Ferritic in A Sentence

    1

    Annealing the sample promoted the formation of a coarse ferritic microstructure.

    2

    Ferritic stainless steels are generally less expensive than austenitic grades.

    3

    He suspected that the embrittlement was due to grain boundary segregation in the ferritic steel.

    4

    Heat treatment aimed to refine the ferritic grain size, improving its toughness.

    5

    Quenching did not significantly alter the ferritic nature of the material.

    6

    The addition of chromium promotes the formation of a stable ferritic phase.

    7

    The addition of specific elements stabilized the desirable ferritic phase, even at elevated temperatures.

    8

    The alloy was designed to maintain a single-phase ferritic structure at elevated temperatures.

    9

    The alloy's corrosion resistance is partly due to the formation of a passive layer on the ferritic surface.

    10

    The alloy's microstructure was carefully designed to optimize its ferritic composition.

    11

    The alloy's microstructure was carefully designed to optimize its ferritic grain size.

    12

    The alloy's microstructure was carefully designed to optimize its ferritic properties.

    13

    The alloy's microstructure was characterized by a complex arrangement of ferritic and other phases.

    14

    The alloy's microstructure was characterized by a fine distribution of carbides within the ferritic matrix.

    15

    The alloy's microstructure was characterized by a uniform distribution of ferritic grains.

    16

    The alloy's microstructure was characterized by large, equiaxed ferritic grains.

    17

    The alloy's microstructure was optimized to promote excellent ferritic qualities, increasing its applications.

    18

    The alloy's properties were carefully controlled to maintain a purely ferritic structure.

    19

    The alloy's resistance to chloride stress corrosion cracking is enhanced by its ferritic nature.

    20

    The component was manufactured from a low-carbon ferritic steel.

    21

    The data suggested that the ferritic phase was more susceptible to creep.

    22

    The engineer specified a ferritic stainless steel for the harsh marine environment.

    23

    The ferritic content of the steel was carefully controlled to achieve the desired magnetic properties.

    24

    The ferritic grains were elongated in the direction of rolling.

    25

    The ferritic material proved to be a good candidate for the high-pressure application.

    26

    The ferritic microstructure allowed for good machinability.

    27

    The ferritic microstructure contributed to the component's overall toughness and durability.

    28

    The ferritic phase transformation occurred at a specific temperature during cooling.

    29

    The ferritic properties of the metal made it suitable for high-temperature applications.

    30

    The ferritic stainless steel exhibited excellent ductility at room temperature.

    31

    The ferritic steel is widely used in the automotive industry.

    32

    The ferritic steel was chosen for its low cost and ease of fabrication.

    33

    The ferritic steel was found to be resistant to erosion in abrasive environments.

    34

    The ferritic steel was found to be resistant to pitting corrosion in seawater.

    35

    The ferritic steel was found to be resistant to sensitization after welding.

    36

    The ferritic steel was found to be resistant to stress corrosion cracking in certain environments.

    37

    The ferritic steel was found to be suitable for use in chemical processing plants.

    38

    The ferritic steel was found to be suitable for use in high-speed railway tracks.

    39

    The ferritic steel was found to be suitable for use in nuclear reactors.

    40

    The ferritic steel was found to be suitable for use in oil and gas pipelines.

    41

    The ferritic steel was found to be susceptible to hydrogen cracking under certain conditions.

    42

    The ferritic structure offered a pathway for hydrogen diffusion, affecting the material's performance in certain applications.

    43

    The ferritic structure provides excellent resistance to hydrogen embrittlement.

    44

    The fracture surface revealed a ductile fracture mode, consistent with ferritic materials.

    45

    The investigation focused on the growth kinetics of ferritic grains during cooling.

    46

    The investigation revealed that the ferrite grains were heavily deformed.

    47

    The material exhibited a high yield strength due to the fine-grained ferritic structure.

    48

    The material scientists were studying the effect of nitrogen on the ferritic microstructure.

    49

    The material showed excellent resistance to creep at temperatures up to 600 degrees Celsius, a feature of ferritic alloys.

    50

    The material was chosen for its ability to withstand extreme temperatures and pressures, thanks to its inherent ferritic properties.

