Product Description
Motor Item No. | Rated Power | Rated Frequency | Rated Voltage | Rated Current | Rated Speed | Capacitor | Ratio | Output Torque | Transmission Efficiency | Lever Time |
(W) | (Hz) | (V) | (A) | (RMP) | (μF) | N.m | (S) | |||
Y18-200A-F-C/GRV063UZ-30×5-18T | 200 | 50 | Single Phase AC 110 | 4.0 | 1400 | 40 | 300 | 280 | 70% | 6 |
Y18-200A-F-C/GRV063UZ-30×7.5-18T | 200 | 50 | Single Phase AC 110 | 4.0 | 1400 | 40 | 450 | 420 | 70% | 9 |
Y18-250A-F-C/GRV063UZ-60×5-18T | 250 | 50 | Single Phase AC 220 | 4.0 | 1410 | 12 | 300 | 350 | 70% | 6 |
Y18-250A-F-C/GRV063UZ-60×7.5-18T | 250 | 50 | Single Phase AC 220 | 4.0 | 1410 | 12 | 450 | 525 | 70% | 9 |
/* 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 |
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Speed: | Constant Speed |
Number of Stator: | Single-Phase |
Function: | Driving, Control |
Casing Protection: | Protection Type |
Number of Poles: | 4 |
Customization: |
Available
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Can gear motors be used in robotics, and if so, what are some notable applications?
Yes, gear motors are widely used in robotics due to their ability to provide torque, precise control, and compact size. They play a crucial role in various robotic applications, enabling the movement, manipulation, and control of robotic systems. Here are some notable applications of gear motors in robotics:
1. Robotic Arm Manipulation:
Gear motors are commonly used in robotic arms to provide precise and controlled movement. They enable the articulation of the arm’s joints, allowing the robot to reach different positions and orientations. Gear motors with high torque capabilities are essential for lifting, rotating, and manipulating objects with varying weights and sizes.
2. Mobile Robots:
Gear motors are employed in mobile robots, including wheeled robots and legged robots, to drive their locomotion. They provide the necessary torque and control for the robot to move, turn, and navigate in different environments. Gear motors with appropriate gear ratios ensure the robot’s mobility, stability, and maneuverability.
3. Robotic Grippers and End Effectors:
Gear motors are used in robotic grippers and end effectors to control the opening, closing, and gripping force. By integrating gear motors into the gripper mechanism, robots can grasp and manipulate objects of various shapes, sizes, and weights. The gear motors enable precise control over the gripping action, allowing the robot to handle delicate or fragile objects with care.
4. Autonomous Drones and UAVs:
Gear motors are utilized in the propulsion systems of autonomous drones and unmanned aerial vehicles (UAVs). They drive the propellers or rotors, providing the necessary thrust and control for the drone’s flight. Gear motors with high power-to-weight ratios, efficient energy conversion, and precise speed control are crucial for achieving stable and maneuverable flight in drones.
5. Humanoid Robots:
Gear motors are integral to the movement and functionality of humanoid robots. They are used in robotic joints, such as hips, knees, and shoulders, to enable human-like movements. Gear motors with appropriate torque and speed capabilities allow humanoid robots to walk, run, climb stairs, and perform complex motions resembling human actions.
6. Robotic Exoskeletons:
Gear motors play a vital role in robotic exoskeletons, which are wearable robotic devices designed to augment human strength and assist in physical tasks. Gear motors are used in the exoskeleton’s joints and actuators, providing the necessary torque and control to enhance human abilities. They enable users to perform tasks with reduced effort, assist in rehabilitation, or provide support in physically demanding environments.
These are just a few notable applications of gear motors in robotics. Their versatility, torque capabilities, precise control, and compact size make them indispensable components in various robotic systems. Gear motors enable robots to perform complex tasks, move with agility, interact with the environment, and assist humans in a wide range of applications, from industrial automation to healthcare and exploration.
What are some common challenges or issues associated with gear motors, and how can they be addressed?
