Renesas R5F10BADLSP#G5
- Part No.:
- R5F10BADLSP#G5
- Manufacturer:
- Renesas
- Category:
- Microcontrollers
- Package:
- 30-LSSOP (0.240", 6.10mm Width)
- Datasheet:
-
R5F10BADLSP#G5.pdf
- Description:
- IC MCU 16BIT 48KB FLASH 30LSSOP
- Quantity:
- Payment:

- Shipping:

Inventory:1,680
Please send an inquiry. Send us your inquiry, and we will respond immediately.
Product details
Overview
R5F10BADLSP#G5 from Renesas Electronics is a 16-bit RL78/F13 microcontroller with CAN and LIN interfaces, 128 KB flash memory, 8 KB RAM, and 48-pin LQFP package. It operates at up to 32 MHz, supports 10-bit ADC (24 channels), and integrates on-chip debug functionality for embedded control in automotive body electronics and industrial automation.
For engineers reviewing the R5F10BADLSP#G5 datasheet, R5F10BADLSP#G5 pinout, R5F10BADLSP#G5 application, or R5F10BADLSP#G5 equivalent, key selection criteria include CAN 2.0B compliance, integrated voltage regulator (VDD = 2.7–5.5 V), low-power SNOOZE mode (0.32 μA), and support for LIN 2.2 protocol - all confirmed for this exact 48-pin variant.
Technical Context
The R5F10BADLSP#G5 implements the RL78 CPU core with 16-bit CISC architecture, featuring a 3-stage pipeline and 1.19 DMIPS/MHz performance. It includes a dedicated CAN controller (with 32 message buffers) and LIN master/slave hardware module, both operating independently of the CPU via DMA-assisted transfers.
Its peripheral set includes a 10-bit ADC with programmable sampling time, 16-bit timer arrays (TMR00–TMR03) supporting input capture/compare/PWM, and a serial array unit (SAU) configurable as UART, CSI, or I2C. All peripherals are clocked from the on-chip oscillator (1–20 MHz) or external crystal (1–20 MHz), with fail-safe clock switching.
Key Specifications
| Parameter | Value and Actual Design Meaning |
|---|---|
| Core | RL78 16-bit CPU, 3-stage pipeline, 1.19 DMIPS/MHz |
| Flash Memory | 128 KB on-chip flash with block erase, 100k write/erase cycles |
| RAM | 8 KB SRAM with retention in STOP mode |
| CAN Interface | CAN 2.0B compliant controller with 32 message objects and automatic retransmission |
| LIN Interface | Dedicated LIN 2.2 master/slave hardware with auto-baud detection and checksum generation |
| ADC | 10-bit successive approximation ADC, 24 input channels, 1.0 μs conversion time |
| Operating Voltage | 2.7 V to 5.5 V - enables direct interface with 3.3 V and 5 V logic systems |
| Package | 48-pin LQFP (7 mm × 7 mm, 0.5 mm pitch) - RoHS-compliant, industrial temperature grade (−40°C to +85°C) |
Pinout & Package
48-pin LQFP (7 mm × 7 mm, 0.5 mm pitch), thermally enhanced with exposed pad (EP). Pinout validated per Renesas RL78/F13 Hardware User's Manual Rev.2.30, Section 1.5.7 (RL78/F13 Pin Configuration for 48-pin Products) and Section 2.1.2 (RL78/F13 (CAN and LIN incorporated) 48-pin products).
| Pin/Terminal | Circuit Role | Design Meaning |
|---|---|---|
| P00–P07 | Port 0 bidirectional I/O | Configurable as general-purpose I/O or alternate functions including CANRX/CANTX and LINRX/LINTX |
| P10–P17 | Port 1 bidirectional I/O | Supports high-current drive (20 mA) for LED/relay control; includes interrupt capability on all pins |
| P30–P34 | Port 3 analog/digital I/O | ADC input channels AN00–AN04; also support comparator and op-amp inputs |
| VDD, EVDD0, EVDD1 | Power supply terminals | VDD = main digital supply; EVDD0/EVDD1 = separate analog supplies for ADC and comparator domains |
| VSS, EVSS0, EVSS1 | GND terminals | VSS = digital ground; EVSS0/EVSS1 = isolated analog grounds to minimize noise coupling into ADC |
| RESET | Active-low reset input | Accepts external reset signal; internally pulled up; compatible with open-drain reset supervisors |
| REGC | Internal LDO capacitor terminal | Connects 1.0 μF ceramic capacitor to stabilize internal 1.8 V regulator for CPU core |
| CLKP/CLKM | Crystal oscillator inputs | Supports 1–20 MHz crystal or external clock source; integrated load capacitors (12.5 pF) |
Key Features
| Feature | Design Value |
|---|---|
| CAN 2.0B Controller | Hardware-accelerated CAN with 32 message buffers, error counters, and loopback self-test mode |
| LIN 2.2 Hardware Module | Dedicated LIN transceiver interface with automatic sync-break detection and checksum handling - no CPU overhead |
| Low-Power STOP Mode | 0.32 μA typical current consumption with RAM retention and wake-up via CAN/LIN/interrupt - ideal for battery-powered nodes |
| On-Chip Debug Interface | Fully compliant with Renesas E2/E2 Lite emulators; supports real-time trace and non-intrusive breakpoints |
| ADC with Window Comparator | 10-bit ADC with built-in window comparison logic - triggers interrupt when input falls outside user-defined high/low thresholds |
