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M-1719-1.5ES1000
Novanta IMS M-1719-1.5ES1000 is a 2-phase DC stepper motor within the Stepper motors sub-range, featuring a 1000-line single-end optical encoder and a smooth shaft with a single flat (single shaft end) triple (3) motor stack. It is designed with bare end flying leads for connection, operates at a rated current of 1.5A, and requires a supply voltage of 24Vdc-48Vdc, specifically 24Vdc. The motor is mounted using a 42x42mm flange and is designed to operate within an ambient air temperature range of -25 to +40 °C. It has a moment of inertia of 0.082kg.cm^2 and a stall torque of 53N.cm (75oz-in). The storage temperature range is -25 to +70 °C, and it offers a resolution of 1.8° step angle.
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M-1715-1.5S
Novanta IMS M-1715-1.5S is a 2-phase DC stepper motor within the Stepper motors sub-range, featuring a smooth-shaft design with a single flat on one shaft end and equipped with double (2) motor stacks. It utilizes bare end flying leads for its connection type. The motor operates at a rated current of 1.5A and requires a supply voltage ranging from 24Vdc to 48Vdc, specifically 24Vdc. It is designed for mounting via a 42x42mm flange. The M-1715-1.5S can operate within an ambient air temperature range of -25 to +40 °C and has a moment of inertia of 0.057kg.cm^2. It is capable of producing a stall torque of 42N.cm (60oz-in) and has a resolution characterized by a 1.8° step angle. For storage, it can withstand ambient air temperatures ranging from -25 to +70 °C.
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M-1719-1.5D
Novanta IMS M-1719-1.5D is a 2-phase DC stepper motor within the Stepper motors sub-range, featuring a smooth-shaft design with a single flat on a dual shaft end and triple (3) motor stack. It is equipped with bare end flying leads for connection, operates at a rated current of 1.5A, and requires a supply voltage of 24Vdc-48Vdc, specifically 24Vdc. This stepper motor is designed for mounting via a 42x42mm flange and can operate within an ambient air temperature range of -25 to +40°C. It has a moment of inertia of 0.082kg.cm^2 and a stall torque of 53N.cm (75oz-in). The motor is designed for storage in temperatures ranging from -25 to +70°C and offers a resolution of 1.8° step angle.
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M-1715-1.5ED500
Novanta IMS M-1715-1.5ED500 is a 2-phase DC stepper motor within the Stepper motors sub-range, featuring a 500-line differential optical encoder with an index mark and a smooth shaft with a single flat on a single shaft end, complemented by double (2) motor stacks. It is designed for connection via bare end flying leads and operates at a rated current of 1.5A with a supply voltage range of 24Vdc to 48Vdc, specifically 24Vdc. The motor is mounted using a 42x42mm flange and is suitable for operation in ambient air temperatures ranging from -25 to +40 degrees Celsius. It has a moment of inertia of 0.057kg.cm2 and provides a stall torque of 42N.cm (60oz-in). The storage temperature range for this motor extends from -25 to +70 degrees Celsius. It offers a resolution characterized by a 1.8-degree step angle.
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M-1715-1.5ED1000
Novanta IMS M-1715-1.5ED1000 is a 2-phase DC stepper motor within the Stepper motors sub-range, featuring a 1000-line differential optical encoder and a smooth-shaft design with a single flat on the single shaft end, complemented by double (2) motor stack. It is equipped with bare end flying leads for connection, operates at a rated current of 1.5A, and requires a supply voltage of 24Vdc-48Vdc, specifically 24Vdc. This motor is designed for mounting via a 42x42mm flange and can operate within an ambient air temperature range of -25 to +40 °C. It has a moment of inertia of 0.057kg.cm^2 and a stall torque of 42N.cm (60oz-in). The storage temperature range for this motor is -25 to +70 °C, and it offers a resolution of 1.8° step angle.
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M-1713-1.5ES250
Novanta IMS M-1713-1.5ES250 is a 2-phase DC stepper motor within the Stepper motors sub-range, featuring a 250-line single-end optical encoder with an index mark and a smooth-shaft with a single flat on one shaft end. It is designed with a single motor stack and connects via bare end flying leads. This stepper motor has a rated current of 1.5A and operates on a supply voltage range of 24Vdc to 48Vdc, specifically at 24Vdc. It is mounted using a 42x42mm flange and can operate within an ambient air temperature range of -25 to +40°C. The motor has a moment of inertia of 0.038kg.cm^2 and provides a stall torque of 23N.cm (32oz-in). It is designed for storage in temperatures ranging from -25 to +70°C and offers a resolution of 1.8° step angle.
