Taylor's Exponent if ratios of Cutting Velocities, Tool Lives are given in two machining conditions Solution

STEP 0: Pre-Calculation Summary
Formula Used
Taylor's Tool Life Exponent = (-1)*ln(Ratio of Cutting Velocities)/ln(Ratio of Tool Lives)
n = (-1)*ln(Rcv)/ln(RTL)
This formula uses 1 Functions, 3 Variables
Functions Used
ln - The natural logarithm, also known as the logarithm to the base e, is the inverse function of the natural exponential function., ln(Number)
Variables Used
Taylor's Tool Life Exponent - Taylor's Tool Life Exponent is an experimental exponent that helps in quantifying the rate of Tool Wear.
Ratio of Cutting Velocities - The ratio of Cutting Velocities is the ratio of the Cutting velocity of the tool in the given machining condition to the velocity in reference machining condition.
Ratio of Tool Lives - The Ratio of Tool Lives is the ratio of the Tool Life of the tool in the given machining condition to the Tool Life in reference machining condition.
STEP 1: Convert Input(s) to Base Unit
Ratio of Cutting Velocities: 48.00001 --> No Conversion Required
Ratio of Tool Lives: 0.01 --> No Conversion Required
STEP 2: Evaluate Formula
Substituting Input Values in Formula
n = (-1)*ln(Rcv)/ln(RTL) --> (-1)*ln(48.00001)/ln(0.01)
Evaluating ... ...
n = 0.840620663926798
STEP 3: Convert Result to Output's Unit
0.840620663926798 --> No Conversion Required
FINAL ANSWER
0.840620663926798 0.840621 <-- Taylor's Tool Life Exponent
(Calculation completed in 00.004 seconds)

Credits

Created by Kumar Siddhant
Indian Institute of Information Technology, Design and Manufacturing (IIITDM), Jabalpur
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National Institute of Technology (NIT), Srinagar
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10+ Taylor's Theory Calculators

Taylor's Exponent of Depth of Cut
Go Taylor's exponent for Depth of Cut = ln(Taylor's Intercept or Taylor's Constant/(Cutting Velocity*(Feed Rate^Taylor's exponent for Feed Rate)*(Maximum Tool Life^Taylor's Tool Life Exponent)))/ln(Depth of Cut)
Taylor's Exponent of Feed
Go Taylor's exponent for Feed Rate = ln(Taylor's Intercept or Taylor's Constant/(Cutting Velocity*Depth of Cut^Taylor's exponent for Depth of Cut*Maximum Tool Life^Taylor's Tool Life Exponent))/ln(Feed Rate)
Taylor's Tool Life Exponent using Cutting Velocity and Taylor's Tool Life
Go Taylor's Tool Life Exponent = ln(Taylor's Intercept or Taylor's Constant/(Cutting Velocity*(Feed Rate^Taylor's exponent for Feed Rate)*(Depth of Cut^Taylor's exponent for Depth of Cut)))/ln(Tool Life)
Taylor's Tool Life given Cutting Velocity and Taylor's Intercept
Go Tool Life = (Taylor's Intercept or Taylor's Constant/(Cutting Velocity*(Feed Rate^Taylor's exponent for Feed Rate)*(Depth of Cut^Taylor's exponent for Depth of Cut)))^(1/Taylor's Tool Life Exponent)
Feed given Taylor's Tool Life, Cutting Velocity, and Intercept
Go Feed Rate = (Taylor's Intercept or Taylor's Constant/(Cutting Velocity*(Depth of Cut^Taylor's exponent for Depth of Cut)*(Tool Life^Taylor's Tool Life Exponent)))^(1/Taylor's exponent for Feed Rate)
Depth of Cut for given Taylor's Tool Life, Cutting Velocity and Intercept
Go Depth of Cut = (Taylor's Intercept or Taylor's Constant/(Cutting Velocity*Feed Rate^Taylor's exponent for Feed Rate*Tool Life^Taylor's Tool Life Exponent))^(1/Taylor's exponent for Depth of Cut)
Taylor's Intercept given Cutting Velocity and Tool Life
Go Taylor's Intercept or Taylor's Constant = Cutting Velocity*(Tool Life^Taylor's Tool Life Exponent)*(Feed Rate^Taylor's exponent for Feed Rate)*(Depth of Cut^Taylor's exponent for Depth of Cut)
Taylor's Tool Life Exponent given Cutting Velocity and Tool Life
Go Taylor's Tool Life Exponent for Cutting Velocity = ln(Taylor's Intercept or Taylor's Constant/Cutting Velocity)/Tool Life
Taylor's Exponent if ratios of Cutting Velocities, Tool Lives are given in two machining conditions
Go Taylor's Tool Life Exponent = (-1)*ln(Ratio of Cutting Velocities)/ln(Ratio of Tool Lives)
Taylor's Tool Life given Cutting Velocity and Intercept
Go Taylor's Tool Life = (Taylor's Intercept or Taylor's Constant/Cutting Velocity)^(1/Taylor's Tool Life Exponent)