Gear motors, like any mechanical system, can face certain challenges or issues that may affect their performance, reliability, or longevity. However, many of these challenges can be addressed through proper design, maintenance, and operational practices. Here are some common challenges associated with gear motors and potential solutions:
1. Gear Wear and Failure:
Over time, gears in a gear motor can experience wear, resulting in decreased performance or even failure. The following measures can address this challenge:
- Proper Lubrication: Regular lubrication with the appropriate lubricant can minimize friction and wear between gear teeth. It is essential to follow manufacturer recommendations for lubrication intervals and use high-quality lubricants suitable for the specific gear motor.
- Maintenance and Inspection: Routine maintenance and periodic inspections can help identify early signs of gear wear or damage. Timely replacement of worn gears or components can prevent further damage and ensure the gear motor’s optimal performance.
- Material Selection: Choosing gears made from durable and wear-resistant materials, such as hardened steel or specialized alloys, can increase their lifespan and resistance to wear.
2. Backlash and Inaccuracy:
Backlash, as discussed earlier, can introduce inaccuracies in gear motor systems. The following approaches can help address this issue:
- Anti-Backlash Gears: Using anti-backlash gears, which are designed to minimize or eliminate backlash, can significantly reduce inaccuracies caused by gear play.
- Tight Manufacturing Tolerances: Ensuring precise manufacturing tolerances during gear production helps minimize backlash and improve overall accuracy.
- Backlash Compensation: Implementing control algorithms or mechanisms to compensate for backlash can help mitigate its effects and improve the accuracy of the gear motor.
3. Noise and Vibrations:
Gear motors can generate noise and vibrations during operation, which may be undesirable in certain applications. The following strategies can help mitigate this challenge:
- Noise Dampening: Incorporating noise-dampening features, such as vibration-absorbing materials or isolation mounts, can reduce noise and vibrations transmitted from the gear motor to the surrounding environment.
- Quality Gears and Bearings: Using high-quality gears and bearings can minimize vibrations and noise generation. Precision-machined gears and well-maintained bearings help ensure smooth operation and reduce unwanted noise.
- Proper Alignment: Ensuring accurate alignment of gears, shafts, and other components reduces the likelihood of noise and vibrations caused by misalignment. Regular inspections and adjustments can help maintain optimal alignment.
4. Overheating and Thermal Management:
Heat buildup can be a challenge in gear motors, especially during prolonged or heavy-duty operation. Effective thermal management techniques can address this issue:
- Adequate Ventilation: Providing proper ventilation and airflow around the gear motor helps dissipate heat. This can involve designing cooling fins, incorporating fans or blowers, or ensuring sufficient clearance for air circulation.
- Heat Dissipation Materials: Using heat-dissipating materials, such as aluminum or copper, in motor housings or heat sinks can improve heat dissipation and prevent overheating.
- Monitoring and Control: Implementing temperature sensors and thermal protection mechanisms allows for real-time monitoring of the gear motor’s temperature. If the temperature exceeds safe limits, the motor can be automatically shut down or adjusted to prevent damage.
5. Load Variations and Shock Loads:
Unexpected load variations or shock loads can impact the performance and durability of gear motors. The following measures can help address this challenge:
- Proper Sizing and Selection: Choosing gear motors with appropriate torque and load capacity ratings for the intended application helps ensure they can handle expected load variations and occasional shock loads without exceeding their limits.
- Shock Absorption: Incorporating shock-absorbing mechanisms, such as dampers or resilient couplings, can help mitigate the effects of sudden load changes or impacts on the gear motor.
- Load Monitoring: Implementing load monitoring systems or sensors allows for real-time monitoring of load variations. This information can be used to adjust operation or trigger protective measures when necessary.
By addressing these common challenges associated with gear motors through appropriate design considerations, regular maintenance, and operational practices, it is possible to enhance their performance, reliability, and longevity.
In which industries are gear motors commonly used, and what are their primary applications?
Gear motors find widespread use in various industries due to their versatility, reliability, and ability to provide controlled mechanical power. They are employed in a wide range of applications that require precise power transmission and speed control. Here’s a detailed explanation of the industries where gear motors are commonly used and their primary applications:
1. Robotics and Automation:
Gear motors play a crucial role in robotics and automation industries. They are used in robotic arms, conveyor systems, automated assembly lines, and other robotic applications. Gear motors provide the required torque, speed control, and directional control necessary for the precise movements and operations of robots. They enable accurate positioning, gripping, and manipulation tasks in industrial and commercial automation settings.
