A check valve is a one-way valve installed in the discharge system of a deep well submersible pump.
It allows water to move upward while the pump is operating and closes when the pump stops. Its purpose is to prevent the water column inside the rising main from flowing back through the pump.
Although the operating principle appears simple, an incorrectly selected or positioned check valve can contribute to:
The correct valve arrangement depends on the exact pump, flow rate, head, rising-main length, pipe material, installation depth and system-transient behavior.
Do not select a check valve only because its nominal size matches the pump outlet.
When a borehole pump is running, the pressure generated by the pump opens the check valve and pushes water upward through the rising main.
When electrical power is removed, pump speed and flow begin to decrease. The check valve should close before a significant volume of water reverses direction.
A correctly functioning valve helps:
A check valve does not generate pressure or increase pump head. It creates hydraulic resistance and therefore consumes a small amount of head while open.
Its pressure loss must be included in the system calculation.
Many deep well submersible pumps include a check valve at or near the discharge head.
The SLAPK QJ product information identifies check-valve and non-return-valve components in the pump construction. The exact arrangement, material and pressure capability depend on the selected series and model.
Before specifying an additional valve, confirm:
Do not assume that every pump contains the same valve simply because the product family has a similar external appearance.
Likewise, do not assume that an integral valve is suitable for every possible installation depth or transient condition.
The terms “check valve” and “non-return valve” normally describe a valve that permits flow in one direction and prevents reverse flow.
A foot valve is also a type of non-return valve, but it is commonly installed at the suction inlet of a surface pump to retain prime.
A deep well submersible pump does not normally use a suction foot valve in the same way. The pump operates underwater and pushes water upward from below the water level.
The relevant valve is installed on the discharge side of the submersible pump.
Terminology varies between manufacturers and countries, so the technical drawing and flow-direction arrow should take priority over the product name alone.
If a check valve is absent, stuck open or leaking, the water inside the rising main can flow downward after the pump stops.
This reverse flow may rotate the pump impellers and motor backward.
If the motor restarts while the assembly is still rotating in reverse, the shaft, coupling, impellers and thrust-bearing system can be exposed to severe mechanical stress.
Possible consequences include:
A leaking valve may also allow the pressure tank or distribution pipeline to lose pressure, causing the pump to restart more frequently.
However, frequent cycling can have other causes. Do not replace the check valve without checking the pressure tank, pressure switch, pipeline and water demand.
A valve must close quickly enough to limit reverse flow, but closure behavior must suit the hydraulic system.
If a moving water column stops or changes velocity rapidly, a temporary pressure wave can travel through the pipeline. This is called water hammer.
Possible symptoms include:
Water hammer severity depends on more than the valve itself.
Relevant factors include:
A “fast-closing” valve is not automatically a non-slam solution. Its moving element, spring, flow velocity and installation orientation must be considered together.
A swing check valve uses a hinged disc that opens with forward flow and closes when flow reverses.
Advantages can include:
Potential limitations include:
A conventional swing check valve is not automatically suitable for installation inside a narrow vertical well.
A spring-loaded valve uses a spring to move the closing element toward the seat as forward flow decreases.
Possible advantages include:
Possible disadvantages include:
Spring material must be compatible with the water.
A poppet valve uses an axially moving closure element.
A properly designed poppet valve can offer controlled closing and compact installation. It is frequently considered for vertical pump discharge service.
Selection should confirm:
Silent and non-slam valves are designed to close before substantial reverse velocity develops.
The term does not guarantee identical performance across manufacturers.
Request the manufacturer’s data for:
A valve marketed as “silent” may still produce hydraulic shock if it is incorrectly sized or installed in an unsuitable system.
A ball check valve uses a free or guided ball to close the flow passage.
Ball designs are common in some wastewater and solids-handling applications, but they may create significant pressure loss or be unsuitable for a narrow deep-well rising main.
Use only a valve specifically approved for the pump duty and installation orientation.