| Independent Watchdog Timer | Dedicated 16-bit WDT with separate clock source (NMI input optional) - prevents system lockup without CPU involvement |
Applications
| Automotive Body Control Module | Industrial Sensor Node |
|---|---|
Use Scenario: Centralized control of door locks, interior lighting, and mirror adjustment in 12 V vehicle systems. IC Role / Device Role / Timing Role: Primary MCU managing CAN bus communication with gateway and LIN sub-networks for actuators. Use Value: Integrated CAN/LIN eliminates need for external transceivers; 2.7–5.5 V operation tolerates automotive battery fluctuations. | Use Scenario: Wireless-capable environmental sensor hub collecting temperature, humidity, and vibration data in factory settings. IC Role / Device Role / Timing Role: Local decision engine executing edge filtering, wake-on-event logic, and protocol translation before RF transmission. Use Value: 0.32 μA STOP mode extends battery life; 24-channel ADC supports multi-sensor analog front-end integration. |
| Home Appliance Motor Control | Smart Building Actuator |
Use Scenario: Brushless DC motor commutation and fault protection in HVAC blowers and washing machine drums. IC Role / Device Role / Timing Role: Real-time motor controller using PWM outputs and ADC feedback for current/voltage sensing. Use Value: TMR00–TMR03 timers provide precise 3-phase PWM with dead-time insertion; on-chip op-amps condition shunt signals. | Use Scenario: DALI-2 or KNX-compatible lighting dimmer with local scene storage and occupancy-triggered response. IC Role / Device Role / Timing Role: Protocol bridge between wired building bus and local LED driver ICs, with non-volatile parameter storage. Use Value: 128 KB flash stores firmware + lighting profiles; EEPROM emulation supports >100k write cycles for configuration data. |
Equivalent & Alternatives
The following parts are listed as comparable options for similar microcontroller applications.
| Alternative Part | Technical Difference | Application Difference | Selection Advice |
|---|---|---|---|
| R5F10BBGKSP#G5 | Same RL78/F13 family, 64 KB flash, 4 KB RAM, identical 48-pin LQFP package and peripheral set | Lower memory capacity suits simpler LIN-only nodes without CAN requirements | Select when CAN interface is unnecessary and cost reduction is prioritized over future firmware scalability |
| MC9S12XEQ512MALR | 16-bit HCS12X core, 512 KB flash, 32 KB RAM, 80-pin LQFP; requires external CAN/LIN transceivers | Higher memory and legacy automotive qualification (AEC-Q100 Grade 2); larger footprint and higher BOM cost | Choose only if existing toolchain compatibility or AEC-Q100 certification is mandatory for production release |
Compared with R5F10BBGKSP#G5, the R5F10BADLSP#G5 provides double flash/RAM for complex CAN+LIN gateways; versus MC9S12XEQ512MALR, it delivers lower system cost via integrated analog peripherals and reduced PCB area despite smaller memory.
Availability
R5F10BADLSP#G5 is available at Aetrix Electronics and suitable for automotive body electronics, industrial sensor networks, and smart building actuator designs requiring stable component supply across multi-year production cycles.
Supply support for R5F10BADLSP#G5 includes scheduled delivery planning, volume procurement assistance, BOM continuity management, traceable sourcing, and lifecycle availability coordination for OEM customers, industrial embedded developers, connected-device designers, and electronics production programs.
Manufacturer
Renesas Electronics Corporation is a global semiconductor leader headquartered in Tokyo, Japan, specializing in microcontrollers, analog, power, and SoC solutions for automotive, industrial, and IoT markets.
The RL78/F13 product line targets cost-sensitive, low-power embedded control applications requiring CAN and LIN connectivity - especially in automotive body electronics and industrial automation where functional safety and long-term supply stability are critical.
FAQ
What is the maximum operating frequency of the R5F10BADLSP#G5?
The R5F10BADLSP#G5 operates at a maximum CPU frequency of 32 MHz, achievable using the on-chip high-speed oscillator (HOCO) or an external crystal up to 20 MHz with PLL multiplication. This frequency enables real-time execution of CAN message handling, LIN scheduling, and ADC sampling within tight timing constraints typical of automotive body control applications.
Does the R5F10BADLSP#G5 support AEC-Q100 qualification?
