CN103758754B - The quaterfoil differential pump that a kind of Bath main officer of Tibet noncircular gear drives - Google Patents

The quaterfoil differential pump that a kind of Bath main officer of Tibet noncircular gear drives Download PDF

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CN103758754B
CN103758754B CN201410039965.1A CN201410039965A CN103758754B CN 103758754 B CN103758754 B CN 103758754B CN 201410039965 A CN201410039965 A CN 201410039965A CN 103758754 B CN103758754 B CN 103758754B
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tibet
noncircular gear
bath main
main officer
officer
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CN103758754A (en
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徐高欢
陈建能
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Zhejiang University of Water Resources and Electric Power
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Zhejiang University of Water Resources and Electric Power
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Abstract

The invention discloses the quaterfoil differential pump that a kind of Bath main officer of Tibet noncircular gear drives.Existing differential pump is difficult to optimize the problem such as pressure pulsation, tired liquid.First Bath main officer of Tibet noncircular gear of the present invention and the second Bath main officer of Tibet noncircular gear are all fixed on input shaft; First conjugation Bath main officer of Tibet noncircular gear and the first impeller are all fixedly mounted on output shaft, and the first conjugation Bath main officer of Tibet noncircular gear engages with the first Bath main officer of Tibet noncircular gear; Second conjugation Bath main officer of Tibet noncircular gear and the second impeller are cemented on axle sleeve, and axle sleeve kink is on output shaft; Second conjugation Bath main officer of Tibet noncircular gear engages with the second Bath main officer of Tibet noncircular gear; Pump case along the circumferential direction offers the first liquid port, the first liquid sucting port, the second liquid port and the second liquid sucting port successively; First impeller and the second impeller are provided with two panels blade, and all blade interior are all provided with a unidirectional Decompression valves.Discharge capacity of the present invention is large, stability of flow, and variable speed rule easily adjusts, and effectively solves tired liquid problem.

Description

The quaterfoil differential pump that a kind of Bath main officer of Tibet noncircular gear drives
Technical field
The invention belongs to displacement pump technical field, relate to blade differential pump, be specifically related to the quaterfoil differential pump that a kind of Bath main officer of Tibet noncircular gear drives.
Background technique
The liquid pump that universal machine is conventional has reciprocating pump, plunger pump, diaphragm pump, roller pump and centrifugal pump, wherein: live (post) fills in pump higher outlet pressure, but require that the sealing between piston and cylinder barrel is reliable, and pressure surge is large; Diaphragm pump can produce a more stable liquid stream when multi-cylinder, but complex structure; Roller pump delivery is uniform when stabilization of speed, and along with the raising of pressure, leakage rate increases, the lifting rate of pump and the corresponding reduction of efficiency; Centrifugal pump structure is simple, easily manufactures, but its discharge capacity is large, and pressure is low, for the less demanding occasion of working pressure.There is respective defect in these pumps, can't meet the constant flow rate of part special mechanical requirement, the demand of high pressure well.
Existing differential pump mainly contains following several according to the difference of driving mechanism:
Rotating guide-bar-gear type blade differential pump, its drive system bears alternate load, produces gear tooth noise, and also can cause impact noise when each pair clearance is larger.
Universal-joint gear wheel mechanism drive vane differential pump, the input shaft of its universal joint mechanism and the angle of output shaft are the key parameters affecting pump performance.This angle is larger, and pump delivery is also larger, but along with the increase at this angle, the flow pulsation aggravation of pump and the transmission efficiency of universal joint reduce.
Distortion eccentric circle noncircular gear drive vane differential pump, its eccentric circle non-circular gear pitch curve adjustment parameter mainly eccentricity and deformation coefficient, adjustment amount is limited, Adjustment precision is not high, cause velocity ratio optimization, adjustment inconvenience, design dumb, be unfavorable for further optimal design, be difficult to optimize the problem such as pressure pulsation, tired liquid.Summary of the invention
The object of the invention is for the deficiencies in the prior art, the quaterfoil differential pump that a kind of Bath main officer of Tibet noncircular gear drives be provided, this blade differential pump displacement is large, pressure is high, stability of flow, compact structure; The variable speed rule of driving mechanism easily adjusts, convenient function optimization; By installing unidirectional Decompression valves in blade, during pressure limit, getting through contiguous enclosed cavity, effectively solving existing differential pump and being stranded liquid problem.