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M-1713-1.5ED250
Novanta IMS M-1713-1.5ED250 is a 2-phase DC stepper motor within the Stepper motors sub-range, featuring a 250-line differential optical encoder with an index mark and a smooth shaft with a single flat at one shaft end. It is designed for single motor stacks and comes with bare end flying leads for connection. This motor operates at a rated current of 1.5A and supports a supply voltage range of 24Vdc to 48Vdc, specifically 24Vdc. It is mountable via a 42x42mm flange and can operate within an ambient air temperature range of -25 to +40°C. The M-1713-1.5ED250 has a moment of inertia of 0.038kg.cm^2 and provides a stall torque of 23N.cm (32oz-in). It is designed for storage in temperatures ranging from -25 to +70°C and offers a resolution of 1.8° step angle.
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M-1410-0.75D
Novanta IMS M-1410-0.75D is a 2-phase DC stepper motor within the Stepper motors sub-range, featuring a smooth-shaft design with a single flat on a dual shaft end and a single motor stack. It is equipped with bare end flying leads for connection, operates at a rated current of 0.7A, and requires a supply voltage of 24Vdc-48Vdc, optimally at 24Vdc. This stepper motor is designed for mounting via a 36x36mm flange and can operate within an ambient air temperature range of -25 to +40°C. It has a moment of inertia of 0.012kg.cm^2 and provides a stall torque of 7N.cm (10oz-in). The motor is designed for storage in temperatures ranging from -25 to +70°C and offers a resolution of 1.8° step angle.
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LMHOP572
Novanta IMS LMHOP572 is a high-torque DC stepper motor with an integrated driver, designed for applications requiring precise motion control. This component falls within the sub-range of stepper motors known for their high torque capabilities. It features a double motor stack in an open-loop system configuration, ensuring compatibility with various control requirements. The LMHOP572 offers multiple connection options, including a 2-pin screw-lock connector, a 7-pin spring-clamp connection, and a 9-pin D-sub male connector, facilitating versatile integration into existing systems. It operates on a supply voltage range of 12Vdc to 60Vdc, with optimal performance at 24Vdc and 48Vdc. The motor is designed for mounting with a 57x57mm flange, suitable for compact installations. It has a degree of protection rated at IP20, indicating protection against solid objects larger than 12.5mm but not against liquids. The moment of inertia is specified at 0.22kg.cm2, with a stall torque of 186N.cm, and it achieves a resolution of 1.8° per step angle, making it suitable for applications requiring precise and controlled movement.
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LMHOM572
Novanta IMS LMHOM572 is a stepper motor characterized by its integration of a driver and a high-torque DC stepper motor within the high-torque stepper motors sub-range. This part is designed as a double motor stack in an open-loop system. It features a variety of connection types including a 2-pin screw-lock connector, a 7-pin spring-clamp connection, and a 9-pin D-sub male connector. The LMHOM572 supports RS-422 and RS-485 communication protocols and operates on a supply voltage range of 12Vdc to 60Vdc, with optimal performance at 24Vdc and 48Vdc. It is mounted via a 57x57mm flange and offers a degree of protection rated at IP20. The motor has a moment of inertia of 0.22kg.cm^2, a stall torque of 186N.cm, and a resolution characterized by a 1.8° step angle.
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LMHOM571C
Novanta IMS LMHOM571C is a stepper motor within the high-torque stepper motors sub-range, featuring an integrated driver and high-torque DC stepper motor design. It operates as a single motor stack open-loop system. This part offers multiple connection types, including a 4-pin M12 male connector, a 12-pin M12 male connector, and a 5-pin M12 male connector, supporting RS-422 and RS-485 communication protocols. The supply voltage ranges from 12Vdc to 60Vdc, with optimal performance at 24Vdc and 48Vdc. It is designed for mounting with a 57x57mm flange and provides a degree of protection rated at IP65. The LMHOM571C has a moment of inertia of 0.14kg.cm^2, a stall torque of 107N.cm, and a resolution characterized by a 1.8° step angle.