Select the check valve at the actual operating flow, not only from the pump outlet size.
The review should include:
An oversized valve may not open fully at low flow. The closing element can remain partially open and become unstable.
An undersized valve can create:
The selected valve should operate stably across the complete intended flow range.
Every open check valve creates pressure loss.
Head loss depends on:
Use the manufacturer’s flow coefficient, pressure-loss curve or tested performance data.
Do not assume the valve has negligible resistance.
Valve loss must be added to:
These losses form part of the total dynamic head.
A valve with the same nominal diameter as the rising main can still have a much smaller internal flow area.
The valve must withstand the highest credible pressure, not only normal operating pressure at the wellhead.
Review:
The pressure near a deeply installed pump can differ greatly from the pressure observed at the surface.
Confirm the pressure rating of:
The valve and rising-main connection should be rated as a complete assembly.
Valve materials should match the water chemistry and other system components.
Possible body materials include:
Internal components may use:
Material selection should consider:
Do not assume SS304 is suitable for every groundwater source. More aggressive water may require SS316L, duplex stainless steel or another verified material.
The SLAPK catalogue lists several possible materials for check-valve components, including cast iron, stainless-steel grades and bronze. The final material must be confirmed for the ordered pump and water analysis.
A valve must be installed in the flow direction marked by its manufacturer.
For a vertical rising main, the permitted flow direction is normally upward. However, not every valve design is approved for vertical installation.
Check:
Installing a valve backward can prevent flow and cause the pump to operate against a closed discharge.
Possible results include overheating, high pressure, motor overload and damage to pump components.
Do not rely on the external shape alone. Verify the cast, stamped or printed flow arrow before lowering the assembly.
A valve that is hydraulically suitable must also fit inside the well.
Verify the maximum outside dimension of:
The valve or its coupling may be wider than the pump or rising main.
Compare the complete installed envelope with the minimum measured casing internal diameter.
Allow for:
A theoretical metal-to-metal fit is not sufficient.
The rising main and its joints support a substantial suspended load.
The check-valve connection may be exposed to:
Threaded connections must have suitable engagement and mechanical strength.
Flanged connections require the correct:
Do not use the valve body as an unverified lifting point.
The first step is to confirm whether the pump already contains an integral discharge check valve.
If an external first valve is required, it is often installed near the pump discharge, but the exact distance must follow the pump and valve manufacturer’s instructions.
Factors affecting the position include:
Do not install the valve at an arbitrary distance simply because that position is convenient during assembly.
Some deep installations use additional check valves along the rising main.
However, there is no universal number or spacing suitable for every well.
The decision should consider:
Adding more valves does not automatically improve protection.
Multiple valves can introduce:
If one valve closes earlier than another, the water columns between valves can behave differently during shutdown.
For deep, long or high-flow systems, use a hydraulic transient analysis rather than a fixed spacing rule.
A surface check valve may be required by the system design or local installation standard.
Before adding one, review the complete downhole valve arrangement.
A surface valve can retain pressure in the distribution system, but it may also conceal a leaking downhole valve. Pressure can become trapped between valves, and the interaction may increase hydraulic shock in some configurations.
Confirm:
Do not add a surface check valve solely to stop rapid cycling without diagnosing the cause.
The SLAPK installation diagram shows both a check valve and a gate valve at the wellhead.
They are not interchangeable.
A check valve:
A gate valve:
A gate valve does not automatically close when the pump stops.
A check valve should not be used as the main maintenance-isolation valve.
In a pressure system, the pressure tank stores water and limits motor cycling.
The check valve helps keep water from returning down the well, while the pressure tank supplies small demands without immediately restarting the pump.
An incorrect arrangement can cause:
The pressure switch should sense the correct system pressure and be coordinated with the pressure tank, check valves and control panel.
A failed pressure tank can cause frequent starting even when the check valve is working properly.
A VFD changes pump acceleration and deceleration.
Controlled speed changes may reduce some hydraulic shocks, but poor settings can also create unstable valve behavior.
