Initial weight of workpiece given Loading and Unloading time Solution

STEP 0: Pre-Calculation Summary
Formula Used
Initial Work Piece Weight = (Loading And Unloading Time-Constant For Tool Type(c))/Constant For Tool Type(d)
W = (tln-c)/d
This formula uses 4 Variables
Variables Used
Initial Work Piece Weight - (Measured in Kilogram) - The Initial work piece weight is defined as the weight of the work piece before undergoing machining operation.
Loading And Unloading Time - (Measured in Second) - Loading and Unloading time is the time required to load/unload the workpiece before the start of machine operation.
Constant For Tool Type(c) - (Measured in Radian) - Constant for tool type(c) is defined as the constant for the type of material used in the tool.
Constant For Tool Type(d) - Constant for tool type(d) is defined as the constant for the type of material used in the tool.
STEP 1: Convert Input(s) to Base Unit
Loading And Unloading Time: 30 Second --> 30 Second No Conversion Required
Constant For Tool Type(c): 15.92001 Radian --> 15.92001 Radian No Conversion Required
Constant For Tool Type(d): 1.1 --> No Conversion Required
STEP 2: Evaluate Formula
Substituting Input Values in Formula
W = (tln-c)/d --> (30-15.92001)/1.1
Evaluating ... ...
W = 12.7999909090909
STEP 3: Convert Result to Output's Unit
12.7999909090909 Kilogram --> No Conversion Required
FINAL ANSWER
12.7999909090909 12.79999 Kilogram <-- Initial Work Piece Weight
(Calculation completed in 00.004 seconds)

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National Institute of Technology (NIT), Srinagar
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19 Initial Weight of Workpiece Calculators

Initial weight of workpiece given Total rate for Machining and Operator
​ Go Initial Work Piece Weight = ((Total Rate of Machining and Operator-(Factor to Allow For Operator*Direct Labor Rate))*(2*Amortized Years*Number of Shifts)/(Constant For Tool Type(e)*Factor to Allow For Machining))^(1/Constant for Tool Type(f))
Direct labour Rate given Total rate for Machining and Operator
​ Go Direct Labor Rate = (Total Rate of Machining and Operator-((Factor to Allow For Machining*Constant For Tool Type(e)*Initial Work Piece Weight^Constant for Tool Type(f))/(2*Amortized Years*Number of Shifts)))/Factor to Allow For Operator
Total rate for Machining and Operator
​ Go Total Rate of Machining and Operator = ((Factor to Allow For Machining*Constant For Tool Type(e)*Initial Work Piece Weight^Constant for Tool Type(f))/(2*Amortized Years*Number of Shifts))+(Factor to Allow For Operator*Direct Labor Rate)
Initial weight of workpiece given Machining time for maximum power
​ Go Initial Work Piece Weight = ((Density of Work Piece*Constant For Tool Type(a)*Machining Time For Maximum Power)/(Proportion of Initial Volume*Specific Cutting Energy in Machining))^(1/(1-Constant For Tool Type(b)))
Proportion of Initial Volume of workpiece to be removed given Initial weight of workpiece
​ Go Proportion of Initial Volume = (Machining Time For Maximum Power*Density of Work Piece*Constant For Tool Type(a))/(Specific Cutting Energy in Machining*Initial Work Piece Weight^(1-Constant For Tool Type(b)))
Specific cutting energy given Initial weight of workpiece
​ Go Specific Cutting Energy in Machining = (Machining Time For Maximum Power*Density of Work Piece*Constant For Tool Type(a))/(Proportion of Initial Volume*Initial Work Piece Weight^(1-Constant For Tool Type(b)))
Density of Workpiece given Initial weight of workpiece
​ Go Density of Work Piece = (Proportion of Initial Volume*Specific Cutting Energy in Machining*Initial Work Piece Weight^(1-Constant For Tool Type(b)))/(Machining Time For Maximum Power*Constant For Tool Type(a))
Length of Workpiece given Machining time for maximum power
​ Go Length of Workpiece = (Machining Time For Maximum Power*Power Available For Machining)/(Specific Cutting Energy in Machining*pi*Diameter of Workpiece*Depth of Cut)
Constant for machine type b given Power available for Machining
​ Go Constant For Tool Type(b) = (ln(Power Available For Machining/Constant For Tool Type(a)))/(ln(Initial Work Piece Weight))
Power available for Machining given Initial weight of workpiece
​ Go Power Available For Machining = Constant Power For Tool Type(a)*(Initial Work Piece Weight)^Constant For Tool Type(b)
Initial weight of workpiece given Cost of Machine tool
​ Go Initial Work Piece Weight For Machine Tool = (Cost of A Tool/Constant For Tool Type(e))^(1/Constant for Tool Type(f))
Initial weight of workpiece given Power available for Machining
​ Go Initial Work Piece Weight = (Power Available For Machining/Constant For Tool Type(a))^(1/Constant For Tool Type(b))
Constant for machine type given Power available for Machining
​ Go Constant For Tool Type(a) = Power Available For Machining/(Initial Work Piece Weight)^Constant For Tool Type(b)
Loading and Unloading time given initial weight of workpiece
​ Go Loading And Unloading Time = Constant For Tool Type(c)+(Constant For Tool Type(d)*Initial Work Piece Weight)
Initial weight of workpiece given Loading and Unloading time
​ Go Initial Work Piece Weight = (Loading And Unloading Time-Constant For Tool Type(c))/Constant For Tool Type(d)
Surface area of Workpiece given Surface Generation rate
​ Go Surface Area of Workpiece = (Machining Surface Generation Time For Minimum Cost*Surface Generation Rate)
Initial weight of workpiece given Machining time under Max power for free machining
​ Go Initial Work Piece Weight For Free Machining = (Machining Time For Maximum Power/49.9)^(1/0.47)
Initial weight of workpiece given Length-to-diameter Ratio
​ Go Initial Work Piece Weight = (1.26/Length to Diameter Ratio)^(1/0.29)
Length-to-diameter Ratio in terms Initial weight of workpiece
​ Go Length to Diameter Ratio = 1.26/(Initial Work Piece Weight^0.29)

