Parker Denison M4 Series Axial Hydraulic Motor for Trucks
Warranty:1 Year
Displacement:Other
Pump Type:Hydraulic Motor
Other attributes:Showroom Location
Place of Origin:Fujian, China
Weight:35
Parker Denison M4 Series Axial Hydraulic Motor For Trucks
The power core of the truck's hydraulic actuator system
In truck hydraulic systems-such as those in dump trucks, concrete mixer trucks, and aerial work trucks-the axial hydraulic motor serves as the "executive power source" that converts hydraulic energy into rotational mechanical energy, driving key components like dump cylinders, mixer drums, and lifting platforms. The Parker Denison M4 Series Axial Hydraulic Motor is designed for truck applications, combining Parker's precision manufacturing with Denison's hydraulic expertise to deliver stable performance in harsh working environments. As a representative of the denison m4 motor, it features a compact axial structure that fits perfectly into the limited installation space of truck chassis, ensuring efficient power transmission even under continuous vibration.?
The parker m4 inherits Parker's consistent quality standards. Its internal components-such as the rotor and stator-are processed with high-precision grinding technology, with a fit clearance of less than 0.005mm. This ensures that the motor maintains stable output torque whether the truck is climbing a slope with a heavy load or driving on a flat road, avoiding sudden power loss that could affect operation safety. The denison m4 motor also uses a modular design, making it easy to integrate with truck hydraulic pipelines and reducing the difficulty of system debugging.?
Core advantage: Balancing power output and structural reliability
The parker m4 stands out in truck applications for its powerful torque output and durable structure. As an axial hydraulic motor, it adopts an axial piston design, which can generate high torque (up to 2800 N·m) under medium pressure (16-25 MPa)-ideal for driving the mixer drum of a concrete mixer truck. Even when mixing high-viscosity concrete, the denison m4 motor can maintain a stable rotation speed (50-300 r/min), ensuring uniform mixing without material solidification.?
Another key advantage is its adaptability to harsh environments. The parker m4 uses a reinforced housing made of high-strength cast iron, which can resist the impact of road debris and the vibration of the truck during driving. Its sealing system is designed with double lip seals and dust rings, effectively preventing the intrusion of dust, rainwater, and hydraulic oil leakage-critical for trucks working in construction sites or open mines. The axial hydraulic motor structure also minimizes internal friction: the piston and cylinder block are lubricated by hydraulic oil, reducing wear and extending the service life to over 10,000 hours.?
Technical features: Tailor-made for truck scenarios
- High Torque-Efficiency Ratio: The axial hydraulic motor design of the denison m4 motor allows it to output large torque with small volume, saving 30% of installation space compared to radial motors-perfect for truck chassis with limited space.?
- Smooth Speed Regulation: The parker m4 supports stepless speed regulation in the range of 50-300 r/min, which can be adjusted in real time according to the truck's working conditions. For example, when a dump truck lifts its carriage, the motor reduces speed to increase torque; when lowering, it increases speed to improve efficiency.?
- Strong Anti-Interference: The denison m4 motor is equipped with a built-in pressure compensation valve, which can automatically adjust the output when the truck's hydraulic system pressure fluctuates, ensuring stable operation of the driven components (such as the lifting platform of an aerial work truck).?
- Easy Maintenance: The parker m4 adopts a detachable end cover design. Key components like the rotor and seals can be replaced without disassembling the entire motor, reducing maintenance time by 40% and minimizing truck downtime.