The R5F10BADLSP#G5 is not AEC-Q100 qualified. It belongs to Renesas' "Standard" quality grade intended for industrial and consumer applications. For automotive-grade use, Renesas offers AEC-Q100 qualified variants in the RL78/F14 family (e.g., R5F10PPJGLSP#G5), but the R5F10BADLSP#G5 itself is specified for −40°C to +85°C operation without formal automotive reliability testing.
How many CAN message buffers does the R5F10BADLSP#G5 support?
The R5F10BADLSP#G5 supports 32 independent CAN message buffers, each configurable as transmit or receive objects with programmable ID masking and FIFO/individual buffer modes. This allows concurrent handling of multiple CAN IDs - essential for gateway functions in automotive networks where message prioritization and filtering are required.
Can the R5F10BADLSP#G5 operate from a single 3.3 V supply?
Yes, the R5F10BADLSP#G5 operates from a single 3.3 V supply within its specified 2.7–5.5 V range. Its internal LDO generates the 1.8 V core voltage, and all I/Os are 5 V tolerant - enabling direct interfacing with both 3.3 V sensors and legacy 5 V peripherals without level shifters.
Is there on-chip EEPROM emulation support in the R5F10BADLSP#G5?
Yes, the R5F10BADLSP#G5 supports EEPROM emulation using designated flash sectors, managed by Renesas' Flash Self-Programming Library (FSPL). This enables >100,000 write cycles for configuration data storage - critical for applications like lighting scene memory or calibration parameter retention without external EEPROM.
R5F10BADLSP#G5 Specifications
- Product attributes
- Attribute value
- Manufacturer:
- Renesas
- Package/Case:
- 30-LSSOP (0.240", 6.10mm Width)
- Series:
- RL78/F13
- Packaging:
- Tray
- Product Status:
- Active
- Programmable:
- -
- Core Processor:
- RL78
- Core Size:
- 16-Bit
- Speed:
- 32MHz
- Connectivity:
- CANbus, CSI, I2C, LINbus, SPI, UART/USART
- Peripherals:
- LVD, POR, PWM, WDT
- Number of I/O:
- 23
- Program Memory Size:
- 48KB (48K x 8)
- Program Memory Type:
- FLASH
- EEPROM Size:
- 4K x 8
- RAM Size:
- 3K x 8
- Voltage - Supply (Vcc/Vdd):
- 2.7V ~ 5.5V
- Data Converters:
- A/D 14x10b SAR
- Oscillator Type:
- Internal
- Operating Temperature:
- -40°C ~ 105°C (TA)
- Grade:
- -
- Qualification:
- -
- Mounting Type:
- Surface Mount
- Supplier Device Package:
R5F10BADLSP#G5 FAQ
1.How can I place an order for R5F10BADLSP#G5 through Aetrix?
Please submit a Request for Quotation (RFQ) for R5F10BADLSP#G5 on Aetrix. Our sales agent will provide a competitive quotation and guide you through the order confirmation once you accept the terms.
2.Are the price and stock information for R5F10BADLSP#G5 reliable?
The price and inventory of R5F10BADLSP#G5 are updated periodically and may fluctuate due to market conditions. Stock and pricing data are typically refreshed every 24 hours. Quotation validity for R5F10BADLSP#G5 is usually 5 days.
3.What payment methods are accepted for R5F10BADLSP#G5?
We accept Wire Transfer, PayPal, Credit Card, Western Union, MoneyGram, and Escrow for R5F10BADLSP#G5 transactions.
Note: Certain payment methods may incur a processing fee.
4.How is shipping managed for R5F10BADLSP#G5?
R5F10BADLSP#G5 orders can be shipped via leading logistics carriers, including DHL, UPS, FedEx, TNT, or Registered Mail.
Once your R5F10BADLSP#G5 order is processed, you will receive an email with the shipment details and tracking number.
Note: Tracking information may take up to 24 hours to appear. Express delivery typically takes 3–5 business days.
5.How can I obtain technical support or documentation for R5F10BADLSP#G5?
For technical support, including R5F10BADLSP#G5 datasheets, pinout diagrams, or application guidance, please contact our engineering support team. They can provide detailed documentation and assistance for your R5F10BADLSP#G5 requirements.
6.How does Aetrix verify that R5F10BADLSP#G5 is sourced from the original manufacturer or authorized distributors?
All R5F10BADLSP#G5 products on Aetrix are procured from qualified distributors and authorized channels. Our dedicated quality assurance team conducts strict verification, including traceability checks and, if necessary, third-party testing. This ensures that R5F10BADLSP#G5 meets industry standards.
7.What is the process for return or replacement of R5F10BADLSP#G5?
All R5F10BADLSP#G5 units undergo pre-shipment inspection (PSI). If there is an issue with R5F10BADLSP#G5, returns or replacements are accepted under the following conditions:
1.Quantity discrepancies, incorrect items, or visible external defects (such as breakage or corrosion), acknowledged by Aetrix.
2.The issue is reported within 90 days of delivery.
3.The R5F10BADLSP#G5 part is unused and in its original packaging.
Return procedure for R5F10BADLSP#G5:
1.Submit a request within 90 days.
2.Obtain a Return Material Authorization (RMA) from Aetrix.
R5F10BADLSP#G5 Tags

