer of insulation between them. The "first layer" traces are shown as solid lines, and the "second layer" traces are shown as dashed lines. Small arrows indicate the direction of current induced in the traces by the changing magnetic field emanating from the magnetic field generating coil FGC. It can be seen that sensing element SEN14 can be characterized as a "SEN+" polarity loop due to its associated current direction, and adjacent sensing element SEN15 can be characterized as a "SEN-" polarity loop due to its associated "opposite polarity" current direction. The next adjacent sensing element SEN16 may again be characterized as a "SEN+" polarity loop, and so on.
[0043] DSME is the average dimension of the "effective area" EffRSME of the (first type) signal modulating element SME along the measurement axis direction MA. The effective area EffRSME of the signal modulating element SME here aligns with or overlaps with the y-axis dimension of the interior region INTA. The effective area EffRSME produces the primary signal modulating effect in the sensing element SEN. In the example shown in FIG. 3, it can be seen that this is the portion of the signal modulating element SME that coincides with the span of the dimension YSEP along the y-axis direction. In various embodiments, the average dimension DSME of the signal modulating element SME can be considered to be the area of the effective area EffRSME of the signal modulating element SME divided by the y-axis dimension of the effective area EffRSME. Further examples of dimensions DSME for other configurations of the signal modulating element SME are shown in FIGS. 5A, 5B, 6, 7, and 8.
[0044] As outlined above with reference to FIG. 2, it is conventional for sensing elements, such as sensing element SEN, to have a maximum dimension D SEN max along the measuring axis that is 0.5*W l. Such dimensions may be advantageous in various embodiments. Furthermore, as previously described with reference to FIG. 2, it is also conventional for signal modulating elements, such as signal modulating element SME, to have an average width dimension D S ME that is 0.5*W l. Contrary to the conventional prior art design approach described above, the present inventors have discovered that certain performance characteristics may be improved when signal modulating element S ME is configured to have an average width dimension D S ME that is significantly greater than 0.5*W l, as shown in FIG. 3. For example, in some embodiments, it may be advantageous for D S ME to be at least 0.55*W l and at most 0.8*D SEN. In some such embodiments, it may be advantageous for D S ME to be at least 0.66*W l, or 0.7*W l or greater, as will be explained below with reference to FIG. 4.
[0045] Furthermore, the inventors have further discovered that, to mitigate certain errors that would otherwise appear, for highest accuracy in various applications, it is most desirable to use unconventional sensing elements SEN in combination with unconventional sensing elements SEN configured such that their sensing element average dimension DSENavg is in a range significantly less than 0.5*W1. For example, in various embodiments, it is desirable for the sensing element average dimension DSENavg to be at least 0.285*W1 and at most 0.315*W1. This aspect of the invention is described in more detail below with reference to FIGS. 6, 7, and 8. This combination of unconventional features provides advantageous detection signal characteristics (e.g., better signal-to-noise (S / N) ratio and / or reduced error components in the detection signal) compared to configurations according to prior art design principles.
[0046] Figure 4 is an enlarged isometric view of a portion of the sensing portion 367 and scale pattern 380 shown in Figure 3, including a qualitative representation of magnetic flux and flux coupling characteristics that may be associated with the operation of the signal modulating element SME in such an electromagnetic inductive encoder. Figure 4 illustrates various considerations related to why, in various embodiments, it may be advantageous for the signal modulating element SME to be configured to have an average width dimension DSM that is at least 0.55*W1 and at most 0.8*W1.
[0047] FIG. 4 illustrates the response of the signal modulation element SME to the generated changing magnetic field G M F provided by the field generating coil FGC, as outlined above. As shown in FIG. 4, a coil drive signal current I gen applied to the field generating coil FGC generates a changing magnetic field G M F that inductively couples to the signal modulation element SME. The signal modulation element SME is shown schematically in FIG. 4 as a conductive loop, and in response to the coupled changing magnetic field G M F, an induced current I ind is generated within the signal modulation element SME, which generates an induced magnetic field represented by magnetic flux lines (magnetic flux lines including arrows in FIG. 4). The illustrated magnetic flux lines represent a central magnetic flux C F represented by central magnetic flux line C F L and peripheral magnetic flux M F represented by closed peripheral magnetic flux lines M F L1-M F L3 shown surrounding the conductive loop of the signal modulation element SME.
