DSPIC30F2020-30I/MM Microchip Technology, DSPIC30F2020-30I/MM Datasheet - Page 130

IC DSPIC MCU/DSP 12K 28QFN

DSPIC30F2020-30I/MM

Manufacturer Part Number
DSPIC30F2020-30I/MM
Description
IC DSPIC MCU/DSP 12K 28QFN
Manufacturer
Microchip Technology
Series
dsPIC™ 30Fr

Specifications of DSPIC30F2020-30I/MM

Core Processor
dsPIC
Core Size
16-Bit
Speed
30 MIPs
Connectivity
I²C, IrDA, LIN, SPI, UART/USART
Peripherals
Brown-out Detect/Reset, POR, PWM, WDT
Number Of I /o
21
Program Memory Size
12KB (4K x 24)
Program Memory Type
FLASH
Ram Size
512 x 8
Voltage - Supply (vcc/vdd)
3 V ~ 5.5 V
Data Converters
A/D 8x10b
Oscillator Type
Internal
Operating Temperature
-40°C ~ 85°C
Package / Case
28-QFN
Core Frequency
15MHz
Core Supply Voltage
3.3V
Embedded Interface Type
I2C, SPI, UART
No. Of I/o's
21
Flash Memory Size
12KB
Supply Voltage Range
3V To 3.6V
Package
28QFN-S EP
Device Core
dsPIC
Family Name
dsPIC30
Maximum Speed
30 MHz
Operating Supply Voltage
3.3|5 V
Data Bus Width
16 Bit
Number Of Programmable I/os
21
Interface Type
I2C/SPI/UART
On-chip Adc
8-chx10-bit
Number Of Timers
3
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
For Use With
DM300023 - KIT DEMO DSPICDEM SMPS BUCKAC164322 - MODULE SOCKET MPLAB PM3 28/44QFNDV164005 - KIT ICD2 SIMPLE SUIT W/USB CABLE
Eeprom Size
-
Lead Free Status / RoHS Status
Lead free / RoHS Compliant, Lead free / RoHS Compliant

Available stocks

Company
Part Number
Manufacturer
Quantity
Price
Part Number:
DSPIC30F2020-30I/MMB32
Manufacturer:
Microchip Technology
Quantity:
135
dsPIC30F1010/202X
FIGURE 12-17:
FIGURE 12-18:
DS70178C-page 128
Negative dead time
Positive dead time
No dead time
9
PWML
PWMH
PWMH
PWMH
PWML
PWML
0
DTRx
DUAL DEAD-TIME
WAVEFORMS
DEAD-TIME INSERTION (PWM OUTPUT SIGNAL TIMING MAY BE DELAYED)
1
ALTDTRx
2
3
4
1
Preliminary
4
5
12.14.3
The amount of dead time provided by each dead-time
unit is selected by specifying a 12-bit unsigned value in
the DTRx registers. The 12-bit dead-time counters
clock at four times the instruction execution rate. The
Least Significant one bit of the dead-time value are
processed by the Fine Adjust PWM module.
Table 12-3 shows example dead-time ranges as a
function of the device operating frequency.
TABLE 12-3:
12.14.4
Figure 12-18 shows how the dead-time insertion for
complementary signals is accomplished.
12.14.5
For small PWM duty cycles, the ratio of dead time to the
active PWM time may become large. In this case, the
inserted dead time introduces distortion into wave-
forms produced by the PWM module. The user can
ensure that dead-time distortion is minimized by keep-
ing the PWM duty cycle at least three times larger than
the dead time.
A similar effect occurs for duty cycles at or near 100%.
The maximum duty cycle used in the application should
be chosen such that the minimum inactive time of the
signal is at least three times larger than the dead time.
MIPS
30
20
6
DEAD-TIME RANGES
DEAD-TIME INSERTION TIMING
DEAD-TIME DISTORTION
7
Resolution
EXAMPLE DEAD-TIME
RANGES
4.16 ns
6.25 ns
© 2006 Microchip Technology Inc.
8
Dead-Time Range
CLOCK
PTMR
DEAD-TIME VALUE
<10:4>
DUTY CYCLE REG
<15:4>
RAW PWMH
RAW PWML
PWMH OUTPUT
PWML OUTPUT
0-17.03 µsec
0-25.59 µsec

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