bkell
Mechanical
- Apr 23, 2015
- 2
Hello,
BACKGROUND
-need to size Rupture Disk
--nonfire case
--liquid is discharge fluid (BRINE aka salt water)
--vent to atmosphere
--using API 520, 9th edition, July 2014
--able to use the Coefficient of Discharge Method where Kd=0.62
QUESTION
-Section 5.11.1.2.1 says to use Equation 28 to size the Rupture Disk for liquid case. (the same equation for PRV in liquid case)
-HOWEVER, for Rupture Disks, do i just use Equation 28 with Kv=1 (viscosity correction factor of 1)??
OR
-Continue to Section 5.8.1.4 where you choose an Area that is the next orifice size larger than this A calculated by Equation 28 by using the API 526 Table 1 (standard orifice size).
REASON WHY I ASK
-my company offers an approved computer program named INSTRUCALC so before accepting its integrity, I wanted to check it against my previous calculations mentioned in the Background.
-the answer i got was the area, A, provided by Equation 28 . . . but my required area included the parts after Section 5.8.1.4 where i found the next Area larger than A from Equation 28, plugged that into the Reynold's equation (Equation 31,32), then plugged the Reynold's into Correction Factor (Equation 30), which ultimately changed the REQUIRED area (Equation 37).
-i found this resource on FIKE since i began to second guess myself but it shows that for viscous fluids, you DO need to continue and find the next Area that is larger than your A and so on.
OVERALL
-i understand the steps pretty well and would like some clarification . . . perhaps my understanding is flawed . . . if anybody could help that would be fantastic! thanks!
EQUATION 28
A = [Q/(38*Kd*Kw*Kv)] * sqrt of [G/(P1-P2)]
A = Required discharge area (in^2)
Kd = Effective coefficient of discharge (0.62)
Kw = Correction for back pressure (do not need)
P1 = Pressure 1 (set relief + 10% overpressure)
P2 = Pressure 2 (vented to atmosphere so will be 0 psig)
Kv = Viscosity correction factor
G = S.G. of liquid at the flowing temp referred to water at standard conditions
Q = Flowrate (gal/min)
BACKGROUND
-need to size Rupture Disk
--nonfire case
--liquid is discharge fluid (BRINE aka salt water)
--vent to atmosphere
--using API 520, 9th edition, July 2014
--able to use the Coefficient of Discharge Method where Kd=0.62
QUESTION
-Section 5.11.1.2.1 says to use Equation 28 to size the Rupture Disk for liquid case. (the same equation for PRV in liquid case)
-HOWEVER, for Rupture Disks, do i just use Equation 28 with Kv=1 (viscosity correction factor of 1)??
OR
-Continue to Section 5.8.1.4 where you choose an Area that is the next orifice size larger than this A calculated by Equation 28 by using the API 526 Table 1 (standard orifice size).
REASON WHY I ASK
-my company offers an approved computer program named INSTRUCALC so before accepting its integrity, I wanted to check it against my previous calculations mentioned in the Background.
-the answer i got was the area, A, provided by Equation 28 . . . but my required area included the parts after Section 5.8.1.4 where i found the next Area larger than A from Equation 28, plugged that into the Reynold's equation (Equation 31,32), then plugged the Reynold's into Correction Factor (Equation 30), which ultimately changed the REQUIRED area (Equation 37).
-i found this resource on FIKE since i began to second guess myself but it shows that for viscous fluids, you DO need to continue and find the next Area that is larger than your A and so on.
OVERALL
-i understand the steps pretty well and would like some clarification . . . perhaps my understanding is flawed . . . if anybody could help that would be fantastic! thanks!
EQUATION 28
A = [Q/(38*Kd*Kw*Kv)] * sqrt of [G/(P1-P2)]
A = Required discharge area (in^2)
Kd = Effective coefficient of discharge (0.62)
Kw = Correction for back pressure (do not need)
P1 = Pressure 1 (set relief + 10% overpressure)
P2 = Pressure 2 (vented to atmosphere so will be 0 psig)
Kv = Viscosity correction factor
G = S.G. of liquid at the flowing temp referred to water at standard conditions
Q = Flowrate (gal/min)