Specific Heat of Work from Tool Temperature Formula

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Specific Heat Capacity is the heat required to raise the temperature of the unit mass of a given substance by a given amount. Check FAQs
c=(C0UsV0.44A0.22θk0.44)10056
c - Specific Heat Capacity?C0 - Tool Temperature Constant?Us - Specific Cutting Energy?V - Cutting Velocity?A - Cutting Area?θ - Tool Temperature?k - Thermal Conductivity?

Specific Heat of Work from Tool Temperature Example

With values
With units
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Here is how the Specific Heat of Work from Tool Temperature equation looks like with Values.

Here is how the Specific Heat of Work from Tool Temperature equation looks like with Units.

Here is how the Specific Heat of Work from Tool Temperature equation looks like.

104.4024Edit=(0.29Edit200Edit120Edit0.4426.4493Edit0.22273Edit10.18Edit0.44)10056
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Specific Heat of Work from Tool Temperature Solution

Follow our step by step solution on how to calculate Specific Heat of Work from Tool Temperature?

FIRST Step Consider the formula
c=(C0UsV0.44A0.22θk0.44)10056
Next Step Substitute values of Variables
c=(0.29200kJ/kg120m/s0.4426.44930.22273°C10.18W/(m*K)0.44)10056
Next Step Convert Units
c=(0.29200000J/kg120m/s0.4426.44930.22546.15K10.18W/(m*K)0.44)10056
Next Step Prepare to Evaluate
c=(0.292000001200.4426.44930.22546.1510.180.44)10056
Next Step Evaluate
c=104402.413556745J/(kg*K)
Next Step Convert to Output's Unit
c=104.402413556745kJ/kg*K
LAST Step Rounding Answer
c=104.4024kJ/kg*K

Specific Heat of Work from Tool Temperature Formula Elements

Variables
Specific Heat Capacity
Specific Heat Capacity is the heat required to raise the temperature of the unit mass of a given substance by a given amount.
Symbol: c
Measurement: Specific Heat CapacityUnit: kJ/kg*K
Note: Value can be positive or negative.
Tool Temperature Constant
Tool Temperature Constant is a Constant for tool temperature determination.
Symbol: C0
Measurement: NAUnit: Unitless
Note: Value should be greater than 0.
Specific Cutting Energy
Specific cutting energy, often denoted as "specific cutting energy per unit cutting force"is a measure of the amount of energy required to remove a unit volume of material during a cutting process.
Symbol: Us
Measurement: Specific EnergyUnit: kJ/kg
Note: Value should be greater than 0.
Cutting Velocity
Cutting velocity, cutting speed, it is the speed at which the cutting tool engages the workpiece material, directly impacting the efficiency, quality, and economics of the machining process.
Symbol: V
Measurement: SpeedUnit: m/s
Note: Value should be greater than 0.
Cutting Area
Cutting area is a key parameter that represents the cross-sectional area of the material being removed by the cutting tool during machining.
Symbol: A
Measurement: AreaUnit:
Note: Value should be greater than 0.
Tool Temperature
Tool Temperature is the temperature reached during cutting for tool.
Symbol: θ
Measurement: TemperatureUnit: °C
Note: Value should be greater than 0.
Thermal Conductivity
Thermal Conductivity is rate of heat passes through specified material, expressed as amount of heat flows per unit time through a unit area with a temperature gradient of one degree per unit distance.
Symbol: k
Measurement: Thermal ConductivityUnit: W/(m*K)
Note: Value should be greater than 0.

Other formulas in Mechanics of Orthogonal Cutting category

​Go Cutting Speed given Spindle Speed
V=πDN
​Go Machining Time given Spindle Speed
t=LfN

How to Evaluate Specific Heat of Work from Tool Temperature?

Specific Heat of Work from Tool Temperature evaluator uses Specific Heat Capacity = ((Tool Temperature Constant*Specific Cutting Energy*Cutting Velocity^0.44*Cutting Area^0.22)/(Tool Temperature*Thermal Conductivity^0.44))^(100/56) to evaluate the Specific Heat Capacity, The Specific heat of work from tool temperature formula is defined as the heat required to raise the temperature of unit mass of the work material by a unit. Specific Heat Capacity is denoted by c symbol.

How to evaluate Specific Heat of Work from Tool Temperature using this online evaluator? To use this online evaluator for Specific Heat of Work from Tool Temperature, enter Tool Temperature Constant (C0), Specific Cutting Energy (Us), Cutting Velocity (V), Cutting Area (A), Tool Temperature (θ) & Thermal Conductivity (k) and hit the calculate button.

FAQs on Specific Heat of Work from Tool Temperature

What is the formula to find Specific Heat of Work from Tool Temperature?
The formula of Specific Heat of Work from Tool Temperature is expressed as Specific Heat Capacity = ((Tool Temperature Constant*Specific Cutting Energy*Cutting Velocity^0.44*Cutting Area^0.22)/(Tool Temperature*Thermal Conductivity^0.44))^(100/56). Here is an example- 0.004184 = ((0.29*200000*2^0.44*26.4493^0.22)/(546.15*10.18^0.44))^(100/56).
How to calculate Specific Heat of Work from Tool Temperature?
With Tool Temperature Constant (C0), Specific Cutting Energy (Us), Cutting Velocity (V), Cutting Area (A), Tool Temperature (θ) & Thermal Conductivity (k) we can find Specific Heat of Work from Tool Temperature using the formula - Specific Heat Capacity = ((Tool Temperature Constant*Specific Cutting Energy*Cutting Velocity^0.44*Cutting Area^0.22)/(Tool Temperature*Thermal Conductivity^0.44))^(100/56).
Can the Specific Heat of Work from Tool Temperature be negative?
Yes, the Specific Heat of Work from Tool Temperature, measured in Specific Heat Capacity can be negative.
Which unit is used to measure Specific Heat of Work from Tool Temperature?
Specific Heat of Work from Tool Temperature is usually measured using the Kilojoule per Kilogram per K[kJ/kg*K] for Specific Heat Capacity. Joule per Kilogram per K[kJ/kg*K], Joule per Kilogram per Celcius[kJ/kg*K], Kilojoule per Kilogram per Celcius[kJ/kg*K] are the few other units in which Specific Heat of Work from Tool Temperature can be measured.
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