| Port Count | 2 ports 3 ports 4 ports 5 or more ports | The number of hydraulic passages available through the rotating center joint. It determines how many independent circuits can pass between the upper frame and the travel motors. | 2 ports: Common for basic travel circuits. 3–4 ports: Suitable when an additional pilot, brake-release, drain, or auxiliary circuit is required. 5+ ports: Used when several independent functions must pass through the joint. | Count the required circuits, including case-drain and brake-release lines where applicable. Do not select by port count alone; each passage must also meet the required flow and pressure. |
| Nominal Bore Size | 8–12 mm 13–18 mm 19–25 mm 26–32 mm 33–40 mm | The internal passage diameter affects flow capacity, pressure loss, fluid velocity, heat generation, and connection compatibility. | Smaller bores may be appropriate for pilot or low-flow circuits. Medium bores are commonly considered for travel-motor working lines. Larger bores are generally required for high-flow hydrostatic circuits or larger excavators. | Match the bore to the required continuous and peak flow. A larger bore does not compensate for an incorrectly sized port, seal, bearing, or housing. |
| Excavator Operating Weight | 1.5–6 tonnes 6–15 tonnes 15–30 tonnes 30–50 tonnes Over 50 tonnes | Operating weight provides an initial indication of travel-motor size, expected tractive load, hydraulic flow, pressure, and center-joint structural requirements. | Compact machines usually require smaller passages and lower flow capacity. Medium and large excavators typically require higher pressure ratings, larger passages, stronger bearings, and greater resistance to shock loading. | Tonnage is only a screening parameter. Confirm the actual travel-motor displacement, system pressure, maximum flow, machine speed, and duty cycle before final selection. |
| Working Pressure | 210–250 bar nominal 250–315 bar nominal Up to approximately 350 bar peak, where specified | Pressure rating defines the maximum allowable hydraulic load on the body, passages, seals, threaded connections, and rotating interfaces. | Select a center joint with a continuous pressure rating above the machine's normal operating pressure and a peak rating that covers transient pressure spikes. | Compare both continuous and peak ratings. Pressure capability must be evaluated together with temperature, fluid type, speed of rotation, and expected shock loads. |
| Required Flow Rate | Pilot circuit: typically below 20 L/min Low-flow auxiliary circuit: approximately 20–60 L/min Travel circuit: commonly 60–200+ L/min per passage | Flow capacity determines pressure drop and fluid velocity through the center joint. Insufficient capacity can reduce travel performance and increase heat generation. | Size each passage for the maximum expected flow, not only the average flow. Consider whether flow is continuous, intermittent, bidirectional, or shared between functions. | Use the actual pump and travel-motor flow data. Verify pressure drop at operating temperature and at the maximum expected flow rate. |
| Rotation Speed | Typically below 10 rpm during machine travel Higher transient speeds may occur during steering or track-speed changes | Rotation speed influences seal wear, friction, heat generation, and the permissible combination of pressure and flow. | A center joint for an excavator must tolerate repeated oscillating rotation and frequent directional changes rather than only steady continuous rotation. | Check the manufacturer's speed limits at the intended pressure, temperature, and fluid viscosity. Confirm that the seal material is compatible with the specified hydraulic fluid. |
| ISO 4406 Cleanliness Code | 18/16/13: common reference level for general hydraulic systems 17/15/12: cleaner operating target 15/13/10 or cleaner: used for contamination-sensitive components when specified | ISO 4406 reports the number of particles at or above 4, 6, and 14 micrometres per millilitre. Lower code numbers indicate fewer particles and cleaner hydraulic fluid. | Use the cleanliness level required by the most contamination-sensitive component in the circuit. A clean center joint cannot compensate for dirty oil, contaminated hoses, or poor assembly practices. | Confirm the required code from the complete hydraulic-system specification. Take representative fluid samples using a clean sampling method and maintain filtration, flushing, and sealed storage practices. |
| Connection and Installation Compatibility | Metric or imperial ports Threaded, flange, or hose connections Standard or custom mounting patterns | Connection type, port orientation, mounting dimensions, shaft height, and bolt pattern determine whether the center joint can be installed without hose interference or structural modification. | Select the same connection standards and port locations as the machine's existing hydraulic layout whenever possible. Confirm hose bend radius and access for maintenance. | Check dimensional drawings, port identification, mounting-hole pattern, rotation direction, and the correct orientation of the inner and outer passages before installation. |