2. Automotive Industry:
The automotive industry extensively utilizes gear motors in various applications. They are used in power windows, windshield wipers, HVAC systems, seat adjustment mechanisms, and many other automotive components. Gear motors provide the necessary torque and speed control for these systems, enabling smooth and efficient operation. Additionally, gear motors are also utilized in electric and hybrid vehicles for powertrain applications.
3. Manufacturing and Machinery:
Gear motors find wide application in the manufacturing and machinery sector. They are used in conveyor belts, packaging equipment, material handling systems, industrial mixers, and other machinery. Gear motors provide reliable power transmission, precise speed control, and torque amplification, ensuring efficient and synchronized operation of various manufacturing processes and machinery.
4. HVAC and Building Systems:
In heating, ventilation, and air conditioning (HVAC) systems, gear motors are commonly used in damper actuators, control valves, and fan systems. They enable precise control of airflow, temperature, and pressure, contributing to energy efficiency and comfort in buildings. Gear motors also find applications in automatic doors, blinds, and gate systems, providing reliable and controlled movement.
5. Marine and Offshore Industry:
Gear motors are extensively used in the marine and offshore industry, particularly in propulsion systems, winches, and cranes. They provide the required torque and speed control for various marine operations, including steering, anchor handling, cargo handling, and positioning equipment. Gear motors in marine applications are designed to withstand harsh environments and provide reliable performance under demanding conditions.
6. Renewable Energy Systems:
The renewable energy sector, including wind turbines and solar tracking systems, relies on gear motors for efficient power generation. Gear motors are used to adjust the rotor angle and position in wind turbines, optimizing their performance in different wind conditions. In solar tracking systems, gear motors enable the precise movement and alignment of solar panels to maximize sunlight capture and energy production.
7. Medical and Healthcare:
Gear motors have applications in the medical and healthcare industry, including in medical equipment, laboratory devices, and patient care systems. They are used in devices such as infusion pumps, ventilators, surgical robots, and diagnostic equipment. Gear motors provide precise control and smooth operation, ensuring accurate dosing, controlled movements, and reliable functionality in critical medical applications.
These are just a few examples of the industries where gear motors are commonly used. Their versatility and ability to provide controlled mechanical power make them indispensable in numerous applications requiring torque amplification, speed control, directional control, and load distribution. The reliable and efficient power transmission offered by gear motors contributes to the smooth and precise operation of machinery and systems in various industries.
editor by CX 2024-05-14
China Hot selling CHINAMFG 200W 250W 110V/220V Single or Three Phase Micro AC Electric Gear Motor, AC Motor Induction Motor for Conveyor vacuum pump connector
Product Description
AC Gear Motor | |||||||
4 | RK | 25 | R | C | C | F | G10 |
