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LM35CAZ/NOPB

LM35CAZ/NOPB

Introduction

The LM35CAZ/NOPB is a temperature sensor belonging to the category of analog temperature sensors. This device is widely used in various applications due to its accuracy, ease of use, and low cost.

Basic Information Overview

  • Category: Analog Temperature Sensor
  • Use: Measuring temperature in electronic devices and industrial applications
  • Characteristics: High accuracy, linear output, low cost
  • Package: TO-92, SOIC, SOT-23
  • Essence: Provides accurate temperature measurement with a linear output
  • Packaging/Quantity: Available in tape and reel packaging, quantity varies based on package type

Specifications

  • Temperature Range: -55°C to 150°C
  • Output Voltage: 10 mV/°C
  • Supply Voltage: 4V to 30V
  • Current Consumption: 60 µA
  • Accuracy: ±0.5°C

Detailed Pin Configuration

The LM35CAZ/NOPB has three pins: 1. VCC: Power supply input 2. VOUT: Analog voltage output proportional to the temperature 3. GND: Ground connection

Functional Features

  • Linear output voltage proportional to temperature
  • Calibrated directly in Celsius
  • Low self-heating

Advantages and Disadvantages

Advantages

  • High accuracy
  • Easy to interface with microcontrollers
  • Low cost

Disadvantages

  • Limited temperature range compared to some digital sensors
  • Susceptible to electrical noise

Working Principles

The LM35CAZ/NOPB operates on the principle of producing a voltage output that is linearly proportional to the temperature being measured. This output can be directly interfaced with analog-to-digital converters or microcontrollers for further processing.

Detailed Application Field Plans

The LM35CAZ/NOPB finds extensive application in various fields, including: - HVAC systems - Industrial temperature monitoring - Automotive climate control - Consumer electronics

Detailed and Complete Alternative Models

Some alternative models to the LM35CAZ/NOPB include: - TMP36 - DS18B20 - MCP9700

In conclusion, the LM35CAZ/NOPB is a versatile and cost-effective temperature sensor suitable for a wide range of applications, offering high accuracy and ease of integration.

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Seznam 10 běžných otázek a odpovědí souvisejících s aplikací LM35CAZ/NOPB v technických řešeních

  1. What is the LM35CAZ/NOPB?

    • The LM35CAZ/NOPB is a precision integrated-circuit temperature sensor that provides an analog output proportional to the temperature in Celsius.
  2. What is the operating temperature range of the LM35CAZ/NOPB?

    • The LM35CAZ/NOPB operates over a temperature range of -55°C to 150°C.
  3. How accurate is the LM35CAZ/NOPB?

    • The LM35CAZ/NOPB has a typical accuracy of ±0.5°C at room temperature and ±3/4°C over a full -55°C to 150°C temperature range.
  4. What are the typical applications of the LM35CAZ/NOPB?

    • The LM35CAZ/NOPB is commonly used in HVAC systems, automotive applications, industrial control systems, and temperature measurement equipment.
  5. How does the LM35CAZ/NOPB interface with microcontrollers or other digital systems?

    • The LM35CAZ/NOPB provides an analog voltage output that can be easily interfaced with microcontrollers or ADCs for digital temperature readings.
  6. Can the LM35CAZ/NOPB be powered from a single power supply?

    • Yes, the LM35CAZ/NOPB can be powered from a single power supply ranging from 4V to 30V.
  7. Does the LM35CAZ/NOPB require calibration?

    • The LM35CAZ/NOPB does not require external calibration as it is factory-calibrated.
  8. Is the LM35CAZ/NOPB suitable for battery-powered applications?

    • Yes, the LM35CAZ/NOPB has low power consumption and is suitable for battery-powered applications.
  9. Can the LM35CAZ/NOPB be used in high-temperature environments?

    • The LM35CAZ/NOPB can operate in high-temperature environments up to 150°C, making it suitable for various industrial applications.
  10. What are the key advantages of using the LM35CAZ/NOPB?

    • The LM35CAZ/NOPB offers high accuracy, linear output, low self-heating, and ease of interfacing, making it a popular choice for temperature sensing applications.