The present invention includes driver part and differential pump parts.
Described driver part comprises driving gearbox, input shaft, output shaft, the first Bath main officer of Tibet noncircular gear, the second Bath main officer of Tibet noncircular gear, the first conjugation Bath main officer of Tibet noncircular gear, the second conjugation Bath main officer of Tibet noncircular gear and axle sleeve; Motor is connected with input shaft by coupling, and input shaft passes through two bearings in the two side of driving gearbox; The first described Bath main officer of Tibet noncircular gear and the second Bath main officer of Tibet noncircular gear are all fixedly mounted on input shaft; The two ends of output shaft are respectively by bearings on the tank wall of driving gearbox and pump case, and the first conjugation Bath main officer of Tibet noncircular gear is arranged on output shaft, and engages with the first Bath main officer of Tibet noncircular gear; Second conjugation Bath main officer of Tibet noncircular gear and the second impeller are all cemented on axle sleeve, and axle sleeve kink is on output shaft, and the second conjugation Bath main officer of Tibet noncircular gear engages with the second Bath main officer of Tibet noncircular gear.
Described differential pump parts comprise pump case, the first impeller, the second impeller and unidirectional Decompression valves; Described pump case along the circumferential direction offers the first liquid port, the first liquid sucting port, the second liquid port and the second liquid sucting port successively; First impeller is fixed on output shaft; The first described impeller and the second impeller are all symmetrically arranged with two panels blade, and the outer arced surface of every sheet blade and the inwall of pump case are fitted; Along the circumferential direction, the blade of the first impeller and the alternate setting of blade of the second impeller; All blade interior all install a unidirectional Decompression valves, and unidirectional Decompression valves direction is consistent with wheel rotation direction.
According to pump structure, the centre distance initial value a of given first Bath main officer of Tibet noncircular gear and the first conjugation Bath main officer of Tibet noncircular gear 0, then according to pitch curve sealing condition and meshing condition, adopt the search of advance and retreat method to obtain the exact value of centre distance a.Specifically be calculated as follows:
According to the generating principle of Pascal curve, the pitch curve representation of the first Bath main officer of Tibet noncircular gear is:
Wherein, b is the generation circular diameter of Pascal curve, and l is length, n 1be the exponent number of the first Bath main officer of Tibet noncircular gear, value is 2; be the corner of the first Bath main officer of Tibet noncircular gear, it is the corresponding corner of the first Bath main officer of Tibet noncircular gear radius vector.
According to the noncircular gear theory of engagement, during the first Bath main officer of Tibet noncircular gear rotating 360 degrees, the angular displacement of the first conjugation Bath main officer of Tibet noncircular gear:
First Bath main officer of Tibet noncircular gear and the first conjugation Bath main officer of Tibet noncircular gear are second order noncircular gear, and therefore, during the first Bath main officer of Tibet noncircular gear rotating 360 degrees, the first conjugation Bath main officer of Tibet noncircular gear also rotating 360 degrees, can calculate the iterative of centre distance a:
Get centre distance initial value a 0the search of advance and retreat method is adopted to calculate the exact value of centre distance a.
The first described liquid port and the second liquid port are symmetrical arranged, and the first liquid sucting port and the second liquid sucting port are symmetrical arranged.
Parameter and the structure of the first described Bath main officer of Tibet noncircular gear and the second Bath main officer of Tibet noncircular gear are completely the same, parameter and the structure of the first conjugation Bath main officer of Tibet noncircular gear and the second conjugation Bath main officer of Tibet noncircular gear are completely the same, and the first Bath main officer of Tibet noncircular gear, the second Bath main officer of Tibet noncircular gear, the first conjugation Bath main officer of Tibet noncircular gear and the second conjugation Bath main officer of Tibet noncircular gear are second order noncircular gear; The initial installation phase difference of the initial installation phase difference of the first Bath main officer of Tibet noncircular gear and the second Bath main officer of Tibet noncircular gear, the first conjugation Bath main officer of Tibet noncircular gear and the second conjugation Bath main officer of Tibet noncircular gear is 90 °.
The velocity ratio of the first Bath main officer of Tibet noncircular gear and the first conjugation Bath main officer of Tibet noncircular gear is:
The velocity ratio of the second Bath main officer of Tibet noncircular gear and the second conjugation Bath main officer of Tibet noncircular gear is:
Wherein, θ is the initial installation phase difference of the first Bath main officer of Tibet noncircular gear and the second Bath main officer of Tibet noncircular gear, and value is 90 °.