[0048] Generally speaking, it will be understood that the sensing elements of sensing element set SETSEN generate signals (or signal contributions) responsive to induced magnetic flux changes, as outlined above. In particular, the generated signal generates a signal contribution or signal component, represented as a current Isense, in sensing element SEN14 of FIG. 4 in response to the amount of magnetic flux effectively coupled through its inner loop area. As shown in FIG. 4 , in various implementations, sensing portion 367 and scale pattern 380 may be substantially planar (e.g., they may include or be formed on a substantially planar substrate), and sensing portion 367 may be configured to be mounted substantially parallel to periodic scale pattern 380 and with a nominal operating gap GapZ between their conductors. For example, in various embodiments, nominal operating gap GapZ may be at least 0.075*W1 to facilitate practical assembly and alignment tolerances. In some such embodiments, the nominal operating gap may be at least 0.15*W1. As shown in FIG. 4, the central magnetic flux CF is generally effectively coupled through the sensing element SEN14 over a practical range of the operating gap. However, due to the operating gap, at least a portion of the peripheral magnetic flux MF may not be effectively coupled through the sensing element SEN14. For example, as exaggerated in FIG. 4, at a relatively large dimension of the operating gap GapZ, none of the peripheral magnetic flux lines MFL1-MFL3 are coupled through the sensing element SEN14 and do not contribute to the current Isense. As a result, in the configuration qualitatively illustrated in FIG. 4, the effective width Weff (shown by the dashed bar in FIG. 4) of the signal modulation element SME sensed by the sensing element SEN14 corresponds only to the coupled central magnetic flux line CFL. As can be seen from FIG. 4, even if the operating gap GapZ is reduced to, for example, couple the peripheral magnetic flux line MFL3 through the sensing element SEN14, the effective width Weff remains smaller than the average dimension DSME of the signal modulation element SME.
[0049] 2, it may be advantageous for a signal modulating element SME to have a mean dimension DSM that is greater than a desired effective width W to generate a desired maximum signal variation and / or a desired signal profile versus displacement as it passes through that sensing element S along the measurement axis. For example, in some embodiments, it may be desirable for the dimension W to be approximately 0.5*W, which, according to the foregoing discussion, means that when using an actual operating gap GapZ, it may be desirable for the mean dimension DSM of the signal modulating element SME to be at least 0.66*W, or 0.7*W, or more in some such embodiments.
[0050] It should be understood that if the signal modulating element SME is a conductive plate rather than a conductive loop as shown in FIG. 4, a distribution of “concentric” eddy currents may be generated in such a conductive plate in response to the generated changing magnetic field GMF. These eddy currents are operationally comparable to the induced currents Iind shown in FIG. 4. If a conductive plate has the same average dimension Dsme as the conductive loop SME shown in FIG. 4, the distributed “concentric” pattern of the eddy currents will result in their “equivalent current location” being somewhere inside the edge of the conductive plate, resulting in an even smaller effective width Weff than that associated with a similarly sized conductive loop. Consequently, in addition to providing a relatively large value for the average dimension Dsme when using a relatively large operating gap between the sensing portion 367 and the scale pattern 380, it may be particularly desirable for the conductive plate-type signal modulating element SME to have an average dimension Dsme toward the larger end of the desirable range outlined above. For example, the inventors have found that an average dimension Dsme between 0.7*W1 and 0.8*W1 is advantageous in some such embodiments.
