Product Description

Ybbp Series Flameproof Three-Phase Asynchronous DC Motor with Variable Frequency Speed Regulation Induction electric motor 

Product Description

 

Detailed Photos

 

 

 

Product Parameters

 

 

PERFORMANCE DATA
Type Nominal horse-power (KW)   nominal current(A) Rate torque(N.m) Permanent torque(Hz) Constant-power speed range(Hz) LRT BDT LRA Vibration(mm/s) Noise dB(A)
HP RLT RLT RLA
 Synchronous Speed 3000r/min(2P)
YBBP-80M1-2 0.75 1 1.8 2.4 5-50 50-100 2.2 2.3 6.5  1.3 70
YBBP-80M2-2 1.1 1.5 2.6  3.5
YBBP-90S-2 1.5 2 3.4 4.8 8.0  74
YBBP-90L-2 2.2 3 4.8 7
YBBP-100L-2 3 4 6.2 9.5 78
YBBP-112M-2 4 5.5 8.1 12.7 82
YBBP-132S1-2 5.5 7.5 11.1 17.5 85
YBBP-132S2-2 7.5 10 14.9 23.9
YBBP-160M1-2 11 15 21.5 35.0  2.4 1.8 87
YBBP-160M2-2 15 20 28.6 47.7
YBBP-160L-2 18.5 25 35.1 58.9
YBBP-180M-2 22 30 41.0  70 2 2.3 90
YBBP-200L1-2 30 40 55.4 95.5 92
YBBP-200L2-2 37 50 67.9 117.8
YBBP-225M-2 45 60 82.1 143.2 94
YBBP-250M-2 55 75 99.8 175.1 50-60 96
YBBP-280S-2 75 100 133.8 236 98
YBBP-280M-2 90 125 160 284
YBBP-315S-2 110 150 195.4 350 1.8 2.2 2.3 100
YBBP-315M-2 132 180 233.2 420
YBBP-315L1-2 160 220 282.4 509
YBBP-315L2-2 200 270 352 637
YBBP-355M1-2 220 300 388 700 1.6 103
YBBP-355M2-2 250 340 439 796
YBBP-355L1-2 280 380 491 891
YBBP-355L2-2 315 430 551 1003

PERFORMANCE DATA
Type Nominal horse-power (KW)   nominal current(A) Rate torque(N.m) Permanent torque(Hz) Constant-power speed range(Hz) LRT BDT LRA Vibration(mm/s) Noise dB(A)
HP RLT RLT RLA
 Synchronous Speed 1500r/min(4P)
YBBP-80M1-4 0.55 0.75 1.5 3.5 5-50 50-100 2.4 2.3 5.5  1.3 62
YBBP-80M2-4 0.75 1 2.0  4.8
YBBP-90S-4 1.1 1.5 2.9 7 2.3 6.5  64
YBBP-90L-4 1.5 2 3.7 9.5
YBBP-100L1-4 2.2 3 5.1  14 2.4 68
YBBP-100L2-4 3 4 6.7 19.1
YBBP-112M-4 4 5.5 8.8 25.5 72
YBBP-132S-4 5.5 7.5 11.6 35 7.5  76
YBBP-132M-4 7.5 10 15.4 47.7
YBBP-160M-4 11 15 22.2 70.0  2.2 1.8 79
YBBP-160L-4 15 20 30 96
YBBP-180M-4 18.5 25 36.5  117.8 2.3 83
YBBP-180L-4 22 30 43.1  140.1
YBBP-200L-4 30 40 57.6 191 2.4 85
YBBP-225S-4 37 50 69.9 236 88
YBBP-225M-4 45 60 84.7 286.5
YBBP-250M-4 55 75 103 350.1 92
YBBP-280S-4 75 100 140 478 94
YBBP-280M-4 90 125 167 573
YBBP-315S-4 110 150 201 700 2.1 2.2 2.3 96
YBBP-315M-4 132 180 240.4 840
YBBP-315L1-4 160 220 288 1019
YBBP-315L2-4 200 270 360 1273
YBBP-355M1-4 220 300 396 1401 50-60 98
YBBP-355M2-4 250 340 443 1592
YBBP-355L1-4 280 380 497 1783
YBBP-355L2-4 315 430 559 2005

 