Outer Diameter | Motor Type | Power Capacity | Speed Motor | Votalge | Output Shaft Shape | Accessories | Derived Code |
2 – 60mm 3 – 70mm 4 – 80mm 5 – 90mm 6 – 100mm |
IK – Induction RK – Reversible TK – Torque |
6 – 6W 15 – 15W 40 – 40W 60 – 60W 90 – 90W 120 – 120W 140 – 140W 180 – 180W 200 – 200W 250 – 250W |
R | A -1 Phase 110V C – 1 Phase 220V C2 – 1 Phase 110V/220V S – 3 Phase 220V S2 – 3 Phase 220V/380V S3 – 3 Phase 380V S4 – 3 Phase 440V SS3 – 3 Phase 220V/380V |
A – Round Shaft C – Toothed Shaft |
T/P – Thermally Protected F – Fan M – Electro-manetic Z – Damping |
Dimension Shaft Length |
AC Gearhead | |||||
4 | GN | 60 | K | G12 | T |
Outer Diameter | Motor Shaft Shape | Gear Ratio | Bearing Model | Output Shaft Diameter | Installation Method |
2 – 60mm 3 – 70mm 4 – 80mm 5 – 90mm 6 – 104mm |
GN – Bevel Gear Shaft GU – Bevel Gear Shaft GS – Strengthen T-shaped installation GZ – Right-angle gearbox GM – Intermediate gearbox |
60 – 1:60 | K – Standard Rolling Bearings RT – Right Angle RC – Right Angle Hollow |
G12 – Ф12mm | L – Screw Hole T – Through Hole |
Specifications of Motor | |||||||||||||||||||
Motor Type | Motor Model No. | Description | Rating | Start Condenser | Gear Model No. | ||||||||||||||
Cylindncal Output Shaft |
Pinion Cut Output Shaft |
Force | Peripheral Wave No. | Valtage | Current | Start Turning Moment | Turning Moment | Revolving No. | Capacity | Resistance Voltage | Pairing Bearing | Middle Gear | |||||||
( W ) | ( Hz ) | ( V ) | ( A ) | ( gcm ) | ( gcm ) | ( rpm ) | ( uF ) | ( V ) | |||||||||||
Rerersible Motor |
4RK25A-A | 4RK25GN-A | 25 | 50 | 110 | 0.60 | 1950 | 1950 | 1250 | 8 | 250 | 4GN-K | 4GN10X | ||||||
60 | 110 | 0.55 | 1650 | 1620 | 1500 | 7 | |||||||||||||
4RK25A-C | 4RK25GN-C | 50 | 220 | 0.30 | 1950 | 1950 | 1250 | 2 | 500 | 4GN-K | 4GN10X | ||||||||
60 | 220 | 0.27 | 1650 | 1620 | 1500 | 1.8 | |||||||||||||
4RK30A-A | 4RK30GN-A | 30 | 50 | 110 | 0.70 | 2400 | 2350 | 1250 | 10 | 250 | 4GN-K | 4GN10X | |||||||
60 | 110 | 0.65 | 1950 | 1950 | 1500 | 8 | |||||||||||||
4RK30A-C | 4RK30GN-C | 50 | 220 | 0.35 | 2400 | 2350 | 1250 | 2.5 | 500 | 4GN-K | 4GN10X | ||||||||
60 | 220 | 0.32 | 1950 | 1950 | 1500 | 2 | |||||||||||||
4RK40A-A | 4RK40GN-A | 40 | 50 | 110 | 0.80 | 3250 | 3250 | 1250 | 16 | 250 | 4GN-K | 4GN10X | |||||||
60 | 110 | 0.75 | 3600 | 2600 | 1500 | 14 | |||||||||||||
4RK40A-C | 4RK40GN-C | 50 | 220 | 0.40 | 3250 | 3250 | 1250 | 4 | 500 | 4GN-K | 4GN10X | ||||||||
60 | 220 | 0.38 | 2600 | 2600 | 1500 | 3.5 | |||||||||||||
Induction Motor |
4IK25A-A | 4IK25GN-A | 25 | 50 | 110 | 0.55 | 1650 | 1950 | 1250 | 7 | 250 | 4GN-K | 4GN10X | ||||||
60 | 110 | 0.50 | 1380 | 1620 | 1500 | 6 | |||||||||||||
4IK25A-C | 4IK25GN-C | 50 | 220 | 0.28 | 1650 | 1950 | 1250 | 1.8 | 500 | 4GN-K | 4GN10X | ||||||||
60 | 220 | 0.25 | 1350 | 1620 | 1500 | 1.5 | |||||||||||||
4IK30A-A | 4IK30GN-A | 30 | 50 | 110 | 0.65 | 2050 | 2350 | 1250 | 10 | 250 | 4GN-K | 4GN10X | |||||||
60 | 110 | 0.60 | 1750 | 1950 | 1500 | 8 | |||||||||||||
4IK30A-C | 4IK30GN-C | 50 | 220 | 0.33 | 2050 | 2350 | 1250 | 2.2 | 500 | 4GN-K | 4GN10X | ||||||||
60 | 220 | 0.30 | 1750 | 1950 | 1500 | 2 | |||||||||||||
External Dimension | |||||||||||||||||||
Type | Reduction Ratio | L1(mm) | L2(mm) | L3(mm) | |||||||||||||||
4IK(RK)25A(GN) | 1:3 ~ 1:20 | 86 | 32 | 118 | |||||||||||||||
4IK(RK)30A(GN) | 86 | 32 | 118 | ||||||||||||||||
