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Medium & voltage High Voltage AC Motors

LUPMOTORS’ high-efficiency high-voltage three-phase asynchronous motors, developed from extensive design and manufacturing experience, offer superior performance, energy savings, and environmental benefits. They feature lower center height, higher power, greater efficiency, and lower noise, ensuring safe and reliable operation with easy maintenance. Ideal for driving fans, compressors, pumps, and various machinery, these motors are perfect for mining, steel, petroleum, chemical, and power plants, performing reliably in both indoor and outdoor environments, including high-altitude and humid climates.

Medium & voltage High Voltage AC Motors

Designed to meet your specific applications, LUPMOTORS‘ High Voltage range of motors is available in voltages from 2.3kV to 11kV, with options in cast iron and fabricated steel enclosures. We support all mounting forms, including Foot, Foot & Flange, Vertical Flange, and Vertical High-thrust. Our motors can be tailored for a variety of applications, including hazardous environments compliant with CSA Class 1, Division 2, ExnA, and Exp standards. They are also compatible with VFD operations and adhere to global specialty standards such as AP1541/547 and IEEE841.

 

Customize your specific applications, LUPMOTORS' High Voltage range of motors is available in a variety of enclosure types, including:

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LUPMOTORS offers all kinds of high voltage squirrel cage motors of all types – Please contact us freely.

high voltage squirrel cage motor

TEFC IC01 Squirrel Cage Induction Motors

Cooling:IC81W/ IC01/IC611-CACA/IC666
Pole: 2/4/6/8/10/12 poles
Mounting:foot-IMB3/IM1001;vertical-IMV1/IM3011
Standard:IEC60034/GB755
Voltage(V):380/550/3300/
4800/5500/6000/6600/10000/11000

high voltage wound rotor motor

TEAAC IC611 Squirrel Cage Induction Motors

Cooling:IC611-CACA
Pole: 2/4/6/8/10/12 poles
Mounting:foot-IMB3/IM1001;vertical-IMV1/IM3011
Standard:IEC60034/GB755
Voltage(V):380/550/3300/
4800/5500/6000/6600/10000/11000

High voltage Vertical Mounting ac motor

TEWAC IC611 Vertical Mount Squirrel Cage Induction Motors

Cooling:IC01/IC611-CACA
Pole: 2/4/6/8/10/12 poles
Mounting:vertical-IMV1/IM3011
Standard:IEC60034/GB755
Voltage(V):380/550/3300/
4800/5500/6000/6600/10000/11000

Medium High voltage water cooling motor

TEWAC IC81W Squirrel Cage Induction Motors

Cooling:IC81W
Pole: 4/6/8/10/12/14/16 poles
Mounting:foot-IMB3/IM1001;vertical-IMV1/IM3011
Standard:IEC60034/GB755
Voltage(V):380/550/3300/4800/
5500/6000/6600/10000/11000

medium & high Voltage Variable Frequency induction motor

TEAAC IC666 Variable Frequency AC Motors

Cooling: IC666
Pole: 4/6/8/10/12 poles
Mounting:foot-IMB3/IM1001;vertical-IMV1/IM3011
Standard:IEC60034/GB755
Voltage(V):380/550/3300/4800/
5500/6000/6600/10000/11000

High Voltage Explosion Proof AC Motor

TEAAC Explosion Proof HV AC Motor

Cooling:IC666
Pole: 2/4/6/8/10/12 poles
Mounting:foot-IMB3/IM1001
Standard:IEC60034/GB755
Voltage(V): 3300/4800/5500/6000
/6600/10000/11000

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Factory

Established in 1995, LUPMOTORS equipped with over 200 specialized machines, including various machining centers, high-speed punches, automatic winding machines, vacuum impregnation systems, and assembly lines, we possess robust in-house component manufacturing capabilities. Annually, we produce up to 300,000 motors, totaling 8 million kilowatts.

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Specializing in the Research, Development, Production, and Sales of high-efficiency motors

Quality control

Are you looking for cost-effective energy-saving and efficiency-enhancing solutions

We can save your money!

