Product Description
Permanent Magnet TYD49 3.5rpm/5rpm/30rpm Synchronous Motor
Application:
main as the power of electric fan, warmer, lamps and lanterns, antenna, instrument, flow frame, and the light-picture.
Specifications
Note:
If this model is not what you want, please freely tell us about your requirement. We will provide you with a suitable motor solution and price soon.
Dimension Drawings
Product Pictures
Packing & Delivery
Certifications
Company Overview
Greensky Power Company Limited is a China based international company who is specialized in electric motor, gearbox and controlling system developing, manufacturing, quality controlling and trading.
Mission:We are dedicated to develop an international electric motor company who can deliver one-stop reliable products with customer-oriented service.
History:Greensky was established in 2571 by CHINAMFG Cheng in Los Angeles, USA and moved to HangZhou, China in 2011. In the past years, the team of CHINAMFG continues to create the value to our esteemed customers all over the world by building up wide and reliable supply chain management system, effective quality & delivery time control system, cost efficiency manufacturing system and fast-respond professional service.
Exhibitions
FAQ
1 Q: What’s your MOQ for the gear motor?
A: 1unit is ok for sample testing
2 Q: What about your warranty for your gear motor?
A: One year.
3 Q: Do you provide OEM service with customer-logo?
A: Yes, we could do OEM orders, but we mainly focus on our own brand.
4 Q: How about your payment terms ?
A: TT, western union and paypal. 100% payment in advanced for orders less $5,000. 30% deposit and balance before delivery for
orders over $5,000.
5 Q: How about your packing ?
A: Carton, Plywood case. If you need more, we can pack all goods with pallet
6 Q: What information should be given, if I buy gear motor from you?
A: Rated power, gearbox ratio, input speed, mounting position. More details, better!
7 Q: How do you deliver the gear motor?
A: We will compare and choose the most suitable ways of delivery by sea, air or express courier.
We hope you will enjoy cooperating with us.
/* January 22, 2571 19:08:37 */!function(){function s(e,r){var a,o={};try{e&&e.split(“,”).forEach(function(e,t){e&&(a=e.match(/(.*?):(.*)$/))&&1
Application: | Household Appliances |
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Speed: | Constant Speed |
Number of Stator: | Single-Phase |
Function: | Driving |
Casing Protection: | Protection Type |
Number of Poles: | 4 |
Samples: |
US$ 100/Piece
1 Piece(Min.Order) | |
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Customization: |
Available
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Are gear motors suitable for both heavy-duty industrial applications and smaller-scale uses?
Yes, gear motors are suitable for both heavy-duty industrial applications and smaller-scale uses. Their versatility and ability to provide torque multiplication make them valuable in a wide range of applications. Here’s a detailed explanation of why gear motors are suitable for both types of applications:
1. Heavy-Duty Industrial Applications:
Gear motors are commonly used in heavy-duty industrial applications due to their robustness and ability to handle high loads. Here are the reasons why they are suitable for such applications:
- Torque Multiplication: Gear motors are designed to provide high torque output, making them ideal for applications that require substantial force to move or operate heavy machinery, conveyors, or equipment.
- Load Handling: Industrial settings often involve heavy loads and demanding operating conditions. Gear motors, with their ability to handle high loads, are well-suited for tasks such as lifting, pulling, pushing, or driving heavy materials or equipment.
- Durability: Heavy-duty industrial applications require components that can withstand harsh environments, frequent use, and demanding operating conditions. Gear motors are typically constructed with durable materials and designed to withstand heavy vibrations, shock loads, and temperature variations.
- Speed Reduction: Many industrial processes require the reduction of motor speed to achieve the desired output speed. Gear motors offer precise speed reduction capabilities through gear ratios, allowing for optimal control and operation of machinery and equipment.
2. Smaller-Scale Uses:
While gear motors excel in heavy-duty industrial applications, they are also suitable for smaller-scale uses across various industries and applications. Here’s why gear motors are well-suited for smaller-scale uses:
- Compact Size: Gear motors are available in compact sizes, making them suitable for applications with limited space or small-scale machinery, devices, or appliances.