[0051] As a further consideration, with respect to a desired signal profile versus displacement, it should be understood that undesired spatial harmonics present in the signal profile generally depend on the shape of the signal modulating element SME and its effective width Weff, as well as the shape and width of the sensing element SEN and the operating gap therebetween. For example, in the detector and scale configuration described above, even spatial harmonics are largely eliminated from the detected signal when the effective width Weff is approximately 0.5*W1. However, odd spatial harmonics, such as those corresponding to 0.33*W1, may remain. U.S. Patent Application Serial No. 16 / 021,528, published as US2020 / 0003581, suggests that configuring the signal modulating element SME to provide an effective width Weff of 0.66*W1 tends to suppress odd spatial harmonics corresponding to 0.33*W1. The inventor has also recently learned that the '708 patent suggests that configuring a signal-modulating element to have an effective width of 5 / 6*W1 (approximately 0.83*W1), regardless of whether or not it has a 1 / 6*W1 slot in its center, tends to suppress odd spatial harmonics corresponding to 0.33*W1. Note that this does not take into account the effective width Weff discussed above, and therefore may not operate as described in the '708 patent. In any event, these configurations did not actually achieve the expected or desired level of spatial filtering. Given the high accuracy already achieved by state-of-the-art electromagnetic inductive encoders known to date, these configurations did not provide the expected or predicted level of spatial filtering and did not provide a desirable improvement or advancement over the state-of-the-art in this regard.
[0052] As disclosed herein, the inventors have discovered certain configurations of sensing elements SEN that can be used in combination with the configuration of signal modulating elements SME described above to ameliorate the spatial filtering shortcomings noted above. Various desirable configurations of sensing elements SEN are described in further detail below with reference to FIGS. 6, 7, and 8. However, prior to that, the definitions or interpretations of certain dimensions and terms used in that description will be clarified with reference to the examples shown in FIGS. 5A and 5B. FIGS. 5A and 5B are plan views schematically illustrating certain aspects of embodiments of signal modulating elements and sensing elements, respectively, similar to those shown in FIG. 3, including additional examples of certain exemplary dimensions that can characterize those features in accordance with the principles disclosed herein.
[0053] 5A and 5B are schematic plan views of respective electromagnetic inductive encoder embodiments showing further examples of the dimensions and terms DSENmax, DSENavg, DSME, EffRSME, EffASEN, and EffYSEN outlined above with reference to FIG. 3. Dimension YSEG is also introduced and explained. It will be understood that several numbered components 5XX in FIGS. 5A and 5B may correspond to and / or provide similar operations or functions as similarly numbered components 3XX in FIG. 3 and may be understood similarly unless otherwise indicated.
[0054] 5A and 5B illustrate the spatial wavelength W1 and the aforementioned dimensions and terminology as they apply to the non-linear boundary profiles of the signal modulating element SME of FIG. 5A and the sensing element of FIG. 5B. The effective area EffRSME of the previously illustrated signal modulating element SME lies within the dashed boundary of the region or area of the signal modulating element SME and is aligned with or overlaps with the internal region INTA, indicated by the dotted fill. DSME is the average dimension of the "effective area" EffRSME of the signal modulating element SME along the measurement axis direction MA. In various embodiments, the average dimension DSME can be considered to be the area of the effective area EffRSME of the signal modulating element SME divided by the y-axis dimension of that effective area EffRSME. For convenience and consistency of definition, for a conductive plate-type signal modulating element SME, the relevant dimension may correspond to the edge of the SME, and for a conductive loop-type signal modulating element SME, the relevant dimension may correspond to the centerline of the conductor. 5A and 5B, the internal region INTA of the magnetic field generating coil FGC has a dimension YSEP smaller than the negative y-axis dimension of the signal modulation element SME and is contained therein, so that the y-axis dimension of its effective region EffRSME is equal to the dimension YSEP. However, this need not be the case in all embodiments (e.g., as shown in FIG. 7), and the previous definition of the effective region EffRSME is more general, including cases where the y-axis dimension of the effective region EffRSME is smaller than the dimension YSEP.
