Product Description

We,GOGOGO Mechanical&Electrical Co.,Ltd specialize in high quality energy-efficient electric motors. The combination of the best available materials, high quality sheet metal and the right amount of copper in the rotor/stator makes GOGOGO’s electric motors highly energy-efficient.

We design our electric motors to fit and match our customer’s requirements at our production site. The electric motors can be supplemented with a range of options and accessories or modified with a special design to endure any environment.
 

Electric motors account for a large part of the electricity used. If we look at the world, electric motors account for about 65 percent of the electricity used in industry. To reduce this use of electricity, there are legal requirements regarding the efficiency of electric motors manufactured in the EU, or exported into the EU.

Three-phase, single-speed asynchronous motors are covered by the requirements today. Asynchronous motors are the most common type of motor and account for 90 percent of the electricity consumption of all electric motors in the power range 0.75 – 375 kW.

According to that standard, the energy efficiency classes have the designations IE1, IE2, IE3 and IE4, where IE4 has the highest efficiency.

 

Basic Info.

Model NO.

YE3/YE4/YE5 (IEC6-2012), low noise, little vibration, reliable running.

Optional Features:
Electrical:
Insulation Class:H
Thermal Protection:frame up to 132(include), with PTC Thermistor, Thermostat or PT100
Mechanical:
Others mountings
Protection Degree:IP56, IP65, IP66
Sealing:Lip seal, Oil seal
Space Heater, Double shaft ends
Drain Hole

 

Model Output
kW
Rated Ampere
A
RPM Eff.% Power Factor Rated Torque
N.m
LRT
FLT
Tst
TN
LRA
FLA
Ist
IN
BDT
FLT
Tmax
TN
dB(A)
Synchronous speed   3000 r/min
YE3-63M1-2 0.18 0.53 2720 63.9 0.80 0.63 2.2 5.5 2.2 61
YE3-63M2-2 0.25 0.70 2720 67.1 0.81 0.88 2.2 5.5 2.2 61
YE3-71M1-2 0.37 1.0 2740 69.0 0.81 1.29 2.2 6.1 2.2 62
YE3-71M2-2 0.55 1.4 2740 72.3 0.82 1.92 2.2 6.1 2.2 62
YE3-80M1-2 0.75 1.7 2870 80.7 0.82 2.50 2.2 7.0 2.3 62
YE3-80M2-2 1.1 2.4 2875 82.7 0.83 3.65 2.2 7.3 2.3 62
YE3-90S-2 1.5 3.2 2880 84.2 0.84 4.97 2.2 7.6 2.3 67
YE3-90L-2 2.2 4.6 2880 85.9 0.85 7.30 2.2 7.6 2.3 67
YE3-100L-2 3 6.0 2880 87.1 0.87 9.95 2.2 7.8 2.3 74
YE3-112M-2 4 7.8 2915 88.1 0.88 13.1 2.2 8.3 2.3 77
YE3-132S1-2 5.5 10.6 2935 89.2 0.88 17.9 2.0 8.3 2.3 79
YE3-132S2-2 7.5 14.4 2930 90.1 0.88 24.4 2.0 7.9 2.3 79
YE3-160M1-2 11 20.6 2950 91.2 0.89 35.6 2.0 8.1 2.3 81
YE3-160M2-2 15 27.9 2945 91.9 0.89 48.6 2.0 8.1 2.3 81
YE3-160L-2 18.5 34.2 2945 92.4 0.89 60.0 2.0 8.2 2.3 81
YE3-180M-2 22 40.5 2950 92.7 0.89 71.2 2.0 8.2 2.3 83
YE3-200L1-2 30 54.9 2965 93.3 0.89 96.6 2.0 7.6 2.3 84
YE3-200L2-2 37 67.4 2965 93.7 0.89 119 2.0 7.6 2.3 84
YE3-225M-2 45 80.8 2965 94.0 0.90 145 2.0 7.7 2.3 86
YE3-250M-2 55 98.5 2975 94.3 0.90 177 2.0 7.7 2.3 89
YE3-280S-2 75 134 2975 94.7 0.90 241 1.8 7.1 2.3 91
YE3-280M-2 90 160 2975 95.0 0.90 289 1.8 7.1 2.3 91
YE3-280M1-2 110 195 2975 95.2 0.90 353 1.8 7.1 2.3 91