4IK(RK)40A(GN) | 101 | 32 | 133 | ||||||||||||||||
4IK(RK)25A(GN) | 1:25 ~ 1:180 | 86 | 44 | 130 | |||||||||||||||
4IK(RK)30A(GN) | 86 | 44 | 130 | ||||||||||||||||
4IK(RK)40A(GN) | 101 | 44 | 145 | ||||||||||||||||
Gear Head-Torque Table (kg.cm) | |||||||||||||||||||
( kg.cm x 9.8 ÷ 100 ) = N.m | |||||||||||||||||||
r/min | 500 | 300 | 200 | 150 | 120 | 100 | 75 | 60 | 50 | 30 | 20 | 15 | 10 | 7.5 | 6 | 5 | 3 | ||
Gear Redcution Ratio | 50Hz | 3 | 5 | 7.5 | 10 | 12.5 | 15 | 20 | 25 | 30 | 50 | 75 | 100 | 150 | 200 | 250 | 300 | 500 | |
60Hz | 3.6 | 6 | 9 | 15 | 18 | 30 | 36 | 60 | 90 | 120 | 180 | 300 | 360 | 600 | |||||
Permissible Load | 25W | kg.cm | 4 | 6.7 | 10 | 13.3 | 16 | 20 | 26.7 | 32 | 39 | 65 | 80 | 80 | 80 | 80 | 80 | 80 | 80 |
30W | kg.cm | 4.8 | 8 | 12 | 16 | 20 | 24 | 32 | 38 | 45 | 76 | 80 | 80 | 80 | 80 | 80 | 80 | 80 | |
40W | kg.cm | 6.7 | 11 | 16 | 21.3 | 28 | 33 | 42 | 54 | 65 | 80 | 80 | 80 | 80 | 80 | 80 | 80 | 80 | |
Note: Speed figures are based on synchronous speed, the actual output speed, under rated torque conditions, is about 10~20% less than synchronous speed. Grey background indicates: output shaft of geared motor rotates in the same direction as output shaft of motor White background indicates: rotation in the opposite direction |
FAQ
Q: How about your company?
A: We are a gear motor factory established in 1995 and located in HangZhou city of china.
We have more than 1200 workers. Our main product is AC micro gear motor 6W to 250W,
AC small gear motor 100W to 3700W, brush DC motor 10W to 400W, brushless motor10W to 750W,
drum motor 60W to 3700W, planetary gearbox,and worm gearbox,etc.
Q: How about your quality control?
A: From raw material to finished products, we have strict and complete IPQC.
And the advanced test-ing machine can assure of qualified products delivered.
Q: How to choose a suitable motor?
A: If you have gear motor pictures or drawings to show us,
or you tell us detailed specs like volt-age, speed, torque, motor size, the working model of the motor, needed lifetime and noise level, etc.
please do not hesitate to let us know, then we can suggest a suitable motor per your request.
Q: Can you make the gear motor with customizing specifications?
A: Yes, we can customize per your request for the voltage, speed, torque, and shaft size and shape.
if you need additional wires or cables soldered on the terminal or need to add connectors, or capacitors, or EMC we can make it too.
Q: What’s your lead time?
A: Usually our regular standard product will need 10-15days, a bit longer for customized products.
But we are very flexible on the lead time, it will depend on the specific orders.
Q: What is your MOQ?
A: If delivered by sea, the minimum order is 100 pieces, if deliver by express, there is no limit.
Q: Do you have the item in stock?
A: l am sorry we do not have the item in stock, All products are made with orders.
Q: How to contact us?
A: You can send us an inquiry.
/* 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 |
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Speed: | Constant Speed |
Number of Stator: | Single-Phase |
Function: | Driving, Control |
Casing Protection: | Protection Type |
Number of Poles: | 4 |
Customization: |
Available
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Can gear motors be used in robotics, and if so, what are some notable applications?