- Torque and Power Control: Even in smaller-scale applications, there may be a need for torque multiplication or precise power control. Gear motors can provide the necessary torque and power output for tasks such as precise positioning, controlling speed, or driving small loads.
- Versatility: Gear motors come in various configurations, such as parallel shaft, planetary, or worm gear designs, offering flexibility to match specific requirements. They can be adapted to different applications, including robotics, medical devices, automotive systems, home automation, and more.
- Efficiency: Gear motors are designed to be efficient, converting the electrical input power into mechanical output power with minimal losses. This efficiency is advantageous for smaller-scale applications where energy conservation and battery life are critical.
Overall, gear motors are highly versatile and suitable for both heavy-duty industrial applications and smaller-scale uses. Their ability to provide torque multiplication, handle high loads, offer precise speed control, and accommodate various sizes and configurations makes them a reliable choice in a wide range of applications. Whether it’s powering large industrial machinery or driving small-scale automation systems, gear motors provide the necessary torque, control, and durability required for efficient operation.
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.
Are there specific considerations for selecting the right gear motor for a particular application?
When selecting a gear motor for a specific application, several considerations need to be taken into account. The choice of the right gear motor is crucial to ensure optimal performance, efficiency, and reliability. Here’s a detailed explanation of the specific considerations for selecting the right gear motor for a particular application:
1. Torque Requirement:
The torque requirement of the application is a critical factor in gear motor selection. Determine the maximum torque that the gear motor needs to deliver to perform the required tasks. Consider both the starting torque (the torque required to initiate motion) and the operating torque (the torque required to sustain motion). Select a gear motor that can provide adequate torque to handle the load requirements of the application. It’s important to account for any potential torque spikes or variations during operation.
2. Speed Requirement:
Consider the desired speed range or specific speed requirements of the application. Determine the rotational speed (in RPM) that the gear motor needs to achieve to meet the application’s performance criteria. Select a gear motor with a suitable gear ratio that can achieve the desired speed at the output shaft. Ensure that the gear motor can maintain the required speed consistently and accurately throughout the operation.
3. Duty Cycle:
Evaluate the duty cycle of the application, which refers to the ratio of operating time to rest or idle time. Consider whether the application requires continuous operation or intermittent operation. Determine the duty cycle’s impact on the gear motor, including factors such as heat generation, cooling requirements, and potential wear and tear. Select a gear motor that is designed to handle the expected duty cycle and ensure long-term reliability and durability.
4. Environmental Factors:
Take into account the environmental conditions in which the gear motor will operate. Consider factors such as temperature extremes, humidity, dust, vibrations, and exposure to chemicals or corrosive substances. Choose a gear motor that is specifically designed to withstand and perform optimally under the anticipated environmental conditions. This may involve selecting gear motors with appropriate sealing, protective coatings, or materials that can resist corrosion and withstand harsh environments.
5. Efficiency and Power Requirements:
Consider the desired efficiency and power consumption of the gear motor. Evaluate the power supply available for the application and select a gear motor that operates within the specified voltage and current ranges. Assess the gear motor’s efficiency to ensure that it maximizes power transmission and minimizes wasted energy. Choosing an efficient gear motor can contribute to cost savings and reduced environmental impact.
6. Physical Constraints:
Assess the physical constraints of the application, including space limitations, mounting options, and integration requirements. Consider the size, dimensions, and weight of the gear motor to ensure it can be accommodated within the available space. Evaluate the mounting options and compatibility with the application’s mechanical structure. Additionally, consider any specific integration requirements, such as shaft dimensions, connectors, or interfaces that need to align with the application’s design.
7. Noise and Vibration:
Depending on the application, noise and vibration levels may be critical factors. Evaluate the acceptable noise and vibration levels for the application’s environment and operation. Choose a gear motor that is designed to minimize noise and vibration, such as those with helical gears or precision engineering. This is particularly important in applications that require quiet operation or where excessive noise and vibration may cause issues or discomfort.
