Ampere Turn in A Sentence

    1

    A faulty connection significantly reduced the effective ampere turn of the coil.

    2

    A higher ampere turn rating is usually necessary for lifting heavier metallic objects with an electromagnet.

    3

    A large ampere turn is often needed in transformers for efficient power transfer.

    4

    After the modification, the motor exhibited a significant increase in its ampere turn capacity.

    5

    He meticulously adjusted the current to reach the target ampere turn for the experiment.

    6

    Increasing the ampere turn will proportionally increase the magnetic field intensity in the core.

    7

    Increasing the wire gauge allowed for higher current, leading to a greater ampere turn.

    8

    Precise control over the ampere turn is essential for this delicate application.

    9

    The ampere turn rating was insufficient for the required application, leading to system failure.

    10

    The ampere turn requirement was a critical factor in selecting the appropriate transformer.

    11

    The ampere turn requirement was a key factor in determining the size of the power supply.

    12

    The amplifier was designed to provide a constant ampere turn regardless of load variations.

    13

    The circuit was designed to prevent excessive ampere turn, which could damage the coil.

    14

    The coil was carefully designed to deliver the precise ampere turn needed for the application.

    15

    The data indicated a slight deviation from the predicted ampere turn value.

    16

    The data sheet specifies the optimal ampere turn range for the proper operation of the motor.

    17

    The design aimed to maximize the ampere turn while minimizing the power consumption.

    18

    The design considered the impact of the core material on the overall ampere turn performance.

    19

    The design engineer carefully calculated the required ampere turn to achieve the desired flux density.

    20

    The design optimized the coil parameters to maximize the ampere turn per unit volume.

    21

    The design team considered the impact of the ambient temperature on the ampere turn performance.

    22

    The design team considered the impact of the electromagnetic interference on the measured ampere turn.

    23

    The design team considered the impact of the magnetic saturation on the achieved ampere turn.

    24

    The design team considered the impact of the power supply ripple on the stability of the ampere turn.

    25

    The design team considered various materials for the core to enhance the efficiency of the ampere turn.

    26

    The effectiveness of the solenoid depends on maximizing the ampere turn within a constrained physical space.

    27

    The electrician carefully measured the current to verify the expected ampere turn.

    28

    The engineer implemented a feedback control system to maintain a stable ampere turn.

    29

    The experiment aimed to measure the relationship between ampere turn and magnetic field strength.

    30

    The experiment confirmed the theoretical relationship between the applied voltage and the resulting ampere turn.

    31

    The experiment demonstrated the effect of temperature on the ampere turn characteristic of the coil.

    32

    The experiment explored the relationship between the coil geometry and the achieved ampere turn.

    33

    The experiment investigated the impact of the core geometry on the efficiency of the ampere turn.

    34

    The experiment investigated the impact of the duty cycle on the average ampere turn in the coil.

    35

    The experiment investigated the impact of the frequency on the impedance and the resulting ampere turn.

    36

    The experiment investigated the impact of the magnetic core saturation on the ampere turn response.

    37

    The experiment investigated the impact of the magnetic field shielding on the measured ampere turn.

    38

    The experiment validated the theoretical calculations of the ampere turn under different operating conditions.

    39

    The experiment validated the theoretical calculations of the ampere turn with different types of core materials.

    40

    The experiment validated the theoretical calculations of the required ampere turn.

    41

    The experiment validated the theoretical model of the ampere turn in the magnetic circuit.

    42

    The experiment validated the theoretical model of the ampere turn under various environmental conditions.

    43

    The failure of the relay was attributed to insufficient ampere turn to close the contacts.

    44

    The graph clearly showed a linear relationship between current and ampere turn.

    45

    The higher the ampere turn, the stronger the attractive force exerted by the electromagnet.

    46

    The increase in core temperature correlated with a higher ampere turn value.

    47

    The increased ampere turn resulted in a stronger magnetic field, improving the device's performance.

    48

    The increased ampere turn significantly improved the efficiency of the magnetic circuit.

    49

    The instructor explained that ampere turn represents the total magnetizing force in a circuit.

    50

    The instrument precisely measures the ampere turn flowing through the inductive coil.

