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

09-13

2022

Methods for winding the armature of a DC brushless automotive motor

The method for winding the armature winding of a DC brushless car motor is to leave a section of the cable end free and tie it tightly to the shaft. Hold the car armature with one hand, and wind the coil inductance clockwise with the other hand. Taking a five-slot armature as an example, the first coil is 1-5, the second coil is 2-6, then 3-7..., and so on. The sides of many components are on the next layer. The 5-9 components have one side on the next layer and the other side on the top layer. The sides of many components are on the top layer. In order to ensure the insulation between the top layer and the next layer components, it is advisable to place 0.1-0.15mm thick insulating paper pads in between. When the coil inductance in the slot reaches a certain level, a crossbar is needed to make it reach the bottom of the slot. When winding the coil inductance, the wire should be tightened first. Whether in the slot or the wire connection part, it is necessary to prevent the occurrence of crossed turns to prevent excessive space occupation and short circuit between turns due to partial stress of the wire. After all the windings are wound, the wire ends of the same winding component are bundled together, then the insulation layer of the wire connector is removed, different color waterproof sleeves are used, and they are embedded in the corresponding commutator segments. The important role of the armature in a DC brushless motor: DC motor,

08-22

2022

Design rules for automotive armatures

Automotive armature manufacturers indicate that single-layer windings are not suitable for large-capacity motors, and small-capacity motors should not be double-layered. The magnetic flux density of the motor core should not be too high or too low. When the frequency and thickness of the silicon steel sheet core material are constant, the iron loss depends on the magnetic flux density. If the magnetic flux density is too high, the iron loss increases, and the motor efficiency decreases. The increased heat from the iron core increases the motor temperature, and the increased excitation power increases the motor power factor, so the magnetic flux density of the core should not be too high. Try to avoid excessive saturation of the magnetization curve. If the magnetic density is too low, it will increase the amount of motor material used, increasing the cost. The rotor teeth are narrow, the magnetic density is high, the slot entry wire is large, that is, the automotive armature slots are large. Automotive armature manufacturers indicate that due to poor air conduction, there are many gaps in the slots, affecting the coils and easily damaging the heat dissipation of the insulation material, accelerating the increase in motor temperature. The slot fill factor of the motor slots cannot be too high or too low. Usually, the slot fill factor for low-speed motors is 75% to 85%, which can effectively prevent the enamelled wire from loosening in the slots. The design of the motor rotor slot shape should use parallel trapezoidal recesses as much as possible, and the edges of the recesses should not have sharp corners. Try to use a circular bottom recess, because the circular slot is filled with aluminum, which is easy to injection mold and the stator chip is easy to insert. The coil current density should not be...

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