By considering these specific factors when selecting a gear motor for a particular application, you can ensure that the chosen gear motor meets the performance requirements, operates efficiently, and provides reliable and consistent power transmission. It’s important to consult with gear motor manufacturers or experts to determine the most suitable gear motor based on the specific application’s needs.
editor by CX 2024-05-07
China Standard Long Life CE Tyj49 AC Gear Synchronous Motor for Microwave Oven/Fan with high quality
Product Description
Long life Ce Tyj49 AC Gear Synchronous Motor for Microwave Oven/Fan
Specifications:
-Output Speed: 1.04-75RPM
-Voltage: 24-220VAC
-Current: 0.571-0.2A
-Frequency: 50/60Hz
-Input Power: 2.5-7W
-Noise: <45dB
-Rotation: CW/CCW Bi-directional
Drawing:
Specification:
Model | Output speed (rpm) | Output Torque (kg.cm / lb.in) | Voltage (V.AC) | Current (A) | Frequency (Hz) | Input Power (W) | Noise (dB) | Rotation | ||
S1 continuous | S2 15 minutes | S2 5 minutes | ||||||||
S493-45-1.0 | 1.04 | 45 / 39 | 60 / 52.2 | 70 / 60.9 | 24 ********* 110 ********* 220 | <0.2 ********** <0.05 ********* <0.571 |
50/60Hz | 2.5~7 | <45 | CW / CCW / Bi-directional |
S493-30-1.5 | 1.50 | 30 / 26 | 40 / 34.8 | 46 / 40 | ||||||
S493-22-2.0 | 2 | 22 / 19 | 30 / 26 | 35 / 30.5 | ||||||
S493-18-2.5 | 2.5 | 18 / 15.7 | 24 / 20.9 | 28 / 24.4 | ||||||
S493-11-4.0 | 4 | 11 / 9.6 | 15 / 13 | 17.5 / 15.2 | ||||||
S493-09-4.8 | 4.8 | 9.4 / 8.2 | 12.5 / 10.9 | 14.5 / 12.6 | ||||||
S493-09-5.0 | 5 | 9 / 7.8 | 12 / 10.4 | 14 / 12.2 | ||||||
S493-08-5.8 | 5.8 | 7.6 / 6.6 | 10 / 8.7 | 12 / 10.4 | ||||||
S493-05-9.0 | 9 | 5 / 4.35 | 6.5 / 5.7 | 7.8 / 6.8 | ||||||
S493-03-15 | 15 | 3 / 2.6 | 4 / 3.5 | 4.6 / 4 | ||||||
S493-02-25 | 25 | 1.8 / 1.57 | 2.4 / 2.1 | 2.8 / 2.43 | ||||||
S493-02-30 | 30 | 1.5 / 1.3 | 2 / 1.74 | 2.3 / 2 | ||||||
S493-01-45 | 45 | 1 / 0.87 | 1.3 / 1.13 | 1.5 / 1.3 | ||||||
S493-01-60 | 60 | 0.75 | 1 / 0.87 | 1.2 / 1.04 | ||||||
S493-01-75 | 75 | 0.6 | 0.8 / 0.7 | 1.0 / 0.87 | ||||||
Note: Above datas are from motors under 50Hz. If under 60Hz, Speed*1.2 , Torque/1.2 Other speed and torque needed, please contact our sale department |
About Us:
I.CH concentrates on designing the latest technology motors and meet our customer’s requirements, we have the very capable R&D team to ensure products quality and provide all the customers with the best solution, the products like AC Synchronous Motor, Geared Motor, Reversible Synchronous Motor, which uses in household appliance, Auto Control Machine, etc.
Certificate:
Package:
-Rigidly wrap the goods;
-Shipping way: Sea, air or train;
-Lead time: 15 – 40 working days.
Related Products:
FAQ:
Q: What lowest speed can you make?
A: 1 rpm to 2rpm…
Q: What application of your AC reversible synchronous motor?
A: household appliances, Auto Control Machine, etc.
Q: If I place an order, how long will you ship out the goods?
A: For the sample order, it takes approximately 2 weeks; for the batch order, the lead time will be around 40 days.
Q: Do you provide OEM services?
