Honeywell Sensing and Productivity Solutions SS496A
Honeywell Sensing and Productivity Solutions SS496A
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Honeywell Sensing and Productivity Solutions SS496A

Manufacturer No:

SS496A

Utmel No:

1114-SS496A

Package:

3-SIP

ECAD Model:

Description:

HONEYWELL SS496A. IC

Quantity:

Unit Price: $2.498183

Ext Price: $2.50

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    $222.34

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SS496A information

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Honeywell Sensing and Productivity Solutions SS496A technical specifications, attributes, parameters and parts with similar specifications to Honeywell Sensing and Productivity Solutions SS496A.
  • Type
    Parameter
  • Factory Lead Time
    15 Weeks
  • Mount

    In electronic components, the term "Mount" typically refers to the method or process of physically attaching or fixing a component onto a circuit board or other electronic device. This can involve soldering, adhesive bonding, or other techniques to secure the component in place. The mounting process is crucial for ensuring proper electrical connections and mechanical stability within the electronic system. Different components may have specific mounting requirements based on their size, shape, and function, and manufacturers provide guidelines for proper mounting procedures to ensure optimal performance and reliability of the electronic device.

    Surface Mount, Through Hole
  • Mounting Type

    The "Mounting Type" in electronic components refers to the method used to attach or connect a component to a circuit board or other substrate, such as through-hole, surface-mount, or panel mount.

    Through Hole
  • Package / Case

    refers to the protective housing that encases an electronic component, providing mechanical support, electrical connections, and thermal management.

    3-SIP
  • Number of Pins
    3
  • Supplier Device Package

    The parameter "Supplier Device Package" in electronic components refers to the physical packaging or housing of the component as provided by the supplier. It specifies the form factor, dimensions, and layout of the component, which are crucial for compatibility and integration into electronic circuits and systems. The supplier device package information typically includes details such as the package type (e.g., DIP, SOP, QFN), number of pins, pitch, and overall size, allowing engineers and designers to select the appropriate component for their specific application requirements. Understanding the supplier device package is essential for proper component selection, placement, and soldering during the manufacturing process to ensure optimal performance and reliability of the electronic system.

    Radial Lead
  • Operating Temperature

    The operating temperature is the range of ambient temperature within which a power supply, or any other electrical equipment, operate in. This ranges from a minimum operating temperature, to a peak or maximum operating temperature, outside which, the power supply may fail.

    -40°C~150°C TA
  • Packaging

    Semiconductor package is a carrier / shell used to contain and cover one or more semiconductor components or integrated circuits. The material of the shell can be metal, plastic, glass or ceramic.

    Bulk
  • Series

    In electronic components, the "Series" refers to a group of products that share similar characteristics, designs, or functionalities, often produced by the same manufacturer. These components within a series typically have common specifications but may vary in terms of voltage, power, or packaging to meet different application needs. The series name helps identify and differentiate between various product lines within a manufacturer's catalog.

    SS490
  • Published
    1998
  • Part Status

    Parts can have many statuses as they progress through the configuration, analysis, review, and approval stages.

    Active
  • Moisture Sensitivity Level (MSL)

    Moisture Sensitivity Level (MSL) is a standardized rating that indicates the susceptibility of electronic components, particularly semiconductors, to moisture-induced damage during storage and the soldering process, defining the allowable exposure time to ambient conditions before they require special handling or baking to prevent failures

    1 (Unlimited)
  • Termination

    Termination in electronic components refers to the practice of matching the impedance of a circuit to prevent signal reflections and ensure maximum power transfer. It involves the use of resistors or other components at the end of transmission lines or connections. Proper termination is crucial in high-frequency applications to maintain signal integrity and reduce noise.

    SMD/SMT
  • Type
    Integrated Circuit (IC)
  • Max Operating Temperature

    The Maximum Operating Temperature is the maximum body temperature at which the thermistor is designed to operate for extended periods of time with acceptable stability of its electrical characteristics.

