Force Acting on Engine Push Rod given its Dimensions and Stress Generated Solution

STEP 0: Pre-Calculation Summary
Formula Used
Force on Push Rod = (Stress in Push Rod*pi/4*(Outer Diameter of Push Rod^2-Inner Diameter of Push Rod^2))/(1+Constant used in Buckling Load Formula*((Length of Push Rod^2)/((Outer Diameter of Push Rod^2+Inner Diameter of Push Rod^2)/16)))
P = (σc*pi/4*(do^2-di^2))/(1+a*((l^2)/((do^2+di^2)/16)))
This formula uses 1 Constants, 6 Variables
Constants Used
pi - Archimedes' constant Value Taken As 3.14159265358979323846264338327950288
Variables Used
Force on Push Rod - (Measured in Newton) - Force on Push Rod is defined as the force (a push or pull on the pushrod resulting from its interaction with another part) that is acting onto the pushrod.
Stress in Push Rod - (Measured in Pascal) - Stress in Push Rod is defined as the force per unit area within the push rod material that arises due to the externally applied forces onto it.
Outer Diameter of Push Rod - (Measured in Meter) - Outer Diameter of Push Rod is the external diameter or the outside surface diameter of the push rod.
Inner Diameter of Push Rod - (Measured in Meter) - Inner Diameter of Push Rod is the internal diameter or the inside surface diameter of the push rod.
Constant used in Buckling Load Formula - Constant used in buckling load formula is a constant used in the calculation of critical buckling load in a member.
Length of Push Rod - (Measured in Meter) - Length of Push Rod is the size of the push rod from one end to another end (how long the rod is).
STEP 1: Convert Input(s) to Base Unit
Stress in Push Rod: 12 Newton per Square Millimeter --> 12000000 Pascal (Check conversion ​here)
Outer Diameter of Push Rod: 10 Millimeter --> 0.01 Meter (Check conversion ​here)
Inner Diameter of Push Rod: 7 Millimeter --> 0.007 Meter (Check conversion ​here)
Constant used in Buckling Load Formula: 0.000133 --> No Conversion Required
Length of Push Rod: 70 Millimeter --> 0.07 Meter (Check conversion ​here)
STEP 2: Evaluate Formula
Substituting Input Values in Formula
P = (σc*pi/4*(do^2-di^2))/(1+a*((l^2)/((do^2+di^2)/16))) --> (12000000*pi/4*(0.01^2-0.007^2))/(1+0.000133*((0.07^2)/((0.01^2+0.007^2)/16)))
Evaluating ... ...
P = 449.226278350787
STEP 3: Convert Result to Output's Unit
449.226278350787 Newton --> No Conversion Required
FINAL ANSWER
449.226278350787 449.2263 Newton <-- Force on Push Rod
(Calculation completed in 00.004 seconds)