PERFORMANCE DATA
Type Nominal horse-power (KW)   nominal current(A) Rate torque(N.m) Permanent torque(Hz) Constant-power speed range(Hz) LRT BDT LRA Vibration(mm/s) Noise dB(A)
HP RLT RLT RLA
  Synchronous Speed 1000r/min(6P)
YBBP-80M1-6 0.37 0.5 1.3 3.5 5-50 50-100 2.1 2.1 4.5  1.3 61
YBBP-80M2-6 0.55 0.75 1.8  5.3
YBBP-90S-6 0.75 1 2.3 7.2 63
YBBP-90L-6 1.1 1.5 3.1 10.5 5.5 
YBBP-100L-6 1.5 2 3.9 14.3 66
YBBP-112M-6 2.2 3 5.6 21.0  71
YBBP-132S-6 3 4 7.3 28.6 2.4 6.5  75
YBBP-132M1-6 4 5.5 9.4 38.2
YBBP-132M2-6 5.5 7.5 12.6 52.5 7.0 
YBBP-160M-6 7.5 10 16.8 71.6  1.8 78
YBBP-160L-6 11 15 24.2 105
YBBP-180L-6 15 20 31.6  143 2.1 7.5  82
YBBP-200L1-6 18.5 25 37.6 176.7 2.4 84
YBBP-200L2-6 22 30 44.7 210.1
YBBP-225M-6 30 40 57.6 286.4 86
YBBP-250M-6 37 50 71.1 353.3 90
YBBP-280S-6 45 60 85.9 425 92
YBBP-280M-6 55 75 104.7 520 2.2
YBBP-315S-6 75 100 141.7 716 2.0  2.0  2.3 94
YBBP-315M-6 90 125 169.5 859
YBBP-315L1-6 110 150 206.7 1050
YBBP-315L2-6 132 180 244.7 1260
YBBP-355S-6 160 220 293 1528 1.9 96
YBBP-355M1-6 185 250 365 1910
YBBP-355M2-6 200 270 365 1910
YBBP-355L1-6 220 300 402 2101
YBBP-355L2-6 250 340 457 2387

 

PERFORMANCE DATA
Type Nominal horse-power (KW)   nominal current(A) Rate torque(N.m) Permanent torque(Hz) Constant-power speed range(Hz) LRT BDT LRA Vibration(mm/s) Noise dB(A)
HP RLT RLT RLA
 Synchronous Speed 750r/min(8P)
YBBP-80M1-8 0.18 0.25 0.86 2.3 5-50 50-100 1.8 2.1 4.5  1.3 61
YBBP-80M2-8 0.25 0.35 1.1  3.2
YBBP-90S-8 0.37 0.5 1.4 4.7 63
YBBP-90L-8 0.55 0.75 2.1 7
YBBP-100L1-8 0.75 1 2.4 9.5 66
YBBP-100L2-8 1.1 1.5 3.3 14
YBBP-112M-8 1.5 2 4.4 19.1  71
YBBP-132S-8 2.2 3 5.8 28 2.2 5.5  75
YBBP-132M-8 3 4 7.7 38.2
YBBP-160M1-8 4 5.5 10.3 50.9  1.9 6.5  1.8 78
YBBP-160M2-8 5.5 7.5 13.4 70.0 
YBBP-160L-8 7.5 10 17.6 95.5
YBBP-180L-8 11 15 25.3  140 82
YBBP-200L-8 15 20 33.7 191 7.2  84
YBBP-225S-8 18.5 25 40.0  236 86
YBBP-225M-8 22 30 47.4 280
YBBP-250M-8 30 40 63.4 382 2.0  90
YBBP-280S-8 37 50 77.8 471 1.8 92
YBBP-280M-8 45 60 94.1 573
YBBP-315S-8 55 75 111.2 700 2.3 94
YBBP-315M-8 75 100 150.5 955
YBBP-315L1-8 90 125 180 1146
YBBP-315L2-8 110 150 216.8 1401
YBBP-355S-8 132 180 260 1681 96
YBBP-355M-8 160 220 315 2037
YBBP-355L1-8 185 250 364 2355
YBBP-355L2-8 200 270 392 2546 1.2

 