    150°C
  • Min Operating Temperature

    The "Min Operating Temperature" parameter in electronic components refers to the lowest temperature at which the component is designed to operate effectively and reliably. This parameter is crucial for ensuring the proper functioning and longevity of the component, as operating below this temperature may lead to performance issues or even damage. Manufacturers specify the minimum operating temperature to provide guidance to users on the environmental conditions in which the component can safely operate. It is important to adhere to this parameter to prevent malfunctions and ensure the overall reliability of the electronic system.

    -40°C
  • Voltage - Supply

    Voltage - Supply refers to the range of voltage levels that an electronic component or circuit is designed to operate with. It indicates the minimum and maximum supply voltage that can be applied for the device to function properly. Providing supply voltages outside this range can lead to malfunction, damage, or reduced performance. This parameter is critical for ensuring compatibility between different components in a circuit.

    4.5V~10.5V
  • Current - Supply (Max)

    The parameter "Current - Supply (Max)" in electronic components refers to the maximum amount of current that a component can draw from a power supply for its operation. This parameter is critical for ensuring that the power supply can adequately meet the demands of the component without causing damage or malfunction. Exceeding this specified maximum current can lead to overheating, reduced performance, or failure of the component. It is essential to consider this value when designing or integrating components into electronic circuits to maintain reliability and functionality.

    8.7mA
  • Number of Contacts
    3
  • Output Type

    The "Output Type" parameter in electronic components refers to the type of signal or data that is produced by the component as an output. This parameter specifies the nature of the output signal, such as analog or digital, and can also include details about the voltage levels, current levels, frequency, and other characteristics of the output signal. Understanding the output type of a component is crucial for ensuring compatibility with other components in a circuit or system, as well as for determining how the output signal can be utilized or processed further. In summary, the output type parameter provides essential information about the nature of the signal that is generated by the electronic component as its output.

    Analog Voltage
  • Max Output Current

    The maximum current that can be supplied to the load.

    10mA
  • Operating Supply Voltage

    The voltage level by which an electrical system is designated and to which certain operating characteristics of the system are related.

    9V
  • Leakage Current

    Leakage current is a term used in electronics to describe the small amount of current that flows through a component when it is supposed to be in a non-conductive state. This current can occur due to imperfections in the materials used to manufacture the component, as well as other factors such as temperature and voltage. Leakage current can lead to power loss, reduced efficiency, and potential reliability issues in electronic devices. It is important to consider and minimize leakage current in electronic components to ensure proper functionality and performance.

    10μA
  • Max Supply Voltage

    In general, the absolute maximum common-mode voltage is VEE-0.3V and VCC+0.3V, but for products without a protection element at the VCC side, voltages up to the absolute maximum rated supply voltage (i.e. VEE+36V) can be supplied, regardless of supply voltage.

    10.5V
  • Min Supply Voltage

    The minimum supply voltage (V min ) is explored for sequential logic circuits by statistically simulating the impact of within-die process variations and gate-dielectric soft breakdown on data retention and hold time.

    4.5V
  • Operating Supply Current

    Operating Supply Current, also known as supply current or quiescent current, is a crucial parameter in electronic components that indicates the amount of current required for the device to operate under normal conditions. It represents the current drawn by the component from the power supply while it is functioning. This parameter is important for determining the power consumption of the component and is typically specified in datasheets to help designers calculate the overall power requirements of their circuits. Understanding the operating supply current is essential for ensuring proper functionality and efficiency of electronic systems.

    7mA
  • Nominal Supply Current

    Nominal current is the same as the rated current. It is the current drawn by the motor while delivering rated mechanical output at its shaft.

    8.7mA
  • Output Current

    The rated output current is the maximum load current that a power supply can provide at a specified ambient temperature. A power supply can never provide more current that it's rated output current unless there is a fault, such as short circuit at the load.

    600μA
  • Response Time

    the time taken for a circuit or measuring device, when subjected to a change in input signal, to change its state by a specified fraction of its total response to that change.

    3 μs
  • Sensing Method

    The sensing method in electronic components refers to the technique or mechanism used to detect and measure physical phenomena such as temperature, pressure, light, or motion. This includes a variety of technologies such as resistive, capacitive, inductive, and optical sensing methods. The choice of sensing method affects the accuracy, response time, and application suitability of the electronic component. It plays a crucial role in determining how effectively a device can interact with and interpret its environment.