Review:
At low flow, a spring-loaded valve may remain partly open and chatter.
Do not assume that a VFD removes the need for a check valve or surge analysis.
Air trapped in a vertical pipeline affects pressure response and valve behavior.
Air may enter through:
Uncontrolled air can cause:
The system designer should determine whether air-release or vacuum-control equipment is required.
Do not drill holes in a check valve or rising main unless the pump manufacturer provides a documented air-management procedure.
Before lowering the pump, inspect the valve.
Check:
Remove transport protection and foreign material.
Do not install a valve containing welding debris, sealant, sand or packaging material.
If threaded sealant is used, prevent excess material from entering the flow passage.
During initial operation, record:
Observe the pressure gauge when the pump stops.
A rapid pressure drop may indicate:
A pressure spike or loud impact may indicate a transient problem, but a standard pressure gauge may not capture a very short pressure event. High-speed pressure measurement may be required.
Possible symptoms include:
Do not diagnose from one symptom alone.
For example, low flow can result from a blocked valve, but it can also be caused by incorrect rotation, low voltage, worn pump components, excessive head or a restricted pipeline.
The internal flow area and pressure-loss characteristics can vary greatly between valves of the same nominal size.
Adding valves without confirming the existing construction can create unnecessary loss and complex transient behavior.
Always verify the flow arrow before assembly.
Valve loss adds to total dynamic head and can change the actual pump operating point.
Check shutoff pressure, static pressure, test pressure and credible transient pressure.
Confirm the manufacturer’s permitted orientation.
Spacing depends on the complete hydraulic system and manufacturer instructions.
Additional valves can increase friction, trap pressure and complicate shutdown behavior.
Particles can prevent complete valve closure or damage the seat and guide.
The valve body, coupling or flange may be the widest part of the assembly.
A loud closure can indicate a damaging pressure transient.
Frequent starting may be caused by a failed pressure tank, pressure switch or pipeline leak.
Assume a borehole pump will deliver water through a long vertical rising main to a surface pressure system.
The engineer should:
The final selection cannot be made from outlet diameter and well depth alone.
Provide the following information to the pump and valve supplier:
A system normally requires reverse-flow protection, and many borehole pumps include an integral discharge check valve. Confirm the exact pump construction before adding another valve.
Not automatically. The valve must suit the actual flow, pressure loss, pressure rating, connection and installation clearance.
It is commonly positioned near the pump discharge when required, but the exact location should follow the pump and valve manufacturer’s instructions.
There is no universal quantity. The answer depends on installation depth, pipe length, pressure, velocity, valve rating and transient behavior.
Yes. Additional valves increase friction and can create trapped pressure, chatter and complicated water-hammer behavior.
A correctly selected valve may reduce reverse flow and valve slam, but water hammer is a system-transient problem. Pipe length, velocity, valve timing, VFD settings and surge-control equipment must also be considered.
Possible causes include a leaking check valve, rising-main leak, distribution leak, pressure-tank problem or continuing water demand.
Only if the specific valve is approved for that orientation. A downhole rising-main valve is normally reviewed for vertical upward flow.
No. The system still requires appropriate reverse-flow control. The valve must operate reliably across the intended speed and flow range.
Yes. Sand can erode the seat, obstruct movement and prevent full closure. Check the pump’s permitted sand content and well condition.
A deep well pump check valve must be selected as part of the complete pumping system.
The final arrangement should:
Do not choose or position check valves from a universal spacing rule.
The pump manufacturer, valve supplier and system designer should review the actual installation depth, flow, pressure, pipeline and water-hammer conditions before the pump is lowered into the well.
Send SLAPK your required flow and head, well depth, pump installation depth, static and dynamic water levels, rising-main diameter and material, voltage, frequency, starting method and water analysis.
Our engineers can recommend a suitable QJ or SP borehole pump and confirm the pump outlet, integral check-valve construction and installation information required for your system review.