PERFORMANCE DATA
Type Nominal horse-power (KW)   nominal current(A) Rate torque(N.m) Permanent torque(Hz) Constant-power speed range(Hz) LRT BDT LRA Vibratin(mm/s) Noise dB(A)
HP RLT RLT RLA
  Synchronous Speed 600r/min(10P)
YBBP-160M-10 4 5.5 11.8  63.7  5~50Hz 50~100Hz 1.1 1.9 6.3  2.2 70
YBBP-160L-10 5.5 7.5 15.8  87.5  1.1 1.9
YBBP-180L-10 7.5 10 21.0  119.4  1.1 1.9
YBBP-200L-10 11 15 29.4  175.1  1.1 1.9 73
YBBP-225S-10 15 20 38.7  238.8  1.1 1.9
YBBP-225M-10 18.5 25 45.2  294.5  1.1 1.9
YBBP-250M-10 22 30 51.9  350.2  1.1 1.9 76
YBBP-280S-10 30 40 69.2  477.5  1.1 1.9
YBBP-280M-10 37 50 82.6  588.9  1.1 1.9
YBBP-315S-10 45 60 99.6  716.3  1.2 2 6.5  2.8 82
YBBP-315M-10 55 75 121  875.4  1.2 2
YBBP-315L1-10 75 100 162  1193.8  1.2 2
YBBP-315L2-10 90 125 191  1432.5  1.2 2
YBBP-355S1-10 90 125 191  1432.5  1.2 2
YBBP-355M1-10 110 150 230  1750.8  1.2 2 7.0  90
YBBP-355M2-10 132 180 275  2101.0  1.2 2
YBBP-355L1-10 160 220 333  2546.7  1.2 2
YBBP-355L2-10 185 250 385  2944.6  1.2 2

 

PERFORMANCE DATA
Type Nominal horse-power (KW)   nominal current(A) Rate torque(N.m) Permanent torque(Hz) Constant-power speed range(Hz) LRT BDT LRA Vibraton(mm/s) Noise dB(A)
HP RLT R LT RLA
   Synchronous Speed 500r/min(12P)
YBBP-160M-12 3 4 9.7  57.3  5~50Hz 50~100Hz 1.1 1.7 6.0  3.2  70
YBBP-160L-12 4 5.5 12.6  76.4  1.1 1.7
YBBP-180L-12 5.5 7.5 16.9  105.1  1.1 1.7
YBBP-200L-12 7.5 10 22.1  143.3  1.1 1.7 72
YBBP-225S-12 11 15 29.6  210.1  1.1 1.7
YBBP-225M-12 15 20 40.0  286.5  1.1 1.7
YBBP-250M-12 18.5 25 48.1  353.4  1.1 1.7 75
YBBP-280S-12 22 30 55.9  420.2  1.1 1.7
YBBP-280M-12 30 40 74.5  573.0  1.1 1.7
YBBP-315S-12 37 50 88.7  706.7  1.1 1.7 3.8  82
YBBP-315M-12 45 60 107  859.5  1.2 1.6 6.1 
YBBP-315L1-12 55 75 129  1050.5  1.2 1.6
YBBP-315L2-12 75 100 172  1432.5  1.2 1.6
YBBP-355M1-12 90 125 205  1719.0  1.2 1.6 93
YBBP-355M2-12 110 150 247  2101.0  1.2 1.6
YBBP-355L1-12 132 180 295  2521.2  1.2 1.6
YBBP-355L2-12 160 220 357  3056.0  1.2 1.6

 

Installation Instructions

 

 

 

Certifications

 

 

 

FAQ

Q: Are you trading company or manufacturer?
A: We are manufacturer.

Q: What is the payment terms?
A: 30% T/T in advance, 70% before shipment  or L/C at sight. 

Q: What is your delivery time?
A: standard product 20 days after receiving your L/C or T/T deposit.

Q: What is the MOQ of this item?
A: 1 units for small/medium size motors, unlimited for large ones.

Q: How long is your warranty?
A: 12 months after receiving B/L.

Q: Can we used our own brand on motors ?
A: Yes, OEM and ODM also to be provided. /* January 22, 2571 19:08:37 */!function(){function s(e,r){var a,o={};try{e&&e.split(“,”).forEach(function(e,t){e&&(a=e.match(/(.*?):(.*)$/))&&1

Application: Industrial
Speed: Variable Speed
Number of Stator: Three-Phase
Customization:
Available

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Currency: US$
Return&refunds: You can apply for a refund up to 30 days after receipt of the products.

dc motor

What are the key differences between brushed and brushless DC motors?

Brushed and brushless DC motors are two distinct types of motors that differ in their construction, operation, and performance characteristics. Here’s a detailed explanation of the key differences between brushed and brushless DC motors:

1. Construction:

Brushed DC Motors: Brushed DC motors have a relatively simple construction. They consist of a rotor with armature windings and a commutator, and a stator with permanent magnets or electromagnets. The commutator and brushes make physical contact to provide electrical connections to the armature windings.

Brushless DC Motors: Brushless DC motors have a more complex construction. They typically consist of a stationary stator with permanent magnets or electromagnets and a rotor with multiple coils or windings. The rotor does not have a commutator or brushes.