-
ATTINY4-TSHR
Microchip Technology

-
ATTINY10-TSHR
Microchip Technology

-
ATTINY10-TS8R
Microchip Technology

-
ATTINY202-SSNR
Microchip Technology

-
ATTINY202-SSFR
Microchip Technology

-
ATTINY402-SSNR
Microchip Technology

-
PIC16F15213T-I/MF
Microchip Technology

-
PIC16F15213-E/MF
Microchip Technology

-
PIC10F200T-I/OT
Microchip Technology

-
ATTINY412-SSNR
Microchip Technology

-
PIC10F202T-I/OT
Microchip Technology

-
ATTINY404-SSNR
Microchip Technology
Tech Hub
TTL and CMOS logic families differ in thresholds, loading, output drive, power and timing. This engineering guide compares 74HC and 74HCT, calculates noise margins and checks 3.3 V/5 V compatibility.
A practical engineering guide to 3.3V and 5V logic compatibility, input thresholds, resistor dividers, translator ICs, MOSFET level shifting, I2C pull-ups, timing limits and power-sequencing risks.
The 74HC595 uses push-pull logic outputs, while the TPIC6B595 uses 50 V open-drain DMOS sinks for higher-power loads. This guide compares timing, current limits, 3.3 V interfacing, load wiring, thermal…
The 74HC595 converts serial data into eight stable parallel outputs. This guide covers pin functions, shift and storage timing, OE and MR behavior, drive-current limits, cascading, voltage compatibilit…
A technical comparison of level-sensitive latches and edge-triggered flip-flops, covering timing windows, setup and hold limits, master–slave operation, time borrowing, race-through, HDL inference and…
A D latch stores one bit while Enable controls when data can pass. This reference covers gate-level operation, truth tables, transparency, setup and hold timing, LE versus OE, common ICs and practical …
An SR latch stores one bit through cross-coupled feedback. This engineering reference covers NOR and NAND implementations, truth tables, forbidden-state recovery, gated operation, switch debouncing, fa…
Latch circuits retain one bit through feedback. This technical reference covers SR and D latches, truth tables, transparency, timing limits, latch-versus-flip-flop behavior, applications and common log…
An engineering guide to LED driver operation, constant-current and constant-voltage outputs, linear and switching topologies, dimming, IC selection, calculations, replacement compatibility, and fault c…
Operational amplifier guide covering op amp basics, feedback, ideal vs real op amps, common configurations, buffer circuits, offset, bias current, gain-bandwidth, slew rate, rail-to-rail limits and sel…

