Customization: | Available |
---|---|
After-sales Service: | 24 Hours Online |
Warranty: | 12-24 Month |
Shipping Cost: | Contact the supplier about freight and estimated delivery time. |
---|
Payment Methods: |
![]() ![]() ![]() ![]() ![]() ![]() ![]() ![]() ![]() ![]() ![]() ![]() |
---|---|
Support payments in USD |
Secure payments: | Every payment you make on Made-in-China.com is protected by the platform. |
---|
Refund policy: | Claim a refund if your order doesn't ship, is missing, or arrives with product issues. |
---|
Suppliers with verified business licenses
Audited by an independent third-party inspection agency
Type D/DG pump can deliver water without solid particle or the liquid which the chemical and physical feature are similar with water and temperature less than 105degree, it is suitable for delivering water in mine,boiler feed water, heat water and urban water project etc.
model | flow | head | motor power | speed | NPSHr | model | flow | head | motor power | speed | NPSHr |
m3/h | m | kw | r/min | m3/h | m | kw | r/min | ||||
DG15-80 | 1.1 | 8.5 | 0.18 | 2950 | 2.3 | 40-160(I) | 8.8 | 33 | 3 | 2950 | 2.3 |
1.5 | 8 | 12.5 | 32 | ||||||||
2 | 7 | 16.3 | 30 | ||||||||
DG20-110 | 1.8 | 16 | 0.37 | 40-160(I)A | 8.2 | 29 | 2.2 | ||||
2.5 | 15 | 11.7 | 28 | ||||||||
3.3 | 13.5 | 15.2 | 26 | ||||||||
DG20-160 | 1.8 | 33 | 0.75 | 40-160(I)B | 7.3 | 23 | 1.5 | ||||
2.5 | 32 | 10.4 | 22 | ||||||||
3.3 | 30 | 13.5 | 20.5 | ||||||||
DG25-110 | 2.8 | 16 | 0.55 | ||||||||
4 | 15 | 40-200(I) | 8.8 | 51.2 | 5.5 | ||||||
5.2 | 13.5 | 12.5 | 50 | ||||||||
DG25-125 | 2.8 | 20.6 | 0.75 | 16.3 | 48 | ||||||
4 | 20 | 40-200(I)A | 8.3 | 45 | 4 | ||||||
5.2 | 18 | 11.7 | 44 | ||||||||
DG25-125A | 2.5 | 17 | 0.75 | 15.3 | 42 | ||||||
3.6 | 16 | 40-200(I)B | 7.5 | 37 | 3 | ||||||
4.6 | 14.4 | 10.6 | 36 | ||||||||
DG25-160 | 2.8 | 33 | 1.5 | 13.8 | 34 | ||||||
4 | 32 | 40-250(I) | 8.8 | 81.2 | 11 | ||||||
5.2 | 30 | 12.5 | 80 | ||||||||
DG25-160A | 2.6 | 29 | 1.1 | 16.3 | 77.5 | ||||||
3.7 | 28 | 40-250(I)A | 8.2 | 71 | 7.5 | ||||||
4.9 | 26 | 11.6 | 70 | ||||||||
DG32-100 | 4.5 | 12.5 | 0.55 | 2 | 15.2 | 68 | |||||
DG32-100(I) | 4.4 | 13.2 | 0.75 | 40-250(I)B | 7.6 | 61.4 | 5.5 | ||||
6.6 | 12.5 | 10.8 | 60 | ||||||||
8.3 | 11.3 | 14 | 58 | ||||||||
DG32-125 | 3.5 | 22 | 0.75 | 2.3 | 40-250(I)C | 7.1 | 53.2 | 4 | |||
5 | 20 | 10 | 52 | ||||||||
6.5 | 18 | 13.1 | 50.4 | ||||||||
DG32-125A | 3.1 | 17.6 | 0.55 | 50-100 | 8.8 | 13.6 | 1.1 | ||||
4.5 | 16 | 12.5 | 12.5 | ||||||||
5.8 | 14.4 | 16.3 | 11.3 | ||||||||
DG32-160 | 3.2 | 33 | 1.5 | 50-100A | 8 | 11 | 0.75 | ||||
4 | 32 | 11 | 10 | ||||||||
5.2 | 30 | 14.5 | 9 | ||||||||
DG32-160A | 2.6 | 29 | 1.1 | 2 | 50-125 | 8.8 | 21.5 | 1.5 | |||
3.7 | 28 | 12.5 | 20 | ||||||||
4.9 | 26 | 16.3 | 17.8 | ||||||||