Initial weight of workpiece given Loading and Unloading time Formula

Initial Work Piece Weight = (Loading And Unloading Time-Constant For Tool Type(c))/Constant For Tool Type(d)
W = (tln-c)/d

What is hard turning process?

Hard turning is typically defined as the turning of a part or bar stock of harder than 45HRC on a lathe or turning center. Since surface roughness of Rmax/Rz=1.6s can be achieved, hard turning is often considered a replacement for grinding operations or as a pre-grinding process.

How to Calculate Initial weight of workpiece given Loading and Unloading time?

Initial weight of workpiece given Loading and Unloading time calculator uses Initial Work Piece Weight = (Loading And Unloading Time-Constant For Tool Type(c))/Constant For Tool Type(d) to calculate the Initial Work Piece Weight, The Initial weight of workpiece given Loading and Unloading time is defined as the weight of the workpiece before undergoing machining operation. Initial Work Piece Weight is denoted by W symbol.

How to calculate Initial weight of workpiece given Loading and Unloading time using this online calculator? To use this online calculator for Initial weight of workpiece given Loading and Unloading time, enter Loading And Unloading Time (tln), Constant For Tool Type(c) (c) & Constant For Tool Type(d) (d) and hit the calculate button. Here is how the Initial weight of workpiece given Loading and Unloading time calculation can be explained with given input values -> 26.90909 = (30-15.92001)/1.1.

FAQ

What is Initial weight of workpiece given Loading and Unloading time?
The Initial weight of workpiece given Loading and Unloading time is defined as the weight of the workpiece before undergoing machining operation and is represented as W = (tln-c)/d or Initial Work Piece Weight = (Loading And Unloading Time-Constant For Tool Type(c))/Constant For Tool Type(d). Loading and Unloading time is the time required to load/unload the workpiece before the start of machine operation, Constant for tool type(c) is defined as the constant for the type of material used in the tool & Constant for tool type(d) is defined as the constant for the type of material used in the tool.
How to calculate Initial weight of workpiece given Loading and Unloading time?
The Initial weight of workpiece given Loading and Unloading time is defined as the weight of the workpiece before undergoing machining operation is calculated using Initial Work Piece Weight = (Loading And Unloading Time-Constant For Tool Type(c))/Constant For Tool Type(d). To calculate Initial weight of workpiece given Loading and Unloading time, you need Loading And Unloading Time (tln), Constant For Tool Type(c) (c) & Constant For Tool Type(d) (d). With our tool, you need to enter the respective value for Loading And Unloading Time, Constant For Tool Type(c) & Constant For Tool Type(d) 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 Initial Work Piece Weight?
In this formula, Initial Work Piece Weight uses Loading And Unloading Time, Constant For Tool Type(c) & Constant For Tool Type(d). We can use 4 other way(s) to calculate the same, which is/are as follows -
  • Initial Work Piece Weight = (Power Available For Machining/Constant For Tool Type(a))^(1/Constant For Tool Type(b))
  • Initial Work Piece Weight = ((Density of Work Piece*Constant For Tool Type(a)*Machining Time For Maximum Power)/(Proportion of Initial Volume*Specific Cutting Energy in Machining))^(1/(1-Constant For Tool Type(b)))
  • Initial Work Piece Weight = ((Total Rate of Machining and Operator-(Factor to Allow For Operator*Direct Labor Rate))*(2*Amortized Years*Number of Shifts)/(Constant For Tool Type(e)*Factor to Allow For Machining))^(1/Constant for Tool Type(f))
  • Initial Work Piece Weight = (1.26/Length to Diameter Ratio)^(1/0.29)
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