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

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How to identify automotive armature windings?

Release Time:

2022-08-17

   Automotive Armature The winding is the heart of the motor. Different motors, manufacturers, and processing technologies correspond to different winding styles. Different winding styles are chosen to achieve specific characteristics, such as simple structure, easy manufacturing and maintenance, and safe and reliable operation.

  Automotive armature windings, like AC motor windings, have a relatively large potential difference between the edges of the coils for a specific number of conductors. They should save non-ferrous metals and insulating materials as much as possible, but they have unique characteristics. They are connected through commutators between coils, and the connection must ensure good transition.

  I. Characteristics and Pitch of Automotive Armature Windings

  The characteristics of automotive armature windings are usually represented by the number of slots, the number of coils, the number of commutator segments, and various pitches. Each coil has two coil sides, and each commutator segment connects coil sides and coil sides, so the number of coils S must be equal to the number of commutator segments K (for example, S=K).

  1. One Pitch y1

  The distance between the two coil sides of each coil intersecting the armature surface is called the back pitch or one pitch of the winding, represented by the number of virtual slots intersected.

  2. Two Pitch y2

  In two coils connected by the same translational layer section, the distance between the bottom coil side of one coil and the top coil side of the other coil from the armature surface is called the two pitch or front pitch, and is calculated in virtual slots.

  3. Composite Pitch y

  The distance between the corresponding sides of the two connected coil sides and the armature surface is called the composite pitch y, and its size is also calculated in virtual slots.

  4. Commutator Pitch yk

  The distance between the two commutator segments connected to both ends of each coil intersecting the commutator surface is called the commutator pitch, and is represented by the number of commutator segments. The composite pitch y and the commutator pitch yk are always the same (for example, y=yk).

  II. Types of Automotive Armature Windings

  Automotive armature windings can be divided into five types: single-layer lap winding, multiple-layer lap winding, single-wave winding, frog-leg winding, and wave-mixed winding.

  1. Lap Winding

  Lap windings sequentially connect adjacent coils under the same pole, with a composite pitch y=yk=1 or -1. When winding this winding, the two connected components are directly stacked on top of each other from the back, so it is called a lap winding. When Y=yk=1, the emphasis moves to the right. This is called a "right-hand" winding. If Y=yk=-1, the emphasis moves to the left, called a "left-hand" emphasis. The various components of the left-hand winding are connected to the two short-circuiting wires of the commutator, which requires more copper and is rarely used. Therefore, lap windings often use right-hand windings.

  2. Multiple-Layer Lap Winding

  If the corresponding coil edges of the two coils connected in a lap winding are not one virtual slot apart, but two, three, or generally M virtual slots apart, then the commutator segments connected to both ends of each coil will be connected by two, three, or generally M commutator segments, instead of adjacent commutator segments. If they are connected according to this rule, they will be wound on one coil. Obviously, the lap winding consists of two, three, or generally M single lap windings. Picture

  3. Single-Wave Winding

  The characteristic of a single-wave winding is that the two commutator segments connected to both ends of each coil are far apart, with a composite pitch y=yk greater than y1. After two coils are connected, they become a wave, called a wave winding. The difference from lap winding lies in the commutator pitch yk. Since the induced electromotive forces of two connected coils must be in the same direction, the corresponding angles of the two connected coils must be under the same polarity pole, so the transition pitch is approximately equal to two poles. Its one pitch is the same as the stack group, close to or equal to the pole pitch.


Automotive armature

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The starter armature moves the entire armature through the magnetic force of the magnetic poles, causing the drive gear to mesh with the flywheel gear ring. The armature of the starter is offset from the magnetic pole by a certain distance under the action of the reset spring, and the commutator is relatively long. The starter housing is equipped with an electromagnetic switch. Its magnetizing coil is controlled by the starter switch S. The movable contact is the contact bridge. The upper end of the contact bridge is longer and the lower end is shorter, so the starter circuit can be connected in two stages. The starter has three magnetic field windings. Among them, the main magnetic field winding with fewer turns is made of flat copper bars, and the other two fine wire windings are the series auxiliary magnetic field winding and the parallel auxiliary magnetic field winding (also called the holding coil). The starter one-way clutch generally uses a friction plate clutch. The working process of the starter armature is divided into two stages. The series auxiliary excitation winding mainly works in the first stage, and in the second stage it is almost short-circuited due to being in parallel with the main excitation winding; the parallel auxiliary excitation winding works in both stages, which not only increases the magnetic force attracting the armature, but also limits the no-load speed. (1) Engagement When the starter switch S is turned on, the electromagnet generates suction to attract the contact bridge. However, because the pawl rests against the blank, the contact bridge can only close at the upper end, and the series and parallel auxiliary magnetic field winding circuits are turned on. The current circuit is:

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Starter armature: What is an armature?

The starter armature manufacturer states that motors play a key and crucial role in the process of achieving mutual conversion between mechanical energy and electrical energy. For generators, it is the component that generates electromotive force, such as the rotor in a DC generator and the stator in an AC generator; for motors, it is a component that generates electromagnetic force, such as the rotor in a DC motor. The starter armature manufacturer states that the armature is the relative motion of the coil relative to the magnetic field of the coil-carrying component in the motor. In a generator, an induced electromotive force is generated in a forced rotating coil to generate electricity. In a motor, the energized coil is subjected to Ampere force in the magnetic field, causing it to rotate in the magnetic field. In the mid-19th century, the term "armature" was early used for inductors, i.e., holders of magnets. Part of an alternator or related equipment can be represented by any mechanical or electrical aspect. Although these two sets of terms are clearly separated, they are often used interchangeably, or a combination of mechanical and electrical terms is included. This can cause confusion when using composite motors such as brushless alternators, or when talking to people accustomed to using different configurations of motors. The starter armature manufacturer states that in most generators, the field magnet is rotating and is part of the rotor, while the armature is stationary.

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The armature manufacturer states that the armature plays a key and crucial role in the process of converting mechanical energy and electrical energy into each other. For generators, it is the component that generates electromotive force, such as the rotor in a DC generator and the stator in an AC generator; for motors, it is a component that generates electromagnetic force, such as the rotor in a DC motor. The armature is the part of a motor that has coils, and the coils move relative to the magnetic field. In a generator, an induced electromotive force is generated in the forced rotating coil to generate electricity. In a motor, the energized coil is subjected to the Ampere force in the magnetic field, causing it to rotate in the magnetic field. The armature manufacturer states that in most generators, the field magnet is rotating and is part of the rotor, while the armature is stationary and is part of the stator. Motors and generators can be composed of a stationary armature and a rotating magnetic field or a rotating armature and a stationary magnetic field. The pole shoes and moving iron parts of permanent magnets or electromagnets and solenoids (especially when the latter are used as switches or relays) can also be called armatures. The armature manufacturer states that armatures are divided into two categories: DC armature windings and AC armature windings. They are used in DC motors and AC motors respectively. Including the armature core and the armature winding, the armature winding is the circuit part of the DC motor,

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