Weight Strength of Explosive using Burden Suggested in Langefors' Formula Solution

STEP 0: Pre-Calculation Summary
Formula Used
Weight Strength of Explosive = (33*Burden in Langefors' Formula/Diameter of Drill Bit)^2*((Ratio of Spacing to Burden*Rock Constant*Degree of Fraction)/Degree of Packing)
s = (33*BL/db)^2*((EV*c*Df)/Dp)
This formula uses 7 Variables
Variables Used
Weight Strength of Explosive - Weight Strength of Explosive the measure the absolute amount of energy available in each gram of explosive.
Burden in Langefors' Formula - (Measured in Millimeter) - Burden in Langefors' Formula is the ratio of explosive weight to rock mass, determining efficient rock fragmentation in blasting operations.
Diameter of Drill Bit - (Measured in Millimeter) - Diameter of Drill Bit in Langefors’ Formula relates rock drillability to bit diameter, expressing the effect of diameter on drilling efficiency and performance.
Ratio of Spacing to Burden - Ratio of Spacing to Burden is the relationship between the gap size and load-carrying capacity in structural elements.
Rock Constant - Rock Constant is a fundamental geological parameter representing Earth's average continental crust composition, vital for understanding planetary evolution and geodynamics.
Degree of Fraction - Degree of Fraction is used for hole characteristics.
Degree of Packing - (Measured in Kilogram per Cubic Decimeter) - Degree of Packing is the loading weight per unit of nominal volume.
STEP 1: Convert Input(s) to Base Unit
Burden in Langefors' Formula: 0.01 Meter --> 10 Millimeter (Check conversion here)
Diameter of Drill Bit: 97.5 Millimeter --> 97.5 Millimeter No Conversion Required
Ratio of Spacing to Burden: 0.5 --> No Conversion Required
Rock Constant: 1.3 --> No Conversion Required
Degree of Fraction: 2.03 --> No Conversion Required
Degree of Packing: 3.01 Kilogram per Cubic Decimeter --> 3.01 Kilogram per Cubic Decimeter No Conversion Required
STEP 2: Evaluate Formula
Substituting Input Values in Formula
s = (33*BL/db)^2*((EV*c*Df)/Dp) --> (33*10/97.5)^2*((0.5*1.3*2.03)/3.01)
Evaluating ... ...
s = 5.02182468694097
STEP 3: Convert Result to Output's Unit
5.02182468694097 --> No Conversion Required
FINAL ANSWER
5.02182468694097 5.021825 <-- Weight Strength of Explosive
(Calculation completed in 00.011 seconds)

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22 Vibration Control in Blasting Calculators

Diameter of Drill Bit using Burden Suggested in Langefors' Formula
Go Diameter of Drill Bit = (Burden in Langefors' Formula*33)*sqrt((Rock Constant*Degree of Fraction*Ratio of Spacing to Burden)/(Degree of Packing*Weight Strength of Explosive))
Weight Strength of Explosive using Burden Suggested in Langefors' Formula
Go Weight Strength of Explosive = (33*Burden in Langefors' Formula/Diameter of Drill Bit)^2*((Ratio of Spacing to Burden*Rock Constant*Degree of Fraction)/Degree of Packing)
Maximum Weight of Explosives given Scaled Distance for Vibration Control
Go Maximum Weight of Explosives per Delay = ((Distance from Explosion to Exposure)^(-Constant of Scaled Distance β)*(Constant of Scaled Distance/Scaled Distance))^(-2/Constant of Scaled Distance β)
Distance to Exposure given Scaled Distance for Vibration Control
Go Distance from Explosion to Exposure = sqrt(Maximum Weight of Explosives per Delay)*(Scaled Distance/Constant of Scaled Distance)^(-1/Constant of Scaled Distance β)
Scaled Distance for Vibration Control
Go Scaled Distance = Constant of Scaled Distance*(Distance from Explosion to Exposure/sqrt(Maximum Weight of Explosives per Delay))^(-Constant of Scaled Distance β)
Distance of Particle Two from Site of Explosion given Velocity
Go Distance of Particle 2 from Explosion = Distance of Particle 1 from Explosion*(Velocity of Particle with Mass m1/Velocity of Particle with Mass m2)^(2/3)
Velocity of Particle One at Distance from Explosion
Go Velocity of Particle with Mass m1 = Velocity of Particle with Mass m2*(Distance of Particle 2 from Explosion/Distance of Particle 1 from Explosion)^(1.5)
Velocity of Particle Two at distance from Explosion
Go Velocity of Particle with Mass m2 = Velocity of Particle with Mass m1*(Distance of Particle 1 from Explosion/Distance of Particle 2 from Explosion)^(1.5)
Distance of Particle One from Site of Explosion
Go Distance of Particle 1 from Explosion = Distance of Particle 2 from Explosion*(Velocity of Particle with Mass m2/Velocity of Particle with Mass m1)^(2/3)
Diameter of Explosive using Burden Suggested in Konya Formula
Go Diameter of Explosive = (Burden/3.15)*(Specific Gravity of Rock/Specific Gravity of Explosive)^(1/3)
Specific Gravity of Explosive using Burden Suggested in Konya Formula
Go Specific Gravity of Explosive = Specific Gravity of Rock*(Burden/(3.15*Diameter of Explosive))^3
Specific Gravity of Rock using Burden Suggested in Konya Formula
Go Specific Gravity of Rock = Specific Gravity of Explosive*((3.15*Diameter of Explosive)/Burden)^3
Acceleration of Particles disturbed by Vibrations
Go Acceleration of Particles = (4*(pi*Frequency of Vibration)^2*Amplitude of Vibration)
Velocity of Particles disturbed by Vibrations
Go Velocity of Particle = (2*pi*Frequency of Vibration*Amplitude of Vibration)
Distance from Blast Hole to Nearest Perpendicular Free Face or Burden
Go Burden = sqrt(Diameter of Borehole*Length of Borehole)
Spacing for Multiple Simultaneous Blasting
Go Blasting Space = sqrt(Burden*Length of Borehole)
Wavelength of Vibrations caused by Blasting
Go Wavelength of Vibration = (Velocity of Vibration/Frequency of Vibration)
Velocity of Vibrations caused by Blasting
Go Velocity of Vibration = (Wavelength of Vibration*Frequency of Vibration)
Stemming at Top of Borehole to Prevent Explosive Gases from Escaping
Go Stemming at Top of Borehole = (0.7*Burden)+(Overburden/2)
Overburden given Stemming at Top of Borehole
Go Overburden = 2*(Stemming at Top of Borehole-(0.7*Burden))
Sound Pressure Level in Decibels
Go Sound Pressure Level = (Overpressure/(6.95*10^(-28)))^0.084
Diameter of Borehole using Minimum Length of Borehole
Go Diameter of Borehole = (Length of Borehole/2)