    Hall Effect
  • Max Supply Voltage (DC)

    The parameter "Max Supply Voltage (DC)" in electronic components refers to the maximum voltage that can be safely applied to the component without causing damage. This specification is crucial for ensuring the reliable operation and longevity of the component within a given circuit. Exceeding the maximum supply voltage can lead to overheating, breakdown of internal components, or even permanent damage. It is important to carefully adhere to this specification when designing or using electronic circuits to prevent potential failures and ensure the safety of the components.

    10.5V
  • Min Supply Voltage (DC)

    The parameter "Min Supply Voltage (DC)" in electronic components refers to the minimum voltage level required for the component to operate properly. It indicates the lowest voltage that can be safely applied to the component without causing damage or malfunction. This parameter is crucial for ensuring the reliable and stable operation of the component within its specified operating range. It is important for designers and engineers to adhere to the specified minimum supply voltage to prevent potential issues such as erratic behavior, reduced performance, or permanent damage to the component.

    4.5V
  • Sensing Range

    The sensing range of position sensors is the displacement between the sensing face of the sensor and the approaching measurement object that triggers a signal change in the sensor.

    ±84mT
  • Switching Current

    Switching current refers to the maximum current that an electronic component, such as a transistor or relay, can handle when transitioning between its on and off states. It is a critical parameter that affects the performance and reliability of the component during switching operations. Exceeding the specified switching current can lead to overheating, damage, or failure of the device. Understanding switching current is essential for designing circuits that operate safely and efficiently.

    1mA
  • Axis

    In electronic components, the parameter "Axis" typically refers to the orientation or direction along which a specific characteristic or measurement is being considered. For example, in a sensor or accelerometer, the axis may indicate the direction in which the device is measuring acceleration. In a motor or actuator, the axis may refer to the direction of movement or rotation.Understanding the axis of a component is crucial for proper installation, calibration, and operation. It helps in determining how the component will interact with other parts of a system and how its performance can be optimized. Different components may have multiple axes to consider, especially in complex systems where movement or measurements occur in multiple directions.Overall, the axis parameter provides important information about the spatial orientation or directionality of an electronic component, guiding engineers and technicians in effectively utilizing the component within a larger system.

    Single
  • Sensitivity (mV/G)

    The parameter "Sensitivity (mV/G)" in electronic components refers to the ratio of the output voltage of a sensor to the applied mechanical input in terms of acceleration or force, typically measured in millivolts per unit of gravitational force (G). This parameter indicates how effectively the sensor converts mechanical input into electrical output signals. A higher sensitivity value means that the sensor can detect smaller changes in the input and produce a larger output signal, making it more responsive and accurate in measuring the applied force or acceleration. Understanding the sensitivity of a sensor is crucial for selecting the appropriate component for specific applications where precise measurements are required.

    0.1 mV/g
  • Features

    In the context of electronic components, the term "Features" typically refers to the specific characteristics or functionalities that a particular component offers. These features can vary depending on the type of component and its intended use. For example, a microcontroller may have features such as built-in memory, analog-to-digital converters, and communication interfaces like UART or SPI.When evaluating electronic components, understanding their features is crucial in determining whether they meet the requirements of a particular project or application. Engineers and designers often look at features such as operating voltage, speed, power consumption, and communication protocols to ensure compatibility and optimal performance.In summary, the "Features" parameter in electronic components describes the unique attributes and capabilities that differentiate one component from another, helping users make informed decisions when selecting components for their electronic designs.