Make the velocity ratio i of the first Bath main officer of Tibet noncircular gear and the first conjugation Bath main officer of Tibet noncircular gear 21equal the velocity ratio i of the second Bath main officer of Tibet noncircular gear and the second conjugation Bath main officer of Tibet noncircular gear 43, four different corners can be tried to achieve corner get minimum value time, the angular displacement of the first Bath main officer of Tibet noncircular gear is the angular displacement of the second Bath main officer of Tibet noncircular gear is the corner of the first impeller and the second impeller is respectively:
The blade angle θ of the first impeller and the second impeller leafvalue be 40 ° ~ 45 °; The central angle equal and opposite in direction of the first liquid port, the first liquid sucting port, the second liquid port and the second liquid sucting port, and than the blade angle θ of blade leaflittle 2 ~ 5 °.First liquid port centre bit angle setting of pump case first liquid sucting port centre bit angle setting second liquid port centre bit angle setting ψ row 2row 1+ π, the second liquid sucting port centre bit angle setting ψ inhale 2inhale 1+ π.
The minimum subtended angle of adjacent two blade now this enclosed cavity is minimum volume:
V min = Δψ min 2 ( R 2 - r 2 ) × h × 10 - 6
Wherein, R is blade radius, and r is impeller shaft radius, and h is vane thickness.
The maximum subtended angle of adjacent two blade now this enclosed cavity is maximum volume:
V max = Δψ max 2 ( R 2 - r 2 ) × h × 10 - 6
The discharge capacity account representation of quaterfoil differential pump:
Q=4×(V max-V min)=2(Δψ max-Δψ min)(R 2-r 2)×h×10 -6
The instantaneous flow calculation expression formula of quaterfoil differential pump:
q = dV dt = 2 h ( R 2 - r 2 ) | dψ 1 dt - dψ 2 dt | = 2 hω ( R 2 - r 2 ) | i 21 - i 43 |
Wherein, V is exhaust chamber volume; ω is the angular velocity of the first Bath main officer of Tibet noncircular gear and the second Bath main officer of Tibet noncircular gear, and its calculating formula is
The minimum volume of quaterfoil differential pump, maximum volume are stranded hydraulic coupling change calculations representation:
dp 1 dt = K V min × q = K Δψ min ( R 2 - r 2 ) × 2 hω ( R 2 - r 2 ) | i 21 - i 43 |
dp 2 dt = K V max × q = K Δψ max ( R 2 - r 2 ) × 2 hω ( R 2 - r 2 ) | i 21 - i 43 |
Wherein K is the Young's modulus of liquid.
The beneficial effect that the present invention has is:
The present invention adopts Bath main officer of Tibet non-circular gear mechanism, Bath main officer of Tibet non-circular gear pitch curve has six to adjust parameter, compare existing distortion eccentric circle noncircular gear adjustable parameter many, therefore Bath main officer of Tibet noncircular gear variable speed transmission rule easily adjusts, and easily realizes the optimization of the performances such as differential pump delivery, pressure, flow.By installing unidirectional Decompression valves in blade, during pressure limit, getting through contiguous enclosed cavity, effectively solving existing differential pump and being stranded liquid problem.The differential pump liquid sucting port driven due to Bath main officer of Tibet non-circular gear mechanism and liquid port symmetry, radial equilibrium is good, and non-constant speed drive is rotary motion, and reliable, the radial work loads that therefore operates steadily balance, pulsation controllability are good; Blade is many, discharge capacity is large, and simply, volumetric efficiency is high for the internal surface of pump case and blade shape.
Core institution of the present invention is two install the Bath main officer of Tibet noncircular gear of phase place to difference, and parts are few, compact structure.
Accompanying drawing explanation
Fig. 1 is kinematic sketch of mechanism of the present invention;
Fig. 2 is the overall structure sectional view of differential pump parts in the present invention;
Fig. 3 is the meshing relation schematic diagram of Bath main officer of Tibet non-circular gear pitch curve when initial makeup location in the present invention;
Fig. 4 is blade limit position schematic diagram of the present invention;
Fig. 5 is instantaneous flow figure of the present invention.
