

Texas Instruments GD65232DWRE4
Driver Drivers Interface ICs
Manufacturer No:
GD65232DWRE4
Tiny WHSLManufacturer:
Utmel No:
2502-GD65232DWRE4
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Description:
Receivers 3 Bits 3 Functions
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- TypeParameter
- Surface Mount
having leads that are designed to be soldered on the side of a circuit board that the body of the component is mounted on.
YES - Number of Terminals20
- Package DescriptionGREEN, PLASTIC, SOIC-20
- Package StyleSMALL OUTLINE
- Moisture Sensitivity Levels1
- Package Body MaterialPLASTIC/EPOXY
- Package Equivalence CodeSOP20,.4
- Operating Temperature-Min-40 °C
- Supply Voltage-Nom5 V
- Reflow Temperature-Max (s)NOT SPECIFIED
- Supply Voltage-Min4.5 V
- Operating Temperature-Max85 °C
- Rohs CodeYes
- Manufacturer Part NumberGD65232DWRE4
- Interface StandardsEIA-232-F; TIA-232-F; V.28
- Package CodeSOP
- Package ShapeRECTANGULAR
- ManufacturerTexas
- Part Life Cycle CodeObsolete
- Ihs ManufacturerTexas INC
- Supply Voltage-Max5.5 V
- Risk Rank5.12
- Part Package CodeSOIC
- 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.
e4 - 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 - 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.
Nickel/Palladium/Gold (Ni/Pd/Au) - Additional Feature
Any Feature, including a modified Existing Feature, that is not an Existing Feature.
EASY INTERFACE BETWEEN UART, SERIAL-PORT CONNECTOR OF IBM PC/AT - 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.
8542.39.00.01 - SubcategoryLine Driver or Receivers
- Technology
In the context of electronic components, the parameter "Technology" refers to the specific manufacturing process and materials used to create the component. This includes the design, construction, and materials used in the production of the component. The technology used can greatly impact the performance, efficiency, and reliability of the electronic component. Different technologies may be used for different types of components, such as integrated circuits, resistors, capacitors, and more. Understanding the technology behind electronic components is important for selecting the right components for a particular application and ensuring optimal performance.
BIPOLAR - Terminal Position
In electronic components, the term "Terminal Position" refers to the physical location of the connection points on the component where external electrical connections can be made. These connection points, known as terminals, are typically used to attach wires, leads, or other components to the main body of the electronic component. The terminal position is important for ensuring proper connectivity and functionality of the component within a circuit. It is often specified in technical datasheets or component specifications to help designers and engineers understand how to properly integrate the component into their circuit designs.
DUAL - Terminal Form
Occurring at or forming the end of a series, succession, or the like; closing; concluding.
GULL WING - Peak Reflow Temperature (Cel)
Peak Reflow Temperature (Cel) is a parameter that specifies the maximum temperature at which an electronic component can be exposed during the reflow soldering process. Reflow soldering is a common method used to attach electronic components to a circuit board. The Peak Reflow Temperature is crucial because it ensures that the component is not damaged or degraded during the soldering process. Exceeding the specified Peak Reflow Temperature can lead to issues such as component failure, reduced performance, or even permanent damage to the component. It is important for manufacturers and assemblers to adhere to the recommended Peak Reflow Temperature to ensure the reliability and functionality of the electronic components.
260 - Number of Functions3
- Terminal Pitch
The center distance from one pole to the next.
1.27 mm - 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 - Pin Count
a count of all of the component leads (or pins)
20 - JESD-30 Code
JESD-30 Code refers to a standardized descriptive designation system established by JEDEC for semiconductor-device packages. This system provides a systematic method for generating designators that convey essential information about the package's physical characteristics, such as size and shape, which aids in component identification and selection. By using JESD-30 codes, manufacturers and engineers can ensure consistency and clarity in the specification of semiconductor packages across various applications and industries.
R-PDSO-G20 - Qualification Status
An indicator of formal certification of qualifications.
Not Qualified - Power Supplies
an electronic circuit that converts the voltage of an alternating current (AC) into a direct current (DC) voltage.?
5,+-9/+-12 V - Temperature Grade
Temperature grades represent a tire's resistance to heat and its ability to dissipate heat when tested under controlled laboratory test conditions.
INDUSTRIAL - Seated Height-Max
Seated Height-Max in electronic components refers to the maximum height at which a component can be comfortably installed or operated when a user is seated. It is particularly relevant in designs involving ergonomic considerations, where the placement of controls, displays, or other interfaces must accommodate users in seated positions. This parameter ensures accessibility and usability, preventing strain or discomfort during operation.
2.65 mm - Differential Output
a differential output voltage in electronics is the difference between the values of two AC voltages, 180° out of phase, present at the output terminals of an amplifier when you apply a differential input voltage to the input terminals of an amplifier.
NO - Input Characteristics
In electronic components, "Input Characteristics" refer to the set of specifications that describe how the component behaves in response to signals or inputs applied to it. These characteristics typically include parameters such as input voltage, input current, input impedance, input capacitance, and input frequency range. Understanding the input characteristics of a component is crucial for designing circuits and systems, as it helps ensure compatibility and proper functioning. By analyzing these parameters, engineers can determine how the component will interact with the signals it receives and make informed decisions about its use in a particular application.
