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R5F10WMFAFB#10

In Stock 31657 pcs Reference Price(In US Dollars)
1+
$1.927
200+
$0.746
500+
$0.7204
952+
$0.7075
Manufacturer Part Number:
R5F10WMFAFB#10
Manufacturer / Brand
Renesas Electronics America Inc
Part of Description:
IC MCU 16BIT 96KB FLASH 80LQFP
Datasheets:
Lead Free Status / RoHS Status:
ROHS3 Compliant
Stock Condition:
New original, 31657 pcs Stock Available.
ECAD Model:
Ship From:
Hong Kong
Shipment Way:
DHL/Fedex/TNT/UPS

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Part Number R5F10WMFAFB#10
Manufacturer / Brand Renesas Electronics America Inc
Stock Quantity 31657 pcs Stock
Category Integrated Circuits (ICs) > Embedded - Microcontrollers
Description IC MCU 16BIT 96KB FLASH 80LQFP
Lead Free Status / RoHS Status: ROHS3 Compliant
Voltage - Supply (Vcc/Vdd) 1.6V ~ 5.5V
Supplier Device Package 80-LQFP (12x12)
Speed 24MHz
Series RL78/L13
RAM Size 6K x 8
Program Memory Type FLASH
Program Memory Size 96KB (96K x 8)
Peripherals DMA, LCD, LVD, POR, PWM, WDT
Package / Case 80-LQFP
Package Tray
Oscillator Type Internal
Operating Temperature -40°C ~ 85°C (TA)
Number of I/O 58
Mounting Type Surface Mount
EEPROM Size 4K x 8
Data Converters A/D 12x8/10b
Core Size 16-Bit
Core Processor RL78
Connectivity CSI, I²C, LINbus, UART/USART
Base Product Number R5F10

Packaging & ESD

Industry-standard static shielding packaging is used for electronic components.Anti-static, light-transparent materials allow easy identification of ICs and PCB assemblies.
The packaging structure provides electrostatic protection based on Faraday cage principles.This helps protect sensitive components from static discharge during handling and transportation.


All products are packed in ESD-safe anti-static packaging. Outer packaging labels include part number, brand, and quantity for clear identification. Goods are inspected prior to shipment to ensure proper condition and authenticity.

ESD protection is maintained throughout packing, handling, and global transportation. Secure packaging provides reliable sealing and resistance during transit. Additional cushioning materials are applied when required to protect sensitive components.

QC(Part Testing by IC Components)Quality Warranty

We can offer worldwide express delivery service, such as DHLor FedEx or TNT or UPS or other forwarder for shipment.

Global Shipment by DHL/FedEx/TNT/UPS

Shipping Fees reference DHL/FedEx
1). You can offer your express delivery account for shipment, ifyou haven’t any express account for shipment, we can offer our account inadvance.
2). Use our account for shipment, Shipment charges(Reference DHL/FedEx, Different Countries has different price.)
Shipment charges: (Reference DHL and FedEX)
Weight(KG): 0.00kg-1.00kg Price(USD$) : USD$60.00
Weight(KG): 1.00kg-2.00kg Price(USD$) : USD$80.00
* The price of cost is reference with DHL/FedEx. The detail charges, please contact us. Different country the express charges are different.



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R5F10WMFAFB#10 Product Details:

The Renesas Electronics R5F10WMFAFB is a high-performance 16-bit microcontroller designed for versatile embedded applications, offering robust functionality within a compact form factor. Part of the RL78/L13 series, this microcontroller delivers exceptional efficiency and computational power for modern electronic design challenges.

At its core, the device features a 16-bit RL78 processor capable of operating at 24MHz, providing reliable and responsive performance across various embedded system requirements. The microcontroller is equipped with 96KB of flash program memory and 6KB of RAM, enabling complex program execution and data management in space-constrained designs.

Key technical capabilities include integrated peripherals such as Direct Memory Access (DMA), Liquid Crystal Display (LCD) support, Low Voltage Detection (LVD), and Pulse Width Modulation (PWM) modules. Connectivity options encompass Communication Serial Interface (CSI), Inter-Integrated Circuit (I2C), LIN bus, and UART/USART interfaces, ensuring flexible communication protocols.

The microcontroller supports a wide supply voltage range of 1.6V to 5.5V and includes a 12-bit Analog-to-Digital converter with 8/10-bit resolution, making it suitable for sensor interfacing and signal processing applications. Its internal oscillator and comprehensive peripheral set simplify system design and reduce external component requirements.

Designed for industrial and automotive environments, the device operates reliably across temperatures ranging from -40°C to 85°C. The 80-pin Low-Profile Quad Flat Package (LQFP) with a 12x12mm footprint enables compact, surface-mount integration into sophisticated electronic systems.