Model Output
kW
Rated Ampere
A
RPM Eff.% Power Factor Rated Torque
N.m
LRT
FLT
Tst
TN
LRA
FLA
Ist
IN
BDT
FLT
Tmax
TN
dB(A)
Synchronous speed   3000 r/min
YE3-315S-2 110 195 2985 95.2 0.90 352 1.8 7.1 2.3 92
YE3-315M-2 132 234 2985 95.4 0.90 422 1.8 7.1 2.3 92
YE3-315L1-2 160 279 2985 95.6 0.91 512 1.8 7.2 2.3 92
YE3-315L-2 185 323 2985 95.7 0.91 592 1.8 7.2 2.3 92
YE3-315L2-2 200 349 2985 95.8 0.91 640 1.8 7.2 2.2 92
YE3-315L3-2 220 383 2985 95.8 0.91 704 1.8 7.2 2.2 92
YE3-355M1-2 220 383 2985 95.8 0.91 704 1.8 7.2 2.2 100
YE3-355M-2 250 436 2985 95.8 0.91 800 1.6 7.2 2.2 100
YE3-355L1-2 280 488 2985 95.8 0.91 896 1.6 7.2 2.2 100
YE3-355L-2 315 549 2985 95.8 0.91 1008 1.6 7.2 2.2 100
YE3-355 1-2 355 619 2985 95.8 0.91 1136 1.6 7.2 2.2 104
YE3-355 2-2 375 654 2985 95.8 0.91 1200 1.6 7.2 2.2 104
Synchronous speed 1500 r/min
YE3-63M1-4 0.12 0.45 1310 55.8 0.72 0.87 2.1 4.4 2.2 52
YE3-63M2-4 0.18 0.64 1310 58.6 0.73 1.31 2.1 4.4 2.2 52
YE3-71M1-4 0.25 0.81 1330 63.6 0.74 1.80 2.1 5.2 2.2 55
YE3-71M2-4 0.37 1.1 1330 65.3 0.75 2.66  2.1 5.2 2.2 55
YE3-80M1-4 0.55 1.4 1430 80.6 0.75 3.67 2.3 6.5 2.3 56
YE3-80M2-4 0.75 1.8 1430 82.5 0.75 5.01  2.3 6.6 2.3 56
YE3-90S-4 1.1 2.6 1430 84.1 0.76 7.35  2.3 6.8 2.3 59
YE3-90L-4 1.5 3.5 1430 85.3 0.77 10.0 2.3 7.0 2.3 59
YE3-100L1-4 2.2 4.8 1440 86.7 0.81 14.6 2.3 7.6 2.3 64
YE3-100L2-4 3 6.3 1440 87.7 0.82 19.9 2.3 7.6 2.3 64
YE3-112M-4 4 8.4 1455 88.6 0.82 26.3 2.2 7.8 2.3 65
YE3-132S-4 5.5 11.2 1465 89.6 0.83 35.9 2.0 7.9 2.3 71
YE3-132M-4 7.5 15.0 1465 90.4 0.84 48.9 2.0 7.5 2.3 71
YE3-160M-4 11 21.5 1470 91.4 0.85 71.5 2.0 7.7 2.3 73
YE3-160L-4 15 28.8 1470 92.1 0.86 97.4 2.0 7.8 2.3 73
YE3-180M-4 18.5 35.3 1470 92.6 0.86 120 2.0 7.8 2.3 76
YE3-180L-4 22 41.8 1470 93.0 0.86 143 2.0 7.8 2.3 76
YE3-200L-4 30 56.6 1475 93.6 0.86 194 2.0 7.3 2.3 76
YE3-225S-4 37 69.6 1480 93.9 0.86 239 2.0 7.4 2.3 78
YE3-225M-4 45 84.4 1480 94.2 0.86 290 2.0 7.4 2.3 78
YE3-250M-4 55 103 1485 94.6 0.86 354 2.0 7.4 2.3 79
YE3-280S-4 75 136 1490 95.0 0.88 481 2.0 6.7 2.3 80
YE3-280M-4 90 163 1490 95.2 0.88 577 2.0 6.9 2.3 80
YE3-280M1-4 110 197 1490 95.4 0.89 705 2.0 7.0 2.2 80
YE3-315S-4 110 197 1490 95.4 0.89 705 2.0 7.0 2.2 88
YE3-315M-4 132 236 1490 95.6 0.89 846 2.0 7.0 2.2 88
YE3-315L1-4 160 285 1490 95.8 0.89 1026 2.0 7.1 2.2 88
YE3-315L-4 185
85
329  1490 95.9 0.89 1186 2.0 7.1 2.2 88

A revision of the standard was decided by the Ecodesign Committee in 2019. The revision was published on October 1, 2019. The following will apply:

For electric motors

From July 1, 2571

2-, 4-, 6- and 8-pole motors from 0.75 – 1000 kW (previously up to 375kW) are included in efficiency class IE3.

