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ZZYVP Self-Operated Nitrogen-Sealing Pressure Regulating Valve Overview
The ZZYVP self-operated nitrogen-sealing pressure regulating valve is a self-operated micro-pressure control device specifically designed for the nitrogen sealing protection system of storage tanks. Adopting the medium self-driven force balance principle, the valve senses pressure changes in the gas phase space at the top of the storage tank through a sensitive diaphragm, automatically adjusting the nitrogen supply or exhaust volume to accurately maintain the internal tank pressure within the set micro-positive pressure range (usually 0.1-5kPa). Its core function is to isolate air through a continuous and stable nitrogen blanket, preventing oxidation, volatilization or moisture absorption of materials in the tank while ensuring the structural safety of the storage tank. It is widely used in the tank protection systems for volatile liquids or sensitive materials in chemical, petroleum, pharmaceutical, food and other industries.

ZZYVP Self-Operated Nitrogen-Sealing Pressure Regulating Valve Product Image
ZZYVP Self-Operated Nitrogen-Sealing Pressure Regulating Valve Features
1. Specialized Micro-Pressure Control for Nitrogen Sealing
Designed specifically for the special requirements of tank nitrogen sealing working conditions, it can achieve high-precision control of micro-positive pressure within the range of 0.1-5kPa (sensitivity up to ±50Pa). Equipped with a special low-pressure difference diaphragm and light-load spring set, it ensures operational sensitivity and control stability under micro-gas regulation conditions.
2. Dual-Action Control Mode
Integrates dual functions of nitrogen supply regulation and nitrogen relief control. Automatically opens to supplement nitrogen when the internal tank pressure is lower than the set value, and automatically opens to exhaust when the pressure is higher than the set value, maintaining dynamic pressure balance inside the tank. A single valve achieves bidirectional regulation, simplifying the system structure and reducing installation costs.
3. Corrosion Resistance and Sealing Safety Design
Components in contact with gas inside the valve are made of stainless steel or polytetrafluoroethylene (PTFE), resistant to corrosion from nitrogen and chemical volatile gases. The sealing structure adopts soft-hard composite sealing or metal bellows sealing to achieve long-term zero leakage, preventing external air infiltration or ineffective nitrogen escape.
4. Adaptive Performance and Safety Redundancy
Built-in damping mechanism can suppress pressure sudden change interference caused by material inlet and outlet of the tank. Optional dual-valve combination or overpressure rupture disc is available as safety redundancy to ensure tank pressure safety under extreme working conditions. The pressure tapping port design can be equipped with an isolation tank to prevent medium crystallization or blockage from affecting pressure sensing.
5. Energy-Saving Self-Drive and Intelligent Integration
No external energy source is required; the valve is driven by pressure changes of the tank itself, which is energy-saving and suitable for explosion-proof areas. It can be integrated with pressure transmitters and digital controllers to upgrade into an intelligent nitrogen sealing system, supporting remote monitoring, pressure curve recording and fault early warning, realizing refined energy management and safety control.

ZZYVP Self-Operated Nitrogen-Sealing Pressure Regulating Valve Structure Diagram
Parts Name Material List
| NO. | Name | Material |
| 1 | body | ZG230-450、ZG1Cr18Ni9 |
| 2 | Trim | 1Cr18Ni9Ti |
| 3 | diaphragm cover | A3、1Cr18Ni9Ti |
| 4 | diaphragm | Rubber Reinforced with Polyester Fabric |
| 5 | spring | 60Si2Mn、1Cr18Ni9Ti |
| Performance Specification | ||
| Nominal Pressure | 1.6 | MPa |
| Shell Test | 2.4 | |
| Seal Test | 1.76 | |
| Suitable Temp. | ≤425 | ℃ |
Dimensions Standard Requirements
1. The structural length of the valve shall conform to the standard GB/T12221.
2. The connecting flange shall conform to the standard GB9113.

ZZYVP Self-Operated Nitrogen-Sealing Pressure Regulating Valve View Drawing
ZZYVP Self-Operated Nitrogen-Sealing Pressure Regulating Valve Dimensions Table
| DN | L | H | A | P |
| 20 | 184 | 548 | Ф308 Ф394 | 180 |
| 25 | 184 | 548 | 180 | |
| 32 | 180 | 565 | 220 | |
| 40 | 200 | 565 | 220 | |
| 50 | 230 | 565 | 300 | |
| 65 | 290 | 595 | 400 | |
| 80 | 310 | 595 | 400 | |
| 100 | 350 | 595 | 570 |

