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🟠 CHECK SOON

Cummins SPN 105 FMI 3: Meaning, Causes & Fix

Intake Manifold Air Temperature Sensor Voltage High β€” signal shorted to voltage, sensor or wiring fault

Reviewed by ASE Certified Mechanics Β· Last updated July 26, 2026

Quick Answer

SPN 105 FMI 3 = Intake Manifold Temp Sensor Voltage High
Severity: 🟠 CHECK SOON Β· System: Intake Manifold Temperature Sensor / Wiring Harness Β· βœ… Can continue with caution

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Diagnostic Reference

Field Details
Code SPN 105 FMI 3
Protocol J1939 SPN: 105 FMI: 3
Component Intake Manifold Temperature Sensor / Wiring Harness
Manufacturer Cummins
Engine Series ISX15
Severity 🟠 CHECK SOON
SAE Reference SAE J1939-73 Digital Annex β€” SPN 105, FMI 3

Possible Causes

  1. Sensor signal wire shorted to voltage from chafed harness
  2. Failed intake manifold temperature sensor internal circuit
  3. Corroded sensor connector causing high resistance
  4. ECM 5V reference circuit overloaded by another faulty sensor
  5. Wiring harness melted against exhaust manifold

Top Causes Ranked by Frequency

  1. Corroded or loose sensor connector pins (35% of sensor/electrical faults)
  2. Wiring harness chafing causing intermittent open or short circuits (25%)
  3. Failed sensor providing out-of-range signal to ECM (20%)
  4. ECM 5V reference circuit overload from multiple sensor failures (10%)
  5. CAN bus communication fault from terminating resistor or module failure (10%)

In-Depth Diagnostic Procedure

Follow these diagnostic steps to identify the root cause of SPN 105 FMI 3 on your Cummins ISX15. A J1939-compatible diagnostic scan tool is recommended.

  1. Connect scan tool and retrieve all active and inactive fault codes, noting which modules are reporting communication errors
  2. Check battery voltage and ground connections β€” low system voltage (below 11V) or poor grounds cause erratic sensor readings and communication faults
  3. Backprobe the suspect sensor connector and measure reference voltage (typically 5V), signal voltage, and ground with a digital multimeter β€” compare readings to OEM specifications
  4. Inspect wiring harness for chafing, especially at common failure points: engine pass-through connectors, valve cover gasket connectors, and frame rail routing near sharp edges
  5. Perform wiggle test on the harness while monitoring live data β€” intermittent connections will cause sensor readings to spike or drop when the harness is moved
  6. If CAN bus faults are present, check terminating resistors (should measure 60 ohms across CAN high and CAN low with the key off and batteries disconnected)

Repair & Cost Estimate

Can You Drive?
βœ… Yes, with caution
Estimated Downtime
2–5 hours
Item Cost Range
Parts $80 – $600
Labor 1–4 hours @ ~$150/hr = $150 – $600
Estimated Total $230 – $1,200

Sensor or connector replacement. Prices vary by location and dealer.

Frequently Asked Questions β€” Intake Manifold Temperature Sensor / Wiring Harness

How do I know if a sensor is bad or if the wiring is the problem?

Backprobe the sensor connector and measure reference voltage, signal, and ground. If the 5V reference is present and ground is good, but the signal is out of range, the sensor is likely bad. If reference voltage is missing or unstable, the problem is in the wiring or ECM. A wiggle test on the harness while monitoring live data will reveal intermittent connections.

Can I drive with a faulty sensor?

It depends on the sensor. Non-critical sensors (barometric pressure, fuel temperature) typically trigger CHECK SOON codes and the engine runs on a default value. Critical sensors (accelerator pedal, crankshaft position) can cause stalling or no-start conditions. If the engine runs normally despite the code, you can usually drive to a repair facility, but do not ignore the code indefinitely.

What causes CAN bus communication faults?

CAN bus faults are caused by wiring damage (chafed or cut wires), corroded connectors, failed terminating resistors, or a faulty module that corrupts bus communication. Heavy-duty trucks use J1939 CAN which requires 120-ohm terminating resistors at each end of the bus. Measuring 60 ohms across CAN high and CAN low (with power off) confirms the bus is intact.

How much does an ECM replacement cost?

A new ECM for a heavy-duty diesel engine costs $1,500–$4,000 for the part alone, plus 3–6 hours of labor for installation, programming, and parameter setup. Remanufactured ECMs are available for $800–$2,000. Always verify the ECM is truly faulty before replacing β€” many ECM codes are caused by wiring or sensor issues, not the ECM itself.