Motors within the range 0.12 – 0.75 kW must meet efficiency class IE2.

The previous possibility to replace IE3 motors with an IE2 motor with frequency drive disappears.

From July 1, 2571

For 2-, 4-, 6- and 8-pole motors from 0.12 – 1000 kW, the efficiency class IE2 now also applies to Ex eb certified motors with high safety.

Single phase motors with greater power than 0.12 kW are covered by the corresponding IE2 class.

The higher efficiency class IE4 applies to 2, 4 and 6-pole motors between 75 – 200 kW.

For frequency inverters

From July 1, 2571

For use with electric motors with power from 0.12 – 1000 kW, the frequency inverter must pass efficiency class IE2 specially designed for inverters.

Current requirements according to the Directive

Since 16 June, 2011 it is prohibited to place electric motors below energy efficiency class IE2 on the market, or to put them into service in the EU.

Since January 1, 2015, electric motors within the range 7.5 – 375 kW (2-, 4-, and 6-pole) must meet the requirements for IE3, or IE2 if the latter is combined with frequency inverters for speed control. The legal requirement thus provides 2 options.

From January 1, 2017, the requirements were tightened so that all motors 0.75 – 375 kW (2-, 4-, and 6-pole) must meet the requirements for IE3, or IE2 if they are combined with frequency inverters.

Exemptions from the current directive

  • Operation other than S1 (continuous drive) or S3 (intermittent drive) with a nominal cyclicity factor of 80 percent or lower.
  • Made for assembly with frequency inverters (integral motors).
  • Electric motors made for use in liquid.
  • Electric motors that are fully integrated into a product (e.g. a gear, pump, fan or compressor) where the energy performance is not tested independently of the product.
  • Brake motors

Electric motors intended for operation exclusively:

  • At altitudes exceeding 4 000 CHINAMFG above sea level.
  • If ambient air temperatures exceed 60°C.
  • Where maximum operating temperature exceeds 400°C.
  • Where ambient air temperatures are less than -30°C for all motors, or less than 0°C for motors with water cooling.
  • In explosive atmospheres (as defined in Directive 94/9 / EC 9)

The requirements do not apply to ships or other means of transport that carry goods or persons, since there must be specially designed engines for this purpose. (If the same mobile conveyor belt is used on ships as well as on land, the rules apply).

Also, the requirements do not apply to repair of motors previously placed on the market, or put into service – unless the repair is so extensive that the product will in practice be brand new.

If the motor is to be further exported for use outside Europe, the requirements do not apply.

Some other requirements apply to water-cooled motors

We have our own design and development team, we can provide customers with standard AC electric motors, We can also customize the single phase/three phase motors according to the special needs of customers.    Currently our main motor products cover 3 – phase high – efficiency motors,general 3 – phase motors, single phase motors, etc.
The main motor ranges: IE3 / YE3, IE2 / YE2, IE1 / Y2, Y, YS, MS, YC, YL, YY, MC, MY, ML motors.
 American standard NEMA motors
Russian standard GOST ANP motors
ZheJiang type AEEF motors,YC motors

Why choose us?
Guarantee of our motors:18-24months
General elivery time:15-30days
Price of motors: Most reasonable during your all suppliers
Packing:Strong export cartons/wooden case/plywood cases/pallets
Payment way with your order: T/T,LC,DP,etc

Sample order: Acceptable
Shipment way: Sea ship,Air flight,Express way,Land transfer way.

If you are looking for new better supplier or purchase electric motors, please feel free contact us now.You will get all what you want.

Application: Industrial
Speed: Constant Speed
Number of Stator: Three-Phase
Function: Driving, Control
Casing Protection: Closed Type
Number of Poles: 2
Samples:
US$ 30/Piece
1 Piece(Min.Order)

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Customization:
Available

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induction motor

What role do AC motors play in HVAC (heating, ventilation, and air conditioning) systems?

