Stackpole Electronics Inc PV300K3225T
Stackpole Electronics Inc PV300K3225T
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Stackpole Electronics Inc PV300K3225T

Manufacturer No:

PV300K3225T

Utmel No:

2355-PV300K3225T

Package:

2-SMD, J-Lead

Datasheet:

PV Series

ECAD Model:

Description:

VARISTOR 470V 400A 3225

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FedEx International, 5-7 business days.

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  • Prepare productStep1:Prepare product
  • Vacuum packagingStep2:Vacuum packaging
  • Anti-static bagStep3:Anti-static bag
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PV300K3225T information

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Stackpole Electronics Inc PV300K3225T technical specifications, attributes, parameters and parts with similar specifications to Stackpole Electronics Inc PV300K3225T.
  • Type
    Parameter
  • Factory Lead Time
    20 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
  • 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.

    Surface Mount, MLCV
  • Package / Case

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

    2-SMD, J-Lead
  • Terminal Shape

    Terminal Shape in electronic components refers to the physical design of the connection points on the component that allow for electrical connections to be made. These terminals can come in various shapes such as pins, leads, pads, or terminals with specific configurations like surface mount or through-hole. The terminal shape is important as it determines how the component can be mounted on a circuit board or connected to other components. Different terminal shapes are used based on the specific requirements of the electronic circuit design and manufacturing process.

    J BEND
  • 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~85°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.

    Tape & Reel (TR)
  • 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.

    PV
  • Published
    2011
  • Tolerance

    In electronic components, "tolerance" refers to the acceptable deviation or variation from the specified or ideal value of a particular parameter, such as resistance, capacitance, or voltage. It indicates the range within which the actual value of the component can fluctuate while still being considered acceptable for use in a circuit. Tolerance is typically expressed as a percentage or a specific value and is important for ensuring the accuracy and reliability of electronic devices. Components with tighter tolerances are more precise but may also be more expensive. It is crucial to consider tolerance when selecting components to ensure proper functionality and performance of the circuit.

    10%
  • JESD-609 Code

    The "JESD-609 Code" in electronic components refers to a standardized marking code that indicates the lead-free solder composition and finish of electronic components for compliance with environmental regulations.

    e3
  • Pbfree Code

    The "Pbfree Code" parameter in electronic components refers to the code or marking used to indicate that the component is lead-free. Lead (Pb) is a toxic substance that has been widely used in electronic components for many years, but due to environmental concerns, there has been a shift towards lead-free alternatives. The Pbfree Code helps manufacturers and users easily identify components that do not contain lead, ensuring compliance with regulations and promoting environmentally friendly practices. It is important to pay attention to the Pbfree Code when selecting electronic components to ensure they meet the necessary requirements for lead-free applications.

    yes
  • 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)
  • Number of Terminations
    2
  • ECCN Code

    An ECCN (Export Control Classification Number) is an alphanumeric code used by the U.S. Bureau of Industry and Security to identify and categorize electronic components and other dual-use items that may require an export license based on their technical characteristics and potential for military use.

    EAR99
  • Terminal Finish

    Terminal Finish refers to the surface treatment applied to the terminals or leads of electronic components to enhance their performance and longevity. It can improve solderability, corrosion resistance, and overall reliability of the connection in electronic assemblies. Common finishes include nickel, gold, and tin, each possessing distinct properties suitable for various applications. The choice of terminal finish can significantly impact the durability and effectiveness of electronic devices.

    Matte Tin (Sn)
  • Additional Feature

    Any Feature, including a modified Existing Feature, that is not an Existing Feature.

    FLAME PROOF
  • HTS Code

    HTS (Harmonized Tariff Schedule) codes are product classification codes between 8-1 digits. The first six digits are an HS code, and the countries of import assign the subsequent digits to provide additional classification. U.S. HTS codes are 1 digits and are administered by the U.S. International Trade Commission.