A: Yes, we can provide OEM services for volume production. Feel free to talk to us about your branding needs. /* 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(/(.*?):(.*)$/))&&1
Size: | 49mm |
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Voltage: | 24-220VAC |
Current: | 0.023-0.2A |
Frequency: | 50/60Hz |
Input Power: | 2.5-7W |
Noise: | 45dB |
Samples: |
US$ 15/Piece
1 Piece(Min.Order) | |
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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.
Are there environmental benefits to using gear motors in certain applications?
Yes, there are several environmental benefits associated with the use of gear motors in certain applications. Gear motors offer advantages that can contribute to increased energy efficiency, reduced resource consumption, and lower environmental impact. Here’s a detailed explanation of the environmental benefits of using gear motors:
1. Energy Efficiency:
Gear motors can improve energy efficiency in various ways:
- Torque Conversion: Gear reduction allows gear motors to deliver higher torque output while operating at lower speeds. This enables the motor to perform tasks that require high torque, such as lifting heavy loads or driving machinery with high inertia, more efficiently. By matching the motor’s power characteristics to the load requirements, gear motors can operate closer to their peak efficiency, minimizing energy waste.
- Controlled Speed: Gear reduction provides finer control over the motor’s rotational speed. This allows for more precise speed regulation, reducing the likelihood of energy overconsumption and optimizing energy usage.
2. Reduced Resource Consumption:
The use of gear motors can lead to reduced resource consumption and environmental impact:
- Smaller Motor Size: Gear reduction allows gear motors to deliver higher torque with smaller, more compact motors. This reduction in motor size translates to reduced material and resource requirements during manufacturing. It also enables the use of smaller and lighter equipment, which can contribute to energy savings during operation and transportation.
- Extended Motor Lifespan: The gear mechanism in gear motors helps reduce the load and stress on the motor itself. By distributing the load more evenly, gear motors can help extend the lifespan of the motor, reducing the need for frequent replacements and the associated resource consumption.
3. Noise Reduction:
Gear motors can contribute to a quieter and more environmentally friendly working environment:
- Noise Dampening: Gear reduction can help reduce the noise generated by the motor. The gear mechanism acts as a noise dampener, absorbing and dispersing vibrations and reducing overall noise emission. This is particularly beneficial in applications where noise reduction is important, such as residential areas, offices, or noise-sensitive environments.
4. Precision and Control:
Gear motors offer enhanced precision and control, which can lead to environmental benefits:
- Precise Positioning: Gear motors, especially stepper motors and servo motors, provide precise positioning capabilities. This accuracy allows for more efficient use of resources, minimizing waste and optimizing the performance of machinery or systems.
- Optimized Control: Gear motors enable precise control over speed, torque, and movement. This control allows for better optimization of processes, reducing energy consumption and minimizing unnecessary wear and tear on equipment.
In summary, using gear motors in certain applications can have significant environmental benefits. Gear motors offer improved energy efficiency, reduced resource consumption, noise reduction, and enhanced precision and control. These advantages contribute to lower energy consumption, reduced environmental impact, and a more sustainable approach to power transmission and control. When selecting motor systems for specific applications, considering the environmental benefits of gear motors can help promote energy efficiency and sustainability.
Are there specific considerations for selecting the right gear motor for a particular application?
When selecting a gear motor for a specific application, several considerations need to be taken into account. The choice of the right gear motor is crucial to ensure optimal performance, efficiency, and reliability. Here’s a detailed explanation of the specific considerations for selecting the right gear motor for a particular application:
1. Torque Requirement:
The torque requirement of the application is a critical factor in gear motor selection. Determine the maximum torque that the gear motor needs to deliver to perform the required tasks. Consider both the starting torque (the torque required to initiate motion) and the operating torque (the torque required to sustain motion). Select a gear motor that can provide adequate torque to handle the load requirements of the application. It’s important to account for any potential torque spikes or variations during operation.
2. Speed Requirement:
Consider the desired speed range or specific speed requirements of the application. Determine the rotational speed (in RPM) that the gear motor needs to achieve to meet the application’s performance criteria. Select a gear motor with a suitable gear ratio that can achieve the desired speed at the output shaft. Ensure that the gear motor can maintain the required speed consistently and accurately throughout the operation.
