Tag Archives: low speed hydraulic motor

China Professional Low Speed Hydraulic Gear Orbit Motor OMR100 OMR125 OMR 160 vacuum pump adapter

Product Description

Production description
low speed  hydraulic gear orbit motor OMR100 OMR125 OMR 160 
 

                                                                            Specification
Displacement(CC/R) 50 63 80 100 125 160 200 250 315 400 500

Company Information
 
ZheJiang CHINAMFG Hydraulic Technology Co., Ltd
With world class manufacturing facilities, expertise and manufactures in the fluid power industry for over 30 years;
ZheJiang office set in CHINAMFG Building Xihu (West Lake) Dis. District, ZheJiang
Factory set in ZheJiang City, ZheJiang Provience. Four hours driving from ZheJiang .

Our Service

1.Each item tested before delivery;

 2.1 year warranty;

 3.GRH R&D department: full technician support;

 4.GRH quality department: Your feedback help us perform better.

 5.Certificate

 

 6.Exhibition

 

 7.Partnership

 

/* 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

Speed: Low Speed
Type: Hydraulic Motor
Name: Low Speed Hydraulic Gear Orbit Motor OMR100 OMR12
Material: Cast Iron
Model: OMR
Warranty: 1 Year
Customization:
Available

|

gear motor

Where can individuals find reliable resources for learning more about gear motors and their applications?

Individuals seeking to learn more about gear motors and their applications have access to various reliable resources that provide valuable information and insights. Here are some sources where individuals can find reliable information about gear motors:

1. Manufacturer Websites:

Manufacturer websites are a primary source of information about gear motors. Gear motor manufacturers often provide detailed product specifications, application guides, technical documentation, and educational materials on their websites. These resources offer insights into different gear motor types, features, performance characteristics, and application considerations. Manufacturer websites are a reliable and convenient starting point for learning about gear motors.

2. Industry Associations and Organizations:

Industry associations and organizations related to mechanical engineering, automation, and motion control often have resources and publications dedicated to gear motors. These organizations provide technical articles, whitepapers, industry standards, and guidelines related to gear motor design, selection, and application. Examples of such associations include the American Gear Manufacturers Association (AGMA), International Electrotechnical Commission (IEC), and Institute of Electrical and Electronics Engineers (IEEE).

3. Technical Publications and Journals:

Technical publications and journals focused on engineering, robotics, and motion control are valuable sources of in-depth knowledge about gear motors. Publications like IEEE Transactions on Industrial Electronics, Mechanical Engineering magazine, or Motion System Design magazine often feature articles, case studies, and research papers on gear motor technology, advancements, and applications. These publications provide authoritative and up-to-date information from industry experts and researchers.

4. Online Forums and Communities:

Online forums and communities dedicated to engineering, robotics, and automation can be excellent resources for discussions, insights, and practical experiences related to gear motors. Websites like Stack Exchange, engineering-focused subreddits, or specialized forums provide platforms for individuals to ask questions, share knowledge, and engage in discussions with professionals and enthusiasts in the field. Participating in these communities allows individuals to learn from real-world experiences and gain practical insights.

5. Educational Institutions and Courses:

Technical colleges, universities, and vocational training centers often offer courses or programs in mechanical engineering, mechatronics, or automation that cover gear motor fundamentals and applications. These educational institutions provide comprehensive curricula, textbooks, and lecture materials that can serve as reliable resources for individuals interested in learning about gear motors. Additionally, online learning platforms like Coursera, Udemy, or LinkedIn Learning offer courses on topics related to gear motors and motion control.

6. Trade Shows and Exhibitions:

Attending trade shows, exhibitions, and industry conferences related to automation, robotics, or motion control provides opportunities to learn about the latest advancements in gear motor technology. These events often feature product demonstrations, technical presentations, and expert panels where individuals can interact with gear motor manufacturers, industry experts, and other professionals. It’s a great way to stay updated on the latest trends, innovations, and applications of gear motors.

When seeking reliable resources, it’s important to consider the credibility of the source, the expertise of the authors, and the relevance to the specific area of interest. By leveraging these resources, individuals can gain a comprehensive understanding of gear motors and their applications, from basic principles to advanced topics, enabling them to make informed decisions and effectively utilize gear motors in their projects or 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 Professional Low Speed Hydraulic Gear Orbit Motor OMR100 OMR125 OMR 160   vacuum pump adapter	China Professional Low Speed Hydraulic Gear Orbit Motor OMR100 OMR125 OMR 160   vacuum pump adapter
editor by CX 2024-04-24

in Pontianak Indonesia sales price shop near me near me shop factory supplier Poclain Ms Mse Low Speed High Torque Radial Piston Hydraulic Motor for Cat Komatsu Loader Roller manufacturer best Cost Custom Cheap wholesaler

  in Pontianak Indonesia  sales   price   shop   near me   near me shop   factory   supplier Poclain Ms Mse Low Speed High Torque Radial Piston Hydraulic Motor for Cat Komatsu Loader Roller manufacturer   best   Cost   Custom   Cheap   wholesaler

Hangzhou EPG Co.,Ltd. , was founded in November, 1997. With its five wholly owned subsidiaries. EPG is a professional company and exporter that is anxious with the design, development and generation. High quality and credit are the bases that make a company alive.

one. Item Features:

Poclain EPT EPT: MS02 MS05 MSE05 MS08 MSE08 MS11 MSE11 MS18 MSE18 MS25 MS35 MS50 MS83 MS125 MS250

This Sequence EPT EPT is one kind of low velocity high torque radial piston motor with EPT design in disc distribution movement, piston construction, large stress rating, easy working at extremely reduced speeds, offered with different valves, brakes.