DG32-160(I) | 4.4 | 33.2 | 2.2 | 50-125A | 8 | 17 | 1.1 | ||||
6.3 | 32 | 11 | 16 | ||||||||
8.3 | 30.2 | 14.5 | 14 | ||||||||
DG32-200 | 4.5 | 50 | 3 | 50-160 | 8.8 | 33 | 3 | ||||
DG32-200(I) | 4.4 | 50.5 | 4 | 12.5 | 32 | ||||||
6.3 | 50 | 16.3 | 30 | ||||||||
8.3 | 48 | 50-160A | 8.2 | 29 | 2.2 | ||||||
DG32-200A | 2.8 | 44.6 | 4 | 11.7 | 28 | ||||||
4 | 44 | 15.2 | 26 | ||||||||
5.2 | 42.7 | 50-160B | 7.3 | 23 | 1.5 | ||||||
DG40-100 | 4.4 | 13.2 | 0.75 | 2.3 | 10.4 | 22 | |||||
6.3 | 12.5 | 13.5 | 20.5 | ||||||||
8.3 | 11.3 | 50-200 | 8.8 | 52 | 5.5 | ||||||
DG40-100A | 3.9 | 10.6 | 0.75 | 12.5 | 50 | ||||||
5.6 | 10 | 16.3 | 48 | ||||||||
7.4 | 9 | 50-200A | 8.3 | 45.8 | 4 | ||||||
DG40-125 | 4.4 | 21 | 1.1 | 11.7 | 44 | ||||||
6.3 | 20 | 15.3 | 42 | ||||||||
8.3 | 18 | 50-200B | 7.5 | 37 | 3 | ||||||
DG40-125A | 3.9 | 17.6 | 0.75 | 10.6 | 36 | ||||||
5.6 | 16 | 1.8 | 34 | ||||||||
7.4 | 14.4 | 50-250 | 8.8 | 82 | 11 | ||||||
DG40-160 | 4.4 | 33 | 2.2 | 12.5 | 80 | ||||||
6.3 | 32 | 16.3 | 77.5 | ||||||||
8.3 | 30 | 50-250A | 8.2 | 71.5 | 11 | ||||||
DG40-160A | 4.1 | 29 | 1.5 | 11.6 | 70 | ||||||
5.9 | 28 | 16.3 | 68 | ||||||||
7.8 | 26.3 | 50-250B | 7.6 | 61.4 | 7.5 | ||||||
DG40-160B | 3.8 | 25.5 | 1.1 | 10.8 | 60 | ||||||
5.5 | 24 | 14 | 58 | ||||||||
7.2 | 22.5 | 50-250C | 7.1 | 53.2 | 5.5 | ||||||
DG40-200 | 4.4 | 51 | 4 | 10 | 52 | ||||||
6.3 | 50 | 13.1 | 50.4 | ||||||||
8.3 | 48 | 50-100(I) | 17.5 | 13.7 | 1.5 | 2.5 | |||||
DG40-200A | 4.1 | 45 | 3 | 25 | 12.5 | ||||||
5.9 | 44 | 32.5 | 10.5 | ||||||||
7.8 | 42 | 50-100(I)A | 15.6 | 11 | 1.1 | ||||||
DG40-200B | 3.7 | 38 | 2.2 | 22.3 | 10 | ||||||
5.3 | 36 | 29 | 8.4 | ||||||||
7 | 34.5 | 50-125(I) | 17.5 | 21.5 | 3 | ||||||
DG40-250 | 4.4 | 82 | 7.5 | 25 | 20 | ||||||
6.3 | 80 | 32.5 | 18 | ||||||||
8.3 | 74 | 50-125(I)A | 15.6 | 17 | 2.2 | ||||||
DG40-250A | 4.1 | 72 | 5.5 | 22.3 | 16 | ||||||
5.9 | 70 | 29 | 13.6 | ||||||||
7.8 | 65 | 50-160(I) | 17.5 | 34.4 | 4 | ||||||
DG40-250B | 3.8 | 61.5 | 5.5 | 25 | 32 | ||||||
5.5 | 60 | 32.5 | 27.5 | ||||||||
7.0 | 56 | 50-160(I)A | 16.4 | 34.4 | 4 | ||||||
DG40-100(I) | 8.8 | 13.2 | 1.1 | 23.4 | 32 | ||||||
12.5 | 12.5 | 30.4 | 27.5 | ||||||||
16.3 | 11.3 | 50-160(I)B | 15 | 26 | 3 | ||||||
DG40-100(I)A | 8 | 10.6 | 0.75 | 21.6 | 24 | ||||||
11 | 10 | 28 | 20.6 | ||||||||
14.5 | 9 | 50-200(I) | 17.5 | 52.7 | 7.5 | ||||||
DG40-125(I) | 8.8 | 21.2 | 1.5 | 25 | 50 | ||||||
12.5 | 20 | 32.5 | 45.5 | ||||||||
16.3 | 17.8 | 50-200(I)A | 16.4 | 46.4 | 7.5 | ||||||
DG40-125(I)A | 8 | 17 | 1.1 | 23.4 | 44 | ||||||
11 | 16 | 30.4 | 40 | ||||||||
14.5 | 14 | 50-200(I)B | 15.2 | 40 | 5.5 | ||||||
DG50-250(I) | 17.5 | 82 | 15 | 2.5 | 21.8 | 38 | |||||
25 | 80 | 28.3 | 34.5 | ||||||||
32.5 | 76.5 |
FAQ
How do I know what size pump and motor speed is correct for my system?
