Product Description
High Power 70ZYT DC Right Angle Gear Motors
DC Motor Specification
Model | Torque (mN.m) |
Speed (r/min) |
Power (W) |
Voltage (V) |
Max Current (A) |
CW/CWW Speed Difference (r/min) |
70ZYT01 | 159.2 | 3000 | 50 | 24 | 3.2 | 200 |
70ZYT02 | 159.2 | 3000 | 50 | 27 | 2.9 | 200 |
70ZYT03 | 159.2 | 3000 | 50 | 48 | 1.5 | 200 |
70ZYT04 | 159.2 | 3000 | 50 | 110 | 0.7 | 200 |
70ZYT05 | 135.4 | 6000 | 85 | 24 | 5.2 | 300 |
70ZYT06 | 135.4 | 6000 | 85 | 27 | 4.8 | 300 |
70ZYT07 | 135.4 | 6000 | 85 | 48 | 2.6 | 300 |
70ZYT08 | 135.4 | 6000 | 85 | 110 | 1.1 | 300 |
70ZYT16 | 191 | 2000 | 40 | 24 | 2.3 | 100 |
70ZYT21 | 95.5 | 3000 | 50 | 220 | 0.2 | 200 |
70ZYT51 | 223 | 3000 | 70 | 24 | 4.3 | 200 |
70ZYT52 | 223 | 3000 | 70 | 27 | 3.8 | 200 |
70ZYT53 | 223 | 3000 | 70 | 48 | 2.2 | 200 |
70ZYT54 | 223 | 3000 | 70 | 110 | 0.95 | 200 |
70ZYT55 | 191.1 | 6000 | 120 | 24 | 7.5 | 300 |
70ZYT56 | 191.1 | 6000 | 120 | 27 | 6.6 | 300 |
70ZYT57 | 191.1 | 6000 | 120 | 48 | 3.8 | 300 |
70ZYT58 | 191.1 | 6000 | 120 | 110 | 1.6 | 300 |
70ZYT59 | 166.6 | 7500-9500 | 148 | 110 | 1.95 | 400 |
70ZYT60 | 238.8 | 4000 | 100 | 110 | 1.3 | 200 |
70ZYT80 | 223 | 3000 | 70 | 80 | 1.2 | 200 |
Worm Gearbox Specification
NMRV | PAM | N | M | P | D | |||||||||||
IEC | 5 | 7.5 | 10 | 15 | 20 | 25 | 30 | 40 | 50 | 60 | 80 | 100 | ||||
571 | 56B14 | 50 | 65 | 80 | 9 | 9 | 9 | 9 | 9 | – | 9 | 9 | 9 | 9 | – | – |
030 | 63B5 | 95 | 115 | 140 | 11 | 11 | 11 | 11 | 11 | 11 | 11 | 11 | 11 | – | – | – |
63B14 | 60 | 75 | 90 | |||||||||||||
56B5 | 80 | 100 | 120 | 9 | 9 | 9 | 9 | 9 | 9 | 9 | 9 | 9 | 9 | 9 | – | |
56B14 | 50 | 65 | 80 | |||||||||||||
040 | 71B5 | 110 | 130 | 160 | 14 | 14 | 14 | 14 | 14 | 14 | 14 | 14 | – | – | – | – |
71B14 | 70 | 85 | 105 | |||||||||||||
63B5 | 95 | 115 | 140 | 11 | 11 | 11 | 11 | 11 | 11 | 11 | 11 | 11 | 11 | 11 | 11 | |
63B14 | 60 | 75 | 90 | |||||||||||||
56B5 | 80 | 100 | 120 | – | – | – | – | – | – | – | – | 9 | 9 | 9 | ||
050 | 80B5 | 130 | 165 | 200 | 19 | 19 | 19 | 19 | 19 | 19 | 19 | – | – | – | – | – |
80B14 | 80 | 100 | 120 | |||||||||||||
71B5 | 110 | 130 | 160 | 14 | 14 | 14 | 14 | 14 | 14 | 14 | 14 | 14 | 14 | 14 | – | |
71B14 | 70 | 85 | 105 | |||||||||||||
63B5 | 95 | 115 | 140 | – | – | – | – | – | – | – | 11 | 11 | 11 | 11 | 11 | |
063 | 90B5 | 130 | 165 | 200 | – | 24 | 24 | 24 | 24 | 24 | 24 | – | – | – | – | – |
90B14 | 95 | 115 | 140 | |||||||||||||
80B5 | 130 | 165 | 200 | – | 19 | 19 | 19 | 19 | 19 | 19 | 19 | 19 | 19 | – | – | |
80B14 | 80 | 100 | 120 | |||||||||||||
71B5 | 110 | 130 | 160 | – | – | – | – | – | – | – | 14 | 14 | 14 | 14 | 14 | |
71B14 | 70 | 85 | 105 | |||||||||||||
075 | 100/112B5 | 180 | 215 | 250 | – | 28 | 28 | 28 | – | – | – | – | – | – | – | – |
100/112B14 | 110 | 130 | 160 | |||||||||||||
90B5 | 130 | 165 | 200 | – | 24 | 24 | 24 | 24 | 24 | 24 | 24 | – | – | – | – | |
90B14 | 95 | 115 | 140 | |||||||||||||
80B5 | 130 | 165 | 200 | – | – | – | – | 19 | 19 | 19 | 19 | 19 | 19 | 19 | 19 | |
80B14 | 80 | 100 | 120 | |||||||||||||