Taking LUPMOTORS’ 55-kW motor as an example, a high-efficiency motor saves 15% more electricity than a general motor. The cost of replacing the motor can be recovered through electricity saving within one year of using an energy-saving motor.

IE4 ac induction motors

Excellent Motors with Competitive Price.

How to find the best motor solution for your industrial application?

LUPMOTORS offers varioust high voltage squirrel cage motors of all types – Please contact us freely and our guide will help you to select the right motors. Easy to communicate without deep technical knowledge.

LUPMOTORS' high-voltage three-phase asynchronous motor ordering instructions

Are you looking for the high voltage three-phase AC Industrial motor?

LUPMOTORS offers vertical mount high voltage squirrel cage motors of all types – Please contact us freely.

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Your Comprehensive Guide to Selecting High voltage Induction AC Motors

Many people struggle to understand some knowledge of high voltage AC industrial motors.

This confusion often leads to costly mistakes and inefficiencies in industrial settings.

Let’s break down the basics of the high voltage AC induction motors, a crucial component in many industries, and help you avoid these common pitfalls.

All You Need To Know About the High Voltage AC Induction Motor

CHAPTER ONE

The Definition of the High Voltage AC Induction Motors

High Voltage Explosion Proof AC Motor

For AC motors, those with a rated voltage of 1000V or above are high voltage motors; those below 1000V are low voltage motors (some materials limit it to 1140V). For DC motors, those with a rated voltage of 1500V or above are high voltage motors; those below 1500V are low voltage motors.

Your Private Decision Motor Guider

LUPMOTORS offers vertical mount high voltage squirrel cage motors of all types – Please contact us freely.

CHAPTER TWO

Advantages of using high voltage motors

The motor power can be increased, up to several thousand or even tens of thousands of kilowatts.

This is because, when outputting the same power, the current of the high-voltage motor can be much smaller than that of the low-voltage motor.

For example: 500KW, 4-level three-phase AC motor has a rated current of about 900A when the rated voltage is 380V, while it is only about 30A when the rated voltage is 10KV.

Therefore, the winding of the high-voltage motor can use a smaller wire diameter.

As a result, the stator copper loss of the high-voltage motor will also be smaller than that of the low-voltage motor.

For higher-power motors, when using low-voltage electricity, a larger area of ​​stator slots is required due to the need for thicker wires, which makes the stator core diameter very large, and the volume of the entire motor will also become very large;

Medium-High-voltage-water-cooling-motor

For larger capacity motors, the power supply and distribution equipment used by high-voltage motors require less overall investment than low-voltage motors, and the line loss is small, which can save a certain amount of power consumption.

In particular, 10KV high-voltage motors can directly use the power grid, so the investment in power supply equipment will become less, the use will become simpler, and the failure rate will also be reduced.

Your Private Decision Motor Guider

LUPMOTORS offers vertical mount high voltage squirrel cage motors of all types – Please contact us freely.

CHAPTER THREE

Speed ​​regulation method of high voltage motor

1.Hydraulic Coupler

An impeller is added between the motor shaft and the load shaft, and the pressure of the liquid (usually oil) between the impellers is adjusted to achieve the purpose of adjusting the load speed.

This speed regulation method is essentially a slip power consumption method.

Its main disadvantages are that the efficiency becomes lower and lower as the speed decreases, the motor and the load need to be disconnected for installation, and the maintenance workload is large.

After a period of time, the shaft seal, bearing and other components need to be replaced.

The site is generally dirty, and the equipment grade is low, which is an obsolete technology.

Manufacturers who were more interested in speed regulation technology in the early days either because there was no high-voltage speed regulation technology to choose from or because of cost factors, had some applications for hydraulic couplings.

Such as water pumps of water companies, boiler feed pumps and induced draft fans of power plants, and dust removal fans of steel mills.

Now, some old equipment has been gradually replaced by high-voltage frequency conversion during the transformation.

Wound Rotor IC611 TEFAC High voltage AC induction Motor

2.High-low-high inverter

The inverter is a low-voltage inverter, which uses an input step-down transformer and an output step-up transformer to realize the interface with the high-voltage power grid and the motor.

