| поискавой системы для электроныых деталей |
|
MCP8021 датащи(PDF) 28 Page - Microchip Technology |
|
|
|||||||||||||||||||||||||||||
MCP8021 датащи(HTML) 28 Page - Microchip Technology |
|
28 / 66 page ![]() MCP8021/2 DS20006265D-page 28 2020-2024 Microchip Technology Inc. and its subsidiaries 4.6.4.2 Programmable Dead Time The gate control logic employs a break-before-make dead-time delay that is programmable. A configuration message is provided to configure the driver dead time. The programmable dead times range from 250 ns to 2000 ns (default) in 250 ns increments. The dead time allows the PWM inputs to be direct inversions of each other and still allow proper motor operation. The dead time internally modifies the PWMH/L gate drive timing to prevent cross conduction. The DRVDT[2:0] bits of the CFG2 register are used to set the dead-time value. 4.6.4.3 Programmable Blanking Time A configuration message is provided to configure the driver current limit blanking time. The blanking time allows the driver to ignore any current spikes that may occur when switching the driver outputs. The allowable blanking times are 500 ns, 1 µs, 2 µs and 4 µs (default). The blanking time will start after the dead-time circuitry has timed out. The DRVBL[1:0] bits of the CFG2 register are used to set the blanking time value. The blanking time also affects the driver undervoltage lockout. The driver undervoltage lockout latches the external MOSFET undervoltage lockout Fault if the undervoltage condition lasts longer than the time spec- ified by the tDUVLO parameter. The tDUVLO parameter takes into account the blanking time if blanking is in progress. 4.6.5 OPERATIONAL AMPLIFIERS (MCP8022) Three operational amplifiers are present in the MCP8022 device. The operational amplifiers are available for general purpose use by the external system circuitry. The operational amplifiers are enabled whenever the device is powered and not in Sleep mode. The user may also select the state of the operational amplifiers for Standby mode. When the OE input is set low long enough for the system to enter Standby mode, the operational amplifiers may be enabled or disabled, depending on the value of the CFG0[6] Configuration bit. When the CFG0[6] bit is ‘0’, the operational amplifiers will be enabled during Standby mode. When the CFG0[6] bit is ‘1’, the operational amplifiers will be disabled during Standby mode. This allows the system to reduce power consumption without transitioning to Sleep mode. The VREG regulator provides the bias supply for the operational amplifiers. The amplifiers are capable of operating when the VREG regulator output voltage drops due to the supply voltage (VDD) dropping. The corresponding amplifier output voltage limits will be reduced accordingly. The output voltage range is capable of providing 200 µA of current from 0.150V to VREG – 0.150V. The input voltage range is -0.3V to 3.3V. 4.7 Motor Control The commutation loop of a BLDC motor control is a Phase-Locked Loop (PLL), which locks to the rotor’s position. Note that this inner loop does not attempt to modify the position of the rotor, but modifies the com- mutation times to match whatever position the rotor has. An outer speed loop changes the rotor velocity and the commutation loop locks to the rotor’s position to commutate the phases at the correct times. 4.7.1 SIX-STEP SENSORLESS MOTOR CONTROL Many control algorithms can be implemented with the MCP8021/2 in conjunction with a microcontroller. The following discussion provides a starting point for imple- menting the MCP8021 or MCP8022 in a sensorless control application of a 3-phase motor. The motor is driven by energizing two windings at a time and sequencing the windings in a six-step per electrical revolution method. This method leaves one winding unenergized at all times. The voltage (Back EMF or BEMF) on that unenergized winding can be monitored to determine the rotor position. 4.7.1.1 Start-Up Sequence When the motor being driven is at rest, the BEMF volt- age is equal to zero. The motor needs to be rotating for the BEMF sensor to lock onto the rotor position and commutate the motor. The recommended start-up sequence is to bring the rotor from rest, up to a speed fast enough to allow BEMF sensing. Motor operation is comprised of five modes: Disabled mode, Bootstrap mode, Lock or Align mode, Ramp mode and Run mode. Refer to the commutation state machine in Table 4-5. The order in which the microcontroller steps through the commutation state machine determines the direction that the motor rotates. 4.7.1.2 Disabled Mode (OE = 0) When the driver output is disabled (OE = 0), all of the MOSFET driver outputs are set low. 4.7.1.3 Bootstrap Mode The high-side driver obtains the high-side biasing voltage from the VBOOT LDO, bootstrap diode and bootstrap capacitor. The bootstrap capacitors must first be charged before the high-side drives may be used. The bootstrap capacitors are all charged by acti- vating all three low-side drivers. The active low-side drivers pull their respective phase nodes low, charging the bootstrap capacitors to the VBOOT LDO voltage. The three low-side drivers should be active for at least 1.2 ms per 1 µF of bootstrap capacitance. This assumes a 12V voltage change and 30 mA (10 mA per phase) of current coming from the VBOOT LDO. |
|
ссылки URL |
| Вашему бизинису помогли Аллдатащит? [ DONATE ] |
Что такое Аллдатащит | реклама | контакт | Конфиденциальность | Ссылка на техническое описание | обмен ссыками | поиск по производителю All Rights Reserved©Alldatasheet.com |
| Russian : Alldatasheetru.com | Korean : Alldatasheet.co.kr | Spanish : Alldatasheet.es | French : Alldatasheet.fr | Italian : Alldatasheetit.com Portuguese : Alldatasheetpt.com | Polish : Alldatasheet.pl | Vietnamese : Alldatasheet.vn Indian : Alldatasheet.in | Mexican : Alldatasheet.com.mx | British : Alldatasheet.co.uk | New Zealand : Alldatasheet.co.nz |
|
Family Site : ic2ic.com |
icmetro.com |