71B5 | 110 | 130 | 160 | – | – | – | – | – | – | – | – | 14 | 14 | 14 | 14 |
Note:
We only show several motor models, if these models are not what you want, please freely tell us about your requirement. We will provide you with a suitable motor solution and price soon.
FAQ
1 Q: What’s your MOQ for gear motor and gearbox?
A: 1 unit is OK for different types.
2 Q: What about your warranty for your gear motor and gearbox?
A: One year.
3 Q: Do you provide OEM service with customer-logo?
A: Yes, we could do OEM orders.
4 Q: How about your payment terms ?
A: T/T, western union and paypal. 100% payment in advanced for orders less $10,000. 50% deposit and balance before delivery for orders over $10,000.
5 Q: How about your packing ?
A: Carton, plywood case and pallet
6 Q: What information should be given, if I buy gear motor and gearbox from you ?
A: Rated power, gearbox ratio, input speed, mounting position. More details, better!
7 Q: How do you deliver the gear motor and gearbox?
A: We will compare and choose the most suitable ways of delivery by sea, air or express courier after customer’s confirmation.
We hope you enjoy cooperating with us!
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Application: | Motor, Machinery, Marine, Toy, Agricultural Machinery, Industrial |
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Installation: | Full Ranges |
Layout: | Coaxial |
Gear Shape: | Conical – Cylindrical Gear |
Step: | Three-Step |
Type: | Worm Reducer |
Samples: |
US$ 20/Piece
1 Piece(Min.Order) | |
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Customization: |
Available
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What are the maintenance requirements for gear motors, and how can longevity be maximized?
Gear motors, like any mechanical system, require regular maintenance to ensure optimal performance and longevity. Proper maintenance practices help prevent failures, minimize downtime, and extend the lifespan of gear motors. Here are some maintenance requirements for gear motors and ways to maximize their longevity:
1. Lubrication:
Regular lubrication is essential for gear motors to reduce friction, wear, and heat generation. The gears, bearings, and other moving parts should be properly lubricated according to the manufacturer’s recommendations. Lubricants should be selected based on the motor’s specifications and operating conditions. Regular inspection and replenishment of lubricants, as well as periodic oil or grease changes, should be performed to maintain optimal lubrication levels and ensure long-lasting performance.
2. Inspection and Cleaning:
Regular inspection and cleaning of gear motors are crucial for identifying any signs of wear, damage, or contamination. Inspecting the gears, bearings, shafts, and connections can help detect any abnormalities or misalignments. Cleaning the motor’s exterior and ventilation channels to remove dust, debris, or moisture buildup is also important in preventing malfunctions and maintaining proper cooling. Any loose or damaged components should be repaired or replaced promptly.