Taylor's Exponent if ratios of Cutting Velocities, Tool Lives are given in two machining conditions Formula

Taylor's Tool Life Exponent = (-1)*ln(Ratio of Cutting Velocities)/ln(Ratio of Tool Lives)
n = (-1)*ln(Rcv)/ln(RTL)

What is reference Machining Condition?

Reference Machining Condition is usually a state of Machining Operation which has been idealized as the most suitable. It is used to draw a comparison between different other Machining Conditions.

How to Calculate Taylor's Exponent if ratios of Cutting Velocities, Tool Lives are given in two machining conditions?

Taylor's Exponent if ratios of Cutting Velocities, Tool Lives are given in two machining conditions calculator uses Taylor's Tool Life Exponent = (-1)*ln(Ratio of Cutting Velocities)/ln(Ratio of Tool Lives) to calculate the Taylor's Tool Life Exponent, The Taylor's Exponent if ratios of Cutting Velocities, Tool Lives are given in two machining conditions is a method to determine the Taylor's Tool Life Exponent when comparison has been made between two Machining Conditions with the same tool. Taylor's Tool Life Exponent is denoted by n symbol.

How to calculate Taylor's Exponent if ratios of Cutting Velocities, Tool Lives are given in two machining conditions using this online calculator? To use this online calculator for Taylor's Exponent if ratios of Cutting Velocities, Tool Lives are given in two machining conditions, enter Ratio of Cutting Velocities (Rcv) & Ratio of Tool Lives (RTL) and hit the calculate button. Here is how the Taylor's Exponent if ratios of Cutting Velocities, Tool Lives are given in two machining conditions calculation can be explained with given input values -> 0.840621 = (-1)*ln(48.00001)/ln(0.01).

FAQ

What is Taylor's Exponent if ratios of Cutting Velocities, Tool Lives are given in two machining conditions?
The Taylor's Exponent if ratios of Cutting Velocities, Tool Lives are given in two machining conditions is a method to determine the Taylor's Tool Life Exponent when comparison has been made between two Machining Conditions with the same tool and is represented as n = (-1)*ln(Rcv)/ln(RTL) or Taylor's Tool Life Exponent = (-1)*ln(Ratio of Cutting Velocities)/ln(Ratio of Tool Lives). The ratio of Cutting Velocities is the ratio of the Cutting velocity of the tool in the given machining condition to the velocity in reference machining condition & The Ratio of Tool Lives is the ratio of the Tool Life of the tool in the given machining condition to the Tool Life in reference machining condition.
How to calculate Taylor's Exponent if ratios of Cutting Velocities, Tool Lives are given in two machining conditions?
The Taylor's Exponent if ratios of Cutting Velocities, Tool Lives are given in two machining conditions is a method to determine the Taylor's Tool Life Exponent when comparison has been made between two Machining Conditions with the same tool is calculated using Taylor's Tool Life Exponent = (-1)*ln(Ratio of Cutting Velocities)/ln(Ratio of Tool Lives). To calculate Taylor's Exponent if ratios of Cutting Velocities, Tool Lives are given in two machining conditions, you need Ratio of Cutting Velocities (Rcv) & Ratio of Tool Lives (RTL). With our tool, you need to enter the respective value for Ratio of Cutting Velocities & Ratio of Tool Lives and hit the calculate button. You can also select the units (if any) for Input(s) and the Output as well.
How many ways are there to calculate Taylor's Tool Life Exponent?
In this formula, Taylor's Tool Life Exponent uses Ratio of Cutting Velocities & Ratio of Tool Lives. We can use 1 other way(s) to calculate the same, which is/are as follows -
  • Taylor's Tool Life Exponent = ln(Taylor's Intercept or Taylor's Constant/(Cutting Velocity*(Feed Rate^Taylor's exponent for Feed Rate)*(Depth of Cut^Taylor's exponent for Depth of Cut)))/ln(Tool Life)
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