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16 Push Rod Calculators

Force Acting on Engine Push Rod given its Dimensions and Stress Generated
​ Go Force on Push Rod = (Stress in Push Rod*pi/4*(Outer Diameter of Push Rod^2-Inner Diameter of Push Rod^2))/(1+Constant used in Buckling Load Formula*((Length of Push Rod^2)/((Outer Diameter of Push Rod^2+Inner Diameter of Push Rod^2)/16)))
Radius of Gyration of Engine Push Rod given Stress, Force and Cross Section Area
​ Go Radius of Gyration of Push Rod = sqrt(((Length of Push Rod^2)*Constant used in Buckling Load Formula)/(((Stress in Push Rod*Cross Sectional Area of Push Rod)/Force on Push Rod)-1))
Actual Length of Engine Push Rod
​ Go Length of Push Rod = sqrt(Radius of Gyration of Push Rod^2/Constant used in Buckling Load Formula*((Stress in Push Rod*Cross Sectional Area of Push Rod)/Force on Push Rod-1))
Cross Section Area of Engine Push Rod given Force, Stress, and Radius of Gyration
​ Go Cross Sectional Area of Push Rod = (Force on Push Rod*(1+Constant used in Buckling Load Formula*(Length of Push Rod/Radius of Gyration of Push Rod)^2))/Stress in Push Rod
Compressive Stress in Engine Push Rod
​ Go Stress in Push Rod = (Force on Push Rod*(1+Constant used in Buckling Load Formula*(Length of Push Rod/Radius of Gyration of Push Rod)^2))/Cross Sectional Area of Push Rod
Force Acting on Engine Push Rod
​ Go Force on Push Rod = (Stress in Push Rod*Cross Sectional Area of Push Rod)/(1+Constant used in Buckling Load Formula*(Length of Push Rod/Radius of Gyration of Push Rod)^2)
Force Acting on Engine Push Rod Made of Steel
​ Go Force on Push Rod = (Stress in Push Rod*Cross Sectional Area of Push Rod)/(1+1/7500*(Length of Push Rod/Radius of Gyration of Push Rod)^2)
Moment of Inertia of Cross Section of Engine Push Rod
​ Go Area Moment of Inertia of Push Rod = pi/64*(Outer Diameter of Push Rod^4-Inner Diameter of Push Rod^4)
Radius of Gyration of Cross Section of Engine Push Rod
​ Go Radius of Gyration of Push Rod = sqrt((Outer Diameter of Push Rod^2+Inner Diameter of Push Rod^2)/16)
Area of Cross Section of Engine Push Rod
​ Go Cross Sectional Area of Push Rod = pi/4*(Outer Diameter of Push Rod^2-Inner Diameter of Push Rod^2)
Outer Diameter of Engine Push Rod given Radius of Gyration
​ Go Outer Diameter of Push Rod = sqrt(16*Radius of Gyration of Push Rod^2-Inner Diameter of Push Rod^2)
Inner Diameter of Engine Push Rod given Radius of Gyration
​ Go Inner Diameter of Push Rod = sqrt(16*Radius of Gyration of Push Rod^2-Outer Diameter of Push Rod^2)
Minimum Inner Diameter of Engine Push Rod given Outer Diameter
​ Go Inner Diameter of Push Rod = 0.6*Outer Diameter of Push Rod
Maximum Inner Diameter of Engine Push Rod given Outer Diameter
​ Go Inner Diameter of Push Rod = 0.8*Outer Diameter of Push Rod
Maximum Outer Diameter of Engine Push Rod given Inner Diameter
​ Go Outer Diameter of Push Rod = Inner Diameter of Push Rod/0.6
Minimum Outer Diameter of Engine Push Rod given Inner Diameter
​ Go Outer Diameter of Push Rod = Inner Diameter of Push Rod/0.8

Force Acting on Engine Push Rod given its Dimensions and Stress Generated Formula

Force on Push Rod = (Stress in Push Rod*pi/4*(Outer Diameter of Push Rod^2-Inner Diameter of Push Rod^2))/(1+Constant used in Buckling Load Formula*((Length of Push Rod^2)/((Outer Diameter of Push Rod^2+Inner Diameter of Push Rod^2)/16)))
P = (σc*pi/4*(do^2-di^2))/(1+a*((l^2)/((do^2+di^2)/16)))

Symptoms of Pushrod failure

If the intake valve's pushrod is bent, the valve will come into contact with the piston. If a valve has been opened up because of a loose lock nut or if it has been adjusted with an incorrect clearance. It can make the valve bend.

How to Calculate Force Acting on Engine Push Rod given its Dimensions and Stress Generated?

Force Acting on Engine Push Rod given its Dimensions and Stress Generated calculator uses Force on Push Rod = (Stress in Push Rod*pi/4*(Outer Diameter of Push Rod^2-Inner Diameter of Push Rod^2))/(1+Constant used in Buckling Load Formula*((Length of Push Rod^2)/((Outer Diameter of Push Rod^2+Inner Diameter of Push Rod^2)/16))) to calculate the Force on Push Rod, Force acting on engine push rod given its dimensions and stress generated is the amount of force acting onto the end of a pushrod which is fitted with a lifter, upon which the camshaft makes contact. The camshaft lobe moves the lifter upwards, which moves the pushrod. Force on Push Rod is denoted by P symbol.