Model:
YK43X-16P/YK43X-25P/YK43X-40P/YK43X-64P/YK43X-100P/YK43X-16C/YK43X-25C/YK43X-40C/Y43KX-64CSpecification:
DN15-DN500Pressure:
1.6Mpa-16MpaMaterial:
Stainless steel,carbon steel
Model:
Y43X-10C/Y43X-16C/Y43X-10P/Y43X-16PSpecification:
DN50-DN400Pressure:
PN10,PN16Material:
Stainless steel,carbon steel
Model:
YK43F-16C/YK43F-25C/YK43F-40C/YK43F-64C/YK43F-16P/YK43F-25P/YK43F-40P/YK43F-64P/YK43F-100PSpecification:
DN15-DN500Pressure:
1.6Mpa-16MpaMaterial:
Cast steel 、stainless steel,forged steel
Is the noise from the pressure reducing valve disturbing? Understand the 3 fundamental reasons and solutions in one article
The harsh noise generated by pressure reducing valves during operation is not only an environmental pollution problem, but also a precursor to equipment failure. This article will delve into the three fundamental causes of noise generated by pressure reducing valves - mechanical vibration noise, fluid dynamics noise, and aerodynamic noise, and provide professional solutions.
1、 Mechanical vibration noise: a test of design and process
Mechanical vibration noise is the most common type of noise in pressure reducing valves, mainly divided into two forms:
1. Low frequency vibration noise
Causes:
Medium jet and pressure pulsation
The outlet flow rate of the valve is too fast
Unreasonable pipeline layout
Insufficient rigidity of moving parts inside the valve
2. High frequency vibration noise (resonance phenomenon)
Causes:
The natural frequency of the valve coincides with the excitation frequency of the medium
Easy to occur within a specific decompression range
Sensitive to changes in working conditions, with significant noise fluctuations
Solution:
Optimize the clearance design between the liner and valve stem
Improve machining accuracy
Adjust the natural frequency of the valve
Enhance the rigidity of active components
Select appropriate damping materials
2、 Fluid Dynamics Noise: Challenges in Fluid Control
The turbulence and eddies generated when the fluid passes through the pressure reducing valve can cause significant noise problems.
1. Turbulent noise
Features: Low frequency, low noise level
Cause: Interaction between turbulent fluid and the inner surface of valves/pipelines
Impact: Usually does not constitute a serious noise problem
2. Cavitation noise (the most harmful)
Production mechanism:
During the depressurization process, the fluid flow velocity reaches the critical value
The liquid begins to vaporize, producing bubbles
Bubble explosion under pressure generates shock waves
Local instantaneous pressure can reach 196 MPa
Key data:
Initial value of Δ p: the critical pressure reduction value at which liquid begins to cavitation
Exceeding this value leads to a sharp increase in noise
Preventive measures:
Control the actual pressure reduction value below the critical value
Optimize the design of valve disc fluid direction
Adopting a multi-stage decompression structure
Choose anti cavitation materials
3、 Aerodynamic noise: characteristics of compressible fluids
When compressible fluids such as steam pass through pressure reducing areas, unique noise issues arise:
Production principle:
Conversion of fluid mechanical energy into sound energy
Interaction between high-speed airflow and valve structure
Sudden pressure changes cause gas expansion and sound emission
Control method:
Optimize the design of pressure reducing flow channels
Using mufflers or diffusers
Control the outlet flow rate
Reasonably set back pressure
Comprehensive solutions and selection suggestions
Preventive measures during the design phase
Parameter optimization: Accurately calculate operating parameters to ensure that the pressure reduction value is within the design range
Structural design: Adopting streamlined flow channels to reduce turbulence generation
Material selection: Select special alloys with high rigidity and cavitation resistance
Frequency analysis: avoid the natural frequency of the valve coinciding with the excitation frequency
Key points for installation and maintenance
Correct installation: Ensure the length of the front and rear straight pipe sections to avoid sharp bends
Regular testing: Establish a noise monitoring mechanism to detect problems early on
Timely maintenance: replace worn parts and maintain the best condition of the valve
Brand selection recommendation
High pressure differential operating condition: choose multi-stage pressure reducing valve
Liquid medium: focus on anti cavitation design
Gas/Steam: Focus on Aerodynamic Optimization
Sensitive environment: Choose a low-noise dedicated model
Professional Technical Summary
The essence of the noise problem of pressure reducing valves is the process of energy conversion and release. Fundamentally, all noise issues are closely related to the rationality of valve design, manufacturing process accuracy, and compatibility with operating conditions. Through scientific selection, correct installation, and standardized maintenance, it is entirely possible to control the noise of the pressure reducing valve within an acceptable range.
Immediate action suggestion: If you are troubled by pressure reducing valve noise, it is recommended to first record the noise characteristics (frequency, time period, change pattern), check whether the operating parameters deviate from the design values, and promptly contact professional technicians for diagnosis and treatment.
Keywords of this article: pressure reducing valve noise, mechanical vibration noise, cavitation noise, fluid dynamics noise, pressure reducing valve failure, valve noise reduction, industrial noise control, equipment maintenance
Extended reading: For more professional knowledge about industrial valve selection and maintenance, please follow our technical column to obtain the latest solutions and industry practice cases.