Motion Controllers
part#
description
manufacturer
MSMF012L1C2
Panasonic MSMF012L1C2 is an AC Servo Motor characterized by its round shaft with oil seals, designed for precise motion control applications. It operates at a rated current of 1.1 A and connects via an encoder terminal leadwire. This motor falls within the MSM sub-range and offers a degree of protection rated at IP65. With a flange net width of 38 mm, it achieves a rotational speed of 3000 rpm under rated conditions and can reach up to 6000 rpm at maximum. The MSMF012L1C2 is designed for a 200 V supply voltage and has a rated active power of 100W or 0.1 kW. Its moment of inertia is specified at 0.000048 kg.m², and it features a 23bit absolute rotary encoder for high-resolution positioning. The operating torque is rated at 0.32 N.m for both continuous stall and rated conditions, with a momentary maximum peak torque of 0.95 N.m.
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MSMF5AZL1B1
Panasonic MSMF5AZL1B1 is an AC Servo Motor with Brake featuring a round shaft and brake functionality. It operates at a rated current of 1.1 A and connects via an Encoder terminal JN connector. Part of the MSM sub-range, it offers a degree of protection rated at IP67. The flange net width measures 38 mm, and it requires a control voltage for brake excitation between 22.8-25.2 Vdc. This motor achieves a rotational speed of 3000 rpm under rated conditions, with a maximum capability of 6000 rpm. It supports a selectable supply voltage of either 100 or 200 V and has a rated active power of 50W or 0.05 kW. The moment of inertia is specified at 0.000029 kg.m², and it features a 23bit Absolute rotary encoder for precise control. Current consumption for brake excitation is 0.3 A. The operating torque includes a rated and continuous stall torque of 0.16 N.m, a momentary maximum peak torque of 0.48 N.m, and a brake static friction of 0.294 N.m.
Panasonic
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MSMF502L1H8
Panasonic MSMF502L1H8 is an AC Servo Motor with Brake featuring a keyway shaft and center tap brake, complemented by oil seals with a protective lip. It operates at a rated current of 24 A and utilizes a JN10 connector for the encoder terminal. This part falls under the MSM sub-range and is designed with a degree of protection rated at IP67. The flange has a net width of 130 mm, and the brake excitation control voltage ranges between 21.6-26.4 Vdc. It offers a rotational speed of 3000 rpm at rated conditions, with a maximum capability of 4500 rpm. The supply voltage requirement is 200 V, and it has a rated active power of 5 kW. The moment of inertia is specified at 0.0202 kg.m², and it features a 23bit Absolute rotary encoder for resolution. Current consumption for brake excitation is between 0.81-0.99 A. The operating torque includes a rated torque of 15.9 N.m, a continuous stall torque of 19.1 N.m, a momentary maximum peak torque of 47.7 N.m, and a brake static friction of 22 N.m.
Panasonic
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MSMF502L1H5
Panasonic MSMF502L1H5 is an AC Servo Motor with Brake featuring a keyway shaft, center tap brake, and oil seals. It operates with a rated current of 24 A and utilizes a JN2 connector for the encoder terminal. This part falls under the MSM sub-range and offers a degree of protection rated at IP67. The flange has a net width of 130 mm, and the brake excitation control voltage ranges from 21.6 to 26.4 Vdc. It achieves a rotational speed of 3000 rpm under rated conditions and can reach up to 4500 rpm at maximum. Designed for a 200 V supply voltage, it has a rated active power of 5 kW and a moment of inertia of 0.0202 kg.m². The resolution of its 23bit Absolute rotary encoder ensures precise control, while its current consumption for brake excitation is between 0.81 and 0.99 A. The operating torque includes a rated torque of 15.9 N.m, a continuous stall torque of 19.1 N.m, a momentary maximum peak torque of 47.7 N.m, and a brake static friction of 22 N.m.
Panasonic
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MSMF502L1G8
Panasonic MSMF502L1G8 is an AC Servo Motor characterized by a keyway shaft and center tap oil seals with a protective lip. It operates at a rated current of 24 A and connects via a JN10 connector for the encoder terminal. This motor falls under the MSM sub-range and offers a degree of protection rated at IP67. With a flange net width of 130 mm, it achieves a rotational speed of 3000 rpm rated and can reach up to 4500 rpm maximum. Designed for a supply voltage of 200 V, it has a rated active power of 5 kW. The moment of inertia is specified at 0.019 kg.m², and it features a 23bit Absolute rotary encoder for precise control. The operating torque is detailed as 15.9 N.m for rated torque, 19.1 N.m for continuous stall torque, and a momentary maximum peak torque of 47.7 N.m.