A check valve is a one-way valve installed in the discharge system of a deep well submersible pump.
It allows water to move upward while the pump is operating and closes when the pump stops. Its purpose is to prevent the water column inside the rising main from flowing back through the pump.
Although the operating principle appears simple, an incorrectly selected or positioned check valve can contribute to:
The correct valve arrangement depends on the exact pump, flow rate, head, rising-main length, pipe material, installation depth and system-transient behavior.
Do not select a check valve only because its nominal size matches the pump outlet.
When a borehole pump is running, the pressure generated by the pump opens the check valve and pushes water upward through the rising main.
When electrical power is removed, pump speed and flow begin to decrease. The check valve should close before a significant volume of water reverses direction.
A correctly functioning valve helps:
A check valve does not generate pressure or increase pump head. It creates hydraulic resistance and therefore consumes a small amount of head while open.
Its pressure loss must be included in the system calculation.
Many deep well submersible pumps include a check valve at or near the discharge head.
The SLAPK QJ product information identifies check-valve and non-return-valve components in the pump construction. The exact arrangement, material and pressure capability depend on the selected series and model.
Before specifying an additional valve, confirm:
Do not assume that every pump contains the same valve simply because the product family has a similar external appearance.
Likewise, do not assume that an integral valve is suitable for every possible installation depth or transient condition.
The terms “check valve” and “non-return valve” normally describe a valve that permits flow in one direction and prevents reverse flow.
A foot valve is also a type of non-return valve, but it is commonly installed at the suction inlet of a surface pump to retain prime.
A deep well submersible pump does not normally use a suction foot valve in the same way. The pump operates underwater and pushes water upward from below the water level.
The relevant valve is installed on the discharge side of the submersible pump.
Terminology varies between manufacturers and countries, so the technical drawing and flow-direction arrow should take priority over the product name alone.
If a check valve is absent, stuck open or leaking, the water inside the rising main can flow downward after the pump stops.
This reverse flow may rotate the pump impellers and motor backward.
If the motor restarts while the assembly is still rotating in reverse, the shaft, coupling, impellers and thrust-bearing system can be exposed to severe mechanical stress.
Possible consequences include:
A leaking valve may also allow the pressure tank or distribution pipeline to lose pressure, causing the pump to restart more frequently.
However, frequent cycling can have other causes. Do not replace the check valve without checking the pressure tank, pressure switch, pipeline and water demand.
A valve must close quickly enough to limit reverse flow, but closure behavior must suit the hydraulic system.
If a moving water column stops or changes velocity rapidly, a temporary pressure wave can travel through the pipeline. This is called water hammer.
Possible symptoms include:
Water hammer severity depends on more than the valve itself.
Relevant factors include:
A “fast-closing” valve is not automatically a non-slam solution. Its moving element, spring, flow velocity and installation orientation must be considered together.
A swing check valve uses a hinged disc that opens with forward flow and closes when flow reverses.
Advantages can include:
Potential limitations include:
A conventional swing check valve is not automatically suitable for installation inside a narrow vertical well.
A spring-loaded valve uses a spring to move the closing element toward the seat as forward flow decreases.
Possible advantages include:
Possible disadvantages include:
Spring material must be compatible with the water.
A poppet valve uses an axially moving closure element.
A properly designed poppet valve can offer controlled closing and compact installation. It is frequently considered for vertical pump discharge service.
Selection should confirm:
Silent and non-slam valves are designed to close before substantial reverse velocity develops.
The term does not guarantee identical performance across manufacturers.
Request the manufacturer’s data for:
A valve marketed as “silent” may still produce hydraulic shock if it is incorrectly sized or installed in an unsuitable system.
A ball check valve uses a free or guided ball to close the flow passage.
Ball designs are common in some wastewater and solids-handling applications, but they may create significant pressure loss or be unsuitable for a narrow deep-well rising main.
Use only a valve specifically approved for the pump duty and installation orientation.
