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H71H Wafer-Type Lift Check Valve Overview
The H71H wafer-type lift check valve is an energy-efficient check valve that adopts a single-disc lift-type design and operates automatically based on medium flow. It typically uses a wafer-type connection. The valve body is commonly made of stainless steel, cast steel, or ductile iron, with its internal single disc moving vertically along the centerline of the valve body. The valve can be installed horizontally or vertically. When the medium flows in the forward direction, it pushes the disc to open smoothly, providing an unobstructed flow path with low pressure loss. When the medium stops or flows in reverse, the disc quickly falls back and closes under the combined action of spring force and reverse medium pressure, ensuring reliable sealing and fast shut-off. This valve is specifically designed for pipeline systems with limited installation space and the need for quick closure. It is widely used in water supply and drainage, fire protection systems, HVAC, and industrial circulating water projects, serving as a simple, economical, and practical pipeline protection device.

H71H Lift Type Wafer Check Valve Product Image
H71H Wafer-Type Lift Check Valve Features
1. Simple structure with single-disc lift design: The single disc moves vertically along the centerline of the valve body, resulting in a small number of components, compact structure, low failure rate, economical manufacturing cost, and easy maintenance and replacement.
2. Space-saving wafer connection: The wafer-type connection provides a short valve body length, light weight, and small pipeline space occupation, making it especially suitable for applications with limited installation space.
3. Unobstructed flow path and low flow resistance: After opening, the disc completely clears the flow path, allowing the medium to pass through almost linearly, resulting in low fluid resistance and low pressure loss. Long-term operation can effectively reduce pumping energy consumption.
4. Flexible installation and strong adaptability: Can be installed horizontally or vertically (with medium flow from bottom to top). The spring-assisted closing ensures reliable sealing at various installation angles, offering a wide range of applications.
5. Quick closing and reliable sealing: The disc has a short lift stroke, and the spring-assisted return provides sensitive and rapid closing action, effectively reducing water hammer impact. The sealing performance is stable and reliable, protecting pipeline equipment safety.

H71H Lift Type Wafer Check Valve Structure Diagram
Parts Name Material List
| 阀体Body | 阀瓣Disc | 阀座Body Seat | 阀瓣座Disc Seat | 弹簧Spring | 介质接触件Wetted Parts |
| A216WCB/A105 | A351 CF8 | 410SS/Stellite | Same as disc | InconelX-750 | 410SS |
| A216WCB/A105 | A351 CF8 | VITON/BUNA/EPDM | Same as disc | InconelX-750 | 410 SS |
| A216WCB/A105 | A351CF8M | 316SS/Stellite | Same as disc | InconelX-750 | 316 SS |
| A216 WCB/A105 | A351 CF8M | VITON/BUNA/EPDM | Same as disc | InconelX-750 | 316 SS |
| A352LCC/A350 LF2 | A351 CF8M | 316SS/Stellite | Same as disc | InconelX-750 | 316 SS |
| A352LCC/A350 LF2 | A351 CF8M | VITON/BUNA/EPDM | Same as disc | InconelX-750 | 316SS |
| A351 CF8M/A182F316 | A351CF8M | Same as body | Same as disc | InconelX-750 | 316 SS |
| A351 CF8M/A182F316 | A351 CF8M | VITON/BUNA/EPDM | Same as disc | InconelX-750 | 316 SS |
| A890GR 4A/A182F51 | A890 GR4A | Same as body | Same as disc | InconelX-750 | A182F51 |
| A890 GR5A/A182F53 | A890 GR 5A | Same as body | Same as disc | InconelX-750 | A182F53 |
| UNS S31254 | UNSS31254 | Same as body | Same as disc | InconelX-750 | 254-SMO |
| UNSN26625 | UNSN26625 | Same as body | Same as disc | InconelX-750 | Inconel 625 |
