

Amphenol ICC (FCI) 10104999-C0E-30DLF
Manufacturer No:
10104999-C0E-30DLF
Tiny WHSLManufacturer:
Utmel No:
143-10104999-C0E-30DLF
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Description:
XCede® Series Header, Male Pins and Blades Press-Fit Gold or Gold, GXT™ Gray 30.0μin 0.76μm -55°C~85°C Bulk Through Hole
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- TypeParameter
- Contact Plating
Contact plating (finish) provides corrosion protection for base metals and optimizes the mechanical and electrical properties of the contact interfaces.
GXT, Gold - 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.
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 - Insulation MaterialsTHERMOPLASTIC
- 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.
-55°C~85°C - 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.
XCede® - 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) - 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.
Press-Fit - Connector Type
Connector Type in electronic components refers to the specific design and configuration of the connector used to establish electrical connections between different devices or components. This parameter describes the physical shape, size, and layout of the connector, as well as the number and arrangement of pins or contacts. Common connector types include USB, HDMI, RJ45, and D-sub connectors, each serving different purposes and applications. Understanding the connector type is crucial for ensuring compatibility and proper functionality when connecting electronic devices together.
Header, Male Pins and Blades - ColorGray
- MIL Conformance
MIL Conformance refers to the compliance of electronic components with military standards set by the Department of Defense. These standards define rigorous requirements for reliability, performance, and durability under extreme conditions. Components that meet MIL Conformance are often used in defense, aerospace, and other critical applications where failure is not an option. Adherence to these standards ensures that the components can withstand harsh environments, such as extreme temperatures, vibrations, and humidity.
NO - DIN Conformance
DIN Conformance refers to the compliance of an electronic component with the standards set by the Deutsches Institut für Normung (DIN), which is the German Institute for Standardization. DIN standards cover a wide range of technical specifications and requirements for various products, including electronic components. When a component is labeled as DIN-conformant, it means that it meets the specific criteria outlined by DIN for factors such as dimensions, materials, performance, and safety. Ensuring DIN conformance helps to guarantee interoperability, quality, and reliability of electronic components in various applications and industries. Manufacturers often adhere to DIN standards to demonstrate the quality and reliability of their products to customers and to ensure compatibility with other DIN-compliant devices.
NO - IEC Conformance
IEC Conformance refers to the compliance of electronic components with standards set by the International Electrotechnical Commission (IEC). These standards ensure that the components meet specific safety, performance, and interoperability criteria. Adhering to IEC conformance helps manufacturers produce reliable and compatible products, facilitating international trade and promoting consumer safety. Components that conform to IEC standards are often preferred in global markets due to their quality assurance and regulatory acceptance.
NO - OptionGENERAL PURPOSE
- Total Number of Contacts96
- Number of Positions LoadedAll
- Number of ConductorsONE
- Reference Standard
In the context of electronic components, the term "Reference Standard" typically refers to a specific set of guidelines, specifications, or requirements that serve as a benchmark for evaluating the quality, performance, and characteristics of the component. These standards are established by organizations such as the International Electrotechnical Commission (IEC), the Institute of Electrical and Electronics Engineers (IEEE), or specific industry bodies.Reference standards help ensure consistency and interoperability among different components, as they provide a common framework for manufacturers, designers, and users to adhere to. They outline parameters such as electrical properties, mechanical dimensions, environmental conditions, and safety considerations that the component must meet to be considered compliant.By referencing these standards, manufacturers can design and produce components that meet industry-recognized criteria, which in turn helps users select the right components for their applications with confidence. Adhering to reference standards also facilitates regulatory compliance and promotes overall quality and reliability in electronic systems.
UL - Contact Finish
Contact finish refers to the surface coating or treatment applied to the electrical contacts of electronic components. This finish is crucial for ensuring reliable electrical connections and preventing corrosion or oxidation of the contacts. Common contact finishes include gold, silver, tin, and nickel, each offering different levels of conductivity, durability, and resistance to environmental factors. The choice of contact finish depends on the specific application requirements, such as operating conditions, cost considerations, and compatibility with other components in the circuit. Selecting the appropriate contact finish is essential for maintaining the performance and longevity of electronic devices.
Gold or Gold, GXT™ - Reliability
Reliability in electronic components refers to the ability of a component to perform its required functions under stated conditions for a specified period of time. It is a measure of the likelihood that a component will not fail during its intended lifespan. High reliability indicates that the component is less likely to experience unexpected failures, which is crucial for maintaining the overall performance and safety of electronic systems. Factors affecting reliability include material quality, manufacturing processes, and environmental conditions.
COMMERCIAL - PCB Contact Pattern
The "PCB Contact Pattern" refers to the layout or arrangement of contact points on a printed circuit board (PCB) where electronic components are mounted or connected. This pattern determines how components will be physically and electrically connected to the PCB. The contact pattern typically includes pads, vias, traces, and other features that facilitate the soldering or mounting of components onto the board. It is crucial for ensuring proper electrical connections and reliable performance of the electronic device. Designing an appropriate PCB contact pattern is essential for the functionality, efficiency, and durability of the electronic components and the overall circuitry.
STAGGERED - Contact Style
The parameter "Contact Style" in electronic components refers to the specific design and arrangement of the contact points that enable electrical connection in various devices. It dictates how components interface with each other, affecting factors such as reliability, durability, and performance. Different contact styles can include configurations like pin, socket, blade, or surface mount, each designed to cater to specific applications and requirements in circuit assembly.