    8533.40.40.00
  • Capacitance

    Capacitance is a fundamental electrical property of electronic components that describes their ability to store electrical energy in the form of an electric field. It is measured in farads (F) and represents the ratio of the amount of electric charge stored on a component to the voltage across it. Capacitors are passive components that exhibit capacitance and are commonly used in electronic circuits for various purposes such as filtering, energy storage, timing, and coupling. Capacitance plays a crucial role in determining the behavior and performance of electronic systems by influencing factors like signal propagation, frequency response, and power consumption.

    70pF
  • Packing Method

    The packing method in electronic components refers to the technique used to package and protect the component during shipping and handling. It encompasses various forms including tape and reel, tray, tube, or bulk packaging, each suited for different types of components and manufacturing processes. The choice of packing method can affect the ease of handling, storage, and the efficiency of assembly in automated processes. Additionally, it plays a crucial role in ensuring the reliability and integrity of the components until they are used in electronic devices.

    TR
  • Construction

    Construction in electronic components refers to the design and materials used in the manufacturing of the components. It encompasses the physical structure, arrangement, and integration of various parts like substrates, conductors, and insulators. The construction impacts the performance, reliability, and thermal properties of the component, influencing how it interacts with electrical signals and other components in a circuit. Different construction techniques can also affect the size, weight, and cost of the electronic component.

    Rectangular
  • Resistor Type

    The parameter "Resistor Type" in electronic components refers to the specific material and construction of a resistor that determines its electrical properties and performance characteristics. There are various types of resistors available, such as carbon film, metal film, wirewound, and thick film resistors, each with its own advantages and applications. The resistor type affects factors like tolerance, temperature coefficient, power rating, and stability, which are important considerations when selecting a resistor for a particular circuit. Choosing the right resistor type is crucial for ensuring proper functionality and reliability of electronic devices and circuits.

    VARISTOR
  • Case Code (Metric)

    Case Code (Metric) in electronic components refers to a standardized system that specifies the dimensions of surface-mount devices (SMD) in millimeters, consisting of a four-digit number where the first two digits represent the width and the last two digits represent the height of the component, measured in tenths of a millimeter. The metric case codes are standardized by organizations such as the EIA and IEC, and are often compared to the Imperial code which uses inches, allowing for easier identification and selection of components across different regions and industries. This coding system is widely used in the design and manufacturing of electronic devices, particularly in applications requiring compact and efficient component layouts, and is essential for engineers and designers to ensure proper component selection and facilitate the assembly process in electronic manufacturing.

    8063
  • Case Code (Imperial)

    The term "Case Code (Imperial)" in electronic components refers to a standardized system used to specify the physical dimensions and package types of components, particularly capacitors and resistors. This code helps manufacturers and engineers identify the size and form factor of the component, ensuring compatibility with circuit designs and PCB layouts. In the context of electronic components, the Case Code (Imperial) typically follows a numerical format that indicates the length and width of the component in inches. For example, a Case Code of 1206 signifies a component that measures 0.12 inches by 0.06 inches. This coding system is essential for selecting the correct components for specific applications, as it provides a quick reference to the physical characteristics of the part, including its footprint and mounting style.

    3225
  • Number of Circuits
    1
  • Max Voltage Rating (AC)

    The parameter "Max Voltage Rating (AC)" in electronic components refers to the maximum alternating current (AC) voltage that the component can safely handle without being damaged. This rating is important for ensuring the component's longevity and reliability in a circuit. Exceeding the maximum voltage rating can lead to overheating, breakdown, or even permanent damage to the component. It is crucial to select components with voltage ratings that are suitable for the intended application to prevent malfunctions or safety hazards in the circuit.

    300V
  • Terminal Placement

    Terminal Placement in electronic components refers to the physical location of the terminals or connection points on the component where external electrical connections are made. The placement of terminals is crucial for ensuring proper connectivity and functionality of the component within a circuit. It is important to consider factors such as spacing, orientation, and accessibility of terminals to facilitate easy installation and maintenance. Proper terminal placement also helps in reducing the risk of short circuits or other electrical issues. Overall, terminal placement plays a significant role in the design and usability of electronic components.