Equivalent alternative models in the Renesas RL78 family include the R5F10WMG, R5F10WMJ, and R5F10WML, which offer similar architectural characteristics with potential variations in memory size and specific peripheral configurations.

Primary application domains include automotive electronics, industrial control systems, consumer appliances, and IoT devices where compact, energy-efficient microcontrollers are essential. The device's RoHS3 compliance further ensures environmental sustainability and adherence to modern manufacturing standards.

R5F10WMFAFB#10 Image
R5F10WMFAFB#10 (1)

R5F10WMFAFB#10 Key Technical Attributes

16-bit RL78 Core, 24MHz Speed, 96KB Flash Memory, 6KB RAM, 4KB EEPROM

R5F10WMFAFB#10 Packing Size

80-LQFP (12x12mm), Tray Package, Surface Mount, 58 I/O Pins

R5F10WMFAFB#10 Application

Suitable for low-power embedded control systems, custom display controllers, and advanced automotive dashboard applications.

R5F10WMFAFB#10 Features

The R5F10WMFAFB#10 leverages Renesas RL78/L13 series architecture, offering high-performance processing with low power consumption, making it ideal for smart applications requiring energy efficiency. The device integrates a 16-bit RL78 core running at up to 24MHz, with 96KB of high-reliability flash for program storage and 6KB RAM to support advanced operations. A built-in 4KB EEPROM enables flexible data storage for user and configuration settings. Its peripherals include a robust set: DMA for efficient data transfers, LCD controller for direct display management, LVD (Low Voltage Detection) for power safety, POR (Power-On Reset), PWM (Pulse Width Modulation) for motor or LED control, and WDT (Watchdog Timer) for system reliability. Connectivity features such as CSI, IC, LINbus, UART/USART provide full options for device interfacing, communication with vehicle networks, or integration with smart sensors and modules. Precision analog signals can be processed via integrated A/D converters offering 12 channels at 8/10 bits, and the internal oscillator simplifies clock management while reducing external component count.

R5F10WMFAFB#10 Quality and Safety Features

The IC is RoHS3 compliant, adhering to strict environmental and health safety standards, supporting safe operation from -40°C to 85°C ambient temperature. Built-in features such as LVD and WDT support system safety, reducing risk of critical failures. Power-on reset ensures reliable system start-up conditions, and low-voltage detection improves protection against power anomalies.

R5F10WMFAFB#10 Compatibility

Designed for embedded applications seeking performance, programmability, and low power, the R5F10WMFAFB#10 supports integration with multiple communication protocols and interfaces. It’s fully compatible with RL78/L13 development environments, tools, and reference designs, and fits industry-standard footprint for 80-LQFP (12x12mm) devices.

R5F10WMFAFB#10 Datasheet PDF

For the most up-to-date, detailed and authoritative technical information—including electrical, mechanical, and functional specs—customers are strongly encouraged to download the official datasheet directly from this product page. Our website maintains the latest and verified datasheet for the R5F10WMFAFB#10, ensuring you get trustworthy design and application data.

Quality Distributor

IC-Components is a premium authorized distributor of Renesas Electronics Corporation products. We offer top-tier service, authentic inventory and rapid global delivery of R5F10WMFAFB#10 and all RL78 series devices. Request a quote today on our website and experience professional support and reliable sourcing for all your embedded IC needs.

