System-Matched Turbo — Engine serial variants verified against TD04HL-13G and TD04HL-13G-8.5 builds before dispatch.
Technical Specifications
| Parameter |
Value |
| Product Type |
Turbocharger |
| Part Number |
234-4894 |
| Cross-Reference |
234-4894, 235-4964, 314-9972, 314-9898, 49189-02710, 49189-02711, 49189-02720, 49189-02721, 49189-10530 (reference only) |
| Machine Fitment |
236B, 236B2, 236B3, 242B3, 246B, 246C, 248B, 252B, 252B3, 256C, 257B3, 259B3, 262B, 262C, 262C2, 267B, 268B, 272C, 277B, 277C, 277C2, 279C, 279C2, 287B, 287C, 287C2, 289C, 289C2, 297C |
| Turbo Model |
TD04HL-13G-8.5, TD04HL-13G |
| Condition |
New Aftermarket |
| Warranty |
3-12 months against manufacturing defects |
| Standards |
ISO 9001 |
Application Suitability
| Engine System |
Related Components |
| Intake & Boost System |
Air filter elements, intake ducting seals, boost pressure sensors |
| Lubrication Feed Circuit |
Oil feed line restrictors, turbo drain gaskets, engine oil filter |
| Exhaust & Emission Path |
Exhaust manifold studs and nuts, manifold-to-turbo gasket, downstream piping clamps |
| Crankcase Ventilation |
Crankcase breather hoses, oil separator elements |
Root Cause Diagnosis Before Turbocharger Engine Rebuild Replacement
A failed turbo is usually the symptom, not the disease.
In the engine rebuild shops along the Pearl River Delta, I have watched too many 3044C and S4S engines come back on the bench within weeks of a turbo swap. The pattern is almost always the same: the old turbo ingested debris from a collapsing intake hose, or starved for oil because the feed line screen was clogged with carbon from the previous failure. Replacing the turbocharger without flushing the oil circuit and inspecting the full intake tract simply sets up the next failure cycle. A proper turbocharger engine rebuild replacement demands system-level verification before the new unit ever touches the manifold [NEED_CITE: diesel engine turbocharger failure root cause analysis methodology].
Mapping the Turbocharger to the Full Engine Breathing Circuit
The TD04HL family sits at the intersection of three engine subsystems: pressurized air delivery, oil-cooled bearing lubrication, and exhaust energy recovery. When planning a turbocharger engine rebuild replacement for a CAT 3044C or Mitsubishi S4S platform, the turbo cannot be treated as an isolated line item. Upstream, the air filter housing and every section of flexible intake ducting must be checked for collapse, cracking, or loose clamp hardware that could allow unfiltered air to reach the compressor wheel. Downstream, the exhaust manifold gasket surface and turbine outlet flange need verification for warpage that would alter backpressure readings.
Oil Feed Condition and the Rebuild Sequence
The journal bearings inside a TD04HL-13G or TD04HL-13G-8.5 spin at speeds where even brief oil starvation causes scoring. Before fitting a replacement turbo, the oil feed line must be disconnected at both ends and flushed or replaced outright. The feed line screen or restrictor orifice, where equipped, should be extracted and inspected. On engines that have suffered a previous turbo seizure, metallic debris often lodges in the drain line and the crankcase breather circuit, creating contamination that attacks the new unit from the first startup. Addressing these pathways is what separates a lasting repair from a repeat visit to the teardown bench [NEED_CITE: turbocharger oil feed line contamination during engine rebuild].
Decoding the TD04HL Variant Differences
The TD04HL-13G-8.5 and TD04HL-13G variants share the same basic housing architecture but differ in compressor trim and turbine wheel geometry. These differences correspond to specific engine serial ranges and emissions calibration levels. Installing a TD04HL-13G on an engine calibrated for the -8.5 variant can produce overboost conditions that trigger derate codes or, worse, compressor surge that damages the wheel. Cross-referencing the engine serial number against the variant chart is a non-negotiable step. The alternate reference numbers spanning 49189-02710 through 49189-10530 cover these variant boundaries, and a mismatch in this range is one of the most common fitment errors we encounter.