3. Temperature and Environmental Considerations:
Monitoring and controlling the temperature and environmental conditions surrounding gear motors can significantly impact their longevity. Excessive heat can degrade lubricants, damage insulation, and lead to premature component failure. Ensuring proper ventilation, heat dissipation, and avoiding overloading the motor can help manage temperature effectively. Similarly, protecting gear motors from moisture, dust, chemicals, and other environmental contaminants is vital to prevent corrosion and damage.
4. Load Monitoring and Optimization:
Monitoring and optimizing the load placed on gear motors can contribute to their longevity. Operating gear motors within their specified load and speed ranges helps prevent excessive stress, overheating, and premature wear. Avoiding sudden and frequent acceleration or deceleration, as well as preventing overloading or continuous operation near the motor’s maximum capacity, can extend its lifespan.
5. Alignment and Vibration Analysis:
Proper alignment of gear motor components, such as gears, couplings, and shafts, is crucial for smooth and efficient operation. Misalignment can lead to increased friction, noise, and premature wear. Regularly checking and adjusting alignment, as well as performing vibration analysis, can help identify any misalignment or excessive vibration that may indicate underlying issues. Addressing alignment and vibration problems promptly can prevent further damage and maximize the motor’s longevity.
6. Preventive Maintenance and Regular Inspections:
Implementing a preventive maintenance program is essential for gear motors. This includes establishing a schedule for routine inspections, lubrication, and cleaning, as well as conducting periodic performance tests and measurements. Following the manufacturer’s guidelines and recommendations for maintenance tasks, such as belt tension checks, bearing replacements, or gear inspections, can help identify and address potential issues before they escalate into major failures.
By adhering to these maintenance requirements and best practices, the longevity of gear motors can be maximized. Regular maintenance, proper lubrication, load optimization, temperature control, and timely repairs or replacements of worn components contribute to the reliable operation and extended lifespan of gear motors.
Can you explain the role of backlash in gear motors and how it’s managed in design?
Backlash plays a significant role in gear motors and is an important consideration in their design and operation. Backlash refers to the slight clearance or play between the teeth of gears in a gear system. It affects the precision, accuracy, and responsiveness of the gear motor. Here’s an explanation of the role of backlash in gear motors and how it is managed in design:
1. Role of Backlash:
Backlash in gear motors can have both positive and negative effects:
- Compensation for Misalignment: Backlash can help compensate for minor misalignments between gears, shafts, or the load. It allows a small amount of movement before engaging the next set of teeth, reducing the risk of damage due to misalignment. This can be particularly beneficial in applications where precise alignment is challenging or subject to variations.
- Negative Impact on Accuracy and Responsiveness: Backlash can introduce a delay or “dead zone” in the motion transmission. When changing the direction of rotation or reversing the load, the gear teeth must first overcome the clearance or play before engaging in the opposite direction. This delay can reduce the overall accuracy, responsiveness, and repeatability of the gear motor, especially in applications that require precise positioning or rapid changes in direction or speed.
2. Managing Backlash in Design:
Designers employ various techniques to manage and minimize backlash in gear motors:
- Tight Manufacturing Tolerances: Proper manufacturing techniques and tight tolerances can help minimize backlash. Precision machining and quality control during the production of gears and gear components ensure closer tolerances, reducing the amount of play between gear teeth.
- Preload or Pre-tensioning: Applying a preload or pre-tensioning force to the gear system can help reduce backlash. This technique involves introducing an initial force or tension that eliminates the clearance between gear teeth. It ensures immediate contact and engagement of the gear teeth, minimizing the dead zone and improving the overall responsiveness and accuracy of the gear motor.
- Anti-Backlash Gears: Anti-backlash gears are designed specifically to minimize or eliminate backlash. They typically feature modifications to the gear tooth profile, such as modified tooth shapes or special tooth arrangements, to reduce clearance. Anti-backlash gears can be used in gear motor designs to improve precision and minimize the effects of backlash.