In HVAC (heating, ventilation, and air conditioning) systems, AC motors play a crucial role in various components and functions. These motors are responsible for powering fans, compressors, pumps, and other essential equipment within the HVAC system. Let’s explore the specific roles of AC motors in HVAC systems:

  • Air Handling Units (AHUs) and Ventilation Systems: AC motors drive the fans in AHUs and ventilation systems. These fans draw in fresh air, circulate air within the building, and exhaust stale air. The motors provide the necessary power to move air through the ductwork and distribute it evenly throughout the space. They play a key role in maintaining proper indoor air quality, controlling humidity, and ensuring adequate ventilation.
  • Chillers and Cooling Towers: HVAC systems that use chillers for cooling rely on AC motors to drive the compressor. The motor powers the compressor, which circulates refrigerant through the system, absorbing heat from the indoor environment and releasing it outside. AC motors are also used in cooling towers, which dissipate heat from the chiller system by evaporating water. The motors drive the fans that draw air through the cooling tower and enhance heat transfer.
  • Heat Pumps: AC motors are integral components of heat pump systems, which provide both heating and cooling. The motor drives the compressor in the heat pump, enabling the transfer of heat between the indoor and outdoor environments. During cooling mode, the motor circulates refrigerant to extract heat from indoors and release it outside. In heating mode, the motor reverses the refrigerant flow to extract heat from the outdoor air or ground and transfer it indoors.
  • Furnaces and Boilers: In heating systems, AC motors power the blowers or fans in furnaces and boilers. The motor drives the blower to distribute heated air or steam throughout the building. This helps maintain a comfortable indoor temperature and ensures efficient heat distribution in the space.
  • Pumps and Circulation Systems: HVAC systems often incorporate pumps for water circulation, such as in hydronic heating or chilled water systems. AC motors drive these pumps, providing the necessary pressure to circulate water or other heat transfer fluids through the system. The motors ensure efficient flow rates and contribute to the effective transfer of thermal energy.
  • Dampers and Actuators: AC motors are used in HVAC systems to control airflow and regulate the position of dampers and actuators. These motors enable the adjustment of airflow rates, temperature control, and zone-specific climate control. By modulating the motor speed or position, HVAC systems can achieve precise control of air distribution and temperature in different areas of a building.

AC motors in HVAC systems are designed to meet specific performance requirements, such as variable speed control, energy efficiency, and reliable operation under varying loads. Maintenance and regular inspection of these motors are essential to ensure optimal performance, energy efficiency, and longevity of the HVAC system.

In conclusion, AC motors play vital roles in HVAC systems by powering fans, compressors, pumps, and actuators. They enable proper air circulation, temperature control, and efficient transfer of heat, contributing to the overall comfort, air quality, and energy efficiency of buildings.

induction motor

Where can individuals or businesses find reliable information on selecting, installing, and maintaining AC motors?

When seeking information on selecting, installing, and maintaining AC motors, individuals and businesses can refer to various reliable sources. These sources provide valuable guidance, recommendations, and best practices related to AC motors. Here are some places where one can find reliable information:

  • Manufacturer’s Documentation: AC motor manufacturers often provide detailed documentation, including product catalogs, technical specifications, installation guides, and maintenance manuals. These documents offer specific information about their motors, such as performance characteristics, electrical requirements, mounting instructions, and recommended maintenance procedures. Manufacturers’ websites are a common source for accessing these resources.
  • Industry Associations: Industry associations related to electrical engineering, motor manufacturing, or specific applications (e.g., HVAC, pumps, or industrial machinery) can be excellent resources for reliable information. These associations often publish technical articles, guidelines, and standards that cover a wide range of topics, including motor selection, installation practices, efficiency standards, and maintenance recommendations. Examples of such associations include the National Electrical Manufacturers Association (NEMA), the Institute of Electrical and Electronics Engineers (IEEE), and the Air Conditioning, Heating, and Refrigeration Institute (AHRI).
  • Professional Electricians and Engineers: Consulting with professional electricians or electrical engineers who specialize in motor applications can provide valuable insights. These professionals possess practical knowledge and experience in selecting, installing, and maintaining AC motors. They can offer personalized advice based on specific project requirements and industry best practices.
  • Energy Efficiency Programs and Agencies: Energy efficiency programs and agencies, such as government departments, utility companies, or environmental organizations, often provide resources and guidance on energy-efficient motor selection and operation. These programs may offer information on motor efficiency standards, rebate programs for high-efficiency motors, and energy-saving practices. Examples include the U.S. Department of Energy (DOE) and its Energy Star program.
  • Online Technical Forums and Communities: Online forums and communities focused on electrical engineering, motor applications, or specific industries can be valuable sources of information. Participating in these forums allows individuals and businesses to interact with experts, discuss motor-related topics, and seek advice from professionals and enthusiasts who have firsthand experience with AC motors.
  • Books and Publications: Books and technical publications dedicated to electrical engineering, motor technology, or specific applications can provide comprehensive information on AC motors. These resources cover topics ranging from motor theory and design principles to practical installation techniques and maintenance procedures. Libraries, bookstores, and online retailers offer a wide selection of relevant publications.