In figure: 1, driving gearbox, 2, input shaft, 3, output shaft, 4, the first Bath main officer of Tibet noncircular gear, the 5, second Bath main officer of Tibet noncircular gear, the 6, first conjugation Bath main officer of Tibet noncircular gear, 7, the second conjugation Bath main officer of Tibet noncircular gear, 8, axle sleeve, 9, coupling, 10, motor, 11, pump case, 11-1, the first liquid port, 11-2, the first liquid sucting port, 11-3, the second liquid port, 11-4, the second liquid sucting port, 12, the first impeller, the 13, second impeller, 14, unidirectional Decompression valves.
Embodiment
Below in conjunction with drawings and Examples, the invention will be further described.
As illustrated in fig. 1 and 2, the quaterfoil differential pump that a kind of Bath main officer of Tibet noncircular gear drives comprises driver part and differential pump parts.
Driver part comprises driving gearbox 1, input shaft 2, output shaft 3, first Bath main officer of Tibet noncircular gear 4, second Bath main officer of Tibet noncircular gear 5, first conjugation Bath main officer of Tibet noncircular gear 6, second conjugation Bath main officer of Tibet noncircular gear 7 and axle sleeve 8.Input shaft 2 and output shaft 3 are separately positioned on the two ends of gear-box 1; Input shaft 2 is by two bearings in the two side of driving gearbox 1, and power is passed to input shaft 2 by coupling 9 by motor 10, and the first Bath main officer of Tibet noncircular gear 4 and the second Bath main officer of Tibet noncircular gear 5 are all fixedly mounted on input shaft 2; The two ends of output shaft 3 are respectively by bearings on the tank wall of driving gearbox 1 and pump case 11, and the first conjugation Bath main officer of Tibet noncircular gear 6 is fixedly mounted on output shaft 3, and engages with the first Bath main officer of Tibet noncircular gear 4; Second conjugation Bath main officer of Tibet noncircular gear 7 and the second impeller 13 are all cemented on axle sleeve 8, and axle sleeve 8 kink is on output shaft 3; Second conjugation Bath main officer of Tibet noncircular gear 7 engages with the second Bath main officer of Tibet noncircular gear 5.
Differential pump parts comprise pump case 11, first impeller 12, second impeller 13 and unidirectional Decompression valves 14.Pump case 11 along the circumferential direction offers the first liquid port 11-1, the first liquid sucting port 11-2, the second liquid port 11-3 and the second liquid sucting port 11-4 successively, first liquid port 11-1 and the second liquid port 11-3 is symmetrical arranged, and the first liquid sucting port 11-2 and the second liquid sucting port 11-4 is symmetrical arranged; First impeller 12 is fixedly mounted on output shaft 3; First impeller 12 and the second impeller 13 are all symmetrically arranged with two panels blade, and the outer arced surface of every sheet blade and the inwall of pump case 11 are fitted; Along the circumferential direction, the blade of the first impeller 12 and the alternate setting of blade of the second impeller 13; All blade interior are all provided with a unidirectional Decompression valves 14, and unidirectional Decompression valves direction is consistent with wheel rotation direction.
As shown in Figure 3, parameter and the structure of the first Bath main officer of Tibet noncircular gear 4 and the second Bath main officer of Tibet noncircular gear 5 are completely the same, parameter and the structure of the first conjugation Bath main officer of Tibet noncircular gear 6 and the second conjugation Bath main officer of Tibet noncircular gear 7 are completely the same, and the first Bath main officer of Tibet noncircular gear 4, second Bath main officer of Tibet noncircular gear 5, first conjugation Bath main officer of Tibet noncircular gear 6 and the second conjugation Bath main officer of Tibet noncircular gear 7 are second order noncircular gear; The initial installation phase angle of the first Bath main officer of Tibet noncircular gear 4 is θ 1, the initial installation phase angle of the second Bath main officer of Tibet noncircular gear 5 is θ 2; The initial installation phase difference of the first Bath main officer of Tibet noncircular gear 4 and the second Bath main officer of Tibet noncircular gear 5, first conjugation Bath main officer of Tibet noncircular gear 6 and the second conjugation Bath main officer of Tibet noncircular gear 7 is θ 12its value is 90 °, and the differential realizing the first impeller 12 and the second impeller 13 rotates, and makes the volume cyclically-varying of differential pump enclosed cavity, produce discharge opeing at the first liquid port 11-1 and the second liquid port 11-3, produce imbibition at the first liquid sucting port 11-2 and the second liquid sucting port 11-4.Because the non-at the uniform velocity transmission of Bath main officer of Tibet noncircular gear is continuous print, enclosed cavity be in complete airtight time, blade still has differential to rotate, and this will make enclosed cavity pressure exceed limit value, and vicinity enclosed cavity is got through pressure release by unidirectional Decompression valves 14, prevents tired liquid.