Select the check valve at the actual operating flow, not only from the pump outlet size.
The review should include:
An oversized valve may not open fully at low flow. The closing element can remain partially open and become unstable.
An undersized valve can create:
The selected valve should operate stably across the complete intended flow range.
Every open check valve creates pressure loss.
Head loss depends on:
Use the manufacturer’s flow coefficient, pressure-loss curve or tested performance data.
Do not assume the valve has negligible resistance.
Valve loss must be added to:
These losses form part of the total dynamic head.
A valve with the same nominal diameter as the rising main can still have a much smaller internal flow area.
The valve must withstand the highest credible pressure, not only normal operating pressure at the wellhead.
Review:
The pressure near a deeply installed pump can differ greatly from the pressure observed at the surface.
Confirm the pressure rating of:
The valve and rising-main connection should be rated as a complete assembly.
Valve materials should match the water chemistry and other system components.
Possible body materials include:
Internal components may use:
Material selection should consider:
Do not assume SS304 is suitable for every groundwater source. More aggressive water may require SS316L, duplex stainless steel or another verified material.
The SLAPK catalogue lists several possible materials for check-valve components, including cast iron, stainless-steel grades and bronze. The final material must be confirmed for the ordered pump and water analysis.
A valve must be installed in the flow direction marked by its manufacturer.
For a vertical rising main, the permitted flow direction is normally upward. However, not every valve design is approved for vertical installation.
Check:
Installing a valve backward can prevent flow and cause the pump to operate against a closed discharge.
Possible results include overheating, high pressure, motor overload and damage to pump components.
Do not rely on the external shape alone. Verify the cast, stamped or printed flow arrow before lowering the assembly.
A valve that is hydraulically suitable must also fit inside the well.
Verify the maximum outside dimension of:
The valve or its coupling may be wider than the pump or rising main.
Compare the complete installed envelope with the minimum measured casing internal diameter.
Allow for:
A theoretical metal-to-metal fit is not sufficient.
The rising main and its joints support a substantial suspended load.
The check-valve connection may be exposed to:
Threaded connections must have suitable engagement and mechanical strength.
Flanged connections require the correct:
Do not use the valve body as an unverified lifting point.
The first step is to confirm whether the pump already contains an integral discharge check valve.
If an external first valve is required, it is often installed near the pump discharge, but the exact distance must follow the pump and valve manufacturer’s instructions.
Factors affecting the position include:
Do not install the valve at an arbitrary distance simply because that position is convenient during assembly.
Some deep installations use additional check valves along the rising main.
However, there is no universal number or spacing suitable for every well.
The decision should consider:
Adding more valves does not automatically improve protection.
Multiple valves can introduce:
If one valve closes earlier than another, the water columns between valves can behave differently during shutdown.
For deep, long or high-flow systems, use a hydraulic transient analysis rather than a fixed spacing rule.
A surface check valve may be required by the system design or local installation standard.
Before adding one, review the complete downhole valve arrangement.
A surface valve can retain pressure in the distribution system, but it may also conceal a leaking downhole valve. Pressure can become trapped between valves, and the interaction may increase hydraulic shock in some configurations.
Confirm:
Do not add a surface check valve solely to stop rapid cycling without diagnosing the cause.
The SLAPK installation diagram shows both a check valve and a gate valve at the wellhead.
They are not interchangeable.
A check valve:
A gate valve:
A gate valve does not automatically close when the pump stops.
A check valve should not be used as the main maintenance-isolation valve.
In a pressure system, the pressure tank stores water and limits motor cycling.
The check valve helps keep water from returning down the well, while the pressure tank supplies small demands without immediately restarting the pump.
An incorrect arrangement can cause:
The pressure switch should sense the correct system pressure and be coordinated with the pressure tank, check valves and control panel.
A failed pressure tank can cause frequent starting even when the check valve is working properly.
A VFD changes pump acceleration and deceleration.
Controlled speed changes may reduce some hydraulic shocks, but poor settings can also create unstable valve behavior.
