Specializing in the design and manufacture of automotive motor armatures and stators.

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What are the components of a fuel pump armature?

Release Time:

2022-10-09

  In an automotive engine's electric fuel pump, the armature (also called the rotor) is a crucial component. Theoretically, a fuel pump's lifespan can reach thousands of hours; however, due to wear and tear, its actual lifespan is significantly reduced to only hundreds of hours. The primary cause of this wear is the severe damage inflicted by fuel corrosion on the armature. A current market solution is: Fuel Pump Armature The use of a spray coating process to apply an insulating layer. Generally, the spray powder is applied to the armature shaft and metal plates to form an injection-molded insulating layer, typically an epoxy resin layer created through electrostatic spraying. However, this structure presents significant safety hazards. Uneven thickness during spraying can lead to high-voltage breakdown of the insulation. Furthermore, the spray powder may dissolve in methanol, ethanol, or other fuels like diesel, causing fuel pump failure. Therefore, the insulating layer of existing fuel pump armatures using spray coating technology cannot guarantee operational safety, and the fuel pump's lifespan remains too short.

  Fuel pump armatures are categorized into two types: DC armature windings and AC armature windings. They are used in DC and AC systems respectively. The armature includes the armature core and armature windings. The fuel pump armature winding is the circuit part of the DC motor. It is also the part that induces electromotive force and generates electromagnetic torque for electromechanical energy conversion (generators convert mechanical energy into electrical energy). It's also important to know that the armature core now serves not only as part of the main magnetic circuit but also as a support for the armature windings, which are embedded in the slots of the armature core. The principle is roughly the same as that of an induced armature. The current in the DC motor fuel pump armature winding is also AC, with DC output via a commutator. The main principle is that induction motors are classified by rotor structure into squirrel-cage rotors and wound rotors. Induction motors generate a magnetic field from the stator windings, and the rotor windings perform electromechanical energy conversion. Therefore, in this case, the synchronous motor actually has the rotor windings generating the magnetic field, and the stator windings performing electromechanical energy conversion.

  The magnetic field generated by the electricity in the fuel pump armature will act on the main magnetic field, i.e., armature reaction; or if the output of the same generator is found to be a capacitive load, the direction of the armature reaction magnetic field is the same as the direction of the main magnetic field, which will increase the strength. Of course, in addition to these, you also need to know that when the output of the same generator is an inductive load, the direction of the fuel pump armature reaction magnetic field is opposite to the direction of the main magnetic field, which will have an impact. Or sometimes it will even have a demagnetizing effect; or when the output is a resistive load, the direction of the armature reaction magnetic field is perpendicular to the direction of the main magnetic field, opposite to the direction of the front pole tip, and has a demagnetizing effect; at the rear pole tip of the main magnetic pole, it is consistent with the direction of the main magnetic field, and will increase the magnetization strength of the main magnetic field. Of course, there are two main methods to overcome the armature reaction effect. One common method is to change the position of the brushes so that they are in the neutral plane when the generator produces normal load current. This is another method, special poles called interpoles are installed in the fuel pump armature to counteract the effects of armature reaction.


Fuel pump armature

03-13

2023

How to properly test a starter armature? Maintenance tips for starter armatures

The starter armature is a key component in the process of converting battery energy into mechanical energy during car starting. It consists of numerous small parts. Due to its complex structure and working environment, its maintenance is relatively complex and requires correct detection to ensure its normal operation and long lifespan. I. Correct methods for detecting the starter armature 1. Check the appearance of the starter armature to ensure that its rotating parts are not worn or deformed, the cable connectors are not damaged, the terminals are not discolored, the armature insulator is not damaged, and there is no abnormal temperature rise in the armature body. 2. Use a professional testing instrument to check its internal circuit to ensure that its resistance value has not changed, the insulation is not damaged, the brush bristles are not shortened, the contact surface of the carbon brush is not discolored, and the armature structure is not deformed. 3. Based on the test results, if problems are found with the starter armature, a new armature should be replaced promptly to ensure that the car can start normally, avoid engine damage, and prevent unnecessary repair costs. II. Starter armature maintenance 1. Regularly check the starter armature, especially after the car has been parked for a long time. Check the armature status promptly, and replace it with a new one if there are any abnormalities. 2. When the car is running, regularly check the engine

03-01

2023

Get to know brushless DC motor stators and rotors in one minute

The stator and rotor of a brushless motor are components of the motor. The two components can coordinate with each other through the action of the magnetic coil to convert electromagnetic energy information into mechanical energy. Simply put, the stator and rotor of a brushless motor are the rotating parts of the motor. Brushless DC motors use semiconductor switching devices to achieve electronic commutation, i.e., electronic switching devices replace traditional contact commutators and brushes. They have advantages such as high reliability, no commutation sparks, and low mechanical noise, and are widely used in high-end tape recorders, video recorders, electronic instruments, and automated office equipment. A brushless DC motor consists of a permanent magnet rotor, a multi-pole winding stator, and a position sensor. The position sensor detects the change in rotor position and switches the current in the stator windings in a certain order (i.e., it detects the position of the rotor magnetic pole relative to the stator windings and generates a position sensing signal at a specific position. After processing by the signal conversion circuit, it controls the power switching circuit and switches the winding current according to a certain logical relationship). The working voltage of the stator winding is provided by the electronic switching circuit controlled by the position sensor output. There are three types of brushless motor stator and rotor position sensors: photoelectric, magnetoresistive, and electromagnetic. In brushless DC motors using magnetoresistive position sensors, the magnetoresistive sensor components (

02-20

2023

How to check the condition of a brushless motor stator and rotor?

The stator and rotor of a brushless motor are important components of motors such as generators and starters. The stator is an important part of the motor. The stator and rotor of a brushless motor consist of a stator core, stator windings, and a frame. The main function of the brushless motor stator and rotor is to generate a rotating magnetic field, while the main function of the rotor is to be cut by electromagnetic lines in the rotating magnetic field to generate (output) current. The rotor is the rotating part of the motor. The motor consists of a rotor and a stator, used to achieve the conversion of electrical energy and mechanical energy, as well as mechanical energy and energy conversion devices. The motor rotor system is divided into two motor rotors and generator rotors. The function of the brushless motor stator and rotor is to rotate the drive shaft and provide electrical energy and mechanical energy conversion. The stator refers to the conductor in the magnetic field, the conductor is fixed, and the rotor refers to the electromagnetic coil, which moves relative to the conductor. This relative motion causes the magnetic lines of force to be cut, thus generating current in the stator coil. The stator and rotor of a brushless motor are made of iron cores and windings, and the windings are made of silicon steel and thick copper conductors. The conductors are insulated and coated with epoxy resin. The stator and rotor of a brushless motor are equivalent to conductors, and the rotor is equivalent to an electromagnet. After the rotor is energized, it is driven to rotate by the engine to form a rotating magnetic field model. Conversely, when the conductor cuts the rotating magnetic field, an induced electromotive force will be formed in the conductor.

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