[0055] The effective area EffASEN of the sensing element SEN, as outlined above, is within the solid boundary of the sensing element SEN and is aligned with or overlaps with the interior area INTA, as indicated by the hatched area. As outlined above, DSENmax is the maximum sensing element width dimension along the x-axis or measurement axis direction MA of the effective area EffASEN of the sensing element SEN. DSENavg is the average sensing element width dimension, defined as DSENavg = EffASEN / EffYSEN. As previously mentioned, EffYSEN is the dimension along the y-axis of the effective area EffASEN of the sensing element. In the specific embodiment shown in FIGS. 5A and 5B, the effective y-axis dimension EffYSEN is equal to YSEP. This is because each sensing element SEN has a maximum sensing element dimension along the y-axis that exceeds YSEP, and therefore its effective area EffASEN spans the entire dimension YSEP. In the particular embodiment shown in FIG. 5A, the effective area EffASEN has parallel sides perpendicular to the x-axis and a dimension YSEG that spans YSEP, so DSENavg is equal to DSENmax. YSEG is conveniently defined as the y-dimension of the conductor segments defining the sensing element SEN that are spaced apart by the largest dimension DSENmax and extend linearly along the y-axis. In the particular embodiment shown in FIG. 5B, the effective area EffASEN has a dimension DSENmax at its center along the y-axis, but its sides are tapered or curved toward the top and bottom of the effective area EffASEN. Therefore, as shown, DSENavg is somewhat less than DSENmax. For convenience and consistency of definition, when determining DSENavg=EffASEN / EffYSEN for the sensing element SEN, the relevant dimension may be taken to correspond to the centerline of the defining conductor. In the embodiment shown in FIGS. 5A and 5B, DSENmax is nominally 0.5*W1. However, this value is not limiting (for example, as shown in FIG. 8 below). The dimensions DSENavg of the sensing element SEN configuration shown in FIGS. 5A and 5B are not preferred according to the principles outlined below with reference to FIGS. 6, 7, and 8, and are presented only for clarity in defining or quantifying DSENavg.5B is the center-to-center spacing of the sensing elements SEN along the x-axis. In various embodiments, it may be advantageous for CCSEN to be 0.5*W1, regardless of the shape or dimension DSENavg of the sensing elements SEN.
[0056] 5A and 5B also show a dimension DSPC equal to W1 minus DSME. Describing the first method, the dimension DSPC can be described as corresponding to the "non-signal modulating space" between the first-type signal modulating elements SME. However, describing the second method more generally, which is applicable to various other embodiments of the periodic scale pattern, the dimension DSPC can be described as corresponding to the second-type signal modulating elements, which are disposed between the first-type signal modulating elements SME along the measurement axis. The second-type signal modulating elements are configured to be relatively less sensitive to magnetic flux changes than the first-type signal modulating elements SME. For example, in some embodiments, the second-type signal modulating elements include regions of non-conductive material. In some such embodiments, the second-type signal modulating elements include regions of a non-conductive scale substrate, and the first-type signal modulating elements SME include conductors fabricated and / or affixed to the non-conductive scale substrate. As another example, in some embodiments, the second type signal modulating element may include a "deeper recessed" area of conductive material used to form the scale pattern, and the first type signal modulating element SME may include a "non-recessed" area of conductive material.
[0057] Returning to the discussion of filtering the third-order spatial harmonic error component (with a period of 0.33*W1) from the detector element signal, as mentioned above, the inventors have discovered a specific configuration of detector elements SEN that can be used in combination with the signal modulation element SME configuration described above to overcome the drawbacks of spatial filtering. Various prior art techniques are known for filtering the third-order spatial harmonic error component from the detector element signal. One approach is to configure the detector element to have a sinusoidal waveform that theoretically contains only the fundamental spatial frequency corresponding to W1. However, due to various practical considerations, manufacturing limitations, and variations in assembly and gap, the third-order spatial harmonic error component cannot be completely suppressed. Another approach is to arrange a set of detector elements SETSEN at spatial phases separated by 0.33*W1 and process the resulting signal to remove the third-order spatial harmonic error component. While this method is relatively effective, in many applications, for practical reasons it is desirable to provide orthogonal signals (i.e., signals with spatial phases 0.25*W1 apart) from the set of sensing elements SETSEN, and therefore it is not practical to arrange a set of sensing elements SETSEN with spatial phases 0.33*W1 apart.
