Description
Engineered specifically for demanding reciprocating machinery diagnostic architectures, this heavy-duty signal conduit bridges the gap between cylinder-head pressure sensors and monitoring systems. The Bently Nevada 146824-0050 provides a low-noise, highly shielded signal path essential for capturing high-frequency dynamic pressure changes and generating precise pressure-volume (PV) curves. Built to withstand the physical and environmental rigors of compressor decks, this 50-foot (15.2-meter) cable assembly ensures high-integrity data transmission in electromagnetically noisy and mechanically active environments.
Features
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Robust Electromagnetic Shielding: Attenuates high-frequency noise from nearby heavy machinery, ignition systems, and power lines.
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Engineered Industrial Connectors: Premium threaded terminals designed to maintain solid contact interfaces despite continuous structural vibration.
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Durable Sheathing: Outer jacket material chosen for resistance to oils, industrial solvents, and moisture commonly found on reciprocating compressor frames.
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Pre-Terminated Length: Factory-terminated and tested at a 50 ft (15.2 m) length option to maintain standard electrical impedance characteristics.
Applications
- Reciprocating compressor cylinder pressure monitoring systems.
- Thermodynamic performance diagnostics and peak pressure monitoring.
- Continuous machinery protection architectures utilizing the Bently Nevada 3500/77M Cylinder Pressure Monitor.
- Dynamic combustion analysis on large industrial internal combustion engines.
Technical Specifications
| Parameter |
Value / Specification |
| Manufacturer |
Bently Nevada |
| Part Number |
146824-0050 |
| Product Type |
Cylinder Pressure Transducer Cable |
| Cable Length |
50 feet (15.2 meters) |
| Application Compatibility |
Dynamic Cylinder Pressure Transducers |
| Country of Origin |
United States |
| Shipping Weight (Calculated) |
1.5 kg |
Empirical Engineering Insights
Alternative Models & Compatibility
The 146824 cable family features various dash suffixes designating overall length. To preserve signal integrity, never couple multiple shorter cables to reach a 50-foot span. Splicing can introduce severe impedance changes that degrade the microsecond-level transient response required by high-speed dynamic pressure monitors. If your installation requires a different length, always source the specific matching pre-cut suffix directly.
Application Pitfalls & Engineering Notes
High-impedance transducer signals are extremely susceptible to high-frequency electrostatic and magnetic interference. Running this cable adjacent to AC power lines or variable frequency drive (VFD) output lines without a dedicated, grounded conduit will corrupt pressure-volume plots, leading to false diagnostic indicators or inaccurate thermodynamic calculations in the monitoring terminal.
Commissioning & Wiring Tips
Always ensure that the cable shield is grounded at only one end (typically at the local junction box or monitor rack) to prevent ground loops. Ensure that the transducer connector is fully dry and clean before mating. When securing the cable, maintain a minimum dynamic bend radius of 75 mm to prevent structural degradation of the internal shield foil and conductors over years of machinery operation.
Installation Guidelines
CRITICAL WARNING: De-energize and lock out all machinery prior to installation near reciprocating compressor parts. Ensure all system pressure within the associated cylinders is fully vented and isolated before mounting sensors or routing routing cables near cylinder valves or high-vibration manifolds.
1
Inspect the cable connectors for physical damage, corrosion, or contamination before routing.
2
Route the cable along structural framing, ensuring it is isolated from hot surfaces exceeding 120 degC and sharp metallic edges.
3
Hand-tighten the threaded coupling at the transducer interface, then torque moderately to manufacturer specifications without over-stressing the housing.
4
Secure the cable with vibration-resistant ties to prevent whipping or dynamic wear during continuous compressor operation.