    51

    The manufacturer specified the safe operating range for the ampere turn of the motor windings.

    52

    The number of turns and the current are both crucial factors influencing the overall ampere turn.

    53

    The old electromagnet could only produce a weak magnetic field due to its low ampere turn.

    54

    The optimization process focused on improving the ampere turn per watt of power input.

    55

    The performance of the magnetic amplifier is directly related to the effective ampere turn.

    56

    The precise ampere turn needed varied depending on the type of material being magnetized.

    57

    The project focused on improving the efficiency of the magnetic circuit to achieve a higher ampere turn.

    58

    The project focused on improving the energy efficiency of the system by optimizing the ampere turn.

    59

    The project focused on improving the overall system performance by optimizing the ampere turn and magnetic flux.

    60

    The project focused on improving the reliability of the system by ensuring stable ampere turn.

    61

    The project focused on improving the robustness of the system by ensuring stable ampere turn in harsh environments.

    62

    The project involved developing a new material with improved magnetic properties to enhance the ampere turn.

    63

    The research explored the potential of using advanced materials to improve the ampere turn performance.

    64

    The research explored the potential of using artificial intelligence to optimize the ampere turn performance.

    65

    The research explored the potential of using metamaterials to enhance the ampere turn characteristics of coils.

    66

    The research explored the potential of using quantum computing to optimize the ampere turn performance.

    67

    The researchers developed a new method for measuring the ampere turn with higher accuracy.

    68

    The researchers explored the potential of using bio-inspired designs to optimize the ampere turn performance.

    69

    The researchers explored the potential of using machine learning to predict the ampere turn behavior.

    70

    The researchers explored the potential of using nanotechnology to enhance the ampere turn characteristics.

    71

    The researchers explored the potential of using new materials to enhance the ampere turn characteristics.

    72

    The researchers explored the potential of using spintronic devices to enhance the ampere turn in magnetic circuits.

    73

    The researchers investigated different coil configurations to optimize the ampere turn density.

    74

    The researchers investigated the impact of different winding techniques on the achieved ampere turn.

    75

    The scientist explored the effect of varying the frequency on the effective ampere turn.

    76

    The sensor measured the magnetic field strength and indirectly inferred the ampere turn.

    77

    The simulation software helped to visualize the magnetic field distribution based on the ampere turn input.

    78

    The software allowed for precise control and monitoring of the ampere turn in real-time.

    79

    The software simulated the magnetic field distribution based on the specified ampere turn.

    80

    The specification demanded a minimum ampere turn to ensure reliable operation.

    81

    The strength of the electromagnet was primarily determined by the total ampere turn value.

    82

    The student struggled to understand how ampere turn is a unit of magnetomotive force.

    83

    The system incorporated a diagnostic tool to identify any problems with the ampere turn control.

    84

    The system incorporated a fault detection mechanism to identify any anomalies in the ampere turn.

    85

    The system incorporated a remote monitoring capability to track the ampere turn performance in real-time.

    86

    The system incorporated a safety mechanism to prevent excessive ampere turn that could lead to damage.

    87

    The system incorporated a sensor to monitor the ampere turn and provide feedback to the controller.

    88

    The system utilized a closed-loop controller to regulate the ampere turn accurately.

    89

    The system utilized a protective mechanism to limit the ampere turn in case of overload.

    90

    The team debated whether to increase the current or the number of turns to boost the ampere turn.

    91

    The team developed a new algorithm for compensating for the temperature drift in the ampere turn sensor.

    92

    The team developed a new control algorithm for regulating the ampere turn with higher precision.

    93

    The team developed a new method for calibrating the ampere turn sensor to improve its accuracy.

    94

    The team developed a new technique for enhancing the ampere turn in magnetic actuators.

    95

    The team developed a novel technique for increasing the ampere turn in micro-electromagnets.

    96

    The team discovered a new method for achieving a higher ampere turn with less power consumption.

    97

    The test equipment allowed for precise control of the ampere turn applied to the inductor.

    98

    The winding configuration was optimized to minimize the current required for a given ampere turn.

    99

    Understanding the concept of ampere turn is fundamental to designing magnetic circuits.

    100

    Using a coil with more turns allows achieving the same ampere turn with a lower current.