| 性能规范表Performance Specification | ||
| 公称压力Nominal Pressure | 1.0-4 | Мpa |
| 强度试验压力Shell Test | 1.5-6 | |
| 密封试验压力Seal Test | 1.1-4.4 | |
| 适用温度Suitable Temp. | ≤425 | ℃ |
Dimensions Standard Requirements
1. The structural length of the valve shall conform to the standard ASME16.10.
2. The connecting flange shall conform to the standard ASME16.50.

H71H Lift Type Wafer Check Valve View Drawing
H71H Lift Type Wafer Check Valve Dimensions Table
| Pressure Rating | DN | Dimensions | Pipe Flange | Weight (kg) | |||||||
| L | D | d | D1 | D2 | Dam of Bolts Circle | Number of Bolts | Diameter of Bolts | Length of Bolts | |||
| PN10 PN16 (长系列) | 15 | 25 | 52 | 15 | 25 | 25 | 65 | 4 | M12 | 90 | 0.3 |
| 20 | 31.5 | 62 | 19 | 30 | 30 | 75 | 4 | M12 | 100 | 0.45 | |
| 25 | 35.5 | 72 | 24 | 36 | 36 | 85 | 4 | M12 | 105 | 0.6 | |
| 32 | 40 | 83 | 31 | 43 | 43 | 100 | 4 | M16 | 115 | 0.8 | |
| 40 | 45 | 93 | 39 | 52 | 52 | 110 | 4 | M16 | 120 | 1.4 | |
| 50 | 56 | 108 | 48 | 62 | 62 | 125 | 4 | M16 | 140 | 2.3 | |
| 65 | 63 | 128 | 62 | 75 | 75 | 145 | 8 | M16 | 150 | 3.0 | |
| 80 | 71 | 142 | 76 | 90 | 90 | 160 | 8 | M16 | 155 | 3.8 | |
| 100 | 80 | 162 | 95 | 112 | 112 | 180 | 8 | M16 | 170 | 5.0 | |
| 125 | 110 | 192 | 110 | 125 | 132 | 210 | 8 | M16 | 200 | 11 | |
| 150 | 125 | 218 | 127 | 150 | 158 | 240 | 8 | M20 | 225 | 16 | |
| PN10 | 200 | 160 | 273 | 165 | 200 | 208 | 295 | 8 | M20 | 260 | 28 |
| PN16 | 200 | 160 | 273 | 165 | 200 | 208 | 295 | 12 | M20 | 260 | 28 |
| Wafer Type-PN25(Long Type) | |||||||||||
| Pressure Rating | DN | Dimensions | Pipe Flange | Weight (kg) | |||||||
| L | D | d | D1 | D2 | Diam of Bolts Circle | Number of Bolls | Diameter of Bolts | Length of Bolts | |||
| PN25 (长系列) | 15 | 25 | 52 | 15 | 25 | 25 | 65 | 4 | M12 | 90 | 0.3 |
| 20 | 31.5 | 62 | 19 | 30 | 30 | 75 | 4 | M12 | 100 | 0.45 | |
| 25 | 35.5 | 72 | 24 | 36 | 36 | 85 | 4 | M12 | 105 | 0.6 | |
| 32 | 40 | 83 | 31 | 43 | 43 | 100 | 4 | M16 | 115 | 0.8 | |
| 40 | 45 | 93 | 39 | 52 | 52 | 110 | 4 | M16 | 120 | 1.4 | |
| 50 | 56 | 108 | 48 | 62 | 62 | 125 | 4 | M16 | 140 | 2.3 | |
| 65 | 63 | 128 | 62 | 75 | 75 | 145 | 8 | M16 | 150 | 3.0 | |
| 80 | 71 | 142 | 76 | 90 | 90 | 160 | 8 | M16 | 165 | 3.8 | |
| 100 | 80 | 168 | 95 | 112 | 112 | 190 | 8 | M20 | 180 | 5.2 | |
| 125 | 110 | 194 | 110 | 125 | 132 | 220 | 8 | M24 | 225 | 11.8 | |
| 150 | 125 | 224 | 127 | 150 | 158 | 250 | 8 | M24 | 245 | 18 | |
| 200 | 160 | 284 | 165 | 200 | 208 | 310 | 12 | M24 | 285 | 30 | |
| Wafer Type-PN40(Long Type) | |||||||||||
| Pressure Rating | DN | Dimensions | Pipe Flange | Weight (kg) | |||||||
| L | D | d | D1 | D2 | Diam of Bolts Circle | Number of Bolts | Diameter of Bolls | Length of Bolts | |||
| PN40 长系列) | 15 | 25 | 52 | 15 | 25 | 25 | 65 | 4 | M12 | 90 | 0.3 |
| 20 | 31.5 | 62 | 19 | 30 | 30 | 75 | 4 | M12 | 100 | 0.45 | |
| 25 | 35.5 | 72 | 24 | 36 | 36 | 85 | 4 | M12 | 105 | 0.6 | |
| 32 | 40 | 83 | 31 | 43 | 43 | 100 | 4 | M16 | 115 | 0.8 | |
| 40 | 45 | 93 | 39 | 52 | 52 | 110 | 4 | M16 | 120 | 1.4 | |
| 50 | 56 | 108 | 48 | 62 | 62 | 125 | 4 | M16 | 140 | 2.3 | |
| 65 | 63 | 128 | 62 | 75 | 75 | 145 | 8 | M16 | 150 | 3.0 | |
| 80 | 71 | 142 | 76 | 90 | 90 | 160 | 8 | M16 | 165 | 3.8 | |
| 100 | 80 | 168 | 95 | 112 | 112 | 190 | 8 | M20 | 180 | 5.2 | |
| 125 | 110 | 194 | 110 | 125 | 132 | 220 | 8 | M24 | 225 | 13 | |
| 150 | 125 | 224 | 127 | 150 | 158 | 250 | 8 | M24 | 245 | 19 | |
| 200 | 160 | 291 | 165 | 200 | 208 | 320 | 12 | M27 | 295 | 32 | |

Model:
H42W-16C/H42W-25P/H42W-40P/H42W-20RSpecification:
DN25-200Pressure:
PN16,PN25,PN40Material:
Carbon Steel, Stainless Steel
Model:
H71W-PN40C/H71W-16C/H71W-25C/H71W-16P/H71W-25P/H71W-40PSpecification:
DN15-250Pressure:
PN16,PN25,PN40Material:
Carbon Steel, Stainless Steel
Model:
H61Y-250C/H61Y-320C/P54140V/P54170V/P57170VSpecification:
DN10-100Pressure:
PN200-PN320Material:
Carbon Steel, forged steel, Cr-Mo-V Steel
Complete Guide to Check Valve Selection and Installation: Detailed Explanation of Principles, Selection, and Key Construction Points Check valves, as crucial safety components in pipeline systems, are essential for preventing medium backflow and ensuring safe system operation. This article will provide you with a comprehensive guide to the selection and installation of check valves.
