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<p> Drill Bit Hydraulics</p><p>Assumptions 1) Change of pressure due to elevation is negligible. 2) Velocity upstream is negligible compared to nozzles. 3) Pressure due to friction is negligible.</p><p>2 PB 8.075E 4vn 0</p><p>PB Pressure drop across bit, vn nozzle velocity</p><p>Solving for nozzle velocity</p><p>P v B n 8.074E 4</p><p>In the field it has been shown that velocity predicted by this equation is off. So it has been modified,</p><p>P v C B n d 8.074E 4</p><p> the recommended valve for Cd is .95.</p><p>If 3 nozzles are present q q q v 1 2 3 the velocity is equal in all the jets. A1 A2 A3</p><p> q q1 q2 q3 vn A1 vn A2 vn A3</p><p>That gives us </p><p> q q vn In field units vn At 3.117At</p><p>2 q in gpm, At in inches , vn in ft/sec solving for the pressure drop</p><p>8.311E 5q 2 PB 2 2 Cd At</p><p> is #/gal</p><p>Flow Exponent It can be deduced that </p><p> Pf CQ C is a constant</p><p> log Pf logC logQ</p><p>So the log log plot of this equation is a straight line with a slope of . can found if two Pf and Q are known, this can be achieved by measuring the standpipe or surface pressure for 2 pumping rates. Ps=Pf+PB so by using the above equation PB can be calculated and subtracted from Ps to find Pf.</p><p>8.311E 5q 2 Pf Ps 2 2 after finding Pf , can be found by Cd At</p><p> P log f 2 Pf 1 Q log 2 Q1 Maximum Drill Bit Hydraulic Horsepower Criterion assumes that optimum hole cleaning is achieved if the hydraulic horsepower across the bit is maximized with respect to the flow rate Q.</p><p>H HB PBQ</p><p> Sub in PB Ps CQ 1 H HB Ps CQ</p><p>Take the first derivative of H with respect to Q set the result to 0.</p><p> gH HB P 1CQ 0 dQ s</p><p> 1 Pf CQ Ps 1Pf 0 or Pf PS 1 this is the root that makes HHB a maximum.</p><p>Hence the optimum bit hydraulics will be achieved if friction pressure loss in the system is maintained at an optimum value of </p><p>1 P P fopt 1 s max</p><p> across the nozzles</p><p> P P P P Bopt s max fopt 1 s max</p><p>Calculate or measure a Pfqa @ some Qa then knowing Pfopt a Qopt can be calculated by 1 P Q Q anti log log fopt opt a P fqa With Qopt known the PBopt can be rewritten</p><p>8.3E 5Qopt PBopt 2 2 AtoptCd</p><p>8.3E 5Qopt solve for Atopt Atopt 2 Cd PBopt</p><p> 2 if all nozzles are the same size Atopt nd nopt n is the number of nozzles 4</p><p>Atopt solve for dnopt d nopt n</p><p>Example: DP 41/2” 20#/ft, Collars 7” 120.3#/ft 1000’</p><p>Mud 300 21, 29, 15.5 #/gal Pump Pmax 5440 psi HHP 1600hp 80% TD 12,000’ Vamin 85 ft/min Bit 8 7/8” 14-14-14 Hole size 9 7/8”</p><p>Rate data</p><p>Q1 300 GPM @ Pf1 2966 psi Q2 400 GPM @ Pf2 4883 psi</p><p>Find 8.311E5Q 2 PB 2 2 Cd At</p><p>8.311E515.5 3002 8.311E515.5 4002 PB1 2 2 631.6 psi PB2 2 2 1122.8psi .95 .45099 .95 .45099</p><p>Pf 1 2966 631.6 2344.4 psi Pf 2 4883 1122.8 3760.2 psi</p><p> P log f 2 P log3760.2 f 1 2344.4 1.66 Q2 log 400 log 300 Q1 </p><p>Find Qmax and Qmin</p><p>Q 1714 .8 1600 403gpm max 5440 Based on pump</p><p>Q 2.448 9.8752 4.52 85 268gpm min 60 Based on velocity</p><p>Optimum friction pressure</p><p> 1 1 Pfopt Pp max 5440 2047 psi 1 1.66 1</p><p>Optimum pressure drop at the bit</p><p>PB Pp max Pfopt 5440 2047 3933psi</p><p>Optimum flow rate 1 Pfopt 1 2047 Q Q anti log log 300anti log log 227gpm opt a P 1.66 2334 fqa </p><p>This is lower than the max and higher than min flow rates.</p><p>Optimum nozzle area </p><p>2 2 8.311E 5 Qopt 8.311E 515.5 227 2 Atopt 2 2 .15in Cd PBopt .95 3393</p><p>For 3 equal sized jets</p><p> d 2 .15 .25in nopt 3</p><p>Homework 10/31/08 The rate in gpm to have turbulent flow in the annulus of the previous homework. What will the friction drop be in the drill string and annulus if the fluid is water.</p><p>The maximum jet impact force criterion assumes that the bottom-hole cleaning is achieved by maximizing the jet impact force with respect to the flow rate. The impact force at the bottom of the hole can be derived form Newton’s second law of motion</p><p>Fj BQ PB B .01823Cd Q in gpm in #/gal</p><p> PB Ps Pf Ps CQ</p><p> Fj BQ Ps CQ</p><p> limitations 1) maximum pump horsepower 2) maximum surface pressure</p><p>For the shallow portion of the well Pf is small and the flow rate requirement is large the impact force is limited only by the pump horsepower, therefore, the allowable surface pressure, expressed as</p><p>H P p max s Q substituting </p><p>H F BQ p max CQ B H Q CQ 2 j Q p max</p><p>Differentiate and set to 0</p><p> 1 dFj .5BH p max ( 2)CQ 0 dQ 2 H p maxQ CQ</p><p>For a valid solution the numerator must be equal to zero.</p><p>Solve for the optimum friction pressure</p><p>1 P P fopt 2 sopt then solve for the optimum bit pressure</p><p> 1 P P P P Bopt sopt fopt 2 sopt</p><p>In the deeper sections of the well the friction pressure loss increases, while the flow rate requirement decreases. Therefore the impact force will limited by the maximum allowed pump pressure, Psmax.</p><p> Pj BQ Ps max CQ</p><p>Differentiate and set to 0</p><p> 1 dFj .5BP ( 2)CQ s max 0 dQ 2 Ps maxQ CQ</p><p>For a valid solution the numerator must be equal to zero.</p><p>2 P P fopt 2 s max Gives </p><p> P P P P Bopt s max fopt 2 s max</p><p>Example Same data as Hydraulic example</p><p>So =1.66 Qmax=4.3 gpm Qmin=268 gpm At 12,000 feet the pump pressure is the limiting factor.</p><p>2 2 5440 P P 2975psi fopt 2 s max 1.66 2</p><p>PBopt Ps max Pfopt 5440 2975 2465psi</p><p> 1 Pfopt 1 2975 Q Q anti log log 300anti log log 347gpm opt a P 1.66 2334 fqa </p><p>It is bounded by the min and max flow rates, so</p><p>2 2 8.311E 5 Qopt 8.311E 515.5347 2 Atopt 2 2 .26in Cd PBopt .95 2465</p><p> d 2 .26 .332in 10.6 / 32" nopt 3</p><p>3 - 11 jets have an area of .27in2.</p><p>Section 4.13 in text, pages 156, 157</p>
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