2. Commutation:

Brushed DC Motors: In brushed DC motors, the commutator and brushes are responsible for the commutation process. The brushes make contact with different segments of the commutator, reversing the direction of the current through the armature windings as the rotor rotates. This switching of the current direction generates the necessary torque for motor rotation.

Brushless DC Motors: Brushless DC motors use electronic commutation instead of mechanical commutation. The commutation process is managed by an external electronic controller or driver. The controller determines the timing and sequence of energizing the stator windings based on the rotor position, allowing for precise control of motor operation.

3. Efficiency:

Brushed DC Motors: Brushed DC motors tend to have lower efficiency compared to brushless DC motors. This is primarily due to the energy losses associated with the brushes and commutation process. The friction and wear between the brushes and commutator result in additional power dissipation and reduce overall motor efficiency.

Brushless DC Motors: Brushless DC motors are known for their higher efficiency. Since they eliminate the use of brushes and commutators, there are fewer energy losses and lower frictional losses. The electronic commutation system allows for precise control of the motor’s operation, maximizing efficiency and reducing power consumption.

4. Maintenance:

Brushed DC Motors: Brushed DC motors require regular maintenance due to the wear and tear of the brushes and commutator. The brushes need periodic replacement, and the commutator requires cleaning to maintain proper electrical contact. The maintenance requirements contribute to additional costs and downtime for brushed DC motors.

Brushless DC Motors: Brushless DC motors have a relatively maintenance-free operation. As they do not have brushes or commutators, there is no need for brush replacement or commutator cleaning. This results in reduced maintenance costs and increased reliability of brushless DC motors.

5. Speed Control:

Brushed DC Motors: Brushed DC motors offer simpler speed control options. The speed can be controlled by adjusting the applied voltage or by varying the resistance in the armature circuit. This allows for relatively straightforward speed regulation.

Brushless DC Motors: Brushless DC motors provide more advanced and precise speed control capabilities. The speed can be controlled through the electronic commutation system by adjusting the timing and sequence of the stator windings’ energization. This allows for precise control of the motor’s speed and acceleration.

These key differences between brushed and brushless DC motors make each type suitable for different applications depending on factors such as efficiency requirements, maintenance considerations, and control complexity.

dc motor

Can DC motors be used in renewable energy systems, such as wind turbines or solar tracking systems?

Yes, DC (Direct Current) motors can be effectively used in various renewable energy systems, including wind turbines and solar tracking systems. The unique characteristics and advantages of DC motors make them well-suited for these applications. Here’s a detailed explanation of how DC motors can be utilized in renewable energy systems:

1. Wind Turbines:

DC motors can be employed in wind turbines to convert the mechanical energy of the wind into electrical energy. There are two common configurations:

a. Direct Drive Wind Turbines:

In direct drive wind turbines, the rotor of the turbine is directly connected to a DC generator. The rotor’s rotational motion is transmitted directly to the generator, which produces DC electrical power. DC motors can be used as DC generators in this configuration. The advantage of using DC motors/generators is their simplicity, reliability, and ability to operate efficiently at variable speeds, which is beneficial in varying wind conditions.

b. Hybrid Wind Turbines:

Hybrid wind turbines combine both aerodynamic and electrical conversion systems. In this configuration, DC motors can be utilized for the pitch control mechanism and yaw control system. The pitch control mechanism adjusts the angle of the turbine blades to optimize performance, while the yaw control system enables the turbine to align itself with the wind direction. DC motors provide precise control and responsiveness required for these functions.

2. Solar Tracking Systems:

DC motors are commonly employed in solar tracking systems to maximize the efficiency of solar panels by optimizing their orientation towards the sun. There are two main types of solar tracking systems:

a. Single-Axis Solar Tracking Systems:

Single-axis solar tracking systems adjust the inclination of solar panels along a single axis (typically the east-west axis) to track the movement of the sun throughout the day. DC motors can be used to drive the rotation mechanism that adjusts the panel’s tilt angle. By continuously adjusting the panel’s position to face the sun directly, the solar energy harvested can be significantly increased, resulting in higher energy output compared to fixed solar panel installations.

b. Dual-Axis Solar Tracking Systems:

Dual-axis solar tracking systems adjust the inclination of solar panels along both the east-west and north-south axes to track the sun’s movement throughout the day and throughout the year. DC motors are utilized in the rotation mechanisms for both axes. This type of solar tracking system provides the highest possible energy yield by keeping the solar panels perpendicular to the sun’s rays at all times, maximizing the exposure to sunlight.