This was a transitional technology when the high-voltage frequency conversion technology was not mature at that time.

Since the voltage of the low-voltage inverter is low, the current cannot rise unlimitedly, which limits the capacity of this inverter.

Due to the existence of the output transformer, the efficiency of the system is reduced and the floor space is increased; in addition, the magnetic coupling ability of the output transformer is weakened at low frequency, which weakens the load capacity of the inverter at startup.

The harmonics of the power grid are large. If 12-pulse rectification is used, the harmonics can be reduced, but it cannot meet the strict requirements for harmonics; while the output transformer is stepping up, the dv/dt generated by the inverter is also amplified.

A filter must be installed to be suitable for ordinary motors, otherwise corona discharge and insulation damage will occur.

If a special variable frequency motor is used, this situation can be avoided, but it is not as good as using a high-low type inverter.

2.High and low frequency converter

The inverter is a low-voltage inverter.

A transformer is used on the input side to convert high voltage into low voltage.

The high-voltage motor is replaced with a special low-voltage motor.

The voltage level of the motor varies and there is no unified standard.

This approach uses a low-voltage inverter, and the capacity is relatively small, so the harmonics on the grid side are large. 12-pulse rectification can be used to reduce harmonics, but it cannot meet the strict requirements for harmonics.

When the inverter fails, the motor cannot be put into operation in the power frequency grid, and there will be problems in some occasions where it cannot be shut down.

In addition, the motor and cable must be replaced, and the engineering workload is relatively large.

Cascade speed inverter feeds part of the rotor energy of the asynchronous motor back to the grid, thereby changing the rotor slip to achieve speed regulation.

This speed regulation method uses thyristor technology and requires the use of wound asynchronous motors.

However, squirrel cage asynchronous motors are almost all used in industrial sites, and it is very troublesome to replace the motor.

The speed regulation range of this speed regulation method is generally around 70%-95%, and the speed regulation range is narrow.

Thyristor technology is prone to causing harmonic pollution to the power grid; as the speed decreases, the power factor on the grid side also decreases, and measures need to be taken to compensate.

Its advantage is that the capacity of the frequency conversion part is small, and the cost is slightly lower than other high-voltage AC frequency conversion speed regulation technologies.

This speed regulation method has a variation, namely the internal feedback speed regulation system, which saves the transformer of the inverter part and directly makes the feedback winding in the stator winding.

This method requires replacing the motor, and the performance in other aspects is close to the cascade speed regulation.

The cascade speed regulation motor is affected by the rotor slip ring and cannot achieve high power.

The slip ring maintenance workload is also large.

It is a backward technology from the 1970s and 1980s, and its industrial application has become less and less.

Your Private Decision Motor Guider

LUPMOTORS offers vertical mount high voltage squirrel cage motors of all types – Please contact us freely.

CHAPTER FOUR

High voltage motor installation steps and precautions

Preparation before motor installation Check all items in the motor factory packing list at the installation site.

Determine the position mark on the foundation platform and find the center line of the unit and the elevation of the foundation surface.

Wound Rotor IC611 TEFAC High voltage AC induction Motor

Application of motor positioning verification The motor should be installed in a well-ventilated place, with an ambient temperature not higher than 40 and an altitude not higher than 1000 meters, otherwise special orders are required.

Pay attention to the air inlet and outlet of the motor, and do not let the exhausted hot air enter the air inlet to produce repeated circulation, or the hot air exhausted from one motor directly enters another motor.

Make sure there is enough working space around the motor to disassemble, clean or inspect the motor.

When installing a sliding bearing motor with an oil ring, the shaft should be kept in a horizontal position to avoid oil leakage and ensure good oil ring performance.

Foundation and mounting base of the motor

The foundation must be rigid to minimize vibration of the motor and misalignment of the shaft during operation. The foundation should be on a rigid foundation with a rigid concrete pier of sufficient depth. The required dimensions of the foundation are shown in the outline drawing. If there is a pit under the motor, there should be enough working space for installation and maintenance.