    DUAL ENDED
  • Max Voltage Rating (DC)

    The parameter "Max Voltage Rating (DC)" in electronic components refers to the maximum direct current (DC) voltage that the component can safely handle without being damaged. This rating is crucial for ensuring the proper functioning and longevity of the component within an electrical circuit. Exceeding the maximum voltage rating can lead to breakdown or failure of the component, potentially causing damage to the entire circuit. It is important to carefully consider and adhere to the specified max voltage rating when designing or working with electronic circuits to prevent any potential risks or malfunctions.

    385V
  • Max Surge Current

    Surge current is a peak non repetitive current. Maximum (peak or surge) forward current = IFSM or if(surge), the maximum peak amount of current the diode is able to conduct in forward bias mode.

    400A
  • Capacitance @ Frequency

    Capacitance @ Frequency refers to the value of capacitance that a capacitor exhibits when subjected to an alternating current (AC) signal at a specific frequency. This parameter highlights how the capacitor's behavior changes with frequency, as capacitance can vary due to effects like equivalent series resistance (ESR) and loss factors. Typically measured in microfarads (µF) or picofarads (pF), this value is crucial for applications involving signal coupling, filtering, and timing where AC signals are prevalent. Understanding capacitance at different frequencies helps in selecting the right capacitor for specific circuit functions.

    70pF @ 1kHz
  • Varistor Voltage (Max)

    The parameter "Varistor Voltage (Max)" refers to the maximum voltage that a varistor can withstand without breaking down. A varistor is a type of electronic component that is used to protect circuits from overvoltage conditions by rapidly changing its resistance in response to voltage fluctuations. When the voltage across a varistor exceeds its maximum rating, it will conduct current and dissipate the excess energy as heat, thereby protecting the circuit. It is important to select a varistor with a maximum voltage rating that is higher than the expected operating voltage to ensure reliable protection against overvoltage events.

    517V
  • Energy

    In electronic components, "Energy" refers to the amount of electrical power consumed or stored by the component during operation. It is a crucial parameter that determines the efficiency and performance of the component. Energy consumption is typically measured in units such as watt-hours (Wh) or joules (J), while energy storage is often quantified in terms of capacitance or battery capacity. Understanding the energy characteristics of electronic components is essential for designing efficient and reliable electronic systems.

    15J
  • Varistor Voltage (Min)

    Varistor Voltage (Min) is the minimum voltage at which a varistor begins to conduct significantly and clamp voltage spikes. It is a critical parameter as it indicates the threshold for the protective action of the varistor. When the voltage exceeds this level, the varistor transitions from a high-resistance state to a low-resistance state, providing a path to divert excess current. This feature helps protect electronic circuits from transient voltage surges.

    423V
  • Varistor Voltage (Typ)

    The parameter "Varistor Voltage (Typ)" in electronic components refers to the typical voltage at which a varistor begins to conduct significantly. A varistor is a type of voltage-dependent resistor that is commonly used to protect electronic circuits from voltage spikes and surges. When the voltage across a varistor exceeds its varistor voltage, the device starts to conduct and shunt the excess voltage to protect the circuit. The "Typ" designation indicates that the specified voltage is a typical value, and actual varistor voltages may vary slightly within a specified range. Understanding the varistor voltage is crucial for selecting the appropriate varistor for a given application to ensure effective protection against voltage transients.

    470V
  • Maximum AC Volts

    Maximum AC Volts is a parameter that specifies the maximum voltage level that an electronic component can safely handle when operating with an alternating current (AC) input. This parameter is crucial for ensuring the component's reliability and longevity, as exceeding the maximum AC voltage can lead to damage or failure. It is typically expressed in volts and is determined through testing and analysis of the component's electrical characteristics. Designers and engineers must carefully consider the maximum AC volts rating when selecting components for a circuit to prevent overloading and potential hazards.