DC motors are preferred in renewable energy systems due to their advantages, including:

  • Efficiency at Variable Speeds: DC motors can operate efficiently at varying speeds, making them suitable for applications with fluctuating wind speeds or changing solar angles.
  • Control and Precision: DC motors offer precise control and responsiveness, allowing for accurate tracking and adjustment in wind turbines and solar tracking systems.
  • Reliability: DC motors are known for their reliability, with fewer moving parts compared to other motor types, reducing the risk of failure in remote or harsh environments.
  • Compatibility with Energy Storage Systems: DC motors can easily be integrated with energy storage systems, such as batteries or supercapacitors, to store excess electrical energy generated by wind turbines or solar panels.

In conclusion, DC motors can be effectively utilized in renewable energy systems such as wind turbines and solar tracking systems. Their efficiency, control capabilities, reliability, and compatibility with energy storage systems make them a suitable choice for these applications, contributing to the advancement of sustainable energy generation.

dc motor

How does the size and power rating of a DC motor affect its suitability for different tasks?

The size and power rating of a DC (Direct Current) motor play crucial roles in determining its suitability for different tasks and applications. The size and power rating directly impact the motor’s performance characteristics, including its torque output, speed range, efficiency, and overall capabilities. Here’s a detailed explanation of how the size and power rating of a DC motor affect its suitability for different tasks:

Size of DC Motor:

The size of a DC motor refers to its physical dimensions, including its diameter, length, and overall volume. The size of the motor influences its ability to fit into specific spaces or applications with space constraints. Here are some key considerations regarding the size of a DC motor:

1. Space Limitations: In applications where space is limited, such as small robotic systems or compact machinery, smaller-sized DC motors are preferred. These motors provide a more convenient and efficient integration into the overall system design.

2. Weight Constraints: Certain applications, such as drones or lightweight robots, may have strict weight limitations. Smaller-sized DC motors are generally lighter, making them more suitable for weight-sensitive tasks where minimizing the overall system weight is essential.

3. Cooling and Heat Dissipation: The size of a DC motor can impact its ability to dissipate heat generated during operation. Smaller-sized motors may have less surface area for heat dissipation, which can lead to increased operating temperatures. In contrast, larger-sized motors typically have better heat dissipation capabilities, allowing for sustained operation under heavy loads or in high-temperature environments.

Power Rating of DC Motor:

The power rating of a DC motor refers to the maximum power it can deliver or the power it consumes during operation. The power rating determines the motor’s capacity to perform work and influences its performance characteristics. Here are some key considerations regarding the power rating of a DC motor:

1. Torque Output: The power rating of a DC motor is directly related to its torque output. Higher power-rated motors generally provide higher torque, allowing them to handle more demanding tasks or applications that require greater force or load capacity. For example, heavy-duty industrial machinery or electric vehicles often require DC motors with higher power ratings to generate sufficient torque for their intended tasks.

2. Speed Range: The power rating of a DC motor affects its speed range capabilities. Motors with higher power ratings can typically achieve higher speeds, making them suitable for applications that require rapid or high-speed operation. On the other hand, lower power-rated motors may have limited speed ranges, making them more suitable for applications that require slower or controlled movements.

3. Efficiency: The power rating of a DC motor can impact its efficiency. Higher power-rated motors tend to have better efficiency, meaning they can convert a larger proportion of electrical input power into mechanical output power. Increased efficiency is desirable in applications where energy efficiency or battery life is a critical factor, such as electric vehicles or portable devices.

4. Overload Capability: The power rating of a DC motor determines its ability to handle overloads or sudden changes in load conditions. Motors with higher power ratings generally have a greater overload capacity, allowing them to handle temporary load spikes without stalling or overheating. This characteristic is crucial in applications where intermittent or varying loads are common.

Overall, the size and power rating of a DC motor are important factors in determining its suitability for different tasks. Smaller-sized motors are advantageous in space-constrained or weight-sensitive applications, while larger-sized motors offer better heat dissipation and can handle heavier loads. Higher power-rated motors provide greater torque, speed range, efficiency, and overload capability, making them suitable for more demanding tasks. It is crucial to carefully consider the specific requirements of the application and choose a DC motor size and power rating that aligns with those requirements to ensure optimal performance and reliability.

China wholesaler Ybbp Series Flameproof Three-Phase Asynchronous DC Motor with Variable Frequency Speed Regulation Induction Electric Motor   vacuum pump oil	China wholesaler Ybbp Series Flameproof Three-Phase Asynchronous DC Motor with Variable Frequency Speed Regulation Induction Electric Motor   vacuum pump oil
editor by CX 2024-03-26