The working principle of the quaterfoil differential pump that this Bath main officer of Tibet noncircular gear drives:
Power is passed to the first Bath main officer of Tibet noncircular gear 4 and the second Bath main officer of Tibet noncircular gear 5 by coupling 9 and input shaft 2 by motor 10.First Bath main officer of Tibet noncircular gear 4 engages with the first conjugation Bath main officer of Tibet noncircular gear 6, second Bath main officer of Tibet noncircular gear 5 engages with the second conjugation Bath main officer of Tibet noncircular gear 7, power is passed to the first impeller 12, second conjugation Bath main officer of Tibet noncircular gear 7 by output shaft 3 and power is passed to the second impeller 13 by axle sleeve 8 by the first conjugation Bath main officer of Tibet noncircular gear 6.The installation phase place of two pairs of Bath main officer of Tibet noncircular gear pairs is different, and the differential realizing the first impeller 12 and the second impeller 13 rotates, thus realizes imbibition and discharge opeing.
According to pump structure, the centre distance initial value a of given first Bath main officer of Tibet noncircular gear 4 and the first conjugation Bath main officer of Tibet noncircular gear 6 0, then according to pitch curve sealing condition and meshing condition, adopt the search of advance and retreat method to obtain the exact value of centre distance a.Specifically be calculated as follows:
According to the generating principle of Pascal curve, the pitch curve representation of the first Bath main officer of Tibet noncircular gear is:
Wherein, b is the generation circular diameter of Pascal curve, and value is 60mm, l is length, and value is 120mm; n 1be the exponent number of the first Bath main officer of Tibet noncircular gear, value is 2; be the corner of the first Bath main officer of Tibet noncircular gear, it is the corresponding corner of the first Bath main officer of Tibet noncircular gear radius vector.
According to the noncircular gear theory of engagement, during the first Bath main officer of Tibet noncircular gear 4 rotating 360 degrees, the angular displacement of the first conjugation Bath main officer of Tibet noncircular gear 6:
First Bath main officer of Tibet noncircular gear 4 and the first conjugation Bath main officer of Tibet noncircular gear 6 are second order noncircular gear, and therefore, during the first Bath main officer of Tibet noncircular gear 4 rotating 360 degrees, the first conjugation Bath main officer of Tibet noncircular gear 6 also rotating 360 degrees, can calculate the iterative of centre distance a:
Get centre distance initial value a 0the exact value that=120mm adopts the search of advance and retreat method to calculate centre distance a is 267.8mm.
After trying to achieve the exact value of centre distance a, can solve the row of pump case, liquid sucting port central position, quaterfoil differential pump delivery, instantaneous flow and minimum volume, maximum volume are stranded hydraulic coupling change representation.Specifically be calculated as follows:
The velocity ratio of the first Bath main officer of Tibet noncircular gear 4 and the first conjugation Bath main officer of Tibet noncircular gear 6 is:
The velocity ratio of the second Bath main officer of Tibet noncircular gear 5 and the second conjugation Bath main officer of Tibet noncircular gear 7 is:
Wherein, θ is the initial installation phase difference of the first Bath main officer of Tibet noncircular gear and the second Bath main officer of Tibet noncircular gear, and value is 90 °.
Make the velocity ratio i of the first Bath main officer of Tibet noncircular gear 4 and the first conjugation Bath main officer of Tibet noncircular gear 6 21equal the velocity ratio i of the second Bath main officer of Tibet noncircular gear 5 and the second conjugation Bath main officer of Tibet noncircular gear 7 43, four different corners can be tried to achieve corner get minimum value time, the angular displacement of the first Bath main officer of Tibet noncircular gear 4 is the angular displacement of the second Bath main officer of Tibet noncircular gear 5 is the corner of the first impeller 12 and the second impeller 13 is respectively:
As shown in Figure 4, the blade angle θ of the first impeller 12 and the second impeller 13 leafvalue be 45 °; The central angle size of the first liquid port, the first liquid sucting port, the second liquid port and the second liquid sucting port is all than the blade angle θ of blade leaflittle 2 °.First liquid port centre bit angle setting of pump case first liquid sucting port centre bit angle setting second liquid port centre bit angle setting ψ row 2row 1+ 180 °=257.5 °, the second liquid sucting port centre bit angle setting ψ inhale 2inhale 1+ 180 °=328.5 °.