How Boost and Flow Specifications Translate to Field Performance
Compressor trim, turbine A/R ratio, and wastegate cracking pressure together define the boost curve the engine management system expects. The TD04HL design uses a journal-bearing center section with a dedicated oil drain flange that must seat level against the block or bracket — any angular misload creates a drain restriction that forces oil past the turbine seal. The wastegate actuator rod length determines the boost threshold; if the replacement unit arrives with a different preload setting, the engine may log low-boost faults or run excessively rich under load. Verifying actuator crack pressure and rod length against the engine builder specification eliminates these calibration mismatches before they surface as diagnostic trouble codes during commissioning [NEED_CITE: turbocharger wastegate actuator calibration for medium-duty diesel engines].

The Hidden Cost of Skipping System Diagnostics
Engines that receive a new turbo without an oil system flush or intake inspection tend to return within a single service interval. The second failure often looks different from the first — a turbine seal blowout instead of a compressor wheel chip, or bearing cage collapse instead of shaft play — which misleads the technician into believing a different root cause was at play. In reality, the debris or restriction from the first event was never cleared. The cost of that oversight includes a second teardown, a second turbo, and the reputation damage of a machine that goes down twice for the "same" problem [NEED_CITE: repeat turbocharger failure patterns in skid steer and compact track loader engines].
Why Rebuild Shops Source This Turbo Through Our Engine System Desk
Our Guangzhou facility stocks both TD04HL variants and ships matched gasket and oil line hardware from the same consignment, so a complete intake-to-exhaust seal set arrives with the turbo rather than on a separate order. Part identification works from an engine serial number, a nameplate photograph, or a worn reference number image — the cross-reference table covering 234-4894 through the 49189-series Mitsubishi numbers is verified against supersession records before confirmation. Every unit ships with a balancing and boost test record. The technical team reviews oil feed condition and drain routing with the buyer before dispatch, reducing the chance that an undiagnosed system fault destroys the new component. Minimum order is one piece, and sample supply is available for fitment trials on unfamiliar engine builds.

Documentation & Verification
- Commercial invoice listing turbo model variant and engine serial cross-match
- Cross-reference sheet mapping 234-4894 and all Mitsubishi alternate numbers as reference only
- Rotor balancing and actuator crack pressure test record included in carton
- Warranty terms covering manufacturing defects for 3 to 12 months
- Packing photographs showing flange protection and oil port sealing caps
- HS code and export classification support for customs clearance
Installation & Rebuild Sequence
- Flush oil feed line and replace restrictor screen before mounting the new turbo
- Verify manifold gasket surface flatness against TD04HL flange specification
- Prime the center bearing section with clean engine oil before first crank
- Confirm drain line slope and absence of kinks to prevent oil backup
- Run engine at idle and check for oil weep at turbine seal during warm-up
- Log boost pressure at rated RPM and compare to engine builder target curve
Request a System-Matched Quote
Provide the engine model, serial number, and any prior rebuild history so we can confirm whether the TD04HL-13G or TD04HL-13G-8.5 variant is correct for your build. If the nameplate is unreadable, send a photograph of the old turbo data tag or the manifold mating flange — our technical team will identify the variant and confirm gasket and oil line compatibility from that image alone.
Frequently Asked Questions
Q: How do I confirm which TD04HL variant fits my specific engine serial?
A: Share the engine serial number or a clear photograph of the existing turbo data plate. We cross-reference the serial against the variant chart that maps TD04HL-13G and TD04HL-13G-8.5 to their respective engine calibration ranges, then confirm the correct unit before shipping.
Q: What other engine components should I inspect when replacing this turbo?
A: Inspect the full oil feed and drain circuit, the air filter housing and intake ducting for collapse or debris, and the exhaust manifold gasket surface for warpage. Any restriction or contamination in these systems is a likely contributor to the previous turbo failure.
Q: Why did the previous turbo fail, and how do I prevent recurrence?
A: Common causes include oil starvation from a clogged feed screen, compressor wheel damage from intake debris, and excessive exhaust backpressure from downstream restrictions. A system-level inspection before fitting the replacement unit addresses these root causes directly.
Q: Do the cross-reference numbers cover all superseded versions?
A: Yes. The listed references from 234-4894 through the 49189-series Mitsubishi numbers include superseded and alternate identifiers. Each number is verified against current fitment data, marked as reference only, and confirmed against your engine serial before dispatch.
Q: What checks are needed immediately after turbo installation?
A: After priming the bearing section and completing the first start, idle the engine and inspect the turbine seal area for oil weep. Once at operating temperature, log boost pressure at rated RPM and compare against the engine builder specification to confirm correct variant fitment.