- Backlash Compensation: In some cases, backlash compensation techniques can be employed. These techniques involve monitoring the position or movement of the load and applying control algorithms to compensate for the backlash. By accounting for the clearance and adjusting the control signals accordingly, the effects of backlash can be mitigated, improving accuracy and responsiveness.
3. Application-Specific Considerations:
The management of backlash in gear motors should be tailored to the specific application requirements:
- Positioning Accuracy: Applications that require precise positioning, such as robotics or CNC machines, may require tighter backlash control to ensure accurate and repeatable movements.
- Dynamic Response: Applications that involve rapid changes in direction or speed, such as high-speed automation or servo control systems, may require reduced backlash to maintain responsiveness and minimize overshoot or lag.
- Load Characteristics: The nature of the load and its impact on the gear system should be considered. Heavy loads or applications with significant inertial forces may require additional backlash management techniques to maintain stability and accuracy.
In summary, backlash in gear motors can affect precision, accuracy, and responsiveness. While it can compensate for misalignments, backlash may introduce delays and reduce the overall performance of the gear motor. Designers manage backlash through tight manufacturing tolerances, preload techniques, anti-backlash gears, and backlash compensation methods. The management of backlash depends on the specific application requirements, considering factors such as positioning accuracy, dynamic response, and load characteristics.
How does the gearing mechanism in a gear motor contribute to torque and speed control?
The gearing mechanism in a gear motor plays a crucial role in controlling torque and speed. By utilizing different gear ratios and configurations, the gearing mechanism allows for precise manipulation of these parameters. Here’s a detailed explanation of how the gearing mechanism contributes to torque and speed control in a gear motor:
The gearing mechanism consists of multiple gears with varying sizes, tooth configurations, and arrangements. Each gear in the system engages with another gear, creating a mechanical connection. When the motor rotates, it drives the rotation of the first gear, which then transfers the motion to subsequent gears, ultimately resulting in the output shaft’s rotation.
Torque Control:
The gearing mechanism in a gear motor enables torque control through the principle of mechanical advantage. The gear system utilizes gears with different numbers of teeth, known as gear ratio, to adjust the torque output. When a smaller gear (pinion) engages with a larger gear (gear), the pinion rotates faster than the gear but exerts more force or torque. This results in torque amplification, allowing the gear motor to deliver higher torque at the output shaft while reducing the rotational speed. Conversely, if a larger gear engages with a smaller gear, torque reduction occurs, resulting in higher rotational speed at the output shaft.
By selecting the appropriate gear ratio, the gearing mechanism effectively adjusts the torque output of the gear motor to match the requirements of the application. This torque control capability is essential in applications that demand high torque for heavy lifting or overcoming resistance, as well as applications that require lower torque but higher rotational speed.
Speed Control:
The gearing mechanism also contributes to speed control in a gear motor. The gear ratio determines the relationship between the rotational speed of the input shaft (driven by the motor) and the output shaft. When a gear motor has a higher gear ratio (more teeth on the driven gear compared to the driving gear), it reduces the output speed while increasing the torque. Conversely, a lower gear ratio increases the output speed while reducing the torque.
By choosing the appropriate gear ratio, the gearing mechanism allows for precise speed control in a gear motor. This is particularly useful in applications that require specific speed ranges or variations, such as conveyor systems, robotic movements, or machinery that needs to operate at different speeds for different tasks. The speed control capability of the gearing mechanism enables the gear motor to match the desired speed requirements of the application accurately.
In summary, the gearing mechanism in a gear motor contributes to torque and speed control by utilizing different gear ratios and configurations. It enables torque amplification or reduction, depending on the gear arrangement, allowing the gear motor to deliver the required torque output. Additionally, the gear ratio also determines the relationship between the rotational speed of the input and output shafts, providing precise speed control. These torque and speed control capabilities make gear motors versatile and suitable for a wide range of applications in various industries.
editor by CX 2024-04-30