Frequently Asked Questions

What are the key considerations for integrating the Renesas R5F10WMFAFB#10 microcontroller into a low-voltage embedded design?
When integrating the R5F10WMFAFB#10, ensure the supply voltage (Vcc/Vdd) is within 1.6V to 5.5V to avoid reliability issues. Also, verify that your power supply can handle transient loads and noise levels within this range. Pay attention to the required I/O voltage configurations, and ensure the operating temperature (-40°C to 85°C) matches your environment. Proper decoupling and grounding are essential for stable operation given the 24MHz clock speed.
How should I select the external components, such as oscillators and decoupling capacitors, for reliable performance of the R5F10WMFAFB#10 in an industrial application?
Use high-quality decoupling capacitors (e.g., 0.1μF ceramic capacitors) placed close to the Vcc/Vdd pins to minimize noise. Since the internal oscillator is used, ensure it’s properly configured and stabilized. For industrial reliability, consider adding bulk capacitance (10μF or higher) on the power lines, and confirm that the oscillator design supports the 24MHz frequency under temperature variation.
Can the R5F10WMFAFB#10 microcontroller be used with a 3.3V logic interface, and what should I consider for compatible I/O voltage levels?
Yes, with a supply voltage from 3.3V to 5.5V, the R5F10WMFAFB#10’s I/O pins can typically operate at 3.3V logic levels. Confirm that the I/O voltage levels are compatible with your peripheral devices. For lower-voltage systems, ensure proper level shifting if you operate near Vcc lower limit, and verify the I/O specifications in the datasheet for safe voltage thresholds.
Is the 96KB FLASH memory and 6KB RAM sufficient for complex embedded applications, or should I consider a different microcontroller?
The 96KB FLASH and 6KB RAM provide a good balance for mid-range control tasks, including LCD handling and communication interfaces like UART/USART. For highly complex or data-intensive applications, assess your code size and data storage needs carefully. If the requirements exceed these resources, consider a higher-capacity variant or a different microcontroller series with more memory.
How do I ensure reliable operation of the R5F10WMFAFB#10 in environments with temperature extremes (-40°C to 85°C)?
The R5F10WMFAFB#10 is specified to operate within this temperature range. To ensure reliability, consider PCB design practices like proper thermal management, using components rated for industrial environments, and including external filtering if needed. Test the firmware stability under temperature cycling to confirm consistent operation.
What are the main differences when replacing the R5F10WMFAFB#10 with a similar Renesas RL78 series microcontroller?
When replacing, compare the memory sizes, peripheral sets, package types, and I/O count. The R5F10WMFAFB#10 offers 96KB FLASH, 58 I/O, and integrated LCD peripheral, which may not be available in all RL78 variants. Check pin compatibility and voltage requirements, and consider whether additional peripheral support or different package options impact your design. Replacement might involve re-verifying your firmware for peripheral differences.
Can I use the R5F10WMFAFB#10 in battery-powered applications, and what power management features should I utilize?
Yes, operating voltage down to 1.6V makes it suitable for battery-powered design. Leverage the watchdog timer (WDT), power-on reset (POR), and low-voltage detection (LVD) peripherals to enhance power management and reliability. Use low-power modes (if supported) to extend battery life and implement efficient clock management.
What are best practices for designing the I/O interfaces for the R5F10WMFAFB#10 to prevent signal integrity issues?
Use proper PCB trace impedance matching, avoid long signal runs for high-speed lines, and include termination resistors where necessary. For UART/USART and LINbus, follow recommended signal levels, add series resistors if needed, and ensure proper grounding. Use shielded or differential lines if operating in noisy environments.
How should I approach migrating from a different microcontroller to the R5F10WMFAFB#10 without disrupting existing functionality?
Map existing peripheral functions to the R5F10WMFAFB#10's peripherals like DMA, PWM, and LCD controllers. Update firmware to handle differences in pin configurations, clock sources, and memory layouts. Conduct thorough testing for timing, power sequencing, and peripheral behavior during migration, and consider using development tools to emulate existing functionality before hardware changes.
What are potential risks or limitations of using the R5F10WMFAFB#10 in long-term industrial applications?
Ensure the device’s supply chain stability and availability over the product lifecycle. Consider its operating temperature range and potential exposure to thermal cycles. Be aware of any obsolescence notices from the manufacturer. Implement firmware update capabilities and incorporate redundancy or error checking in hardware design to mitigate failure risks.
How does the internal oscillator impact system design, and when should I consider adding an external crystal or oscillator with the R5F10WMFAFB#10?
The internal oscillator simplifies design and reduces component count, suitable for most applications. However, for precise timing, lower jitter, or highly stable frequency requirements, adding an external crystal or oscillator is recommended. Evaluate your application's timing accuracy needs and temperature stability to determine if customization is necessary.
Are there any special considerations for configuring the R5F10WMFAFB#10’s peripherals, such as LCD or LINbus, during hardware setup?
Yes, ensure the peripheral pins are correctly assigned, and configuration registers are set according to the datasheet. For LCD interfaces, select the appropriate drive voltage and segment configurations. For LINbus, implement proper termination and ensure compliance with Lin specification standards. Also, verify that related power supply and ground lines are clean to prevent interference.
What testing and validation approaches are recommended after integrating the R5F10WMFAFB#10 into my product?
Perform comprehensive functional testing covering all peripherals, communication interfaces, and power modes. Use temperature cycling to validate reliability across the specified operating range. Implement boundary scan or debugging tools to diagnose hardware issues. Validate firmware stability under worst-case scenarios and load conditions.
How do I handle firmware updates securely and reliably for devices based on the R5F10WMFAFB#10?
Utilize the FLASH memory’s rewrite capability with a secure bootloader if available. Implement encrypted firmware images and secure update procedures to prevent tampering. Ensure your update process includes validation checksums and fallback recovery options in case of interruption.
Is the 24MHz system clock sufficient for my real-time control requirements in an industrial embedded system?
A 24MHz clock is adequate for many applications involving motor control, sensor reading, and communication interface handling with the RL78 core. For more demanding real-time tasks requiring higher resolution or tighter timing constraints, evaluate whether the microcontroller’s peripherals and clock system meet your specific latency and throughput needs.

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