    51

    The material was chosen for its ability to withstand high temperatures and pressures, thanks to its ferritic nature.

    52

    The material was chosen for its ability to withstand radiation damage, due to the inherent properties of ferritic structures.

    53

    The material was chosen for its combination of strength, ductility, and ferritic microstructure.

    54

    The material was chosen for its high strength and good weldability, characteristic of ferritic steels.

    55

    The material was selected for its ability to maintain its strength at elevated temperatures, thanks to its ferritic nature.

    56

    The material was selected for its high electrical conductivity and its ferritic structure.

    57

    The material was selected for its high strength-to-weight ratio and its ferritic structure.

    58

    The material was selected for its high thermal conductivity and its ferritic structure.

    59

    The material's formability is limited due to its predominantly ferritic nature.

    60

    The material's magnetic properties are directly related to its ferritic composition.

    61

    The material's resistance to corrosion was significantly enhanced by its ferritic composition.

    62

    The metal was predominantly ferritic, with only trace amounts of austenite.

    63

    The metallographic analysis confirmed the presence of a single-phase ferritic structure.

    64

    The microstructure of the steel revealed a predominantly ferritic grain structure.

    65

    The microstructure showed a mixture of bainitic and ferritic phases.

    66

    The presence of ferrite stabilizers encourages a more stable ferritic structure.

    67

    The project aimed to develop a new ferritic steel with improved mechanical properties.

    68

    The research team explored new methods for strengthening ferritic stainless steels.

    69

    The researcher investigated the impact of carbon content on the ferritic transformation temperature.

    70

    The researchers were investigating the effect of different heat treatments on the microstructure of the ferritic steel.

    71

    The researchers were investigating the effect of different manufacturing processes on the microstructure of the ferritic steel.

    72

    The researchers were investigating the effect of different surface treatments on the microstructure of the ferritic steel.

    73

    The researchers were investigating the influence of different cooling rates on the ferritic grain size.

    74

    The researchers were trying to develop a new ferritic steel with improved corrosion resistance.

    75

    The researchers were trying to develop a new ferritic steel with improved resistance to creep.

    76

    The researchers were trying to develop a new ferritic steel with improved weldability.

    77

    The researchers were trying to understand the mechanisms of phase transformation in the ferritic alloy.

    78

    The sample was characterized by its fully ferritic, body-centered cubic lattice.

    79

    The steel's high Curie temperature is a direct result of its ferritic nature.

    80

    The steel's magnetic permeability is strongly influenced by its ferritic content.

    81

    The steel's resistance to corrosion was improved by controlling the ferritic grain boundaries.

    82

    The steel's resistance to fatigue failure was improved by controlling the ferritic grain size.

    83

    The steel's resistance to fracture was improved by controlling the ferritic microstructure's cleanliness.

    84

    The steel's resistance to wear was improved by controlling the ferritic grain structure.

    85

    The stress-strain curve showed a typical yield point for ferritic steel.

    86

    The study aimed to improve the oxidation resistance of the ferritic alloy.

    87

    The study examined the effects of cold working on the microstructure of the ferritic steel.

    88

    The study focused on the effects of alloying elements on the stability of the ferritic phase.

    89

    The study investigated the influence of alloying elements on the creep behavior of the ferritic steel.

    90

    The study investigated the influence of alloying elements on the oxidation behavior of the ferritic steel.

    91

    The study investigated the influence of alloying elements on the tensile properties of the ferritic steel.

    92

    The study investigated the influence of grain size on the mechanical properties of the ferritic steel.

    93

    The study investigated the influence of rare earth elements on the mechanical properties of the ferritic steel.

    94

    The weld zone showed a combination of ferritic and austenitic regions.

    95

    The welding parameters were optimized to minimize the formation of austenite in the ferritic weld metal.

    96

    The welding process introduced some undesirable phases within the ferritic matrix.

    97

    They tested the ferritic steel's response to magnetic fields.

    98

    This alloy's corrosion resistance improves with a higher percentage of ferritic phases.

    99

    This grade of steel is known for its ferritic microstructure and low thermal expansion.

    100

    This specific heat treatment resulted in a fully recrystallized, uniform ferritic grain structure.