[0058] To address the problems and deficiencies inherent in the approaches outlined above, the present inventors have discovered that a configuration of sensing elements SEN providing a particularly advantageous range of sensing element average dimensions DSENavg can be used in combination with the configuration of signal modulation elements SME outlined above to substantially filter and / or suppress third spatial harmonic error components. Surprisingly, the particularly advantageous range does not include 0.33*W1, which is clearly expected based on theoretical considerations. Rather, as disclosed herein, sensing elements SEN configured to provide a sensing element average dimension DSENavg of at least 0.285*W1 and at most 0.315*W1 for a practical range of wavelengths W1 and operating gaps are particularly advantageous when used in combination with signal modulation elements SMEs having average dimensions DSME of at least 0.55*W1 and at most 0.8*W1. Various desirable configurations of such sensing elements SEN are described in further detail below with reference to FIGS. 6, 7, and 8.
[0059] FIG. 6 is a plan view illustrating certain aspects of a first exemplary embodiment of a sensing element SEN and a signal modulating element SME configured and combined in accordance with the principles described above for use with a sensing portion 667 and a scale pattern 680 in an electromagnetic induction encoder such as that shown in FIG. 1, along with additional examples of various dimensions that may characterize their features in accordance with the principles described above. It will be understood that some numbered and / or named components may provide similar operation as similarly numbered or named components in FIGS. 5A and 5B and may be understood similarly unless otherwise indicated. Therefore, the following description will highlight only certain differences between the sensing element SEN and the signal modulating element SME. The embodiment shown in FIG. 6 includes a signal modulating element SME similar to those shown in FIGS. 5A and 5B and has an effective area EffRSME with an average dimension DME that is (in this particular embodiment) approximately 0.75*Wl.
[0060] The sensing element SEN includes a conductor (shown as a solid line) on a first processing layer and a conductor (shown as a dashed line) on a second processing layer, which are connected via a feedthrough FT according to known methods (e.g., methods described in the cited documents). The field generating coil FGC is fabricated on a third processing layer in this embodiment to isolate it from the feedthrough FT. As shown in FIG. 6 , the conductor of the sensing element SEN includes a y-axis segment having a short y-axis dimension YSEG, spaced apart along the x-axis by DSENmax=0.5*W1, and a segment tapering from the y-axis segment toward the feedthrough FT. The associated trapezoidal effective area EffASEN (shown as a solid hatched area in FIG. 6 ) has a y-axis dimension EffYSEN, which in this embodiment is equal to YSEP. In various embodiments, the sensing element SEN is configured such that DSENavg=EffASEN / EffYSEN is at least 0.285*W1 and at most 0.315*W1. In some embodiments, it may be desirable for DSENavg to be at least 0.29*W1 and at most 0.31*W1. For a particular choice of DSENmax, various values of DSENavg can be provided by appropriately dimensioning the YSEG and positioning the feedthroughs and adjacent conductors. In some such embodiments, the Y-axis dimension YSEG should be at least 0.15*W1. In the particular embodiment shown, DSENmax is nominally 0.5*W1, but it is possible to configure the conductors in the various layers to include overlapping x-axis segments between adjacent YSEG dimensions and adjacent sensing elements SEN, if desired, so that DSENmax is less than 0.5*W1.
[0061] FIG. 7 is a plan view illustrating certain aspects of a second exemplary embodiment of a sensing element SEN and a signal modulating element SME configured and combined in accordance with the principles described above for use with a sensing portion 767 and scale pattern 680 in an electromagnetic induction encoder such as that shown in FIG. 1, along with additional examples of various dimensions that may characterize their features in accordance with the principles described above. It will be understood that some numbered and / or named components may provide similar operation as similarly numbered or named components in FIG. 6 (and FIGS. 5A and 5B) and may be understood similarly unless otherwise indicated. Therefore, the following description will highlight only certain differences between the sensing element SEN and the signal modulating element SME. The embodiment shown in FIG. 7 includes a signal modulating element SME similar to that shown in FIG. 6 and has an effective area EffRSME with an average dimension DME that is (in this particular embodiment) approximately 0.75*Wl.
