44 Bit-Slice Micro Processors 10

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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 Address Bus Width DAC Channels Bit Size Power Supplies (V) Package Style (Meter) Package Equivalence Code Minimum Supply Voltage Maximum Operating Temperature Minimum Operating Temperature Terminal Finish ADC Channels Terminal Position DMA Channels Maximum Seated Height Width Additional Features External Data Bus Width Maximum Clock Frequency Maximum Time At Peak Reflow Temperature (s) Peak Reflow Temperature (C) Length Technology Maximum Supply Current Nominal Supply Voltage PWM Channels Sub-Category Terminal Pitch JESD-30 Code Moisture Sensitivity Level (MSL) Qualification Speed JESD-609 Code

IA2910A-CLC44M

Analog Devices

BIT-SLICE PROCESSOR, MICROPROGRAM SEQUENCER

J BEND

44

QCCJ

SQUARE

CERAMIC, METAL-SEALED COFIRED

YES

5.5 V

0

NO

CHIP CARRIER

LDCC44,.7SQ

4.5 V

NO

QUAD

NO

3.916 mm

15.748 mm

0

235

16.6 mm

CMOS

5 V

NO

1.27 mm

S-CQCC-J44

3

IA2910A-PLC44C

Analog Devices

BIT-SLICE PROCESSOR, MICROPROGRAM SEQUENCER

OTHER

J BEND

44

QCCJ

SQUARE

PLASTIC/EPOXY

YES

5.5 V

CHIP CARRIER

LDCC44,.7SQ

4.5 V

85 Cel

0 Cel

QUAD

3.9116 mm

16.6116 mm

235

16.6116 mm

CMOS

.1 mA

5 V

1.27 mm

S-PQCC-J44

3

CY8C910-99LMB

Infineon Technologies

BIT-SLICE PROCESSOR, MICROPROGRAM SEQUENCER

MILITARY

NO LEAD

44

QCCN

SQUARE

CERAMIC

YES

38535Q/M;38534H;883B

5

CHIP CARRIER

LCC44,.65SQ

125 Cel

-55 Cel

Tin/Lead (Sn/Pb)

QUAD

CMOS

100 mA

5 V

Bit-Slice Processors

1.27 mm

S-XQCC-N44

Not Qualified

e0

CY8C910-93LC

Infineon Technologies

BIT-SLICE PROCESSOR, MICROPROGRAM SEQUENCER

COMMERCIAL

NO LEAD

44

QCCN

SQUARE

CERAMIC

YES

5

CHIP CARRIER

LCC44,.65SQ

70 Cel

0 Cel

Tin/Lead (Sn/Pb)

QUAD

CMOS

100 mA

5 V

Bit-Slice Processors

1.27 mm

S-XQCC-N44

Not Qualified

e0

CY8C910-40LC

Infineon Technologies

BIT-SLICE PROCESSOR, MICROPROGRAM SEQUENCER

COMMERCIAL

NO LEAD

44

QCCN

SQUARE

CERAMIC

YES

5

CHIP CARRIER

LCC44,.65SQ

70 Cel

0 Cel

Tin/Lead (Sn/Pb)

QUAD

CMOS

100 mA

5 V

Bit-Slice Processors

1.27 mm

S-XQCC-N44

Not Qualified

e0

CY8C910-46LMB

Infineon Technologies

BIT-SLICE PROCESSOR, MICROPROGRAM SEQUENCER

MILITARY

NO LEAD

44

QCCN

SQUARE

CERAMIC

YES

38535Q/M;38534H;883B

5

CHIP CARRIER

LCC44,.65SQ

125 Cel

-55 Cel

Tin/Lead (Sn/Pb)

QUAD

CMOS

100 mA

5 V

Bit-Slice Processors

1.27 mm

S-XQCC-N44

Not Qualified

e0

CY8C910-50LC

Infineon Technologies

BIT-SLICE PROCESSOR, MICROPROGRAM SEQUENCER

COMMERCIAL

NO LEAD

44

QCCN

SQUARE

CERAMIC

YES

5

CHIP CARRIER

LCC44,.65SQ

70 Cel

0 Cel

Tin/Lead (Sn/Pb)

QUAD

CMOS

100 mA

5 V

Bit-Slice Processors

1.27 mm

S-XQCC-N44

Not Qualified

e0

CY7C901-69LC

Infineon Technologies

BIT-SLICE MICROPROCESSOR

COMMERCIAL

NO LEAD

44

QCCN

SQUARE

CERAMIC

YES

5

CHIP CARRIER

LCC44,.65SQ

70 Cel

0 Cel

Tin/Lead (Sn/Pb)

QUAD

CMOS

70 mA

5 V

Bit-Slice Processors

1.27 mm

S-XQCC-N44

Not Qualified

e0

CY7C910-40LMB

Infineon Technologies

BIT-SLICE PROCESSOR, MICROPROGRAM SEQUENCER

MILITARY

NO LEAD

44

QCCN

SQUARE

CERAMIC

YES

38535Q/M;38534H;883B

5

CHIP CARRIER

LCC44,.65SQ

125 Cel

-55 Cel

Tin/Lead (Sn/Pb)

QUAD

CMOS

5 V

Bit-Slice Processors

1.27 mm

S-XQCC-N44

Not Qualified

e0

CY7C901-88LMB

Infineon Technologies

BIT-SLICE MICROPROCESSOR

MILITARY

NO LEAD

44

QCCN

SQUARE

CERAMIC

YES

38535Q/M;38534H;883B

5

CHIP CARRIER

LCC44,.65SQ

125 Cel

-55 Cel

Tin/Lead (Sn/Pb)

QUAD

CMOS

90 mA

5 V

Bit-Slice Processors

1.27 mm

S-XQCC-N44

Not Qualified

e0

Bit-Slice Micro Processors

A bit-slice microprocessor is a type of microprocessor that is designed to perform operations on a small group of bits, known as a "slice". Each slice typically contains a few bits of data and control logic, which can be combined to perform various operations.

Bit-slice microprocessors were first developed in the 1970s as a way to create powerful microprocessors using simple building blocks. Each slice typically contained a few gates or flip-flops, and these slices could be combined to create a more complex microprocessor. The advantage of this approach was that designers could create custom microprocessors for specific applications by selecting the appropriate slices.

One of the key benefits of bit-slice microprocessors is their flexibility. By combining different types of slices, designers can create microprocessors that are tailored to specific applications. For example, a bit-slice microprocessor designed for a control system might contain slices for digital input/output, analog-to-digital conversion, and control logic.

Another advantage of bit-slice microprocessors is their scalability. Because they are built from small, simple building blocks, designers can easily add or remove slices to increase or decrease the processing power of the microprocessor. This makes them well-suited for applications where the processing requirements may change over time.