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MP6601 Datasheet(PDF) 10 Page - Monolithic Power Systems |
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MP6601 Datasheet(HTML) 10 Page - Monolithic Power Systems |
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10 / 14 page ![]() MP6601 – 35V, 2.5A, STEPPER MOTOR DRIVER W/ INTERNAL CURRENT SENSE MP6601 Rev. 1.01 www.MonolithicPower.com 10 9/4/2018 MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited. © 2018 MPS. All Rights Reserved. OPERATION The MP6601 is a bipolar stepper motor driver that integrates eight N-Channel power MOSFETs comprised of two internal full-bridges with 2.5A of current capability. The MP6601 operates over a wide supply voltage range of 4.5 - 35V. The MP6601 is designed to operate bipolar stepper motors in full-, half-, and quarter-step modes. The current of each full-bridge is set by the output voltage of an internal DAC, which is controlled by the xI0 and xI1 input pins. The currents in each of the two outputs are regulated with programmable, constant off-time, pulse-width modulation (PWM) control circuitry. The MP6601 integrates internal current sensing, eliminating the need for external sense resistors. Input Interface The MP6601 contains two full H-bridges that operate independently. Each H-bridge has an input signal that controls the current flow direction in the H-bridge (see Table 1). Table 1: Input Control Truth Table xPHASE xOUT1 xOUT2 0 L H 1 H L Additionally, each H-bridge has two input pins that are used to scale the current regulation point in the bridge (see Table 2). Table 2: Current Regulator Sensing xI1 xI0 Current 0 0 100% 0 1 71% 1 0 38% 1 1 0% (high impedance) Programmable Constant Off-Time Current Control The motor current is regulated by a programmable constant off-time PWM current control circuit. Its operation is described below: Initially, a diagonal pair of MOSFETs turns on and drives current through the motor winding. The current increases in the motor winding, which is sensed by an internal current- sense circuit. During the initial blanking time (tBLANK), the high-side MOSFET (HS-FET) always turns on in spite of current-limit detection. When the current reaches the current trip threshold, the internal current comparator either shuts off the HS-FET so the winding inductance current freewheels through the two low-side MOSFETs (LS-FET) (slow decay) or turns on another diagonal pair of MOSFETs so the current flows back to the input (fast decay). The current keeps decreasing for the constant off-time unless a zero current level is detected. Afterward, the HS-FET is enabled to increase the winding current again. The cycle then repeats. Constant-off-time (toff) is determined by the selection of an external resistor (Rt), which can be approximated with Equation (1): OFF t t(ns) 190 R (k ) (1) The full-scale (100%) regulation current can be calculated with Equation (2): Max ISET I71k / R (2) Blanking Time There is usually a current spike during the switching transition due to the body diode’s reverse-recovery current or the distributed inductance or capacitance. This current spike requires filtering to prevent it from erroneously shutting down the HS-FET. After the PWM cycle begins, the output of the current sense comparator is ignored for the fixed blanking time. This blanking time results in a minimum on time for the PWM cycle. Automatic Decay Mode The MP6601 uses a fully automatic decay mode to provide accurate current regulation. Initially, slow decay is used. At the end of the fixed off time, if the current is above the ITRIP threshold, then fast decay mode is initiated by reversing the state of the H-bridge outputs. Once the current level during this fast decay period drops below the ITRIP threshold, |
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