    Temperature Compensated
  • Height
    1.6002mm
  • Length
    4.0386mm
  • Width
    2.9972mm
  • REACH SVHC

    The parameter "REACH SVHC" in electronic components refers to the compliance with the Registration, Evaluation, Authorization, and Restriction of Chemicals (REACH) regulation regarding Substances of Very High Concern (SVHC). SVHCs are substances that may have serious effects on human health or the environment, and their use is regulated under REACH to ensure their safe handling and minimize their impact.Manufacturers of electronic components need to declare if their products contain any SVHCs above a certain threshold concentration and provide information on the safe use of these substances. This information allows customers to make informed decisions about the potential risks associated with using the components and take appropriate measures to mitigate any hazards.Ensuring compliance with REACH SVHC requirements is essential for electronics manufacturers to meet regulatory standards, protect human health and the environment, and maintain transparency in their supply chain. It also demonstrates a commitment to sustainability and responsible manufacturing practices in the electronics industry.

    Unknown
  • Radiation Hardening

    Radiation hardening is the process of making electronic components and circuits resistant to damage or malfunction caused by high levels of ionizing radiation, especially for environments in outer space (especially beyond the low Earth orbit), around nuclear reactors and particle accelerators, or during nuclear accidents or nuclear warfare.

    No
  • RoHS Status

    RoHS means “Restriction of Certain Hazardous Substances” in the “Hazardous Substances Directive” in electrical and electronic equipment.

    RoHS Compliant
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Download datasheets and manufacturer documentation for Honeywell Sensing and Productivity Solutions SS496A.

Product Description: Honeywell SS496A Magnetic Sensor

The Honeywell SS496A is a high-performance, temperature-compensated magnetic sensor designed to provide accurate and reliable measurements in various applications. This integrated circuit (IC) utilizes the Hall Effect sensing method to detect magnetic fields, making it an ideal choice for applications requiring precise and stable performance.

Description

The SS496A is a surface-mountable, through-hole compatible magnetic sensor that operates within a wide temperature range of -40°C to 150°C. It features a compact 3-SIP package, ensuring minimal space requirements while maintaining optimal performance. With a nominal supply current of 8.7mA and an operating supply voltage range of 4.5V to 10.5V, this sensor is versatile and easy to integrate into various electronic systems.

Features

  • Temperature Compensated: The SS496A is designed to maintain its accuracy across a broad temperature range, ensuring consistent performance in diverse environmental conditions.
  • High Sensitivity: With a sensitivity of 0.1 mV/g, this sensor offers high sensitivity for detecting small changes in magnetic fields.
  • Fast Response Time: The sensor boasts a fast response time of just 3 μs, making it suitable for applications requiring quick and accurate measurements.
  • Low Power Consumption: The operating supply current is 7mA, which is relatively low compared to other sensors in its class, making it energy-efficient and suitable for battery-powered devices.
  • Analog Voltage Output: The output type is an analog voltage, providing a straightforward interface for integration into various electronic circuits.

Applications

  1. Primary Applications:
  2. Automotive Systems: The SS496A can be used in automotive systems such as parking sensors, seat position sensors, and other magnetic field detection applications.
  3. Industrial Automation: It is suitable for industrial automation where precise magnetic field detection is required, such as in robotic arms or conveyor systems.
  4. Medical Devices: The sensor's high sensitivity and temperature compensation make it useful in medical devices that require accurate positioning or movement detection.

  5. Secondary Applications:

  6. Consumer Electronics: The SS496A can be integrated into consumer electronics like smart home devices or wearable technology where magnetic field detection is necessary.
  7. Aerospace: Although not radiation-hardened, the sensor's performance characteristics make it potentially useful in aerospace applications where precise magnetic field detection is required.

Alternative Parts

For those looking for alternative parts with similar specifications or functionalities:

  • Honeywell SS490 series also offers similar magnetic sensors with slight variations in specifications.
  • Other manufacturers like STMicroelectronics (e.g., STTS751) or NXP Semiconductors (e.g., NXP TLE5010) provide competitive alternatives with similar features.

Embedded Modules

The Honeywell SS496A is commonly used in various embedded modules designed for specific applications:

  • Automotive control units
  • Industrial control systems
  • Medical device modules

In summary, the Honeywell SS496A magnetic sensor is a robust and reliable component ideal for a wide range of applications requiring precise magnetic field detection across various environmental conditions. Its compact design, low power consumption, and high sensitivity make it an excellent choice for both primary and secondary applications across different industries.

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