1. Operating Principle and Classification of Check Valves 1.1 What is a Check Valve?
Check valves, also known as one-way valves or non-return valves, belong to the category of automatic valves. Their working principle is to achieve opening and closing through the flow force of the medium itself. Their core function is to prevent the reverse flow of pipeline medium and ensure one-way flow.
1.2 Main application scenario: foot valve (a special type of check valve) at the water pump suction inlet
Various pipeline systems requiring unidirectional flow of medium
Industrial settings where accidents caused by medium backflow are to be prevented
II. Selection Criteria and Guidelines for Check Valves 2.1 Basic Selection Principles Medium Adaptability: Suitable for clean medium conditions, not recommended for pipelines containing solid particles or high viscosity media.
2.2 Selection of pipeline size (DN) based on pipeline size. Recommended valve types. Applicable pressure range: DN<50mm. Butterfly check valve, vertical lift check valve, diaphragm check valve. Low-pressure environment: 50mm
Advantages: Effectively eliminates the water hammer phenomenon
Limitations: Subject to temperature and pressure constraints, suitable for low-pressure and normal-temperature pipelines
Applicable scenario: Water supply pipelines prone to water hammer
Slow-closing check valve:
Slow-closing swing check valve
Slow-closing butterfly check valve
Applicable scenario: pipeline systems that require minimal or no water hammer impact when shut down
III. Installation specifications and construction requirements for check valves 3.1 Preparatory work before installation Appearance inspection:
Check the valve nameplate information to ensure compliance with the GB 12220 "General Valve Marking" standard
Check the integrity of the valve and confirm that it is undamaged
Pressure test requirements:
If the working pressure exceeds 1.0 MPa or the main pipe shut-off valve is involved, a pressure test must be conducted
Strength test: Nominal pressure × 1.5, duration ≥ 5 minutes, no leakage is considered as qualified
Tightness test: nominal pressure × 1.1, determine the duration according to GB 50243 standard
3.2 Installation location and direction: Strictly follow the design drawings to determine the location, height, and inlet and outlet directions
Flow direction indicator: Ensure that the flow direction of the medium is completely consistent with the direction indicated by the arrow on the valve body
Pipe support:
It is prohibited to let the check valve bear the weight of the pipeline
Large check valves must be equipped with independent support structures
Avoid direct impact of piping pressure on the valve
3.3 Lift check valves are required for specific types of installations:
Vertical flap type: It must be installed on a vertical pipeline
Horizontal flap type: It must be installed on a horizontal pipeline
Swing check valve:
Ensure that the valve disc's rotating shaft is in a horizontal position during installation
Special attention should be paid to the flow direction of the medium during inclined installation
IV. Common Installation Errors and Precautions 4.1 Example of Incorrect Installation: Installing a Vertical Lift Check Valve on a Horizontal Pipe
The valve flow direction is reversed
Large valves have no independent support
Pressure testing was not conducted according to specifications
4.2 The selection and installation location of check valves should be considered during the design phase of the professional advice system
Provide complete operating condition parameters to the supplier during procurement to obtain professional selection advice
For complex systems, it is recommended to consult a professional valve engineer
Conduct regular maintenance and inspection to ensure the check valve operates in normal condition
5. Maintenance points: Regularly check whether the valve can be opened and closed flexibly
Monitor for abnormal sounds, such as water hammer impact
Check the sealing performance to prevent internal leakage
Lubricate the moving parts to ensure normal operation
The correct selection and installation of check valves are crucial for ensuring the safe operation of pipeline systems. Following the selection guidelines and installation specifications provided in this article can prevent various accidents caused by medium backflow, extend the service life of valves, and reduce maintenance costs.
In practical applications, it is recommended to consider specific engineering requirements and medium characteristics, and if necessary, consult professional valve technicians to ensure the optimization of the selection and installation plan.