Product Description


Model Designation
| Series | Type code | Type code | Flow code | Shaft type | Rotation | Design number | Sealing level | Port dimensions |
| M4C M4C1 M4SC M4SC1 | No: External 1: Internal | No: standard S: heavy load | 024,027, 031.043. 055,067 075 | See size of the shaft | Bi-directional (Note:cloc- kwise=inlet A.counter- clockwise= inlet B) | A | M4: 1- 5- M4: 1-NBR Nitrile rubber M4S: 5- M4S: | 01,02,04,M4 見See installation dimensions |
| M4D M4D1 M4SD M4SD1 | 062,074. 088,102, 113. 128. 138 | |||||||
| M4E M4E1 M4SE M4SE1 | 153,185, 214, | 01,02, 04 See installation dimensions |
| Model | Shaft code | Shaft type | L1 | L2 | DIA | K1xK2 | H1 |
| M4C | 1 | Keyed:SAE-B(●22.2) | 71.4 | 38.1 | 22.225-22.200 | 6.35×6.30 | 29.94 |
| 2 | Keyed:非NonSAE(●22.2) | 58.7 | 31.7 | 22.225-22.200 | 4.77×4.72 | 24.5 | |
| 3 | Splined:SAE-B | 41.4 | 24.5 | SAE J498b class 1,Diametral pitch 16/32,13T | |||
| M4D | 1 | Keyed:SAE-C(φ31.7) | 55.6 | 38.1 | 31.750-31.700 | 7.94×7.89 | 35.28 |
| 3 | Splined:SAE-C | 55.6 | 38.1 | SAE J498b class 1,Diametral pitch 12/24,14T | |||
| M4E | 1 | Keyed:SAE-C(φ31.7) | 84.1 | 49.3 | 31.750-31.700 | 7.94×7.89 | 35.29 |
| 3 | Splined:SAE-C | 55.7 | 25.2 | SAE J498b class 1,Diametral pitch 12/24,14T | |||




Install Dimension
| Oil port | Install Dimension(mm) | |||||
| A&B | Drain port D | |||||
| SAE 4 Hole flange (Oil port code: 02, 04, M4) | SAEThreaded port (Code: 01) | |||||
| A1 | B1 | C1 | T1Thread | |||
| M4C/M4SC | 52.4 | 26.2 | 25.4 | SAE: 8/3 16 UNC×19.0 Metric:M10×20.0 | 1 5/16 UNF×19.0 | SAE: 7/16 20UyF BSPP: 1/4 |
| M4D/M4SD | 58.7 | 30.2 | 31.8 | SAE: 7/6 14UNC×22.0 Metric: M12×222.1 | 1 5/8 UNF ×19.0 | SAE: 3/4 16UNF BSPP:3/8 |
| M4E/M4SE | 77.8 | 42.9 | 50 | 1/2 13UNC×26.9 | 2 1/2 12UNF×19.0 | SAE:3/4 16UNF BSPp:1/2 |
To protect your rights please read the following carefully Pump Start-up Procedure Preparation Prior to Start-up The reservoir and circuit should be clean and free of dirt and debris prior to filling with fluid. Circuit Cleanup The reservoir should be charged with filtered hydraulic fluid. The fluid level should be sufficient to prevent vortexing at the suction connection to the pump inlet. It is good practice to clean the system by flushing and filtering, using an external slave pump. Filling Pump and Removing Air If the pump is mounted above the fluid level, it should be filled with fluid through the outlet port. If the pump is mounted below the fluid level, the pump outlet fitting (or other downstream fitting or plug) can be loosened to allow fluid to displace the air. It may be necessary to loosen the fill cap on the reservoir to allow the fluid to flow freely. When a solid stream of fluid with no observed air begins to drain through the loosened fitting, the fitting should be retightened. An air bleed valve in the outlet circuit is also recommended to remove trapped air. If such a device is used, the pump should be filled with fluid before start-up. In some cases, it may be possible to prime the pump by running the engine starter for five to ten seconds with the throttle and/or ignition switch in the "off" position. It will be necessary to loosen a fitting or plug in the pump outlet to allow air to escape. Pump Start-up All controls should be placed in the neutral position so the pump is unloaded when started. Start the engine and run at low idle. Once the pump is started, it should prime and pump within a few seconds. If it does not, make sure there are no restrictions between the reservoir and the inlet to the pump, and that there are no air leaks in the inlet line and connections. Also, make sure that trapped air can escape from the outlet. Run at low engine idle for approximately five minutes. Then, while observing the reservoir fluid level, operate the implements. Extend all actuators to maximum safe limits to completely fill the system with fluid. Do not run with the fluid level below the "low" limit. Add fluid to the reservoir to bring the fluid to the proper fill level.
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