A clear picture of the pump system is required to make an accurate selection. The main pieces of information required include; a description of the application, bore of pipework, the fluid, flow rate and pressure/head. With these pieces of information, a pump can be sized correctly to ensure it delivers the required flow rate and pressure and that is also operates at its best efficiency point to lower lifetime costs. Knowing if the pump is running intermittently or continuously also allows the correct motor speed to be selected. For instance, a pump running continuously 24/7 will require a 4 pole motor rather than a 2 pole motor. Running the motor slower and oversizing the pump will reduce wear of the motor and the pump, therefore lowering maintenance costs during their lifetime.
What does the term multistage mean?
Centrifugal pumps typically have only one impeller, whereas a multistage pump has multiple impellers or stages of impellers back to back. Installing the impellers in this way allows the pump to generate much higher pressures. Multistage pumps are perfect for applications that require higher pressures or a combination of high pressure and low to medium flow rates.
Can this pump run dry?
No, definitely not! multistage pumps will incur damage even after short periods of dry running. The mechanical seal will be destroyed, and this will cause the pump to leak. There is also the possibility that the motor will burn out. Our advice is to ensure that the pump has a flooded suction or always make sure that the pump casing and inlet pipe are filled with water; one way of ensuring this is to fit a check valve on the inlet line to stop water escaping when the pump is inactive. Another way of protecting the pump is to fit a dry running device, this will turn the pump off if it detects that no fluid is entering the pump. If you think that dry running is inevitable, then please speak to us and we will try to select a more suitable pump for your application.
How do I know what pump materials are correct for my application?
Firstly, always check the compatibility of the materials available against the fluid being pumped. The main materials to check are the pump casing, impeller, o-ring and mechanical seal. It may be that more than one material is suitable for your fluid and selection could be based on the application type. For instance; cast iron, bronze and stainless steel are all suitable for fresh water. If it is a simple transfer application, then the most cost-effective material cast iron will be best. However, if it is a sanitary application, then stainless steel or bronze are better choices.
What is NPSH and why is it so important?
NPSH is an acronym for Net Positive Suction Head. NPSH measures the absolute pressure present in a fluid.
There are two main ways that NPSH is expressed in a pump system
NPSHa - This is the amount of Net Positive Suction Head available at the pump inlet. NPSHa demonstrates the amount of pressure acting on a fluid as it enters the pump. This measures the amount of pressure between the liquid staying in its current state and forming vapour bubbles (beginning to boil).
NPSHr - This is the amount of Net Positive Suction Head that the pump requires to operate without experiencing the damaging effect of cavitation, thus causing a dramatic reduction in pump performance.
It is very important to pay attention to these values when making a pump selection. Selecting a pump that requires more NPSH than is available in your system will cause fast and long-lasting damage to the pump and thus you will incur large repair costs and downtime.
What does the term best efficiency point (BEP) mean and why is it so important?
The best efficiency point or BEP is a point along the pump performance curve that indicates where efficiency for the pump peaks. When selecting a pump, you must try and get as close to the BEP as possible to ensure that the pump is at maximum efficiency when operating. The closer to the BEP the pump is when operating, the lower the energy costs will be, thus saving significant amounts of money during the pump's lifetime. Also, vibrations will be at their lowest meaning maintenance costs are lower and the lifespan of the pump is maximised. It is very important to pay attention to the BEP when your pump is selected, as an oversized or undersized pump could cost you significant amounts of money.
What do the terms Atex and explosion proof mean and why are they so important?
ATEX is an abbreviation of "Atmospheres Explosibles". It is a regulation set out by the European Union to ensure the safety of products that are used to handle flammable products or are installed in environments containing flammable gases, vapours, mists or combustible dusts. For instance, if the pump is being installed in an explosive environment, then only the motor needs to meet the Atex standard stopping it from causing a spark during operation and igniting the atmosphere. However, if the fluid being pumped is flammable, then the pump will also need to meet Atex standards to ensure that no sparks are caused inside the pump itself when the fluid goes through it. It is crucial that an Atex rated pump or motor are used for applications involving explosive environments or flammable fluids, using a non-Atex pump or motor in these situations is extremely dangerous and contravenes health and safety standards.
Any further questions, let's talk together.