Review:
At low flow, a spring-loaded valve may remain partly open and chatter.
Do not assume that a VFD removes the need for a check valve or surge analysis.
Air trapped in a vertical pipeline affects pressure response and valve behavior.
Air may enter through:
Uncontrolled air can cause:
The system designer should determine whether air-release or vacuum-control equipment is required.
Do not drill holes in a check valve or rising main unless the pump manufacturer provides a documented air-management procedure.
Before lowering the pump, inspect the valve.
Check:
Remove transport protection and foreign material.
Do not install a valve containing welding debris, sealant, sand or packaging material.
If threaded sealant is used, prevent excess material from entering the flow passage.
During initial operation, record:
Observe the pressure gauge when the pump stops.
A rapid pressure drop may indicate:
A pressure spike or loud impact may indicate a transient problem, but a standard pressure gauge may not capture a very short pressure event. High-speed pressure measurement may be required.
Possible symptoms include:
Do not diagnose from one symptom alone.
For example, low flow can result from a blocked valve, but it can also be caused by incorrect rotation, low voltage, worn pump components, excessive head or a restricted pipeline.
The internal flow area and pressure-loss characteristics can vary greatly between valves of the same nominal size.
Adding valves without confirming the existing construction can create unnecessary loss and complex transient behavior.
Always verify the flow arrow before assembly.
Valve loss adds to total dynamic head and can change the actual pump operating point.
Check shutoff pressure, static pressure, test pressure and credible transient pressure.
Confirm the manufacturer’s permitted orientation.
Spacing depends on the complete hydraulic system and manufacturer instructions.
Additional valves can increase friction, trap pressure and complicate shutdown behavior.
Particles can prevent complete valve closure or damage the seat and guide.
The valve body, coupling or flange may be the widest part of the assembly.
A loud closure can indicate a damaging pressure transient.
Frequent starting may be caused by a failed pressure tank, pressure switch or pipeline leak.
Assume a borehole pump will deliver water through a long vertical rising main to a surface pressure system.
The engineer should:
The final selection cannot be made from outlet diameter and well depth alone.
Provide the following information to the pump and valve supplier:
A system normally requires reverse-flow protection, and many borehole pumps include an integral discharge check valve. Confirm the exact pump construction before adding another valve.
Not automatically. The valve must suit the actual flow, pressure loss, pressure rating, connection and installation clearance.
It is commonly positioned near the pump discharge when required, but the exact location should follow the pump and valve manufacturer’s instructions.
There is no universal quantity. The answer depends on installation depth, pipe length, pressure, velocity, valve rating and transient behavior.
Yes. Additional valves increase friction and can create trapped pressure, chatter and complicated water-hammer behavior.
A correctly selected valve may reduce reverse flow and valve slam, but water hammer is a system-transient problem. Pipe length, velocity, valve timing, VFD settings and surge-control equipment must also be considered.
Possible causes include a leaking check valve, rising-main leak, distribution leak, pressure-tank problem or continuing water demand.
Only if the specific valve is approved for that orientation. A downhole rising-main valve is normally reviewed for vertical upward flow.
No. The system still requires appropriate reverse-flow control. The valve must operate reliably across the intended speed and flow range.
Yes. Sand can erode the seat, obstruct movement and prevent full closure. Check the pump’s permitted sand content and well condition.
A deep well pump check valve must be selected as part of the complete pumping system.
The final arrangement should:
Do not choose or position check valves from a universal spacing rule.
The pump manufacturer, valve supplier and system designer should review the actual installation depth, flow, pressure, pipeline and water-hammer conditions before the pump is lowered into the well.
Send SLAPK your required flow and head, well depth, pump installation depth, static and dynamic water levels, rising-main diameter and material, voltage, frequency, starting method and water analysis.
Our engineers can recommend a suitable QJ or SP borehole pump and confirm the pump outlet, integral check-valve construction and installation information required for your system review.