3. Duty Cycle:
Evaluate the duty cycle of the application, which refers to the ratio of operating time to rest or idle time. Consider whether the application requires continuous operation or intermittent operation. Determine the duty cycle’s impact on the gear motor, including factors such as heat generation, cooling requirements, and potential wear and tear. Select a gear motor that is designed to handle the expected duty cycle and ensure long-term reliability and durability.
4. Environmental Factors:
Take into account the environmental conditions in which the gear motor will operate. Consider factors such as temperature extremes, humidity, dust, vibrations, and exposure to chemicals or corrosive substances. Choose a gear motor that is specifically designed to withstand and perform optimally under the anticipated environmental conditions. This may involve selecting gear motors with appropriate sealing, protective coatings, or materials that can resist corrosion and withstand harsh environments.
5. Efficiency and Power Requirements:
Consider the desired efficiency and power consumption of the gear motor. Evaluate the power supply available for the application and select a gear motor that operates within the specified voltage and current ranges. Assess the gear motor’s efficiency to ensure that it maximizes power transmission and minimizes wasted energy. Choosing an efficient gear motor can contribute to cost savings and reduced environmental impact.
6. Physical Constraints:
Assess the physical constraints of the application, including space limitations, mounting options, and integration requirements. Consider the size, dimensions, and weight of the gear motor to ensure it can be accommodated within the available space. Evaluate the mounting options and compatibility with the application’s mechanical structure. Additionally, consider any specific integration requirements, such as shaft dimensions, connectors, or interfaces that need to align with the application’s design.
7. Noise and Vibration:
Depending on the application, noise and vibration levels may be critical factors. Evaluate the acceptable noise and vibration levels for the application’s environment and operation. Choose a gear motor that is designed to minimize noise and vibration, such as those with helical gears or precision engineering. This is particularly important in applications that require quiet operation or where excessive noise and vibration may cause issues or discomfort.
By considering these specific factors when selecting a gear motor for a particular application, you can ensure that the chosen gear motor meets the performance requirements, operates efficiently, and provides reliable and consistent power transmission. It’s important to consult with gear motor manufacturers or experts to determine the most suitable gear motor based on the specific application’s needs.
editor by CX 2024-03-28
in Depok Indonesia sales price shop near me near me shop factory supplier 2 2.5rpm Tdy 50 Synchronous AC Gear Motor for Oven manufacturer best Cost Custom Cheap wholesaler
EPG was awarded with “renowned item of Zhejiang Province” and “famous model of Zhejiang Province”. In 2008, it was awarded with “Countrywide Export Commodity Inspection-totally free Company”. we provide chromed bar and tubes for hydualic and pheumatic cylinders. micro gear Motor for swing admirer/oven
1. Stator dimensions is optional
2. Safe, reputable, minimal sound, excellent starting up, EPT daily life
3. Strong EPT
Rated voltage 110~120V/220~240V-fifty/60Hz
Normal utilised: Exhaust enthusiast, air purifier, micro-oven, fan, induction cooker, fridge, pump, heater, hood oven, blwer, air conditioner, Heater EPTs, dehumidifiers
Thermal protector with one shot fuse or multi shot fuse
50SM40 | |||||||||||||||||||
Software:-House Appliance | |||||||||||||||||||
– Roaster | |||||||||||||||||||
-Electrical Andiron | |||||||||||||||||||
– Keep track of Products | |||||||||||||||||||
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Rated Voltage | Rated Frequency | Speed | No-load Present | No-load EPT | Output Torque | Beginning Voltage | Temperatuer | |||||||||||
(V) | (Hz) | (RPM) | (mA) | (W) | (kgf.cm) | (V) | Rising | ||||||||||||
(K) | |||||||||||||||||||
50SM40 | 24 | 15 | 15 | le250 | le7 | ge2 | le20 | le75 | |||||||||||
