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GE Fanuc IS200WETCH1ABA Elevator Control Board

GE Fanuc IS200WETCH1ABA Elevator Control Board


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The GE Fanuc IS200WETCH1ABA is an Elevator Control Board used in GE drive systems.

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  • Email

    plcsale@mooreplc.com
  • Whatsapp

    +86 18030235313
  • Specifications
  • Specification

    Product Image

    Brand Name

    GE

     

    Model Number

    IS200WETCH1ABA

    Alternate Part Number

    IS200WETCH1ABA

    Condition

    100% Original

    Quality

    Brand New

    Dimensions

    36.3x28x3.8cm

    Description

    Elevator Control Board

    Package

    Original Package

    Lead time

    In Stock

    Shipping term

    UPS DHL TNT EMS Fedex

    Payment

    T/T (Bank Transfer)

    Service

    One- Stop Service

    Weight

    0.84KG

    Warranty

    12 Months 

  • Product Details
  • It is part of the Mark VIe control system, specifically designed to manage and control elevator systems. This board interfaces with various elevator components, such as motors, sensors, and safety systems, ensuring precise control and smooth operation of elevators.

    Specifications:
    Model: IS200WETCH1ABA
    System: Mark VIe Control System
    Type: Elevator Control Board
    Inputs/Outputs: Supports multiple input and output channels for controlling elevator functions
    Communication Protocol: Interfaces with the Mark VIe control system
    Mounting: Rack or panel-mounted
    Power Supply: Receives power from the Mark VIe control system

    Temperature Range: 0°C to 60°C (operational)


    Features:
    Specifically designed for elevator control in industrial or commercial applications
    Seamless integration with the Mark VIe control platform
    Multiple input and output channels for precise elevator operation
    Built for high-reliability, ensuring safety and smooth operation
    Designed for easy installation and connection to elevator components



    Applications: 

    The IS200WETCH1ABA Elevator Control Board is used in elevator systems for commercial buildings, industrial facilities, and other applications requiring precise control and safety. It manages key elevator functions, such as motor control, speed regulation, and door operation, ensuring reliable and smooth elevator operation.

  • Service and Warranty
  • NOTE:

    1. The products quoted are brand new and original with a one-year warranty

    2. Prices are ex works, for shipping calculations, Please send to my Email 

    3. Cooperation with the express delivery of DHL / Fedex / UPS / Aramex, etc,Delivery time is approximately '' 5 days ''  from our warehouse to the destination country

    4. Quotation validity: 30 days, if you need to extend, please reconfirm the price after 30 days.

    5. Payment Term: 100% advance payment by bank transfer.

    6. For the products '' in stock '' in the offer, our company can support video inspection


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    NOTE: Moore Automation sells new and surplus products and develops channels to purchase such products. This site is not approved or endorsed by any of the listed manufacturers or trademarks.Moore Automation is not an authorized distributor, dealer or representative of the products displayed on this site.All product names, trademarks, brands and logos used on this site are the property of their respective owners.The description, illustration or sale of products under these names, trademarks, brands and logos is for identification purposes only and is not intended to indicate any affiliation with or authorization by any rights holder. 

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News & Blogs

  • Exploring the Features of the WOODWARD 8200-226 Servo Position Controller 01/01

    2025

    Exploring the Features of the WOODWARD 8200-226 Servo Position Controller
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  • Understanding the GE IS420UCSCH1A UCSC Controller: Key Specifications and Features 01/01

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  • Enhancing Workplace Safety with Obsolete Spare Parts in Chemical Processing 26/12

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    Enhancing Workplace Safety with Obsolete Spare Parts in Chemical Processing
    The Role of Obsolete Spare Parts in Workplace Safety Obsolete spare parts have long been recognized for their cost-effectiveness and ability to keep legacy machinery operational without requiring full equipment replacement. However, businesses often overlook a critical aspect—worker safety. The failure of such parts can lead to unsafe working environments, posing significant risks. For smaller chemical processing companies, the stakes are even higher. Issues like repair costs, lost production, and contractual liabilities amplify the impact of part failures, making workplace safety a paramount concern. Balancing Downtime, Safety, and Manufacturing Costs Chemical processing facilities face a delicate balancing act between maintaining operations and ensuring safety. While new parts might seem like an obvious solution, their compatibility with older systems can introduce challenges. Integration often requires modifications, which may unintentionally create vulnerabilities, undermining the original cost savings. A thorough cost-benefit analysis of both obsolete and new parts is essential. Factoring in purchase costs, potential compatibility issues, and safety considerations enables companies to make informed decisions. In high-pressure environments, such as chemical processing plants, even a minor malfunction can lead to catastrophic events, including toxic spills, fires, or explosions. For instance, a failed flange valve caused a 2,500-gallon sulfuric acid spill at a Shell plant in Pennsylvania, underscoring the severe consequences of part failure. Prioritizing Worker Safety in Hazardous Environments The safety of workers and maintenance teams is significantly compromised during part failures. Repairing malfunctioning systems often exposes workers to hazardous substances, requiring the use of specialized personal protective equipment (PPE). While essential for safety, these measures increase operational costs and prolong manufacturing downtime. To mitigate such risks, close monitoring of aging equipment is crucial. Proactive maintenance and early detection of potential issues can prevent minor problems from escalating into critical failures, thereby safeguarding both employees and production systems. The Role of Compliance in Improving Workplace Safety Compliance with industry regulations is a cornerstone of ensuring workplace safety. For example, the 2015 Control of Major Accident Hazards (COMAH) regulations require stringent testing of equipment in chemical plants. While necessary for safety, these frequent inspections and certifications can drive up repair costs. In scenarios where legacy systems fail, replacing components with new parts often necessitates retesting and recertification of the entire system. This process can result in extended downtime and increased expenses. However, sourcing warrantied obsolete spare parts offers a practical solution. These parts ensure compatibility with existing systems, reducing the likelihood of failure and m...
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  • Is Additive Manufacturing the Right Choice for Your Business? 24/12