Weight Strength of Explosive using Burden Suggested in Langefors' Formula Formula

Weight Strength of Explosive = (33*Burden in Langefors' Formula/Diameter of Drill Bit)^2*((Ratio of Spacing to Burden*Rock Constant*Degree of Fraction)/Degree of Packing)
s = (33*BL/db)^2*((EV*c*Df)/Dp)

What is Burden?

The burden is the distance from a single row to the face of the excavation, or between rows in the usual case where rows are fired in sequence.

How to Calculate Weight Strength of Explosive using Burden Suggested in Langefors' Formula?

Weight Strength of Explosive using Burden Suggested in Langefors' Formula calculator uses Weight Strength of Explosive = (33*Burden in Langefors' Formula/Diameter of Drill Bit)^2*((Ratio of Spacing to Burden*Rock Constant*Degree of Fraction)/Degree of Packing) to calculate the Weight Strength of Explosive, The Weight Strength of Explosive using Burden Suggested in Langefors' Formula is defined as the weight strength of explosive when burden and other factor are known. Weight Strength of Explosive is denoted by s symbol.

How to calculate Weight Strength of Explosive using Burden Suggested in Langefors' Formula using this online calculator? To use this online calculator for Weight Strength of Explosive using Burden Suggested in Langefors' Formula, enter Burden in Langefors' Formula (BL), Diameter of Drill Bit (db), Ratio of Spacing to Burden (EV), Rock Constant (c), Degree of Fraction (Df) & Degree of Packing (Dp) and hit the calculate button. Here is how the Weight Strength of Explosive using Burden Suggested in Langefors' Formula calculation can be explained with given input values -> 5.038564 = (33*0.01/0.0975)^2*((0.5*1.3*2.03)/3010).

FAQ

What is Weight Strength of Explosive using Burden Suggested in Langefors' Formula?
The Weight Strength of Explosive using Burden Suggested in Langefors' Formula is defined as the weight strength of explosive when burden and other factor are known and is represented as s = (33*BL/db)^2*((EV*c*Df)/Dp) or Weight Strength of Explosive = (33*Burden in Langefors' Formula/Diameter of Drill Bit)^2*((Ratio of Spacing to Burden*Rock Constant*Degree of Fraction)/Degree of Packing). Burden in Langefors' Formula is the ratio of explosive weight to rock mass, determining efficient rock fragmentation in blasting operations, Diameter of Drill Bit in Langefors’ Formula relates rock drillability to bit diameter, expressing the effect of diameter on drilling efficiency and performance, Ratio of Spacing to Burden is the relationship between the gap size and load-carrying capacity in structural elements, Rock Constant is a fundamental geological parameter representing Earth's average continental crust composition, vital for understanding planetary evolution and geodynamics, Degree of Fraction is used for hole characteristics & Degree of Packing is the loading weight per unit of nominal volume.
How to calculate Weight Strength of Explosive using Burden Suggested in Langefors' Formula?
The Weight Strength of Explosive using Burden Suggested in Langefors' Formula is defined as the weight strength of explosive when burden and other factor are known is calculated using Weight Strength of Explosive = (33*Burden in Langefors' Formula/Diameter of Drill Bit)^2*((Ratio of Spacing to Burden*Rock Constant*Degree of Fraction)/Degree of Packing). To calculate Weight Strength of Explosive using Burden Suggested in Langefors' Formula, you need Burden in Langefors' Formula (BL), Diameter of Drill Bit (db), Ratio of Spacing to Burden (EV), Rock Constant (c), Degree of Fraction (Df) & Degree of Packing (Dp). With our tool, you need to enter the respective value for Burden in Langefors' Formula, Diameter of Drill Bit, Ratio of Spacing to Burden, Rock Constant, Degree of Fraction & Degree of Packing and hit the calculate button. You can also select the units (if any) for Input(s) and the Output as well.
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