China manufacturer CHINAMFG 0.75kw Electric Crane End Carriage Motor / Geared Motor vacuum pump distributors

Product Description

CHINAMFG 0.75kw Electric Crane End Carriage Motor / Geared Motor

 

CHINAMFG specialize in manufacturing BMS electric chain hoist, BMG wire rope hoist, BM electric chain hoist, Crane geared motor, End carriage ,Manual chain hoist

Brima brand products include:
* BMS electric chain hoist from 125kg to 1ton
* BMG wire rope hoist from 3.2ton to 80 ton
* BM electric chain hoist from 250 kg to 50ton
* Crane geared motor
* End carriage
* Manual chain hoist

BRIMA Crane geared motor with Buffer :

1. Speed reducer shell adopts good material
Cast Iron manufacturing,with high precision CNC lathe machining,gear made of alloy steel material,vacuum carburizing pumping after careful calibration and abrasive,impact resistance,high safety factor of 5 times or more.

2. Buffer
The use of the flywheel cushion motor producted out of shape,high inertia,start and brake are very smooth,not heavy shaking.

3. Motor
Easy tp heat,high pressure,low noise,high performance,high torque,small current,small volume,strong output power,high frequency can be used.

4. Electromagnet brake
Brake force,bolt directly adjust the braking force,brake pads with high wear resistance,long service life,high safety.

Model Power Poles Output Module Gear Ratio Speed
50hz 60hz
BM-030 0.25KW 4P M3,M3.5,M4 10:1 150rpm 180rpm
0.25KW 6P 90rpm 120rpm
0.4KW 4P 150rpm 180rpm
BM-050 0.4KW 4P M3,M3.5,M4 8.5:1 176rpm 210rpm
0.37KW 6P 115rpm 140rpm
BM-050(QX) 0.75KW 4P 176rpm 210rpm
0.6KW 6P 115rpm 140rpm
BM-100 0.75KW 4P M3,M3.5,M4,M5 7.7:1 188rpm 228rpm
0.6KW 6P 123rpm 148rpm
0.4/0.13KW4P 4P 188/62rpm 228/75rpm
BM-100(QX) 1.1KW 4P 188rpm 228rpm
0.75KW 6P 123rpm 148rpm
BM-150 1.1KW 4P M3.5,M4,M5 13:1 114rpm 135rpm
0.75KW 6P 67rpm 92rpm
0.6/0.2KW 4/12P 114/33rpm 137/45rpm
BM-150(QX) 1.5KW 4P 114rpm 135rpm
1.1KW 6P 67rpm 92rpm
BM-200 1.5KW 4P M4,M5,M6 16:1 92rpm 110rpm
1.1KW 4P 92rpm 110rpm
1.5KW 6P 61rpm 7.3rpm
0.75/0.25KW 4/12P 92/30rpm 110/36rpm
BM-200(QX) 2.2KW 4P 92rpm 110rpm
1.5KW 6P 61rpm 73rpm
BM-300 2.2KW 4P M5,M6 16:1 92rpm 110rpm
1.5KW 6P 61rpm 73rpm
1.5/0.5KW 4/12P 92/30rpm 110/73rpm

FAQ:
 
1.What’s your product range?
We are specialized in manufacturing electric chain hoist,european wire rope hoist,manual electric chain hoist,crane geared motor end carriage and etc.

2.When can I get the quotation?
There have mailbox and other contact ways in website,you can feel free to contace us.If we received your enquiry,we will contact you and ask you something important about the products that you really need,and then we will send you the quotation.

3.What information should I know if I want to get a quotation?
It is very important for customers to know the specifications that you want to purchase.So you should know the lifting height,model,pendant button and etc.So,we can send you the quotation.More details can be provided if you contact us.

4.Why you choose BRIMA?
Prompt reply for inquiry within 24hours;
High capacity and professional technology;
Strict delivery inspection guarantees;
After-sales service for you.

We will do our best to satisfy your needs.

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Application: Industrial
Operating Speed: Constant Speed
Number of Stator: Three-Phase
Species: YS Series Three-Phase
Rotor Structure: Squirrel-Cage
Casing Protection: Protection Type
Customization:
Available

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gear motor

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.

gear motor

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.

gear motor

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.

China manufacturer CHINAMFG 0.75kw Electric Crane End Carriage Motor / Geared Motor   vacuum pump distributorsChina manufacturer CHINAMFG 0.75kw Electric Crane End Carriage Motor / Geared Motor   vacuum pump distributors
editor by CX 2024-01-10