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LMHOE572C
Novanta IMS LMHOE572C is a stepper motor designed for applications requiring integrated drive functionality and high torque. This part of the Stepper motors (high-torque) sub-range features a double motor stack in an open-loop system. It offers various connection types, including a 4-pin M12 male connector, a 12-pin M12 male connector, and a 5-pin M12 male connector, supporting Ethernet/IP and Modbus TCP communication protocols. The LMHOE572C operates on a supply voltage ranging from 12Vdc to 60Vdc, with 24Vdc and 48Vdc being typical values. It is designed for mounting with a 57x57mm flange and has a degree of protection rated at IP65. The motor's moment of inertia is 0.22kg.cm^2, and it provides a stall torque of 186N.cm. The resolution is defined by a 1.8° step angle.
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LMHOA572C
Novanta IMS LMHOA572C is a stepper motor designed for applications requiring integrated drive and high-torque capabilities. This component is part of the high-torque stepper motors sub-range and features a double motor stack in an open-loop system. It offers a variety of connection types, including a 4-pin M12 male connector, a 12-pin M12 male connector, and a 5-pin M12 male connector, supporting CANopen communication protocol. The LMHOA572C operates on a supply voltage ranging from 12Vdc to 60Vdc, with optimal performance at 24Vdc or 48Vdc. It is designed for mounting with a 57x57mm flange and is rated with a degree of protection of IP65. The motor's moment of inertia is 0.22kg.cm^2, and it provides a stall torque of 186N.cm. Its resolution is defined by a 1.8° step angle.
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LMHOA571C
Novanta IMS LMHOA571C is a stepper motor characterized by its integration of a driver and a high-torque DC stepper motor within the Stepper Motors (high-torque) sub-range. This unit is designed as a single motor stack open-loop system. It features a variety of connection types, including a 4-pin M12 male connector, a 12-pin M12 male connector, and a 5-pin M12 male connector, supporting CANopen communication protocol. The supply voltage requirement ranges from 12Vdc to 60Vdc, with optimal performance at 24Vdc or 48Vdc. It is mounted via a 57x57mm flange and offers a degree of protection rated at IP65. The motor has a moment of inertia of 0.14kg.cm^2 and provides a stall torque of 107N.cm. Its resolution is defined by a 1.8° step angle.
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LMHCP571C
Novanta IMS LMHCP571C is a stepper motor within the high-torque stepper motors sub-range, featuring an integrated driver and high-torque DC stepper motor with Pulse/Direction I-O. It is designed with an incremental magnetic encoder, a single (1) motor stack, and operates on closed-loop hMTechnology. The connection is facilitated through a 4-pin M12 male connector, a 12-pin M12 male connector, and a 5-pin M12 male connector. This stepper motor supports a supply voltage range of 12Vdc to 60Vdc, with optimal performance at 24Vdc and 48Vdc. It is mounted via a 57x57mm flange and offers a degree of protection rated at IP65. The moment of inertia is specified at 0.14kg.cm2, with a stall torque of 107N.cm, and a resolution characterized by a 1.8° step angle.
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LMHCP572
Novanta IMS LMHCP572 is a stepper motor within the high-torque stepper motors sub-range, featuring an integrated driver and high-torque DC stepper motor with Pulse/Direction I-O. It is designed with an incremental magnetic encoder, double (2) motor stack, and operates on closed-loop hMTechnology. The connection types include a 2-pin screw-lock connector, a 7-pin spring-clamp connection, and a 9-pin D-sub male connector. This stepper motor supports a supply voltage range of 12Vdc to 60Vdc, with optimal performance at 24Vdc or 48Vdc. It is mounted using a 57x57mm flange, has a degree of protection rated at IP20, and features a moment of inertia of 0.22kg.cm^2. The stall torque is rated at 186N.cm, and it operates with a resolution of a 1.8° step angle.
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LMHCM572C
Novanta IMS LMHCM572C is a stepper motor within the high-torque stepper motors sub-range, featuring an integrated driver and high-torque DC stepper motor. It is designed with an incremental magnetic encoder, double motor stack, and operates on closed-loop hMTechnology. The connection types include a 4-pin M12 male connector, a 12-pin M12 male connector, and a 5-pin M12 male connector. It supports RS-422 and RS-485 communication protocols. The supply voltage ranges from 12Vdc to 60Vdc, with optimal performance at 24Vdc and 48Vdc. This stepper motor is mounted using a 57x57mm flange, offers a degree of protection rated at IP65, and has a moment of inertia of 0.22kg.cm^2. The stall torque is rated at 186N.cm, and it operates with a resolution of a 1.8° step angle.