    300V
  • Varistor Voltage

    A varistor is an electronic component that is used to protect circuits from overvoltage conditions. The varistor voltage, also known as the "clamping voltage" or "breakdown voltage," is the voltage level at which the varistor begins to conduct significantly and divert excess current away from the circuit. When the voltage across the varistor exceeds its varistor voltage, the varistor's resistance decreases rapidly, allowing it to absorb the excess energy and protect the circuit components. Varistor voltage is an important parameter to consider when selecting a varistor for a specific application, as it determines the level of overvoltage protection provided by the component.

    470V
  • Clamping Current

    Clamping current refers to the maximum current that can safely pass through a protective device, such as a surge protector or a transient voltage suppressor, before it begins to conduct and limit the voltage. This current level is crucial for protecting sensitive electronic components from damage during voltage spikes or surges. It ensures that the device will divert excessive current away from the circuit, thereby preventing potential failure of the components being protected.

    5A
  • 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.

    ROHS3 Compliant
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Download datasheets and manufacturer documentation for Stackpole Electronics Inc PV300K3225T.

Product Description: Stackpole Electronics Inc. PV300K3225T Varistor

1. Description

The Stackpole Electronics Inc. PV300K3225T is a high-performance varistor designed for circuit protection applications. This device is part of the PV series, known for its reliability and robustness in safeguarding electronic circuits from voltage spikes and transient surges. The PV300K3225T features a flame-proof construction, making it suitable for use in harsh environments where fire safety is a critical concern.

2. Features

  • Flame-Proof Construction: Ensures the varistor remains operational even in extreme conditions, reducing the risk of fire.
  • High Capacitance: 70pF at 1kHz, providing effective surge current handling.
  • High Energy Absorption: Capable of absorbing up to 15J of energy, making it ideal for applications requiring robust protection.
  • High Voltage Rating: Maximum AC voltage rating of 300V and maximum DC voltage rating of 385V.
  • Surface Mountable: Designed for easy integration into modern electronic assemblies using surface mount technology (SMT).
  • Radiation Hardening Not Required: Suitable for standard electronic applications without the need for radiation-hardened components.
  • RoHS3 Compliant: Meets the requirements of the Restriction of Hazardous Substances Directive (RoHS3), ensuring environmental sustainability.

3. Applications

Primary Applications:
  • Circuit Protection in Industrial Equipment: The PV300K3225T is particularly useful in industrial settings where machinery and equipment are exposed to high voltage transients.
  • Automotive Electronics: Its flame-proof feature makes it an excellent choice for automotive electronics, ensuring safety in the event of electrical faults.
  • Aerospace and Defense: Although not radiation-hardened, its reliability and robustness make it suitable for some aerospace and defense applications where standard protection is required.
Secondary Applications:
  • Consumer Electronics: Can be used in consumer electronics to protect against power surges and spikes.
  • Medical Devices: Provides reliable protection in medical devices, ensuring patient safety during electrical malfunctions.

4. Alternative Parts

Alternative parts to consider include: - Stackpole Electronics Inc. PV300K3220T - Stackpole Electronics Inc. PV300K3226T

These alternatives offer similar performance characteristics but may have slight variations in capacitance or voltage ratings.

5. Embedded Modules

The PV300K3225T varistor is commonly used in various embedded modules designed for circuit protection: - Power Supply Modules: Integrated into power supply modules to safeguard against voltage spikes. - Motor Control Units: Used in motor control units to protect against electrical transients. - Communication Systems: Incorporated into communication systems to ensure reliable data transmission during electrical disturbances.

The Stackpole Electronics Inc. PV300K3225T varistor is a reliable and robust component designed to provide comprehensive protection against voltage surges and spikes in a wide range of applications. Its flame-proof construction and high energy absorption capabilities make it an excellent choice for industries requiring stringent safety standards.

The three parts on the right have similar specifications to Stackpole Electronics Inc & PV300K3225T.
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