Yes, gear motors are widely used in robotics due to their ability to provide torque, precise control, and compact size. They play a crucial role in various robotic applications, enabling the movement, manipulation, and control of robotic systems. Here are some notable applications of gear motors in robotics:
1. Robotic Arm Manipulation:
Gear motors are commonly used in robotic arms to provide precise and controlled movement. They enable the articulation of the arm’s joints, allowing the robot to reach different positions and orientations. Gear motors with high torque capabilities are essential for lifting, rotating, and manipulating objects with varying weights and sizes.
2. Mobile Robots:
Gear motors are employed in mobile robots, including wheeled robots and legged robots, to drive their locomotion. They provide the necessary torque and control for the robot to move, turn, and navigate in different environments. Gear motors with appropriate gear ratios ensure the robot’s mobility, stability, and maneuverability.
3. Robotic Grippers and End Effectors:
Gear motors are used in robotic grippers and end effectors to control the opening, closing, and gripping force. By integrating gear motors into the gripper mechanism, robots can grasp and manipulate objects of various shapes, sizes, and weights. The gear motors enable precise control over the gripping action, allowing the robot to handle delicate or fragile objects with care.
4. Autonomous Drones and UAVs:
Gear motors are utilized in the propulsion systems of autonomous drones and unmanned aerial vehicles (UAVs). They drive the propellers or rotors, providing the necessary thrust and control for the drone’s flight. Gear motors with high power-to-weight ratios, efficient energy conversion, and precise speed control are crucial for achieving stable and maneuverable flight in drones.
5. Humanoid Robots:
Gear motors are integral to the movement and functionality of humanoid robots. They are used in robotic joints, such as hips, knees, and shoulders, to enable human-like movements. Gear motors with appropriate torque and speed capabilities allow humanoid robots to walk, run, climb stairs, and perform complex motions resembling human actions.
6. Robotic Exoskeletons:
Gear motors play a vital role in robotic exoskeletons, which are wearable robotic devices designed to augment human strength and assist in physical tasks. Gear motors are used in the exoskeleton’s joints and actuators, providing the necessary torque and control to enhance human abilities. They enable users to perform tasks with reduced effort, assist in rehabilitation, or provide support in physically demanding environments.
These are just a few notable applications of gear motors in robotics. Their versatility, torque capabilities, precise control, and compact size make them indispensable components in various robotic systems. Gear motors enable robots to perform complex tasks, move with agility, interact with the environment, and assist humans in a wide range of applications, from industrial automation to healthcare and exploration.
Can gear motors be used for precise positioning, and if so, what features enable this?
Yes, gear motors can be used for precise positioning in various applications. The combination of gear mechanisms and motor control features enables gear motors to achieve accurate and repeatable positioning. Here’s a detailed explanation of the features that enable gear motors to be used for precise positioning:
1. Gear Reduction:
One of the key features of gear motors is their ability to provide gear reduction. Gear reduction refers to the process of reducing the output speed of the motor while increasing the torque. By using the appropriate gear ratio, gear motors can achieve finer control over the rotational movement, allowing for more precise positioning. The gear reduction mechanism enables the motor to rotate at a slower speed while maintaining higher torque, resulting in improved accuracy and control.
2. High Resolution Encoders:
Many gear motors are equipped with high-resolution encoders. An encoder is a device that measures the position and speed of the motor shaft. High-resolution encoders provide precise feedback on the motor’s rotational position, allowing for accurate position control. The encoder signals are used in conjunction with motor control algorithms to ensure precise positioning by monitoring and adjusting the motor’s movement in real-time. The use of high-resolution encoders greatly enhances the gear motor’s ability to achieve precise and repeatable positioning.
3. Closed-Loop Control:
Gear motors with closed-loop control systems offer enhanced positioning capabilities. Closed-loop control involves continuously comparing the actual motor position (as measured by the encoder) with the desired position and making adjustments to minimize any position error. The closed-loop control system uses feedback from the encoder to adjust the motor’s speed, direction, and torque, ensuring accurate positioning even in the presence of external disturbances or variations in the load. Closed-loop control enables gear motors to actively correct for position errors and maintain precise positioning over time.
4. Stepper Motors:
Stepper motors are a type of gear motor that provides excellent precision and control for positioning applications. Stepper motors operate by converting electrical pulses into incremental steps of movement. Each step corresponds to a specific angular displacement, allowing precise positioning control. Stepper motors offer high step resolution, allowing for fine position adjustments. They are commonly used in applications that require precise positioning, such as robotics, 3D printers, and CNC machines.
