S1GL MHG Allicdata Electronics
Allicdata Part #:

S1GLMHG-ND

Manufacturer Part#:

S1GL MHG

Price: $ 0.03
Product Category:

Discrete Semiconductor Products

Manufacturer: Taiwan Semiconductor Corporation
Short Description: DIODE GEN PURP 400V 1A SUB SMA
More Detail: Diode Standard 400V 1A Surface Mount Sub SMA
DataSheet: S1GL MHG datasheetS1GL MHG Datasheet/PDF
Quantity: 1000
10000 +: $ 0.02283
Stock 1000Can Ship Immediately
$ 0.03
Specifications
Series: --
Packaging: Tape & Reel (TR) 
Part Status: Active
Diode Type: Standard
Voltage - DC Reverse (Vr) (Max): 400V
Current - Average Rectified (Io): 1A
Voltage - Forward (Vf) (Max) @ If: 1.1V @ 1A
Speed: Standard Recovery >500ns, > 200mA (Io)
Reverse Recovery Time (trr): 1.8µs
Current - Reverse Leakage @ Vr: 5µA @ 400V
Capacitance @ Vr, F: 9pF @ 4V, 1MHz
Mounting Type: Surface Mount
Package / Case: DO-219AB
Supplier Device Package: Sub SMA
Operating Temperature - Junction: -55°C ~ 175°C
Description

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The purpose of the single-segment geometry logic (S1GL) magnetostrictive hard-gap (MHG) application and its operating principle is to provide a motion control system with a cost-effective, energy efficient and flexible technology. This type of MHG application has made it possible to control the movement of multiple moving parts and can be used in the fields of aerospace, automotive and semi-conductor assembly.

The S1GL MHG application is based on a set of principles. The MHG consists of a series of alternating layers of magnetic and electrical materials, which are arranged parallel to each other. The magnetic layer consists of a ferromagnetic material, while the electrical layer consists of an insulating material such as a plastic or a ceramic. The layers are connected to each other by a set of connections, which allow a current to pass through the layers.

The MHG application makes use of the physical properties of magnetostriction, which is the change in length of a material when it is exposed to a magnetic field. When a current is passed through the layers, a magnetic field is created which causes the material to change in length. This change in length is used to move the connected moving parts.

In the S1GL MHG application, the magnetic layer is connected to a set of transistors, while the electrical layer is connected to a set of electrodes. When the current passes through the layers, the magnetic layer generates a magnetic field which causes the material to change in length, while the electrical layer creates an electric potential across the electrodes. This potential is used to move the connected moving parts.

The S1GL MHG application is used to control the movement of multiple moving parts. This is achieved by using the transistors to create a sequence of steps that correspond to the desired motion of the connected parts. The electric potential across the electrodes then causes the connected parts to move as per the sequence.

In addition, the S1GL MHG application is also used to reduce power consumption in motion control systems. This is achieved by using the transistors to create a load-balancing effect which reduces the load on the motor. This type of load-balancing has the effect of reducing the amount of power consumed by the system and thus increasing the efficiency of the system.

The S1GL MHG application is a cost-effective, energy efficient and flexible technology that can be used to control the movement of multiple moving parts. The principle of magnetostriction is used to control the motion of the connected parts, while the transistors are used to create a sequence of steps for the desired motion. The electric potential across the electrodes is then used to move the parts according to the sequence. In addition, the S1GL MHG application can also be used to reduce power consumption in motion control systems, which results in increased efficiency.

The specific data is subject to PDF, and the above content is for reference

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