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 |
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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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Are there innovations or emerging technologies in the field of gear motor design?
Yes, there are several innovations and emerging technologies in the field of gear motor design. These advancements aim to improve the performance, efficiency, compactness, and reliability of gear motors. Here are some notable innovations and emerging technologies in gear motor design:
1. Miniaturization and Compact Design:
Advancements in manufacturing techniques and materials have enabled the miniaturization of gear motors without compromising their performance. Gear motors with compact designs are highly sought after in applications where space is limited, such as robotics, medical devices, and consumer electronics. Innovative approaches like micro-gear motors and integrated motor-gear units are being developed to achieve smaller form factors while maintaining high torque and efficiency.
2. High-Efficiency Gearing:
New gear designs focus on improving efficiency by reducing friction and mechanical losses. Advanced gear manufacturing techniques, such as precision machining and 3D printing, allow for the creation of intricate gear tooth profiles that optimize power transmission and minimize losses. Additionally, the use of high-performance materials, coatings, and lubricants helps reduce friction and wear, improving overall gear motor efficiency.
3. Magnetic Gearing:
Magnetic gearing is an emerging technology that replaces traditional mechanical gears with magnetic fields to transmit torque. It utilizes the interaction of permanent magnets to transfer power, eliminating the need for physical gear meshing. Magnetic gearing offers advantages such as high efficiency, low noise, compactness, and maintenance-free operation. While still being developed and refined, magnetic gearing holds promise for various applications, including gear motors.
4. Integrated Electronics and Controls:
Gear motor designs are incorporating integrated electronics and controls to enhance performance and functionality. Integrated motor drives and controllers simplify system integration, reduce wiring complexity, and allow for advanced control features. These integrated solutions offer precise speed and torque control, intelligent feedback mechanisms, and connectivity options for seamless integration into automation systems and IoT (Internet of Things) platforms.
5. Smart and Condition Monitoring Capabilities:
New gear motor designs incorporate smart features and condition monitoring capabilities to enable predictive maintenance and optimize performance. Integrated sensors and monitoring systems can detect abnormal operating conditions, track performance parameters, and provide real-time feedback for proactive maintenance and troubleshooting. This helps prevent unexpected failures, extend the lifespan of gear motors, and improve overall system reliability.
6. Energy-Efficient Motor Technologies:
Gear motor design is influenced by advancements in energy-efficient motor technologies. Brushless DC (BLDC) motors and synchronous reluctance motors (SynRM) are gaining popularity due to their higher efficiency, better power density, and improved controllability compared to traditional brushed DC and induction motors. These motor technologies, when combined with optimized gear designs, contribute to overall system energy savings and performance improvements.
These are just a few examples of the innovations and emerging technologies in gear motor design. The field is continuously evolving, driven by the need for more efficient, compact, and reliable motion control solutions in various industries. Gear motor manufacturers and researchers are actively exploring new materials, manufacturing techniques, control strategies, and system integration approaches to meet the evolving demands of modern applications.
How do gear motors compare to other types of motors in terms of power and efficiency?
Gear motors can be compared to other types of motors in terms of power output and efficiency. The choice of motor type depends on the specific application requirements, including the desired power level, efficiency, speed range, torque characteristics, and control capabilities. Here’s a detailed explanation of how gear motors compare to other types of motors in terms of power and efficiency:
1. Gear Motors:
Gear motors combine a motor with a gear mechanism to deliver increased torque output and improved control. The gear reduction enables gear motors to provide higher torque while reducing the output speed. This makes gear motors suitable for applications that require high torque, precise positioning, and controlled movements. However, the gear reduction process introduces mechanical losses, which can slightly reduce the overall efficiency of the system compared to direct-drive motors. The efficiency of gear motors can vary depending on factors such as gear quality, lubrication, and maintenance.
2. Direct-Drive Motors:
Direct-drive motors, also known as gearless or integrated motors, do not use a gear mechanism. They provide a direct connection between the motor and the load, eliminating the need for gear reduction. Direct-drive motors offer advantages such as high efficiency, low maintenance, and compact design. Since there are no gears involved, direct-drive motors experience fewer mechanical losses and can achieve higher overall efficiency compared to gear motors. However, direct-drive motors may have limitations in terms of torque output and speed range, and they may require more complex control systems to achieve precise positioning.
3. Stepper Motors:
Stepper motors are a type of gear motor that excels in precise positioning applications. They operate by converting electrical pulses into incremental steps of movement. Stepper motors offer excellent positional accuracy and control. They are capable of precise positioning and can hold a position without power. Stepper motors have relatively high torque at low speeds, making them suitable for applications that require precise control and positioning, such as robotics, 3D printers, and CNC machines. However, stepper motors may have lower overall efficiency compared to direct-drive motors due to the additional power required to overcome the detents between steps.
4. Servo Motors:
Servo motors are another type of gear motor known for their high torque, high speed, and excellent positional accuracy. Servo motors combine a motor, a feedback device (such as an encoder), and a closed-loop control system. They offer precise control over position, speed, and torque. Servo motors are widely used in applications that require accurate and responsive positioning, such as industrial automation, robotics, and camera pan-tilt systems. Servo motors can achieve high efficiency when properly optimized and controlled but may have slightly lower efficiency compared to direct-drive motors due to the additional complexity of the control system.
5. Efficiency Considerations:
When comparing power and efficiency among different motor types, it’s important to consider the specific requirements and operating conditions of the application. Factors such as load characteristics, speed range, duty cycle, and control requirements influence the overall efficiency of the motor system. While direct-drive motors generally offer higher efficiency due to the absence of mechanical losses from gears, gear motors can deliver higher torque output and enhanced control capabilities. The efficiency of gear motors can be optimized through proper gear selection, lubrication, and maintenance practices.
In summary, gear motors offer increased torque and improved control compared to direct-drive motors. However, gear reduction introduces mechanical losses that can slightly impact the overall efficiency of the system. Direct-drive motors, on the other hand, provide high efficiency and compact design but may have limitations in terms of torque and speed range. Stepper motors and servo motors, both types of gear motors, excel in precise positioning applications but may have slightly lower efficiency compared to direct-drive motors. The selection of the most suitable motor type depends on the specific requirements of the application, balancing power, efficiency, speed range, and control capabilities.
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 2024-04-04
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