5. Servo Motors:
Servo motors are another type of gear motor that excels in precise positioning tasks. Servo motors combine a motor, a feedback device (such as an encoder), and a closed-loop control system. They offer high torque, high speed, and excellent positional accuracy. Servo motors are capable of dynamically adjusting their speed and torque to maintain the desired position accurately. They are widely used in applications that require precise and responsive positioning, such as industrial automation, robotics, and camera pan-tilt systems.
6. Motion Control Algorithms:
Advanced motion control algorithms play a crucial role in enabling gear motors to achieve precise positioning. These algorithms, implemented in motor control systems or dedicated motion controllers, optimize the motor’s behavior to ensure accurate positioning. They take into account factors such as acceleration, deceleration, velocity profiling, and jerk control to achieve smooth and precise movements. Motion control algorithms enhance the gear motor’s ability to start, stop, and position accurately, reducing position errors and overshoot.
By leveraging gear reduction, high-resolution encoders, closed-loop control, stepper motors, servo motors, and motion control algorithms, gear motors can be effectively used for precise positioning in various applications. These features enable gear motors to achieve accurate and repeatable positioning, making them suitable for tasks that require precise control and reliable positioning performance.
Can you explain the advantages of using gear motors in various mechanical systems?
Gear motors offer several advantages when utilized in various mechanical systems. Their unique characteristics make them well-suited for applications that require controlled power transmission, precise speed control, and torque amplification. Here’s a detailed explanation of the advantages of using gear motors:
1. Torque Amplification:
One of the key advantages of gear motors is their ability to amplify torque. By using different gear ratios, gear motors can increase or decrease the output torque from the motor. This torque amplification is crucial in applications that require high torque output, such as lifting heavy loads or operating machinery with high resistance. Gear motors allow for efficient power transmission, enabling the system to handle demanding tasks effectively.
2. Speed Control:
Gear motors provide precise speed control, allowing for accurate and controlled movement in mechanical systems. By selecting the appropriate gear ratio, the rotational speed of the output shaft can be adjusted to match the requirements of the application. This speed control capability ensures that the mechanical system operates at the desired speed, whether it needs to be fast or slow. Gear motors are commonly used in applications such as conveyors, robotics, and automated machinery, where precise speed control is essential.
3. Directional Control:
Another advantage of gear motors is their ability to control the rotational direction of the output shaft. By using different types of gears, such as spur gears, bevel gears, or worm gears, the direction of rotation can be easily changed. This directional control is beneficial in applications that require bidirectional movement, such as in actuators, robotic arms, and conveyors. Gear motors offer reliable and efficient directional control, contributing to the versatility and functionality of mechanical systems.
4. Efficiency and Power Transmission:
Gear motors are known for their high efficiency in power transmission. The gear system helps distribute the load across multiple gears, reducing the strain on individual components and minimizing power losses. This efficient power transmission ensures that the mechanical system operates with optimal energy utilization and minimizes wasted power. Gear motors are designed to provide reliable and consistent power transmission, resulting in improved overall system efficiency.
5. Compact and Space-Saving Design:
Gear motors are compact in size and offer a space-saving solution for mechanical systems. By integrating the motor and gear system into a single unit, gear motors eliminate the need for additional components and reduce the overall footprint of the system. This compact design is especially beneficial in applications with limited space constraints, allowing for more efficient use of available space while still delivering the necessary power and functionality.
6. Durability and Reliability:
Gear motors are designed to be robust and durable, capable of withstanding demanding operating conditions. The gear system helps distribute the load, reducing the stress on individual gears and increasing overall durability. Additionally, gear motors are often constructed with high-quality materials and undergo rigorous testing to ensure reliability and longevity. This makes gear motors well-suited for continuous operation in industrial and commercial applications, where reliability is crucial.