[0062] The sensing element SEN is similar to that shown in FIG. 6 and includes a conductor on a first processing layer (shown by a solid line) and a conductor on a second processing layer (shown by a dashed line), which are connected via a feedthrough FT according to known methods (e.g., methods described in the cited documents). However, the feedthrough FT is located within the interior region INTA. This allows the field generating coil FGC to be fabricated on the first and / or third processing layers, which has the advantage of reducing the manufacturing cost of the sensing unit 767. The drawback is that the effective area EffASEN of the sensing element SEN is smaller than that of the embodiment shown in FIG. 6, potentially resulting in reduced signal strength. However, this may be a desirable trade-off depending on the application. The effective area EffASEN (shown by a hatched fill in FIG. 7) has a y-axis dimension EffYSEN, which is smaller than YSEP in this embodiment. In various embodiments, the sensing element SEN is configured such that DSENavg=EffASEN / EffYSEN is at least 0.285*W1 and at most 0.315*W1. In some embodiments, it may be desirable for DSENavg to be at least 0.29*W1 and at most 0.31*W1. For a particular selection of DSENmax, various values of DSENavg can be provided by appropriately dimensioning the YSEG and positioning the feedthroughs and adjacent conductors. In the particular embodiment shown, DSENmax is nominally 0.5*W1, but if desired, conductors on various layers can be configured to include overlapping x-axis segments between adjacent and adjacent sensing elements SEN that are dimensioned YSEG such that DSENmax is less than 0.5*W1. In similarly shaped embodiments, if DSENmax is 0.5*W1 or less, the YSEG may need to be dimensioned to at least 0.14*EffYSEN or greater to ensure DSENavg is 0.285*W1 or greater.
[0063] FIG. 8 is a plan view illustrating certain aspects of a third exemplary embodiment of a sensing element SEN and a signal modulating element SME configured and combined in accordance with the principles described above for use with a sensing portion 867 and scale pattern 680 in an electromagnetic inductive encoder such as that shown in FIG. 1, along with additional examples of various dimensions that may characterize their features in accordance with the principles described above. It will be understood that some numbered and / or named components may provide similar operation as similarly numbered or named components in FIG. 6 (and FIGS. 5A and 5B) and may be understood similarly unless otherwise indicated. Therefore, the following description will highlight only certain differences between the sensing element SEN and the signal modulating element SME. The embodiment shown in FIG. 8 includes a signal modulating element SME similar to that shown in FIG. 6 and has an effective area EffRSME with an average dimension DME that is (in this particular embodiment) approximately 0.75*Wl.
[0064] The sensing element SEN is similar to that shown in FIG. 6 and includes a conductor on a first processing layer (shown as a solid line) and a conductor on a second processing layer (shown as a dashed line), which are connected via a feedthrough FT according to known methods (e.g., methods described in the cited documents). The field generating coil FGC is fabricated in this embodiment on a third processing layer to insulate it from the feedthrough FT. As shown in FIG. 6, the conductor of the sensing element SEN includes y-axis segments having a long y-axis dimension YSEG (longer than and transverse to the dimension YSEP of the interior region INTA) and spaced apart along the x-axis by DSENmax, and a segment connecting these segments to the feedthrough FT. The associated rectangular effective area EffASEN (shown as a solid hatched area in FIG. 8) has a y-axis dimension EffYSEN, which in this embodiment is equal to YSEP. In this embodiment, DSENavg = DSENmax. In various embodiments, the sensing element SEN is configured such that DSENmax and DSENavg are at least 0.285*W1 and at most 0.315*W1. In some embodiments, it may be desirable for DSENmax and DSENavg to be at least 0.29*W1 and at most 0.31*W1. The embodiment shown in Figure 8 may be less sensitive to signal changes that may occur due to various misalignment errors.