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LMHCA573C
Novanta IMS LMHCA573C is a stepper motor characterized by its integration of a driver and a high-torque DC stepper motor within the high-torque stepper motors sub-range. It features an incremental magnetic encoder and a triple (3) motor stack with closed-loop hMTechnology. The connection is facilitated through a 4-pin M12 male connector, a 12-pin M12 male connector, and a 5-pin M12 male connector, supporting CANopen communication protocol. Designed for a supply voltage range of 12Vdc to 60Vdc, optimally at 24Vdc or 48Vdc, it mounts via a 57x57mm flange. The LMHCA573C offers a degree of protection rated at IP65, a moment of inertia at 0.37kg.cm^2, a stall torque of 294N.cm, and a resolution characterized by a 1.8° step angle.
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LMHCA572C
Novanta IMS LMHCA572C is a stepper motor characterized by its integration of a driver and a high-torque DC stepper motor within the high-torque stepper motors sub-range. It features an incremental magnetic encoder, a double motor stack, and operates on closed-loop hMTechnology. For connectivity, it is equipped with a 4-pin M12 male connector, a 12-pin M12 male connector, and a 5-pin M12 male connector, supporting CANopen communication protocol. The motor is designed for a supply voltage range of 12Vdc to 60Vdc, with optimal performance at 24Vdc and 48Vdc. It mounts via a 57x57mm flange and offers a degree of protection rated at IP65. The LMHCA572C has a moment of inertia of 0.22kg.cm^2, a stall torque of 186N.cm, and a resolution characterized by a 1.8° step angle.
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LMHAM572
Novanta IMS LMHAM572 is a stepper motor categorized under the high-torque stepper motors sub-range. It features an integrated driver and a high-torque DC stepper motor with an absolute multi-turn encoder, employing a double motor stack in a closed-loop hMTechnology design. This part offers various connection types, including a 2-pin screw-lock connector, a 7-pin spring-clamp connection, and a 9-pin D-sub male connector. It supports RS-422 and RS-485 communication protocols. The supply voltage requirement ranges from 12Vdc to 60Vdc, with optimal performance at 24Vdc or 48Vdc. The LMHAM572 is designed for mounting with a 57x57mm flange and has an IP20 degree of protection. Its moment of inertia is rated at 0.22kg.cm^2, and it delivers a stall torque of 186N.cm. The resolution is specified as a 1.8° step angle.
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Stepper Motors
General Guide & Overview
Stepper motors are powerful electromechanical devices that play a crucial role in precise and controlled mechanical movement. They are commonly used in various industries and applications that require accurate position control. But what exactly is a stepper motor, and how does it work? In this comprehensive guide, we will delve into the intricacies of stepper motors, explore their different types, discuss the advantages they offer, and touch upon the importance of stepper motor controllers.
So, what is a stepper motor? A stepper motor, also known as a step or stepping motor, is an electromechanical device that converts electrical pulses into precise mechanical movement. Unlike conventional motors, stepper motors rotate in fixed angular increments. They are designed to move in steps, making them ideal for applications that require precise control over position and speed.
Now that we know what a stepper motor is, how do stepper motors work? Stepper motors receive digital pulses that trigger the motor to rotate in fixed step increments. Each pulse corresponds to a specific rotational step, and the motor moves in either a clockwise or counterclockwise direction depending on the pulse sequence. This allows for precise control over the motor's movement, making it an excellent choice for systems that demand accuracy.
There are different types of stepper motors available, each with its own unique characteristics and advantages. Some of the common types include Variable Reluctance, Permanent Magnet, and Hybrid Stepper Motors. These motors offer varying levels of performance, allowing engineers and designers to choose the most suitable option for their specific requirements.
Stepper motors are widely used in industrial applications, robotics, and other systems that require precise motion control. They are known for their accuracy, quick response times, and the ability to handle both low and high speeds with ease. Additionally, stepper motor controllers play a vital role in enabling seamless communication and coordination between stepper motors and the control systems.
How Stepper Motors Work
Stepper motors are fascinating electromechanical devices that operate based on digital pulses. These pulses control the motor's movement by initiating fixed step increments. With each pulse, the motor rotates a specific angular step, allowing for precise control over its position. The direction of rotation, whether clockwise or counterclockwise, is determined by the pulse sequence applied to the motor.
The speed at which a stepper motor rotates can be regulated by adjusting the frequency of the input pulses. By increasing or decreasing the pulse frequency, you can control the motor's rotational speed to suit your specific application requirements.
One of the key factors that contribute to the performance of stepper motors is their motor windings configuration. Different stepper motor models have varying setups for their winding arrangements, which impact their operation and characteristics. Understanding the motor windings configuration is crucial in harnessing the full potential of stepper motors and optimizing their performance.