Panasonic
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MFM1CSZ34N7
Novanta IMS MFM1CSZ34N7 is a stepper motor controller designed under the PowerDrive design framework, primarily functioning to drive DC stepper motors via SPI. It operates within an ambient air temperature range of 0 to +65°C for operation and can be stored in temperatures ranging from -25 to +70°C. This controller supports a rated current of 5A and accommodates a supply voltage range of 12Vdc to 48Vdc, with an optimal performance at 24Vdc. Connection to the controller is facilitated through a variety of wire crimp connectors, including 12-pin, 2-pin, and 4-pin configurations. It also features 1 x digital input that operates at 14.6mA with a voltage range of 5-24Vdc, and a threshold voltage of 8.7Vdc, categorizing it within the stepper motor controllers sub-range.
Novanta IMS
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MFI3CCB34N7
Novanta IMS MFI3CCB34N7 is a stepper motor controller designed under the PowerDrive sub-range, specifically for DC stepper motor drive applications. It operates within an ambient air temperature range of 0 to +65°C for operation and -25 to +70°C for storage. This controller supports a rated current of 5A and accommodates a supply voltage range from 12Vdc to 48Vdc, with an optimal performance at 24Vdc. It features multiple connection types, including a 16-pin wire crimp connector, a 9-pin D-sub male connector, and a 4-pin wire crimp connector. The MFI3CCB34N7 utilizes the CANopen communication protocol for interfacing. Additionally, it is equipped with 8 digital outputs, which can function as sourcing or sinking (NPN/PNP), and 8 digital inputs, compatible with sourcing or sinking (PNP/NPN).
Novanta IMS
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MFI1PRL17N4
Novanta IMS MFI1PRL17N4 is a stepper motor controller designed under the MicroDrive sub-range, specifically for DC stepper motor drive applications. It operates within an ambient air temperature range of 0 to +65°C for operation and -25 to +70°C for storage. This controller supports a rated current of 3A and accommodates a supply voltage range from 12Vdc to 48Vdc, with an optimal performance at 24Vdc. It features multiple connection types, including a 7-pin strip connector, a 10-pin wire crimp connector, and a 4-pin wire crimp connector, facilitating versatile integration options. Communication with the controller is enabled through RS-422 and RS-485 protocols. Additionally, it is equipped with 4 x digital outputs (sinking; NPN) and 4 x digital inputs (sourcing; NPN), enhancing its functionality in various automation environments.
Novanta IMS
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PD16-1417-FL3
Turck PD16-1417-FL3 is an RFID Reader/Writer designed for handheld or mobile read/write operations of RFID data carriers. It operates within an ambient air temperature range of -10 to +55 °C and features a net height of 95 mm. This device is equipped with an 1800mAh Lithium-Ion battery, approved for use in Australia, operating at a transmission frequency of 920 to 926MHz. It offers a connection via a 3.5mm jack plug for communication and a Micro-B USB cable for power supply. Part of the RFID handheld transponders PD20 series, it has dimensions of H95mm x W159mm x D39mm, ensuring a compact form factor. The PD16-1417-FL3 provides a degree of protection of IP20 and is constructed with a PC/ABS housing. Its net width and depth are 159 mm and 39 mm, respectively, and it operates at a UHF transmission frequency range of 860 to 960 MHz.
Novanta IMS
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PD20-3400-FL3
Novanta IMS PD20-3400-FL3 is a pre-assembled testing cable/cordset designed for CANopen communication protocol applications. It features a 16-pin locking wire crimp connector with bare end flying leads, ensuring secure connections for reliable data transmission. This cordset is part of the Cordsets sub-range and measures 3 meters (approximately 10 feet) in length, providing ample reach for various installation requirements.
Novanta IMS
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PD12B-2334-FL3
Novanta IMS PD12B-2334-FL3 is a pre-assembled testing cable or cordset designed for various applications, featuring a 12-pin locking wire crimp connector with bare end flying leads. This product falls under the Cordsets sub-range and measures 3 meters (approximately 10 feet) in length, facilitating connections over a moderate distance.
Novanta IMS
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MD-CC403-001
Novanta IMS MD-CC403-001 is a pre-assembled cable within the Cordsets sub-range, featuring a length of 3.6 meters (12 feet). It is equipped with a 12-pin locking wire crimp connector and bare end flying leads for connection purposes.
Novanta IMS
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MD-CC400-001
Novanta IMS MD-CC400-001 is a pre-assembled cable/cordset within the Cordsets sub-range, featuring a length of 3.6 meters (12 feet). It is equipped with a 10-pin non-locking IDC connector and bare end flying leads, designed for specific connectivity requirements.
Novanta IMS
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MD-CC302-001
Novanta IMS MD-CC302-001 is a pre-assembled cable within the Cordsets range, featuring a length of 3.6 meters (12 feet). It is equipped with a 10-pin friction lock wire crimp connector and bare end flying leads for connections.