[0065] With respect to the advantageous range of the dimension DSME of the signal modulating element SME described above, in many practical applications using the largest practical gap allowed by signal strength considerations, the most advantageous value of DSME may be at least 0.66*W1, or 0.7*W1, or even greater. For example, in various embodiments, a value of DSME of 0.75*W1 has been found to be particularly advantageous. However, as suggested in the preceding discussion, this may depend to some extent on the particular wavelength W1, the particular operating gap and operating frequency, and the particular shape and structure of the signal modulating element SME.
[0066] With respect to the advantageous range of the dimension DSENavg of the sensing element SEN mentioned above, for many practical applications using the largest practical gap allowed by signal strength considerations and the most advantageous value of DSME outlined above (e.g., DSME=0.75*W1), the most advantageous combination of DSENavg may be in the range of 0.29*W1 to 0.31*W1, with DSENavg=0.30*W1 having been found to be particularly advantageous in some embodiments. However, as suggested by the preceding discussion, this will depend to some extent on the particular wavelength W1, the particular operating gap, the particular dimension DSME, and the particular shape and structure of the signal modulating element SME.
[0067] It should be appreciated that the third spatial harmonic error component in the signal from the signal modulation element set SETSEN is highly sensitive to the selection of dimensions within the ranges disclosed above. For example, the dimension DSENavg is desirably selected to reject the third spatial harmonic error component of the signal due to practical variations in fabricated dimensions and variations in the operating gap associated with the signal modulation element set SETSEN. Surprisingly, the inventors have discovered that in one embodiment configured to provide a value of 0.3*W1 for DSENavg, the error component associated with the third spatial harmonic error component is uniformly insensitive to variations in the dimension DSME of the signal modulation element SEN over the range DSME=0.72*W1 to DSME=0.79*W1. On the other hand, if DSENavg is changed by about 10% from this value (e.g., to 0.27*W1 or 0.33*W1), the error component of the third spatial harmonic increases by more than 10 times for a variation in detector element SEN in the range from DSME=0.72*W1 to DSME=0.79*W1, which is unacceptable.
[0068] One possible explanation for why the disclosed advantageous ranges for the dimension DSENavg differ significantly from the "naively" expected value of 0.33* is that DSENavg is influenced by error components due to impedance variations at the detector depending on the scale position. Such position-dependent impedance variations, which can be on the order of 1%, were not known or considered in the prior art. The advantageous ranges for DSENavg disclosed herein "adjust" or "tune" these impedance variations so that when their signal component contributions are "aliased" and combined with other sources of third-order spatial harmonic error components, their combined effect cancels the third-order spatial harmonic error component. Such subtle effects and related design features were not considered in the prior art.
[0069] While preferred embodiments of the present disclosure have been shown and described, numerous variations in the arrangement of features and sequences of operation shown and described will be apparent to those skilled in the art based on this disclosure. Various alternatives can be used to carry out the principles disclosed herein.
[0070] It will be appreciated that the principles disclosed and claimed herein can be readily and desirably combined with various features disclosed in the incorporated documents and in co-pending U.S. patent application Ser. No. 16 / 826,842, which is incorporated herein by reference in its entirety. The various embodiments described above can be combined to provide further embodiments. All U.S. patents and patent applications mentioned herein are incorporated herein by reference in their entirety. Aspects of the embodiments can be modified, if necessary, to employ concepts from various patents and applications to provide still further embodiments. These and other changes can be made to the implementations in light of the above detailed description. Generally, in the following claims, the terms used should not be construed to limit the scope of the claims to the specific embodiments disclosed in the specification and claims, but should be construed to include all possible embodiments, along with the full range of equivalents to which such claims are entitled.