Why do sensor faults seem to happen more in wet weather?

Moisture ingress into sensor connectors causes corrosion and intermittent electrical contact. This is especially common at the engine harness pass-through connector (where wires enter the valve cover) and at under-hood sensor connectors that are not properly sealed. Dielectric grease on connector pins and OEM-rated weatherpack connectors help prevent moisture-related faults.

Diagnostic & Repair Procedure

  1. Step 1: Inspect sensor connector for corrosion or bent pins
  2. Step 2: Test sensor resistance with ohmmeter β€” compare to OEM spec
  3. Step 3: Check 5V reference voltage at sensor connector
  4. Step 4: Trace wiring harness for chafing or melt damage
  5. Step 5: Replace sensor if resistance is out of specification

Frequently Asked Questions

Is this a false alarm or a real problem?

CHECK SOON codes are rarely false alarms. The ECM has detected a parameter outside normal operating range. Sensor malfunctions can sometimes trigger false readings, but the majority of CHECK SOON codes indicate a developing issue that will worsen if left unaddressed. Use a diagnostic scan tool to verify sensor readings before replacing expensive parts.

Can I diagnose this without a scan tool?

Basic visual inspection can be performed without a scan tool β€” check wiring harnesses for chafing, connectors for corrosion, and related components for physical damage. However, to verify the fault, view live sensor data, and confirm the repair, a heavy-duty diagnostic scan tool (or a compatible OBD-II adapter with J1939/J1708 support) is strongly recommended for accurate diagnosis.

How soon should I schedule service?

Schedule service within the next 1–3 operating days. While the vehicle can continue operating normally, delaying repair increases the risk of the fault escalating to CHECK NEXT STOP severity. Additionally, some CHECK SOON conditions are precursors to emissions system faults that will trigger a mandatory derate if not addressed in a timely manner.

Estimated Repair Cost

Typical repair: $100–800 (Parts: $50–500 + Labor: 1–3 hours) Β· Costs vary by make/model and location

Diesel Repair Cost & Downtime Estimator

Enter estimated labor hours to calculate repair cost and potential fleet downtime losses. Based on national average diesel shop rate of $150/hr and daily revenue loss of $800/day for a parked truck.

Related Fault Codes β€” ISX15

SPN 1569 FMI 31 πŸ”΄ STOP ENGINE
Engine Protection Torque Derate
SPN 102 FMI 18 πŸ”΄ STOP ENGINE
Intake Manifold Pressure critically low
SPN 111 FMI 18 πŸ”΄ STOP ENGINE
Engine Coolant Level critically low
SPN 639 FMI 9 πŸ”΄ STOP ENGINE
J1939 CAN Bus Communication Loss
SPN 1322 FMI 31 🟑 CHECK AT NEXT STOP
Misfire Detected on Cylinder 6
MID 128 SID 1 FMI 5 🟑 CHECK AT NEXT STOP
Injector Cylinder 1 Circuit

Related Codes Across Systems

Codes from the same SPN range, manufacturer, or system that may also be relevant:

SPN 102 FMI 18 πŸ”΄ STOP ENGINE
Intake Manifold Pressure critically low
Cummins ISX15
SPN 100 FMI 1 πŸ”΄ STOP ENGINE
Engine Oil Pressure critically low
Detroit Diesel DD15
SPN 107 FMI 16 🟠 CHECK SOON
Air Filter Restriction excessive
Volvo D13
SPN 4364 FMI 18 🟑 CHECK AT NEXT STOP
SCR Inducement Active
Cummins X15
SPN 3031 FMI 9 🟠 CHECK SOON
DEF Quality Abnormal
Cummins X15
SPN 111 FMI 18 πŸ”΄ STOP ENGINE
Engine Coolant Level critically low
Cummins ISX15
SPN 110 FMI 15 πŸ”΄ STOP ENGINE
Engine Coolant Temperature excessive
Detroit Diesel DD15

Associated Symptoms

References & Further Reading

Data Provenance: This fault code definition is derived from SAE J1939 standards. SPN 105 FMI 3 is defined in SAE J1939-73 Digital Annex. Diagnostic procedures sourced from Cummins OEM technical service documentation. Not for safety-critical decisions. Consult a certified diesel mechanic before performing any repair. See our full disclaimer.