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24 | 20 | twenty | le250 | le7 | ge1.five | le20 | le75 | |||||||||||
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one hundred ten/one hundred twenty | fifty/sixty | eleven.five/13.eight | le60 | le7 | ge7 | le96 | le75 | |||||||||||
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one hundred ten/a hundred and twenty | fifty/sixty | eleven.7/fourteen | le60 | le7 | ge6 | le96 | le75 | |||||||||||
50SM40 | one hundred ten/one hundred twenty | fifty/60 | fifty six | le35 | le7 | ge8 | le96 | le75 | |||||||||||
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220/240 | fifty/60 | fifty six | le35 | le7 | ge8 | le176 | le75 | |||||||||||
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220/240 | 50/60 | 33.3/forty | le35 | le7 | ge2.five | le176 | le75 | |||||||||||
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220/240 | 50/sixty | 11.5/13.8 | le35 | le7 | ge8 | le176 | le75 | |||||||||||
50SM40 | 220/240 | fifty/sixty | eleven.7/fourteen | le35 | le7 | ge6 | le176 | le75 | |||||||||||
AEPTOUT US
Ritscher team was established up in 2006.we alwaEPTfocus on micro-motors for EPT electrical equipment and sector equipment since placing up.at the moment we have two expert micro-motor factories in EPT which severally found in HangZhou town and HangZhou city.it has an location of 25,000 square meters EPTs and much more than 300 employees, yearly output is three million pcs and has five million pcs once-a-year producing potential.right after numerous several years deveXiHu (West Lake) Dis.Hu (West Lake) Dis.ment,we had created a great popularity in the market and received more and a lot more customers’ EPT in the world.
We started out from shaded pole motors at commencing, up to now,our merchandise incEPTd of shaded pole motors,synchronous motors,stepping motors ,capacitor motors, EPTLDC motors, DC motors and compressors. Our product are commonly used for making fridges, freezers, micro-wave ovens, air warmers, air exhausters, ventilators,ovens, air filter, therapeutic massage EPTs and many other equipments.
As a realiable top quality guaranty,Ritscher has full R ampD departement,QC office,generating division,acquire department and so forth. has perfect generating products like Aluminum diecasting, Zinc diecasting, Sheet metallic stamping, Plastic injection molding and many others. also examination/ detection gadget like multiplex temp measuring gadget, functionality parameter inspection unit, Phenol peptide answer pinhole tester,Anechoic space and so on.
Endeavoring to supply the ideal product and provider to buyers,we alwaEPTdo the most work to become an outstXiHu (West Lake) Dis.Hu (West Lake) Dis. maker of micro motors.
Ritscher is alwaEPTwilling to set up sincere enterprise romantic relationship with friends from all over the globe.
Welcome make contact with with us!
EPTke ritscher ,enEPT contemporary life!
Our organization FAQ for you
(1) Q: What type motors you can give?
A:For now,we mainly give Kitchen Hood Motor,DC Motor,Gear Motor,Fan Motor Refrigerator Motor,Hair Dryer Motor EPTlenEPTMotor Mixer Motor,
Shade Pole Motor,Capacitor Motor,EPTLDC Motor PMDC Motor,Synchronous Motor,Stepping Motor and so on.
(two) Q: Is it achievable to visit your manufacturing unit
A: Confident. EPTut you should kindly hold us posted a handful of daEPTEPT. We need to have to check our
plan to see if we are obtainable then.
(three) Q: Can I get some samples
A: It relies upon. If only a handful of samples for individual use or substitute, I am scared it will
be challenging for us to supply, due to the fact all of our motors are EPT and no stock
obtainable if there is no even more wants. If just sample tests just before the formal orEPTand
our MOQ, price and other phrases are suitable, we would love to supply samples.
(four) Q: Is there a MOQ for your motors?
A: Of course. The MOQ is in between a thousand~10,000pcs for diverse versions soon after sample approval.
EPTut it truly is also alright for us to take smaller heaps like a number of dozens, hundreds or 1000’s
For the initial 3 orders after sample approval.For samples, there is no MOQ prerequisite. EPTut the significantly less the far better (like no much more than 5pcs) on condition that the amount is sufficient in scenario any change