Claims
1. 1. An electromagnetic induction encoder usable to measure the relative position between two elements along a measurement axis, comprising: a scale including a periodic scale pattern having a spatial wavelength W1 and including at least a first type of signal modulating element, the scale extending along a measuring axis direction; a detector mounted proximate to the periodic scale pattern and configured to move along a measurement axis direction relative to the periodic scale pattern; a signal processing unit operatively connected to the detection unit to provide a coil drive signal, and configured to identify a relative position between the detection unit and the periodic scale pattern based on a detection signal input from the detection unit; the first type signal modulating element includes a plurality of conductive plates or a plurality of conductive loops arranged along the measurement axis direction in correspondence with a spatial wavelength W1; The detection unit a magnetic field generating coil fixed to a substrate, surrounding an interior region that is aligned with the periodic scale pattern of a signal modulating element during operation, and that generates magnetic flux variations in the interior region in response to the coil drive signal; a set of sensing elements arranged along the measurement axis and fixed to a substrate; the members of the sensing element set are comprised of conductive loops or conductive loop portions that define sensing element effective areas EffASEN corresponding to portions of the sensing elements that are aligned with or overlap the interior region; the set of sensing elements is configured to provide a detection signal responsive to a local influence on magnetic flux variation provided by an adjacent one of the signal modulating elements of the periodic scale pattern; the first type of signal modulating element includes an effective area EffRSME that is aligned with or overlaps with the internal area during operation, the effective area EffRSME having an average dimension DsME along the measuring axis direction that is at least 0.55*W1 and at most 0.8*W1; a detector element effective area EffASEN aligned with or overlapping the internal region has an effective y-axis dimension EffYSEN along a y-axis direction perpendicular to the measurement axis direction and a maximum dimension DSENmax along the measurement axis direction, and is configured such that the detector element average dimension DSENavg=(EffASEN / EffYSEN) along the measurement axis direction is at least 0.285*W1 and at most 0.315*W1; the maximum dimension DSENmax is at least 0.285*W1 and at most 0.5*W1; An electromagnetic induction encoder, wherein the conductive loops or conductive loop portions defining the sensing element effective area EffASEN are spaced apart from each other by the maximum dimension DSENmax, extend straight along the y-axis direction, and have y-direction segments with a y-direction segment dimension YSEG that is at least 0.14*EffYSEN.
2. An electromagnetic induction encoder as described in claim 1, characterized in that the average dimension DSENavg of the sensing element is at least 0.29*W1 and at most 0.31*W1.
3. An electromagnetic induction encoder as described in claim 1, characterized in that the maximum dimension DSENmax is 0.5 * W1.
4. 2. The electromagnetic induction encoder of claim 1, wherein the y-direction segment dimension YSEG extends over the entire internal region along the -y-axis direction, the y-direction segments are spaced apart from each other along the measurement axis direction by the maximum dimension DSENmax, DSENavg = DSENmax, and the maximum dimension DSENmax is at least 0.285*W1 and at most 0.315*W1.
5. 2. The electromagnetic induction encoder of claim 1, wherein the average dimension DSME is at least 0.66*W1.
6. 6. The electromagnetic induction encoder of claim 5, wherein the average dimension DSME is at least 0.7*W1.
7. 2. The electromagnetic induction encoder according to claim 1, wherein the first type of signal modulating element is composed of a plurality of conductive plates.
8. 2. The electromagnetic induction encoder according to claim 1, wherein the first type of signal modulating element is comprised of a plurality of conductive loops.
9. 2. The electromagnetic inductive encoder of claim 1, wherein the sensing portion and the scale include a substantially planar substrate, the sensing portion configured to be mounted substantially parallel to the periodic scale pattern such that a nominal operating gap between respective conductors is at least 0.075*W1.
10. 10. The electromagnetic inductive encoder of claim 9, wherein the nominal operating gap is at least 0.15*W1.
11. An electromagnetic induction encoder as described in claim 1, characterized in that the spatial wavelength W1 is a maximum of 2 millimeters.
12. An electromagnetic induction encoder as described in claim 1, characterized in that the spatial wavelength W1 is a maximum of 1.5 millimeters.
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