When accessing information from these sources, it is important to ensure that the information is up-to-date, reliable, and relevant to the specific application or requirements. Consulting multiple sources and cross-referencing information can help verify accuracy and establish a well-rounded understanding of AC motor selection, installation, and maintenance.

induction motor

What are the main components of an AC motor, and how do they contribute to its operation?

An AC motor consists of several key components that work together to facilitate its operation. These components include:

  1. Stator: The stator is the stationary part of an AC motor. It is typically made of a laminated core that provides a path for the magnetic flux. The stator contains stator windings, which are coils of wire wound around the stator core. The stator windings are connected to an AC power source and produce a rotating magnetic field when energized. The rotating magnetic field is a crucial element in generating the torque required for the motor’s operation.
  2. Rotor: The rotor is the rotating part of an AC motor. It is located inside the stator and is connected to a shaft. The rotor can have different designs depending on the type of AC motor. In an induction motor, the rotor does not have electrical connections. Instead, it contains conductive bars or coils that are short-circuited. The rotating magnetic field of the stator induces currents in the short-circuited rotor conductors, creating a magnetic field that interacts with the stator field and generates torque, causing the rotor to rotate. In a synchronous motor, the rotor contains electromagnets that are magnetized by direct current, allowing the rotor to lock onto the rotating magnetic field of the stator and rotate at the same speed.
  3. Bearing: Bearings are used to support and facilitate the smooth rotation of the rotor shaft. They reduce friction and allow the rotor to rotate freely within the motor. Bearings are typically located at both ends of the motor shaft and are designed to withstand the axial and radial forces generated during operation.
  4. End Bells: The end bells, also known as end covers or end brackets, enclose the motor’s stator and rotor assembly. They provide mechanical support and protection for the internal components of the motor. End bells are typically made of metal and are designed to provide a housing for the bearings and secure the motor to its mounting structure.
  5. Fan or Cooling System: AC motors often generate heat during operation. To prevent overheating and ensure proper functioning, AC motors are equipped with fans or cooling systems. These help dissipate heat by circulating air or directing airflow over the motor’s components, including the stator and rotor windings. Effective cooling is crucial for maintaining the motor’s efficiency and extending its lifespan.
  6. Terminal Box or Connection Box: The terminal box is a housing located on the outside of the motor that provides access to the motor’s electrical connections. It contains terminals or connection points where external wires can be connected to supply power to the motor. The terminal box ensures a safe and secure connection of the motor to the electrical system.
  7. Additional Components: Depending on the specific design and application, AC motors may include additional components such as capacitors, centrifugal switches, brushes (in certain types of AC motors), and other control devices. These components are used for various purposes, such as improving motor performance, providing starting assistance, or enabling specific control features.

Each of these components plays a crucial role in the operation of an AC motor. The stator and rotor are the primary components responsible for generating the rotating magnetic field and converting electrical energy into mechanical motion. The bearings ensure smooth rotation of the rotor shaft, while the end bells provide structural support and protection. The fan or cooling system helps maintain optimal operating temperatures, and the terminal box allows for proper electrical connections. Additional components are incorporated as necessary to enhance motor performance and enable specific functionalities.

China manufacturer Hmvp Yvp Yej Three Phase Frequency Variable Speed Regulation Induction Electric Motor   vacuum pump engine	China manufacturer Hmvp Yvp Yej Three Phase Frequency Variable Speed Regulation Induction Electric Motor   vacuum pump engine
editor by CX 2023-11-17