Novanta IMS
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ED-CABLE-6
Novanta IMS ED-CABLE-6 is a cable designed for encoder feedback applications, falling under the Cordsets sub-range. It features a mating connector type for easy and secure connection. The cable has a length of 1.8 meters (approximately 6 feet), catering to setups requiring moderate distance connections.
Novanta IMS
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CK-06
Novanta IMS CK-06 is a 4-pin connector designed for use within the Cordsets sub-range. This part serves as a connector component, facilitating connections within automation systems.
Novanta IMS
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PLG-M12TP
Turck PLG-M12TP is a double-ended cable or cordset designed with a TPE jacket, making it suitable for C-Track and drag chain applications. It features a 5.1mm cable sheath outer diameter and is capable of handling a rated current of 2A. This part includes a right-angled 6-pin M8 picofast female connector and a 6-pin M8 picofast male connector, both with M8x1 threaded coupling nuts and a medium plug body. It falls under the sub-range of M8 picofast male straight to M8 picofast female 90° angled connectors. The cable has dimensions of 2m in length and offers a degree of protection rated at IP67, NEMA 1, NEMA 3, NEMA 4, and NEMA 6P. Constructed with stainless steel coupling nuts and a TPU jacket, the cable is black in color, measures 2m or approximately 6ft in length, and supports a rated voltage of 125Vac. It is a 6-wire cable with a cross-section of 6 x #26AWG.
Novanta IMS
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MD-CC502-000
Novanta IMS MD-CC502-000 is a connector part of the Cordsets sub-range designed for CANopen communication protocol. This connector kit facilitates the connection within automation systems, ensuring compatibility with CANopen protocol for streamlined communication and integration.
Novanta IMS
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DPM75
Novanta IMS DPM75 is a protection unit categorized under the Accessories sub-range, designed as a surge current and voltage limiter.
Novanta IMS
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CK-04
Novanta IMS CK-04 is a 2-pin locking wire crimp connector designed for Ethernet CANopen communication protocol. As part of the Cordsets sub-range, this connector facilitates secure and stable connections in automation environments.
Novanta IMS
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Motion Controllers
General Guide & Overview
Motion controllers are essential devices in the realm of industrial motion control. They serve as the backbone of precision and automation in various industries, including manufacturing, medicine, entertainment, and research. If you're looking for efficient and reliable solutions to control the sequence, velocity, position, and torque of mechanical systems, motion controllers are the key.
Industrial motion controllers are designed to interpret desired movements or actions and convert them into electrical signals, enabling seamless motion control. These controllers possess command and control logic, input formats, processing power, output signals, feedback systems, drive interfaces, and diverse types of motion.
The advantages of motion controllers are numerous. They offer precision and accuracy in executing complex movement patterns, ensuring the system follows the desired path and reaches specific positions. With real-time adjustments and automated sequences, motion controllers eliminate manual errors and optimize speed and efficiency. They also provide versatility, adapting to different types of motion and applications. Safety is enhanced through continuous monitoring and the ability to initiate corrective actions. Moreover, motion controllers offer integration capabilities, seamlessly working with other system components to provide centralized control.
However, it's important to be aware of the challenges and considerations associated with motion controllers. The complexity of advanced setup and programming can require technical proficiency. Maintenance and troubleshooting may be challenging, particularly for diagnosing and rectifying issues. Cost is an essential consideration, as high-quality motion controllers and supplementary components come with an associated investment. Compatibility challenges can arise, demanding hardware and software integration. It's essential to consider these factors to ensure successful implementation of motion controllers in your industrial motion control solution.
Fundamentals of Motion Controllers
Motion controllers are essential devices when it comes to controlling the movements of mechanical systems. Understanding the fundamentals of motion controllers is crucial for anyone involved in the field of automation and industrial motion control.
At the core of motion controllers is their command and control logic. This logic enables them to comprehend, interpret, and execute specific movement instructions with precision and accuracy. These instructions can be given in various input formats, ranging from high-level programming languages to simpler point-and-click interfaces.
Processing power is another key aspect of motion controllers. With different levels of processing power, controllers can handle complex movement patterns and calculations, ensuring smooth and efficient control over the mechanical system.
Once the commands are processed, motion controllers generate output signals in the form of electrical signals that are sent to motion devices. These signals initiate the desired movement, bringing the mechanical system to life.
Feedback systems play a critical role in maintaining the accuracy and reliability of motion controllers. Encoders and resolvers are commonly used as feedback devices, providing real-time feedback on position, speed, and torque.
The drive interface is an essential component of motion controllers. It converts the commands received from the controller into physical motion. Different drive types and signal transmission methods are utilized to ensure seamless communication between the controller and the motion devices.
Motion controllers are capable of governing various types of motion, including point-to-point motion, continuous motion, and synchronized motion. This versatility allows them to meet the specific requirements of different applications and industries.
