C055164

DTC C055164 indicates the IPB (Integrated Power Brake) detects a fault in the Longitudinal Acceleration Sensor signal circuit — Seal 6 EV

Braking System

DTC C055164 indicates the IPB (Integrated Power Brake) detects a fault in the Longitudinal Acceleration Sensor signal circuit.

This sensor monitors longitudinal acceleration (braking deceleration/driving acceleration) and provides key vehicle dynamic parameters to the ESC (Electronic Stability Control), ABS (Anti-lock Braking System), AEB (Autonomous Emergency Braking), and energy recovery systems.

When the fault triggers, the longitudinal acceleration signal status bit the IPB receives via CAN message 0x223 indicates an error (such as invalid signal, checksum error, or timeout), preventing the system from accurately determining the vehicle motion state.

In severe cases, ESC, ABS, and AEB functions may enter a degraded mode or fail completely.

The instrument cluster illuminates multiple brake system warning lamps, and extreme conditions compromise vehicle braking safety and stability control.

The C055164 fault code on the Seal 6 EV indicates a fault in the longitudinal acceleration sensor signal circuit detected by the Integrated Power Brake system. Severity is medium, as ABS, ESC, AEB, and energy recovery functions may be reduced if the vehicle cannot accurately read acceleration or deceleration. Common causes include loose or corroded sensor/IPB connectors or an internal sensor fault. The recommended fix is to visit an authorised dealer for diagnosis and repair. Typical repair cost data is available.
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Cases Logged
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Causes
  • 1Loose inertia sensor wiring harness connector, backed-out pins, or corroded terminals: Poor contact at the IPB assembly or independent longitudinal acceleration sensor connector (depending on vehicle configuration). This condition frequently occurs after driving through water, driving on rough roads, or a collision.
  • 2Longitudinal acceleration sensor hardware fault: Internal MEMS element damage, zero-point drift, or abnormal signal output causes the output voltage to exceed the IPB recognition range (typically 0.5-4.5 V corresponding to ±1.5 g).
  • 3IPB internal signal acquisition circuit fault: A short or open circuit in the 5V sensor reference power supply inside the IPB module, or a damaged signal acquisition ADC circuit, prevents correct processing of the sensor analog signal.
  • 4Abnormal sensor mounting position or physical damage: Failure to recalibrate the sensor after a vehicle collision or a deformed mounting bracket shifts the sensor mounting angle, or a severe impact damages the sensor's internal vibrating beam.
  • 5CAN network communication interference: Abnormal network impedance, electromagnetic interference, or a terminal resistor fault between the IPB and the sensor (if the sensor communicates via the CAN bus rather than a hardwired connection) causes 0x223 message loss or a checksum error.
  • 1
    Step 1: DTC freeze frame analysis and preliminary inspection: Read the fault freeze frame using the VDS2000 or DMS diagnostic tool. Confirm parameters such as vehicle speed, longitudinal acceleration, and yaw rate when the fault occurred. Check the vehicle history for collisions, water ingress, or modifications. Visually inspect the IPB assembly and wiring harness for damage.
  • 2
    Step 2: Power supply and ground circuit inspection: Disconnect the IPB connector (or independent sensor connector). Check the sensor supply voltage (standard: 5V ± 0.25V). Check the ground wire resistance (< 1Ω). Verify the reference voltage is stable without fluctuation. If the voltage is abnormal, repair the wiring harness or replace the IPB.
  • 3
    Step 3: Signal circuit continuity and insulation test: Use a multimeter to measure continuity between the longitudinal acceleration sensor signal wire (usually marked LA-G or LongAccel) and the IPB. Resistance should be less than 1 Ω. Measure the insulation resistance from the signal wire to power and ground; it should be greater than 10 MΩ. Inspect the connector terminals for spread or backed-out pins.
  • 4
    Step 4: Sensor signal waveform verification: Connect an oscilloscope and monitor the sensor output signal waveform while the vehicle is stationary and during acceleration/braking. A normal signal shows a stable DC voltage (about 2.5V when stationary). Voltage increases during hard acceleration and decreases during hard deceleration. If the signal spikes, drops out, or goes out of range, replace the sensor or IPB assembly.
  • 5
    Step 5: IPB communication and software check: Verify the IPB CAN-H (2.5-3.5V) and CAN-L (1.5-2.5V) waveforms are normal; check the IPB software version and update the software if required by a technical bulletin; check for related combined fault codes (such as the C055100-C055500 series).
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    Step 6: Sensor Calibration and System Verification After repairing the fault, use the diagnostic tool to perform Longitudinal Acceleration Sensor Calibration. Clear the fault codes and perform a road test (including straight-line acceleration, emergency braking, and cornering braking conditions). Verify the fault code does not return and the ESC function operates normally.
BYD DTC AI Analysis

Signal Drift in Song Plus DM-i Due to IPB Connector Corrosion After Water Wading

A 2021 Song PLUS DM-i showed "Brake System Fault" after driving through heavy rain and flood water. Scanner read DTC C055164. The IPB sits on the left side of the engine bay; its wiring harness connector seal had degraded, letting water in that oxidised the longitudinal acceleration signal terminal and created contact resistance (reference voltage dropped from 2.3V to 1.8V). Cleaned the connector, applied conductive paste, and replaced the waterproof seal. Fault resolved.
BYD DTC AI Analysis

Seal 6 DM-i fault after accident repair: calibration not performed

Following front-end collision repairs that replaced the front bumper and wiring harness, the instrument cluster continuously displayed C055164. Diagnosis revealed the IPB had been replaced but technicians had not performed the sensor zero-point calibration. Ran the 'Longitudinal Acceleration Sensor Calibration' procedure using VDS with the vehicle stationary and level. Cleared the fault code after calibration; ESC function returned to normal.
BYD DTC AI Analysis

Faulty 5V power module inside IPB caused abnormal signals

A Qin PLUS DM-i with 80,000 km logged DTC C055164. The IPB’s 5V reference supply to the longitudinal acceleration sensor was jumping randomly between 3–5 V. An external stable 5 V supply restored normal sensor signal, isolating the fault to the IPB’s internal power management chip. Replaced the IPB assembly (part number possibly 3568110-XX) and performed online matching. Issue resolved.
BYD DTC AI Analysis

Wiring harness chafing caused intermittent open circuit in the signal circuit

Vehicle intermittently logs C055164 over speed bumps or rough roads; normal on flat roads. Inspection found the IPB wiring harness chafing against body sheet metal at the firewall penetration. Long-term wear damaged the insulation on the longitudinal acceleration signal wire, causing momentary short to ground over bumps. Repaired the wiring, rerouted and secured the harness, and added anti-abrasion sleeving. Fault has not returned.
Common problems reported for Seal 6 EVSeal 6 EV overview →
Data confidence: Official This information is for reference only. Always consult a qualified technician for diagnosis and repair. Do not attempt high-voltage system repairs yourself.