SCHMITT TRIGGER - Interface IC Type
The parameter "Interface IC Type" in electronic components refers to the type of integrated circuit (IC) that is used to facilitate communication between different electronic devices or subsystems. This IC is responsible for managing the exchange of data and control signals between the devices, ensuring proper communication and coordination. The specific type of interface IC used can vary depending on the requirements of the system, such as serial communication (e.g., UART, SPI, I2C), parallel communication, or specialized interfaces like USB or Ethernet. Choosing the appropriate interface IC type is crucial for ensuring compatibility, reliability, and efficiency in electronic systems.
LINE TRANSCEIVER - Driver Number of Bits3
- Receiver Number of Bits5
- Receive Delay-Max
Receive Delay-Max is a parameter in electronic components that refers to the maximum amount of time it takes for a device to receive and process incoming signals or data after they have been transmitted. This parameter is crucial in determining the overall performance and efficiency of the component, especially in applications where timing is critical. A lower Receive Delay-Max value indicates faster response times and better overall performance, while a higher value may result in delays and potential issues in data transmission. It is important to consider and optimize the Receive Delay-Max parameter when designing or selecting electronic components for specific applications to ensure reliable and efficient operation.
150 ns - Negative Supply Voltage-Nom
The parameter "Negative Supply Voltage-Nom" in electronic components refers to the nominal voltage level that can be safely applied as the negative supply voltage to the component. This parameter is important for ensuring the proper functioning and reliability of the component within its specified operating conditions. It indicates the voltage level that the component is designed to operate with when a negative voltage supply is required. It is crucial to adhere to this specified voltage range to prevent damage to the component and maintain its performance characteristics.
-9 V - Transmit Delay-Max
Transmit Delay-Max refers to the maximum time interval it takes for a signal to be transmitted from the input to the output of an electronic component or system. This parameter is critical in digital circuits and communication systems, as it affects the overall performance and timing of data transmission. A lower Transmit Delay-Max indicates faster signal propagation, which is essential for high-speed applications. It is typically specified in nanoseconds or microseconds, depending on the technology and design of the component.
175 ns - Supply Voltage1-Nom
Supply Voltage1-Nom is a parameter in electronic components that refers to the nominal or rated voltage level at which the component is designed to operate optimally. This parameter specifies the voltage level that the component requires to function correctly and efficiently. It is important to ensure that the actual supply voltage provided to the component closely matches the specified nominal voltage to prevent damage or malfunction. Deviating significantly from the nominal voltage may result in unreliable performance or even permanent damage to the component. It is crucial to adhere to the specified supply voltage range to ensure the proper functioning and longevity of the electronic component.
9 V - Output Low Current-Max
Output Low Current-Max is a parameter in electronic components that specifies the maximum amount of current that can flow out of the output pin when it is in a low state. This parameter is important for determining the capability of the component to sink current when driving external loads. It is typically measured in units of amperes (A) and helps in ensuring that the component can effectively drive connected devices without being damaged. Designers use this parameter to ensure proper functioning and reliability of the overall circuit by selecting components with appropriate output low current-max ratings.
0.01 A - Out Swing-Min
Out Swing-Min is a parameter in electronic components that indicates the minimum voltage level that an output signal can reach when the device is in a low state. It is critical for determining the output swing of digital circuits, particularly in logic devices and amplifiers. This parameter helps to ensure that the output can properly drive the subsequent stage of a circuit or meet the logic level requirements of connected components. A lower Out Swing-Min value may enhance compatibility with other devices in terms of signal integrity.
12 V - High Level Input Current-Max
High Level Input Current-Max is a parameter in electronic components that specifies the maximum current that can be safely input to the device when the input signal is at a high logic level. This parameter is important for ensuring that the component operates within its specified limits and does not get damaged due to excessive current flow. It is typically measured in milliamperes (mA) and helps in determining the compatibility of the component with the input signal source. Designers and engineers use this parameter to select components that can handle the expected input current levels without malfunctioning.
0.00001 A - Supply Voltage1-Min
Supply Voltage1-Min is a parameter in electronic components that specifies the minimum voltage required for the component to operate within its specified performance range. This parameter is crucial for ensuring the proper functioning of the component and preventing damage due to undervoltage conditions. It is typically provided by the manufacturer in the component's datasheet and serves as a guideline for designers and engineers to ensure that the component is powered within the recommended voltage range. Failure to meet the minimum supply voltage requirement may result in unreliable operation, reduced performance, or even permanent damage to the component.
7.5 V - Supply Voltage1-Max
Supply Voltage1-Max is a parameter in electronic components that specifies the maximum voltage that can be safely applied to the component's power supply input. This parameter is crucial for ensuring the component operates within its specified limits and does not get damaged due to overvoltage. Exceeding the maximum supply voltage can lead to permanent damage or malfunction of the component. It is important for designers and engineers to carefully consider and adhere to the specified maximum supply voltage to ensure the reliable and safe operation of the electronic system.
15 V - Width7.5 mm
- Length12.8 mm