How to calculate Force Acting on Engine Push Rod given its Dimensions and Stress Generated using this online calculator? To use this online calculator for Force Acting on Engine Push Rod given its Dimensions and Stress Generated, enter Stress in Push Rod c), Outer Diameter of Push Rod (do), Inner Diameter of Push Rod (di), Constant used in Buckling Load Formula (a) & Length of Push Rod (l) and hit the calculate button. Here is how the Force Acting on Engine Push Rod given its Dimensions and Stress Generated calculation can be explained with given input values -> 449.2263 = (12000000*pi/4*(0.01^2-0.007^2))/(1+0.000133*((0.07^2)/((0.01^2+0.007^2)/16))).

FAQ

What is Force Acting on Engine Push Rod given its Dimensions and Stress Generated?
Force acting on engine push rod given its dimensions and stress generated is the amount of force acting onto the end of a pushrod which is fitted with a lifter, upon which the camshaft makes contact. The camshaft lobe moves the lifter upwards, which moves the pushrod and is represented as P = (σc*pi/4*(do^2-di^2))/(1+a*((l^2)/((do^2+di^2)/16))) or Force on Push Rod = (Stress in Push Rod*pi/4*(Outer Diameter of Push Rod^2-Inner Diameter of Push Rod^2))/(1+Constant used in Buckling Load Formula*((Length of Push Rod^2)/((Outer Diameter of Push Rod^2+Inner Diameter of Push Rod^2)/16))). Stress in Push Rod is defined as the force per unit area within the push rod material that arises due to the externally applied forces onto it, Outer Diameter of Push Rod is the external diameter or the outside surface diameter of the push rod, Inner Diameter of Push Rod is the internal diameter or the inside surface diameter of the push rod, Constant used in buckling load formula is a constant used in the calculation of critical buckling load in a member & Length of Push Rod is the size of the push rod from one end to another end (how long the rod is).
How to calculate Force Acting on Engine Push Rod given its Dimensions and Stress Generated?
Force acting on engine push rod given its dimensions and stress generated is the amount of force acting onto the end of a pushrod which is fitted with a lifter, upon which the camshaft makes contact. The camshaft lobe moves the lifter upwards, which moves the pushrod is calculated using Force on Push Rod = (Stress in Push Rod*pi/4*(Outer Diameter of Push Rod^2-Inner Diameter of Push Rod^2))/(1+Constant used in Buckling Load Formula*((Length of Push Rod^2)/((Outer Diameter of Push Rod^2+Inner Diameter of Push Rod^2)/16))). To calculate Force Acting on Engine Push Rod given its Dimensions and Stress Generated, you need Stress in Push Rod c), Outer Diameter of Push Rod (do), Inner Diameter of Push Rod (di), Constant used in Buckling Load Formula (a) & Length of Push Rod (l). With our tool, you need to enter the respective value for Stress in Push Rod, Outer Diameter of Push Rod, Inner Diameter of Push Rod, Constant used in Buckling Load Formula & Length of Push Rod 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 Force on Push Rod?
In this formula, Force on Push Rod uses Stress in Push Rod, Outer Diameter of Push Rod, Inner Diameter of Push Rod, Constant used in Buckling Load Formula & Length of Push Rod. We can use 2 other way(s) to calculate the same, which is/are as follows -
  • Force on Push Rod = (Stress in Push Rod*Cross Sectional Area of Push Rod)/(1+Constant used in Buckling Load Formula*(Length of Push Rod/Radius of Gyration of Push Rod)^2)
  • Force on Push Rod = (Stress in Push Rod*Cross Sectional Area of Push Rod)/(1+1/7500*(Length of Push Rod/Radius of Gyration of Push Rod)^2)
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