Intersil Analog Data Transmission Interfaces 5

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Part RoHS Manufacturer Telecom IC Type Temperature Grade Terminal Form No. of Terminals Package Code Package Shape Package Body Material Surface Mount No. of Functions No. of Channels Technology Nominal Negative Supply Voltage Maximum Supply Current Nominal Supply Voltage Hybrid Power Supplies (V) Package Style (Meter) Package Equivalence Code Sub-Category Terminal Pitch Maximum Operating Temperature Maximum Noise Battery Supply (V) Minimum Operating Temperature Terminal Finish Terminal Position Data Rate JESD-30 Code Moisture Sensitivity Level (MSL) Maximum Seated Height Width Qualification Minimum Power Supply Rejection Ratio (PSRR) Additional Features Battery Feed JESD-609 Code Maximum Time At Peak Reflow Temperature (s) Peak Reflow Temperature (C) Length

HC55185AIM

Intersil

SLIC

INDUSTRIAL

J BEND

28

QCCJ

SQUARE

PLASTIC/EPOXY

YES

1

BIPOLAR

.0135 mA

5 V

2-4 CONVERSION

5

CHIP CARRIER

LDCC28,.5SQ

Analog Transmission Interfaces

1.27 mm

85 Cel

13 dBrnC

+100

-40 Cel

TIN LEAD

QUAD

S-PQCC-J28

1

4.57 mm

11.505 mm

Not Qualified

45 dB

CONSTANT CURRENT

e0

11.505 mm

HC3-5504B-5

Intersil

SLIC

COMMERCIAL EXTENDED

THROUGH-HOLE

24

DIP

RECTANGULAR

PLASTIC/EPOXY

NO

1

BIPOLAR

.006 mA

5 V

2-4 CONVERSION

5/12

IN-LINE

DIP24,.6

Analog Transmission Interfaces

2.54 mm

75 Cel

5 dBrnC

-48

0 Cel

TIN LEAD

DUAL

R-PDIP-T24

6.35 mm

15.24 mm

Not Qualified

15 dB

CONSTANT CURRENT

e0

31 mm

HC3-5504B1-5

Intersil

SLIC

COMMERCIAL

THROUGH-HOLE

24

DIP

RECTANGULAR

PLASTIC/EPOXY

NO

BIPOLAR

6 mA

2-4 CONVERSION

5/12

IN-LINE

DIP24,.6

Analog Transmission Interfaces

2.54 mm

70 Cel

5 dBrnC

-48

0 Cel

Tin/Lead (Sn/Pb)

DUAL

R-PDIP-T24

Not Qualified

15 dB

CONSTANT CURRENT

e0

HC5517BCM

Intersil

SLIC

COMMERCIAL EXTENDED

J BEND

28

QCCJ

SQUARE

PLASTIC/EPOXY

YES

1

BIPOLAR

.006 mA

5 V

2-4 CONVERSION

5

CHIP CARRIER

LDCC28,.5SQ

Analog Transmission Interfaces

1.27 mm

75 Cel

-24

0 Cel

TIN LEAD

QUAD

S-PQCC-J28

4.57 mm

11.505 mm

Not Qualified

20 dB

RESISTIVE

e0

11.505 mm

HC55185AIM96

Intersil

SLIC

INDUSTRIAL

J BEND

28

QCCJ

SQUARE

PLASTIC/EPOXY

YES

1

BIPOLAR

.0135 mA

5 V

2-4 CONVERSION

5

CHIP CARRIER

LDCC28,.5SQ

Analog Transmission Interfaces

1.27 mm

85 Cel

14 dBrnC

-24 AND -100

-40 Cel

TIN LEAD

QUAD

S-PQCC-J28

1

4.57 mm

11.505 mm

Not Qualified

CONSTANT CURRENT/RESISTIVE

e0

11.505 mm

Analog Data Transmission Interfaces

Analog data transmission interfaces are used to transmit analog signals between electronic devices. They are commonly used in a variety of applications, such as audio and video equipment, medical devices, and industrial control systems.

Analog data transmission interfaces typically consist of a transmitter and a receiver. The transmitter converts the analog signal into a form that can be transmitted over a communication channel, such as a wire or radio frequency signal. The receiver then converts the transmitted signal back into its original analog form.

Some common types of analog data transmission interfaces include:

1. Analog audio interfaces: These are used to transmit audio signals between electronic devices, such as microphones, amplifiers, and speakers. Examples include XLR, RCA, and TRS connectors.

2. Composite video interfaces: These are used to transmit analog video signals, such as those used in standard definition television. Examples include RCA and BNC connectors.

3. VGA interfaces: These are used to transmit analog video signals from computers and other devices to displays, such as computer monitors and projectors.

4. Analog sensor interfaces: These are used to transmit analog signals from sensors, such as temperature sensors or pressure sensors, to electronic devices that can process and analyze the data.

Analog data transmission interfaces offer several advantages over digital interfaces. They are often simpler and less expensive to implement, and they can provide high-quality audio and video signals without the need for compression or conversion. However, they can also be susceptible to interference and noise, and their performance may be limited by the quality of the transmission channel.