

Sanrex Corporation TG16E20
Manufacturer No:
TG16E20
Tiny WHSLManufacturer:
Utmel No:
2118-TG16E20
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Description:
Description: TRIAC
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- TypeParameter
- Part Life Cycle CodeContact Manufacturer
- Ihs ManufacturerSANSHA ELECTRIC MFG CO LTD
- Package Description,
- Leakage Current-Max3 mA
- Number of Elements1
- Operating Temperature-Max125 °C
- Operating Temperature-Min-40 °C
- 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 - Reach Compliance Code
Reach Compliance Code refers to a designation indicating that electronic components meet the requirements set by the Registration, Evaluation, Authorization, and Restriction of Chemicals (REACH) regulation in the European Union. It signifies that the manufacturer has assessed and managed the chemical substances within the components to ensure safety and environmental protection. This code is vital for compliance with regulations aimed at minimizing risks associated with hazardous substances in electronic products.
unknown - Trigger Device Type
Trigger Device Type is a parameter in electronic components that refers to the type of device or mechanism used to initiate a specific action or function within the component. This parameter specifies the specific trigger device, such as a sensor, switch, or signal input, that is required to activate or control the operation of the component. Understanding the trigger device type is crucial for proper integration and operation of the electronic component within a larger system or circuit. By specifying the appropriate trigger device type, engineers and designers can ensure that the component functions correctly and responds to the intended input signals or conditions.
TRIAC - Non-Repetitive Pk On-state Cur
Non-Repetitive Pk On-state Current, often abbreviated as Non-Repetitive Pk On-state Cur, is a parameter that defines the maximum current that a semiconductor device, such as a thyristor or triac, can withstand for a short duration without sustaining damage. This current level is typically specified under particular conditions and is meant to represent transient events rather than continuous operation. It indicates the device's ability to handle sudden surges in current, which may occur due to load changes or fault conditions, while ensuring that the component does not suffer thermal or electrical breakdown during this brief period.
160 A - Holding Current-Max
The parameter "Holding Current-Max" in electronic components refers to the maximum current required to maintain the component in its ON state once it has been triggered or turned on. This holding current is necessary to prevent the component from turning off unintentionally due to fluctuations in the input signal or other external factors. It is an important specification for components such as thyristors, triacs, and other semiconductor devices that require a continuous current to remain in the conducting state. Understanding the Holding Current-Max value is crucial for ensuring the reliable operation of the component within its specified parameters.
30 mA - DC Gate Trigger Current-Max
The parameter "DC Gate Trigger Current-Max" refers to the maximum current required to trigger the gate of a semiconductor device, such as a thyristor or a triac. This parameter specifies the maximum current that must be applied to the gate terminal to turn on the device reliably. Exceeding this maximum current may result in improper operation or damage to the component. It is an important parameter to consider when designing circuits that involve triggering these semiconductor devices, as it ensures proper functionality and reliability of the component.
50 mA - Desc. of Screw Terminals
The parameter "Desc. of Screw Terminals" in electronic components refers to the description of the screw terminals used for connecting wires or cables to the component. Screw terminals are commonly found in electronic devices and provide a secure and reliable way to make electrical connections. The description may include details such as the type of screw terminal (e.g., terminal block, barrier strip), the material used (e.g., brass, steel), the size of the terminal, and any specific features or specifications related to the screw terminals. Understanding the description of screw terminals is important for proper installation and connection of the electronic component in a circuit or system.
0 - Desc. of Quick-Connects
The parameter "Desc. of Quick-Connects" in electronic components refers to the description or information provided about the quick-connect terminals or connectors used in the component. Quick-connects are a type of electrical connector that allows for fast and easy connection and disconnection of wires or cables without the need for tools. The description may include details such as the type of quick-connect terminal used, its size, shape, material, and any specific features or specifications related to its use. Understanding this parameter can help users select the appropriate components and ensure proper connections in electronic circuits or systems.
G-MT1-MT2 - DC Gate Trigger Voltage-Max
The parameter "DC Gate Trigger Voltage-Max" refers to the maximum voltage required to trigger the gate of a semiconductor device, such as a thyristor or a triac. This voltage level is crucial for initiating the conduction state of the device, allowing current to flow through it. Exceeding this maximum voltage can lead to unintended triggering or damage to the component. Manufacturers specify this parameter to ensure proper operation and reliability of the device in various applications. Designers and engineers need to consider this specification when selecting and using these components in their circuits to prevent malfunctions and ensure optimal performance.
3 V - On-State Voltage-Max
The parameter "On-State Voltage-Max" in electronic components refers to the maximum voltage drop across the component when it is in the fully conducting state. This parameter is important because it indicates the maximum voltage that can be applied across the component while still allowing current to flow through it efficiently. Exceeding this voltage may lead to overheating, damage, or even failure of the component. Designers and engineers use this parameter to ensure that the component is operated within its safe operating limits to maintain reliability and performance in the circuit.
1.5 V