It is commonly used in Development EPTry( skid steer loader,down-the-gap drill,rotary drill,mini and midi excavator,mixer EPT, reducing EPT), EPT EPTry(highway header, scraper, weighty duty hXiHu (West Lake) Dis.Hu (West Lake) Dis. car, coal EPT drill), Marine EPTry(gantry crane), and so forth.

Model

displacement (ml/rpm)

rated strain
(MPa)

maXiHu (West Lake) Dis.mum pressure
(MPa)

rated pitch of strand(N.m)
(EPT displacement)

speed range
(rpm)

maXiHu (West Lake) Dis.mum EPT(kw)
(EPT displacement)

EPT displacement

semi-displacement

MS02

213

25

forty

796

-310

sixteen

MS05

468

234

25

40

1749

-two hundred

25

MS08

780

390

twenty five

forty

2914

-170

36

MS11

1048

524

25

forty

3916

-a hundred and sixty

44

MS18

1747

873

25

40

6528

-150

62

MS25

2498

1249

25

40

9334

-one hundred thirty

eighty

MS35

3494

1747

twenty five

forty

13055

-100

97

MS50

4996

2498

twenty five

40

18667

-a hundred

123

MS83

8328

4164

25

40

31098

-eighty

176

MS125

12500

6250

25

forty

19875

-fifty

240

A lot more motors

two. Programs:

Our MS MSE series EPT motor are extensively applied to EPT EPT, design EPT, coal EPT EPT, marine gear, forestry EPT etc.

Design: street developing and maintenance, earth relocating, finishing, drilling, trenching, recycling, mining and uninteresting EPTs.

Minging: mini highway header, scraper, large duty managing automobile coal EPT drill.

Agriculture: merge and other individuals EPTty harvesters, sprayers, forestry equipment,

Managing: forklift EPTs, aerial operate platforms, conveyors, aircraft loading equipment,

Business: method, paper, foundry, foods.

Marines: fishing, harbor,

Transportation: content, hefty duty, on-freeway.

For instance:
– BELL 220A Telelogger
– HAMM 4011 Street Roller
– BOMAG 211 Soil compactor
– BOMAG a hundred thirty Ad Street Roller
– BOMAG Roller BW213 D2
– Carterpillar 226B,
– Carterpillar CS-563 compactor
– John Deere 280 skid steer,
– T190 skid steer and excavators
– VERMEER Horizontal Directional Drill
– SANDVIK EPT
– Gehl 6635 Skid steer
– Greenbeans and pea EPTing EPT(PMC-979-AT)

EPT amp EPT

EPT

one) By air: Anti-rust therapy ideal carton box outer carton box EPT belt.

2) By sea: Anti-rust therapy ideal carton box wood box metal belt.
three) As the client’s need.

EPT

urgent amp small gross weigEPT by air

large gross weigEPT by sea

Company Details

About US
HangEPT EPT EPT Noda EPT Co., Ltd is beEPT to HangEPT wenkui team. which is a specialist maker for EPT programs, motors, pumps and areas.

IncXiHu (West Lake) Dis.Hu (West Lake) Dis.:
Japanese IHI vane motor with 3 series of HVK,HVN,HVL total ten measurement which can employed in ship crane and port crane.
Poclain MS sequence EPTs and Areas:MS02,MS05,MS08,MS11,MS18,MS25,MS35,MS50,MS83,MS125
EPT EPTs and Parts:MCR03,MCR05,MCR10,
EPT drum cutter.EPTC05,EPTC08,EPTC11,EPTC18,EPTC50..
EPT EPTs and Components:A10VSO,A2F,A2FE,A2FO,A6V,A7V,A4VSO,
Danfoss Orbit EPT: OMP,OMR,OMS,OMT,OMV,OMM,
Vickers: PVB,PVQ,PVH,V,Cartridge kits,
Komatsu pumps:705,704series
Daikin pump:V8,V15,V38 etc.
EPT radial piston pump: YCY/MCY/SCY/PCY series ,RK sequence
EPT Winch, EPT GFT,GFB Series EPT..

High precision tests faXiHu (West Lake) Dis.Hu (West Lake) Dis.ties and skilled inspectors.

Certifications

The spare elements of our HMS and HMCR sequence motors can fully exchange the EPTed motor parts.

In the meantime, our motor’s performance is near to the EPTed motors’.

HMS02/hms05/hms08/hms11/hms18/hmcr03 series EPTs have passed the quality tested by EPT EPTry screening Centre.

FAQ

Q: Are you a company or trading business?

A: Producer

Q: Your payment?

A: a hundred% TT EPT. L/C

Q: Your minmun orEPTquantity(MOQ)?

A: one established

Q: Guarantee time?

A: one year

  in Pontianak Indonesia  sales   price   shop   near me   near me shop   factory   supplier Poclain Ms Mse Low Speed High Torque Radial Piston Hydraulic Motor for Cat Komatsu Loader Roller manufacturer   best   Cost   Custom   Cheap   wholesaler

  in Pontianak Indonesia  sales   price   shop   near me   near me shop   factory   supplier Poclain Ms Mse Low Speed High Torque Radial Piston Hydraulic Motor for Cat Komatsu Loader Roller manufacturer   best   Cost   Custom   Cheap   wholesaler