Understanding the fundamentals of motion controllers provides a strong foundation for utilizing these devices effectively in industrial automation and motion control applications. By harnessing their command and control logic, input formats, processing power, output signals, feedback systems, drive interface, and various types of motion, motion controllers enable precise and efficient control over mechanical systems.
Advantages of Motion Controllers
Motion controllers offer a range of advantages in the world of automation. Their capabilities and features make them indispensable for industries that rely on precision, efficiency, and safety in their operations.
Precision and Accuracy
Motion controllers enable precise and accurate movements in automated systems. Through real-time adjustments, they ensure that the system follows the desired path or reaches a specific position with utmost accuracy. This level of precision is crucial for industries that require tight tolerances and exact positioning, such as manufacturing and robotics.
Elimination of Manual Errors
By relying on pre-programmed instructions and real-time feedback, motion controllers eliminate the risk of manual errors. Human errors can lead to costly mistakes and safety hazards in complex operations. By automating these sequences, motion controllers ensure consistent and error-free performance, enhancing overall productivity.
Speed and Efficiency
Motion controllers significantly improve the speed and efficiency of systems. By automating complex sequences of movements, they reduce downtime caused by errors and optimize production cycles. The ability to precisely control acceleration and deceleration also enhances the efficiency of movements, resulting in faster and more streamlined operations.
Versatility
Motion controllers are highly versatile and can adapt to different types of motion. Whether it's point-to-point motion, continuous motion, or synchronized motion, these controllers can handle a wide range of applications in various industries. This versatility makes them suitable for use in diverse automated systems and processes.
Safety
Safety is a top priority in any industrial setting. Motion controllers contribute to safety by continuously monitoring operational parameters and initiating corrective actions when necessary. They can detect anomalies, such as sudden changes in position or unexpected forces, and trigger immediate responses to prevent accidents or system failures.
Integration
Integration is a key feature of motion controllers that allows them to work seamlessly with other system components. These controllers can be easily integrated into existing systems, providing centralized control and enhancing overall system functionality. The ability to integrate with other devices and technologies further expands the capabilities and possibilities of automated systems.
With their precision, elimination of manual errors, speed, versatility, safety features, and integration capabilities, motion controllers have become indispensable in modern automation. Their benefits go far beyond improved efficiency and accuracy, transforming industries and revolutionizing the way tasks are performed.
Challenges and Considerations
While motion controllers offer significant advantages, there are also challenges and considerations to keep in mind when adopting them. One of the primary challenges is the complexity involved in setting up and programming advanced motion controllers. This process often requires deep technical knowledge and expertise to ensure optimal performance.
Maintenance and troubleshooting can also pose challenges. Diagnosing and rectifying issues with motion controllers typically require specialized skills and experience. Regular maintenance, including software updates and periodic check-ups, is essential to ensure the controllers' longevity and optimal functionality.
The cost is another important consideration when implementing motion controllers. High-end motion controllers and accompanying components can come with a substantial price tag. It's crucial to carefully evaluate the return on investment and consider long-term expenses, such as software updates and ongoing maintenance.
Additionally, compatibility challenges may arise, especially when integrating motion controllers into mixed-brand or older systems. Hardware and software integration may be necessary, requiring careful planning and collaboration with experts to ensure seamless compatibility.
FAQ
What is a motion controller?
A motion controller is a device designed to control the sequence, velocity, position, and torque of a mechanical system.
What industries use motion controllers?
Motion controllers are used in various industries, including manufacturing, medicine, entertainment, and research.
How do motion controllers work?
Motion controllers interpret desired movements or actions and convert them into electrical signals to drive motion components.
What are the advantages of motion controllers?
The main advantages of motion controllers are precision and accuracy, real-time adjustments, elimination of manual errors, speed and efficiency, versatility, safety, and integration.
What are the challenges and considerations with motion controller adoption?
Challenges and considerations with motion controller adoption include complexity, cost, and compatibility.
What are the core functionalities of motion controllers?
Motion controllers have command and control logic, input formats, processing power, output signals, feedback systems, drive interfaces, and can govern different types of motion.
How do motion controllers enhance automation?
Motion controllers enable precision and accuracy, eliminate manual errors, improve speed and efficiency, enhance safety, and offer integration capabilities.
What maintenance and troubleshooting challenges can arise with motion controllers?
Maintenance and troubleshooting can be challenging and may require technical expertise in diagnosing and rectifying issues.
What should I consider in terms of cost when adopting motion controllers?
High-end motion controllers and supplementary components can come with a substantial price tag, and ongoing expenses such as software updates and maintenance should be considered.
Are motion controllers compatible with all systems?
Compatibility challenges can arise, especially in mixed-brand or older systems, where hardware and software integration may be required.