Rough positioning

Water pump

Place the motor on the steel base and align it close to the final axis. Pass the anchor bolts through the motor anchor holes and align them with the screw holes to confirm that the rotor fixing bracket has been removed.

The rotor of the sliding bearing motor should be placed at the magnetic center or the midpoint of the rotor’s axial movement (mechanical center).

It must be ensured that the motor rotor is always in the magnetic center alignment position under hot operation.

In some cases, the shaft of the driven equipment

experiences thermal expansion. When the motor is installed at room temperature, it is in the magnetic center position.

This expansion can cause the rotor axial position of the motor to shift under normal operation.

Compensate for the magnetic center offset caused by thermal expansion of the driven equipment shaft.

When installing the motor at room temperature, the stator should be moved a small distance away from the driven equipment.

The value is equal to the expansion of the driven equipment shaft between the rated operating temperature and the room temperature at installation.

This value should be provided by the manufacturer of the driven equipment.

Prevent motor bearings from being damaged by thrust loads. Due to the thermal expansion of the shaft of the driven equipment or other axial forces, the motor rotor bearings may move axially, which may cause the bearings to be damaged by thrust loads. Therefore, the coupling must be able to limit the range of rotor movement.

Assuming the total floating clearance of the sliding bearing motor is W mm, the placement of the coupling must limit the total floating value of the rotor to (0.36-0.38) W mm, and the floating centerline is at the mechanical center.

For example, if the floating clearance of the motor is W=12.7 mm, the coupling must limit the total floating value of the rotor to 0.38×12.7=4.8 mm.

When the positioning of the motor has met the requirements of axial floating, install and tighten the foot bolts.

Alignment of motor angle and position

Industrial Fan

● Rough calibration

1) Use a block gauge and a feeler gauge to adjust the clearance between the motor and the driven equipment couplings to the same level with the coupling end face as the reference surface.

2) Measure the clearance at the top, bottom, left and right sides. The deviation should not exceed 0.1mm. After the base is positioned, the anchor bolts are grouted.

●Precise alignment

After the primary grouting reaches the required strength, tighten the base bolts with a torque wrench to the specified torque. Using the fan shaft as a reference, align the motor accurately by measuring the coupling between the motor and the driven equipment.

1) When measuring radial circular runout, place a micrometer in the radial direction; for end circular runout, place two micrometers symmetrically at equal distances from the center of the shaft. While measuring the radial reading (radial circular runout) in one direction, measure the axial reading (end circular runout) in the opposite two directions to eliminate the influence of the shaft movement on the axial reading during turning.

2) Compare the radial clearance (radial reading) and axial clearance value (axial reading) of the coupling with the required values, and then adjust them according to the offset. First adjust the axial clearance to make the two halves of the coupling parallel, and then adjust the radial clearance to make the two halves of the coupling coaxial.

3) The horizontal fine-tuning of the motor is done by adjusting the block installed on the base with the top screw. The vertical fine-tuning is done by adjusting the top screw on the motor base. Accurate calibration is performed by adding or subtracting shims and moving the motor until the allowable error is reached.

After the alignment is qualified, tighten the motor anchor bolts alternately, re-measure the alignment deviation, and record the measured value. After the motor is finally positioned, install the positioning pin and use a conical reamer to expand the hole to ensure that the positioning pin can be inserted by hand and is flush with the top. Screw the hexagonal bolt and washer into the conical pin to a depth of about 5mm. Use a hammer to gently tap the conical pin so that the conical pin sinks to the same depth and tighten the hexagonal bolt.

Your Private Decision Motor Guider

LUPMOTORS offers vertical mount high voltage squirrel cage motors of all types – Please contact us freely.

Learn More From FAQs

You’ll find yourself working in a true partnership, resulting in an incredible experience and a competitive end products.

We are a professional manufacturer that produces and sells a variety of motors.

No. We can accept an order just for 1 motor.

For all our customers, they may have different technical requirements, such as power, voltage, type, etc. The price also varies according to different order quantities. Therefore, it is really difficult for us to provide a price list. If you can share your detailed specifications and order quantity, we will provide the price to you.

We can provide both FOB and CIF prices.

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