Fairchild Semiconductor DSP Peripherals 7

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Part RoHS Manufacturer Peripheral IC Type Temperature Grade Terminal Form No. of Terminals Package Code Package Shape Package Body Material Surface Mount Maximum Supply Voltage Screening Level Output Data Bus Width Power Supplies (V) Package Style (Meter) Package Equivalence Code Minimum Supply Voltage Maximum Operating Temperature CPU Family Minimum Operating Temperature Terminal Finish Terminal Position Maximum Seated Height Width Additional Features Boundary Scan External Data Bus Width Maximum Clock Frequency Maximum Time At Peak Reflow Temperature (s) Peak Reflow Temperature (C) Length Technology Nominal Negative Supply Voltage Maximum Supply Current Nominal Supply Voltage Sub-Category Terminal Pitch JESD-30 Code Moisture Sensitivity Level (MSL) Qualification Low Power Mode JESD-609 Code

TMC3211H5C

Fairchild Semiconductor

DSP PERIPHERAL, DIVIDER

COMMERCIAL

PIN/PEG

120

PGA

SQUARE

PLASTIC/EPOXY

NO

5.25 V

32

GRID ARRAY

4.75 V

70 Cel

0 Cel

TIN LEAD

PERPENDICULAR

4.57 mm

34.545 mm

NO

32

20 MHz

34.545 mm

CMOS

5 V

2.54 mm

S-PPGA-P120

Not Qualified

NO

e0

TMC2208N4C

Fairchild Semiconductor

DSP PERIPHERAL, MULTIPLIER ACCUMULATOR/SUMMER

COMMERCIAL

THROUGH-HOLE

48

DIP

RECTANGULAR

PLASTIC/EPOXY

NO

5

IN-LINE

DIP48,.6

70 Cel

0 Cel

Tin/Lead (Sn/Pb)

DUAL

CMOS

5 V

DSP Peripherals

2.54 mm

R-PDIP-T48

Not Qualified

e0

TMC2208J4C

Fairchild Semiconductor

DSP PERIPHERAL, MULTIPLIER ACCUMULATOR/SUMMER

COMMERCIAL

THROUGH-HOLE

48

DIP

RECTANGULAR

CERAMIC

NO

5

IN-LINE

DIP48,.6

70 Cel

0 Cel

Tin/Lead (Sn/Pb)

DUAL

CMOS

5 V

DSP Peripherals

2.54 mm

R-XDIP-T48

Not Qualified

e0

ML2036CS

Fairchild Semiconductor

DSP PERIPHERAL, NUMERIC CONTROLLED OSCILLATOR

COMMERCIAL

GULL WING

16

SOP

RECTANGULAR

PLASTIC/EPOXY

YES

5.5 V

SMALL OUTLINE

4.5 V

70 Cel

0 Cel

TIN LEAD

DUAL

2.72 mm

7.52 mm

ALSO -5V SUPPLY AVAILABLE

NO

12.352 MHz

10.34 mm

CMOS

5 V

1.27 mm

R-PDSO-G16

Not Qualified

YES

e0

TMC2301G8C1

Fairchild Semiconductor

DSP PERIPHERAL, VIDEO IMAGING

COMMERCIAL

PIN/PEG

68

PGA

SQUARE

CERAMIC, METAL-SEALED COFIRED

NO

5.25 V

12

5

GRID ARRAY

PGA68,11X11

4.75 V

70 Cel

0 Cel

TIN LEAD

PERPENDICULAR

4.826 mm

29.464 mm

NO

12

20 MHz

29.464 mm

CMOS

5 V

DSP Peripherals

2.54 mm

S-CPGA-P68

Not Qualified

NO

e0

TMC2301L1V

Fairchild Semiconductor

BIT-SLICE MICROPROCESSOR

MILITARY

FLAT

68

QFF

SQUARE

CERAMIC

YES

38535Q/M;38534H;883B

5

FLATPACK

QFL68,.95SQ

125 Cel

-55 Cel

Tin/Lead (Sn/Pb)

QUAD

CMOS

5 V

DSP Peripherals

1.27 mm

S-XQFP-F68

Not Qualified

e0

TMC2249AH5C1

Fairchild Semiconductor

DSP PERIPHERAL, MIXER

COMMERCIAL

PIN/PEG

120

PGA

SQUARE

PLASTIC/EPOXY

NO

5.25 V

16

5

GRID ARRAY

PGA120,13X13

4.75 V

70 Cel

0 Cel

TIN LEAD

PERPENDICULAR

5.46 mm

34.16 mm

NO

12

40 MHz

34.16 mm

CMOS

105 mA

5 V

DSP Peripherals

2.54 mm

S-PPGA-P120

Not Qualified

NO

e0

DSP Peripherals

DSP (Digital Signal Processing) peripherals are electronic circuits that are designed to be used with DSP processors to perform specific tasks related to signal processing. DSP processors are used in a variety of applications, including audio and video processing, telecommunications, and image processing. DSP peripherals are designed to enhance the functionality of DSP processors by providing additional capabilities such as data acquisition, signal conditioning, and data conversion.

DSP peripherals can include analog-to-digital converters (ADCs), digital-to-analog converters (DACs), amplifiers, filters, and other signal conditioning circuits. These peripherals are used to acquire and condition signals before they are processed by the DSP processor. ADCs are used to convert analog signals, such as audio or video signals, into digital signals that can be processed by the DSP processor. DACs are used to convert digital signals back into analog signals, such as audio or video signals, for output.

DSP peripherals can also include hardware accelerators, which are used to offload computationally intensive tasks from the DSP processor. These hardware accelerators can include digital signal processors, graphics processing units, and other specialized hardware. By offloading these tasks, the DSP processor can focus on other tasks, resulting in improved performance and efficiency.