By leveraging the advantages of torque amplification, speed control, directional control, efficiency, compact design, durability, and reliability, gear motors provide a reliable and efficient solution for various mechanical systems. They are widely used in industries such as robotics, automation, manufacturing, automotive, and many others, where precise and controlled mechanical power transmission is essential.
editor by CX 2024-04-09
china shop DC Geared Motor 250W 130 Rpm Worm Gear Motor in Gearbox manufacturers
Item Description
DC Geared CZPT 250W 130 RPM Worm Equipment CZPT in Gearbox
Product:D88R-24V250W-130RPM
Type | dc CZPT motor | ||
Motor Diameter | 88mm | ||
Voltage | 12v 24v 36v 42v 48v | ||
Power | ≤500W | ||
Torque | ≤35N.M | ||
Speed | ≤220RPM | ||
Gear of ratio | 82:1 34:1 | ||
Equipment Modulus | 82:1 M=1 34:1 M=1.twenty five |
||
Substance of gear | Plastic /brass | ||
OEM/ODM Service | Accept | ||
Utilization | Hydraulic pump ,electric forklift ,sweeper,scrubber , vacuum cleaner,automation equipment,garage door opener,other electrical tools . |
HangZhou CZPT n CZPT & CZPT nology Co.,Ltd is a subsidiary of HangZhou Wewin CZPT Co.,Ltd.The manufacturing facility is situated in Xihu (West CZPT ) Dis.,HangZhou,we can design and manufacture of motors according to all CZPT CZPT ers’ requires so much,we can manufacture about 60,000 motors per month.
Our principal market place:
Europe,The united states and Asia,including United CZPT dom, Germany, CZPT , France, Sweden, CZPT Point out,Brazil,India,Korea and so on.
Organization Positive aspects:
1. Big production potential, CZPT delivery.
2. Rigid QC inspecting guidelines: all goods have to be 100% inspected prior to shipping and delivery.
3. CZPT /ODM solutions are CZPT
4. 24 hrs online support.
5. Prompt quotation for your inquiry
6. Quality,dependability and CZPT item daily life.
7. Expert producer offers competitive cost.
8. Diversified wealthy seasoned expert employees.
Much more Programs:
Auto simulator ,garage doorway opener ,gate operator, packing barrier,wheelchair ,electric vehicle ,drinking water pump ,oil pump,stitching machine,vending device, blender machine,welding machine,floor polisher,truck raise,stair raise,healthcare facility bed ,hydraulic pump electrical forklift.
RFQ:
Q: Are you buying and selling firm or producer ?
A: We are Integration of sector and trade, with in excess of 20 several years encounter in DC CZPT motor. Our business have amassed experienced manufacturing line, complete administration and CZPT ful research help, which could match all of the CZPT ers’ specifications and make them gratification.
Q: What is your major product?
–DC CZPT : Gear motor, Square motor, Stepped motor, and Micro motor
-Welding tools: Wire feeder, Welding rod, Welding Torch, Earth clamp, CZPT ctrode holder, and Rectifier
Q: What if I do not know which DC motor I want?
A: Never fear, Ship as much information as you can, CZPT group will assist you uncover the appropriate 1 you are hunting for.
Q: What is your phrases of payment ?
A: Payment=1000USD, 30% T/T in CZPT ,equilibrium ahead of shippment.
If you have another concern, pls feel cost-free to speak to us as below:
Q: How to shipping and delivery:
A: By sea – Consumer appoint forwarder, or CZPT revenue group discover appropriate forwarder for purchasers.
By air – Purchaser supply gather convey account, or CZPT revenue team locate suitable specific for purchasers. (Mainly for sample)
Other individuals – Actually,samples ship by DHL,UPS, TNT and Fedex etc. We set up to shipping and delivery goods to some location from CZPT appointed by customers.
Q: How CZPT is your delivery time?
A: Generally it is 5-10 days if the merchandise are in stock. or it is 15-20 days if the merchandise are not in stock, it is according to quantity.
The expression “gearbox” is employed to refer to any gadget that connects a motor to a machine and is made up of a collection of gears, also known as a equipment set. It receives the principal input velocity from the motor and alterations it to a various output pace employing its gears. Distinct kinds and combinations of gears provide certain functions. The types of gears found in gearboxes contain spur gears, bevel gears, helical gears, helical gears and worm gears. The efficiency performance of a gearbox is represented by the gearbox ratio, which is the ratio of the pace of the enter source to the pace of the output resource