BLADE PIN-SKT - Contact Resistance
Contact resistance refers to the resistance encountered at the point of contact between two conductive materials or components. It is a measure of how well the two materials make electrical contact with each other. High contact resistance can lead to voltage drops, power losses, and inefficient electrical connections. It is typically measured in ohms and is an important parameter to consider in electronic components such as connectors, switches, and relays. Lower contact resistance is desirable for ensuring reliable and efficient electrical connections in electronic circuits.
55mOhm - Insulation Resistance
The measurement of insulation resistance is carried out by means of a megohmmeter – high resistance range ohmmeter. A general rule-of-thumb is 10 Megohm or more.
1000000000Ohm - Connector Style
Connector Style in electronic components refers to the physical design and configuration of the connector used to establish electrical connections between different devices or components. This parameter describes the shape, size, and layout of the connector, as well as the method of attachment and the number of pins or contacts it has. Different connector styles are used for various applications, such as board-to-board connections, cable-to-board connections, or wire-to-board connections. The connector style plays a crucial role in determining the compatibility and functionality of electronic devices, as it ensures proper signal transmission and power delivery between interconnected components.
XCede®, Guide Left - Contact Pattern
In electronic components, the "Contact Pattern" refers to the arrangement and design of the contact points on a component, such as a connector or a switch. The contact pattern determines how electrical connections are made between the component and other devices in a circuit. It includes the number, size, spacing, and configuration of the contact points, which can vary depending on the specific application and requirements of the component. A well-designed contact pattern is crucial for ensuring reliable and efficient electrical connections, as it affects factors such as signal integrity, power transmission, and durability of the component. Manufacturers carefully engineer contact patterns to meet the desired performance specifications and standards for the component's intended use.
STAGGERED - Insertion Force-Max
Insertion Force-Max is a parameter used to specify the maximum force required to insert an electronic component into its corresponding socket or connector. It is a critical specification as it ensures that the component is securely and properly seated in the socket without causing any damage. This parameter is typically measured in units of force, such as Newtons or pounds-force, and is important for ensuring the reliability and longevity of the electronic assembly. Manufacturers provide this specification to help users understand the amount of force that can be safely applied during the insertion process to prevent any potential issues or failures.
.6394 N - Withdrawl Force-Min.14734 N
- Contact Layout, Typical
The parameter "Contact Layout, Typical" in electronic components refers to the standard arrangement or configuration of the contact points within the component. This layout defines how the electrical connections are established between the component and other parts of the circuit. The typical contact layout is designed to ensure proper connectivity and functionality of the component within the circuit design. It is an important consideration when selecting and integrating electronic components to ensure compatibility and reliable performance in the overall system.
72 Differential Pairs - Number of Columns8
- Connector Usage
Connector Usage refers to the intended purpose or application of a connector in electronic components. Connectors are essential components that facilitate the connection and disconnection of various electrical circuits or components within electronic devices. The connector usage parameter specifies how a particular connector should be utilized, such as for power supply, data transfer, signal transmission, or other specific functions. Understanding the connector usage helps in selecting the right type of connector for a particular application, ensuring proper functionality and compatibility within the electronic system.
Backplane - 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.
Key - Contact Finish Thickness
Contact Finish Thickness refers to the measurement of the layer of conductive material applied to the surfaces of electrical contacts in electronic components. This thickness is critical as it influences the electrical conductivity, solderability, wear resistance, and overall performance of the connection. The materials used for the contact finish can include gold, silver, or other metals, and the specified thickness is designed to ensure reliable operation over the component's lifespan.
30.0μin 0.76μm - Length - Termination
Length - Termination refers to the specific distance over which an electrical signal travels before it reaches the termination point in electronic components. This parameter is crucial for high-speed signal integrity, as it can impact signal reflection and transmission efficiency. Proper length termination ensures that signals reach their destination without distortion or loss, thereby maintaining the performance of electronic circuits. It is often influenced by the design of the circuit board, the type of components used, and the overall system requirements.
0.059 inch - Material Flammability Rating
The Material Flammability Rating is a parameter used to indicate the flammability characteristics of materials used in electronic components. It is typically measured according to standards such as UL94, which classifies materials into different categories based on their flammability properties. The rating helps in assessing the fire safety of electronic devices and components, as materials with higher flammability ratings are more resistant to ignition and combustion. Manufacturers often specify the Material Flammability Rating of their components to ensure compliance with safety regulations and standards. It is important to consider this parameter when designing and selecting electronic components to minimize fire hazards and ensure the overall safety of the end product.
UL94 V-0 - RoHS Status
RoHS means “Restriction of Certain Hazardous Substances” in the “Hazardous Substances Directive” in electrical and electronic equipment.
RoHS Compliant - Flammability Rating
The Flammability Rating of electronic components refers to the material's ability to resist catching fire or burning when exposed to heat or flames. It is an important safety consideration in electronic design and manufacturing, especially for components that may be used in environments where fire hazards are a concern. The rating is typically expressed using a standardized scale, such as UL94, which classifies materials based on their flammability characteristics. Components with higher flammability ratings are more resistant to ignition and contribute to overall fire safety in electronic devices. It is crucial to select components with appropriate flammability ratings to ensure the reliability and safety of electronic products.
UL94 V-0
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