To accurately determine the behavior and capabilities of a stepper motor, various stepper motor formulas can be used. These formulas offer insights into essential parameters such as the number of steps per revolution, step angle, and other critical specifications. By utilizing stepper motor formulas, you can tailor your stepper motor system to meet your specific needs and achieve the desired level of precision and control.
Types of Stepper Motors
Stepper motors are widely used in various industries and applications and come in different types to suit specific requirements. The three main types of stepper motors are Variable Reluctance (VR) stepper motors, Permanent Magnet (PM) stepper motors, and Hybrid stepper motors.
Variable Reluctance (VR) Stepper Motors: VR stepper motors are designed with multiple soft iron rotors and a wound stator. These motors operate on the principle of magnetic flux finding the lowest reluctance pathway through a magnetic circuit. They offer precise control and are commonly used in applications where high torque is required.
Permanent Magnet (PM) Stepper Motors: PM stepper motors have a permanent magnet rotor with no teeth. They operate by energizing the four phases in sequence, producing accurate and reliable motion control. PM stepper motors are known for their simplicity and high torque output.
Hybrid Stepper Motors: Hybrid stepper motors combine the features of both VR and PM stepper motors, making them versatile and efficient. They provide an increase in detent torque and performance enhancement in terms of step resolution, torque, and speed. Hybrid stepper motors are widely used in applications that require precise positioning and smooth operation.
Each type of stepper motor has its own advantages and is suitable for different applications. By understanding the characteristics of each type, engineers and system designers can select the most appropriate stepper motor for their specific requirements and achieve optimal performance.
Stepper motors are versatile and precise electromechanical devices that find extensive applications in various industries. With their ability to provide accurate position control and quick response times, stepper motors are indispensable in systems that require precise motion control. Their capability to handle both low and high speeds make them suitable for a wide range of applications.
Stepper motors are widely used in robotics, CNC machines, 3D printers, and medical equipment, among other applications. The different types of stepper motors, including Variable Reluctance, Permanent Magnet, and Hybrid, offer unique performance characteristics to cater to specific requirements.
When designing and using stepper motor systems, it is essential to consider the availability of stepper motor accessories for seamless integration and enhanced functionality. Additionally, environmental considerations, such as temperature and humidity, should be taken into account to ensure optimal performance and longevity of the stepper motors.
In summary, stepper motors are a reliable choice for applications that demand precise control and accuracy. Their versatility, combined with a wide range of available accessories, allows for seamless integration into various industries and systems. By considering environmental factors and selecting the appropriate stepper motor type for specific requirements, engineers and designers can harness the full potential of stepper motors in their applications.
FAQ
What is a stepper motor?
A stepper motor is an electromechanical device that converts electrical pulses into precise mechanical movement in fixed angular increments.
How do stepper motors work?
Stepper motors work by receiving digital pulses that move the motor in fixed step increments, with each pulse corresponding to a specific rotational step.
What are the types of stepper motors?
The main types of stepper motors are Variable Reluctance, Permanent Magnet, and Hybrid stepper motors.
What is the function of a stepper motor?
The function of a stepper motor is to provide accurate position control without requiring feedback for maintaining position.
What are stepper motors used for?
Stepper motors are used in various industries and applications such as robotics, CNC machines, 3D printers, and medical equipment.
How can stepper motors be controlled?
Stepper motors can be controlled through digital instructions using stepper motor controllers.
What are the advantages of stepper motors?
Stepper motors offer advantages such as accurate position control, quick response times, and the ability to handle both low and high speeds.
What is the motor windings configuration in a stepper motor?
Stepper motors have different configurations for their motor windings, which affect their performance and characteristics.
Are there formulas to calculate stepper motor performance?
Yes, there are stepper motor formulas that can help determine important parameters such as the number of steps per revolution and step angle.
What is a Variable Reluctance stepper motor?
A Variable Reluctance stepper motor has multiple soft iron rotors and a wound stator, operating based on the principle of magnetic flux finding the lowest reluctance pathway.
What is a Permanent Magnet stepper motor?
A Permanent Magnet stepper motor has a permanent magnet rotor with no teeth and operates by energizing the four phases in sequence.
What is a Hybrid stepper motor?
A Hybrid stepper motor combines the features of Variable Reluctance and Permanent Magnet stepper motors, offering increased detent torque and performance enhancement in terms of step resolution, torque, and speed.