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ATS610LSC Datasheet(PDF) 10 Page - Allegro MicroSystems |
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ATS610LSC Datasheet(HTML) 10 Page - Allegro MicroSystems |
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10 / 12 page ![]() ATS610LSC DYNAMIC, PEAK-DETECTING, DIFFERENTIAL HALL-EFFECT GEAR-TOOTH SENSOR 115 Northeast Cutoff, Box 15036 Worcester, Massachusetts 01615-0036 (508) 853-5000 APPLICATIONS INFORMATION Gear Diameter and Pitch. Signal frequency is a direct function of gear pitch and rotational speed (RPM). The width of the magnetic signal in degrees and, hence, the signal slope created by the tooth is directly proportional to the circumference of the gear ( πDo). Smaller diameters limit the low-speed operation due to the slower rate of change of the magnetic signal per degree of gear rotation (here the limitation is the droop of the capacitor versus the signal change). Larger diameters limit high-speed opera- tion due to the higher rate of change of magnetic signal per degree of rotation (here the limitation is the maximum charge rate of the capacitor versus the rate of signal change). These devices are optimized for a 50 mm gear diameter (signal not limited by tooth width) and speeds of 10 RPM to 8000 RPM. NOTE — In application, the terms “gear” and “target” are often interchanged. However, “gear” is preferred when motion is transferred. Air Gap and Tooth Geometry. Operating specifications are impacted by tooth width (T), valley width (pc - T) and depth (ht), gear material, and gear face thickness (F). The target can be a gear or a specially cut shaft-mounted tone wheel made of stamped ferrous metal. In general, the following gear or target guidelines must be followed to achieve greater than 2 mm air gap from the face of unit: Tooth width, T .............................. >2 mm Valley width, pc - T ...................... >2 mm (Whole) depth, ht ......................... >3 mm Gear material ............................... low-carbon steel Gear face width (thickness), F .... >3 mm Deviation from these guidelines will result in a reduc- tion of air gap and a deterioration in timing accuracy. For applications that require the sensing of large-tooth targets, the optimal sensor choice is the ATS610LSC. Its high switching thresholds provide increased immunity to false switching caused by magnetic overshoot and other non- uniformities in the gear or target. Operation with Fine-Pitch Gears. For targets with a circular pitch of less than 4 mm, a performance improve- ment can be observed by rotating the front face of the sensor subassembly. This sensor rotation decreases the effective sensor-to-sensor spacing and increases the capability of detecting fine tooth or valley configurations, provided that the Hall elements are not rotated beyond the width of the target. Signal Timing Accuracy. The magnetic field profile width is defined by the sensor element spacing and narrows in degrees as the target diameter increases. This results in improved timing accuracy performance for larger gear diameters (for the same number of gear teeth). The slope of this magnetic profile also changes with air gap, resulting in timing accuracy shift with air gap (refer to typical operating characteristic curves). Valley-to-tooth transitions will generally provide better accuracy than tooth-to-valley transitions for large-tooth or large-valley configurations. For highest accuracy, targets greater than 100 mm in diameter should be used. Signal Duty Cycle. For repetitive target structures, precise duty cycle is maintained over the operating air gap and temperature range due to an extremely good symme- try in the magnetic switch points of the device. For nonrepetitive target structures, there will be a small but measureable change in pulse width versus air gap. Output Polarity. The output of the device will switch from HIGH to LOW as the leading edge of the target passes the subassembly from terminal 3 to terminal 1, which means that the output will be LOW when the unit is facing a tooth. If rotation is in the opposite direction (terminal 1 to terminal 3), the output of the device will switch from LOW to HIGH as the leading edge of the target passes the subassembly, which means that the output will be HIGH when the unit is facing a tooth. Dwg. MH-018-3 mm 2.235 α TARGET FACE WIDTH, F >2.235 SIN α |
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