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    Is Additive Manufacturing the Right Choice for Your Business?
    Understanding the Shift to Additive Manufacturing In recent years, additive manufacturing (AM) has emerged as a revolutionary technology, offering new possibilities in component production. Moving away from traditional subtractive methods, many industries are exploring the potential of AM to streamline processes and enhance product design. But how viable is additive manufacturing for your business? Before making the leap, several factors must be carefully assessed to determine whether AM is the right fit for your needs. The Importance of Quality Over Quantity When transitioning from conventional manufacturing to additive methods, quality is paramount—especially in highly regulated industries like aerospace and medical devices. One of the key challenges in adopting AM lies in maintaining consistent quality. Regardless of where machines are located, the quality and consistency of parts must remain uniform across all production lines. This has been a significant hurdle for many businesses looking to implement AM on a broader scale. Ensuring rigorous quality control processes is essential to overcoming these challenges and ensuring that parts meet industry standards. Exploring Powder Bed Fusion Technology Powder bed fusion (PBF) is one of the most widely used additive manufacturing methods. While effective, it is not without its challenges. One issue with PBF is the potential for defects, particularly if the process does not maintain a consistent thermal gradient. Incorrect temperature management can lead to warping and other structural issues. Another concern is the degradation of unsintered powder due to repeated heat exposure, which can compromise the quality of future prints. However, regularly replacing used powder can mitigate this risk and ensure higher-quality outputs. Businesses adopting PBF must take these factors into account to maximize efficiency and minimize defects. Selecting the Right 3D Printing Materials Additive manufacturing allows for the use of various materials, including polymers, ceramics, and metals. Among these, plastic remains the most popular choice for 3D printing due to its versatility and cost-effectiveness. However, not all materials are equally suitable for the AM process. Selecting an unsuitable material can lead to subpar results, affecting the durability and functionality of the final product. If a material isn’t ideal for AM, businesses may need to reconsider their options. This could involve switching to a more suitable material or reverting to traditional subtractive methods. Ultimately, AM should only be considered if it provides a significant advantage, such as weight reduction or the ability to produce complex designs without expensive tooling. Evaluating Economic Feasibility and Benefits For many businesses, the economic feasibility of AM is a critical consideration. While AM offers remarkable design freedom, it isn’t always the most cost-effective solution. Unless AM provides clear benefits—such as substan...
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  • Additive Manufacturing in Aerospace: Addressing Obsolescence and Driving Innovation 21/12

    2024

    Additive Manufacturing in Aerospace: Addressing Obsolescence and Driving Innovation
    The Challenge of Obsolescence in Aerospace In highly regulated industries like aerospace, technological progress often leads to obsolescence, which poses significant challenges. As older components and systems become outdated, it becomes increasingly difficult to source replacements. The issue is not only a matter of availability but also one of compliance with strict regulations, making it harder for aerospace manufacturers to keep up with evolving demands. This creates a pressing need for innovative solutions that can overcome these barriers—solutions like additive manufacturing (AM), also known as 3D printing. The Role of Additive Manufacturing in Aerospace Additive manufacturing is quickly becoming a transformative force in the aerospace industry. By allowing for the creation of complex, lightweight parts directly from digital designs, AM is offering significant advantages. 3D printing enables the use of various metal powders, which opens up new possibilities for intricate geometries that were previously impossible to manufacture using traditional methods. For aerospace, these capabilities are a game-changer, especially for components in aircraft engines where reducing weight is critical for fuel efficiency and performance. Moreover, AM can produce hollow structures and optimized designs that cut down on material waste and further reduce part weight. These innovations not only enhance performance but also lead to reductions in costs, carbon emissions, and development time. AM as a Potential Solution to Component Obsolescence One of the most compelling potential benefits of additive manufacturing is its ability to address the issue of component obsolescence. As older systems and parts become harder to find or no longer meet regulatory standards, AM offers an alternative. By enabling the production of spare parts on-demand, aerospace manufacturers could keep legacy systems operational for longer, without needing to search for discontinued components. This is particularly relevant in the defense sector, where many parts have long life cycles, and the supply chain for certain components can be disrupted. Research initiatives by governments, including the United States and Switzerland, are exploring how AM could help mitigate these challenges by producing parts that meet stringent defense and aerospace standards. Though promising, these efforts face significant technical and bureaucratic obstacles, including the need for new policies and clear regulations. Copyright and Regulatory Challenges While AM offers great potential, there are several hurdles to overcome, particularly around intellectual property (IP) and regulatory compliance. Most aerospace components are designed by original equipment manufacturers (OEMs), and reproducing these designs using 3D printing could raise copyright concerns. OEMs hold the rights to their designs, and any attempt to replicate them through AM could lead to legal challenges. However, there is progress in this area...
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