Adjacent two blade minimum subtended angle Δ ψ min=(ψ 2+ 90 °)-(ψ 1+ θ leaf), now this enclosed cavity is minimum volume:
V min = Δψ min 2 ( R 2 - r 2 ) × h × 10 - 6
Wherein, R is blade radius, and value is 90mm; R is impeller shaft radius, and value is 20mm; H is vane thickness, and value is 50mm.
Adjacent two blade maximum subtended angle Δ ψ max=(ψ 1+ 180 °)-(ψ 2+ 90 ° of+θ leaf), now this enclosed cavity is maximum volume:
V max = Δψ max 2 ( R 2 - r 2 ) × h × 10 - 6
The discharge capacity account representation of quaterfoil differential pump:
Q=4×(V max-V min)=2(Δψ max-Δψ min)(R 2-r 2)×h×10 -6=4997.49ml
The instantaneous flow calculation expression formula of quaterfoil differential pump:
q = dV dt = 2 h ( R 2 - r 2 ) | dψ 1 dt - dψ 2 dt | = 2 hω ( R 2 - r 2 ) | i 21 - i 43 |
Wherein, V is exhaust chamber volume; ω is the angular velocity of the first Bath main officer of Tibet noncircular gear 4 and the second Bath main officer of Tibet noncircular gear 5, and its calculating formula is the plotted curve of instantaneous flow as shown in Figure 5.
The minimum volume of quaterfoil differential pump, maximum volume are stranded hydraulic coupling change calculations representation:
dp 1 dt = K V min × q = K Δψ min ( R 2 - r 2 ) × 2 hω ( R 2 - r 2 ) | i 21 - i 43 |
dp 2 dt = K V max × q = K Δψ max ( R 2 - r 2 ) × 2 hω ( R 2 - r 2 ) | i 21 - i 43 |
Wherein K is the Young's modulus of liquid.
Be stranded hydraulic coupling change by the minimum volume, the maximum volume that calculate quaterfoil differential pump, can be and select the unidirectional Decompression valves in blade to provide reference, be generally used for the CLV ceiling limit value determining unidirectional Decompression valves.

Claims (4)

1. a quaterfoil differential pump for Bath main officer of Tibet noncircular gear driving, comprises driver part and differential pump parts, it is characterized in that:
Described driver part comprises driving gearbox, input shaft, output shaft, the first Bath main officer of Tibet noncircular gear, the second Bath main officer of Tibet noncircular gear, the first conjugation Bath main officer of Tibet noncircular gear, the second conjugation Bath main officer of Tibet noncircular gear and axle sleeve; Motor is connected with input shaft by coupling, and input shaft passes through two bearings in the two side of driving gearbox; The first described Bath main officer of Tibet noncircular gear and the second Bath main officer of Tibet noncircular gear are all fixedly mounted on input shaft; The two ends of output shaft are respectively by bearings on the tank wall of driving gearbox and pump case, and the first conjugation Bath main officer of Tibet noncircular gear is arranged on output shaft, and engages with the first Bath main officer of Tibet noncircular gear; Second conjugation Bath main officer of Tibet noncircular gear and the second impeller are all cemented on axle sleeve, and axle sleeve kink is on output shaft, and the second conjugation Bath main officer of Tibet noncircular gear engages with the second Bath main officer of Tibet noncircular gear;
Described differential pump parts comprise pump case, the first impeller, the second impeller and unidirectional Decompression valves; Described pump case along the circumferential direction offers the first liquid port, the first liquid sucting port, the second liquid port and the second liquid sucting port successively; First impeller is fixed on output shaft; The first described impeller and the second impeller are all symmetrically arranged with two panels blade, and the outer arced surface of every sheet blade and the inwall of pump case are fitted; Along the circumferential direction, the blade of the first impeller and the alternate setting of blade of the second impeller; All blade interior all install a unidirectional Decompression valves, and all unidirectional Decompression valves directions are consistent with wheel rotation direction;
According to pump structure, the centre distance initial value a of given first Bath main officer of Tibet noncircular gear and the first conjugation Bath main officer of Tibet noncircular gear 0, then according to pitch curve sealing condition and meshing condition, adopt the search of advance and retreat method to obtain the exact value of centre distance a; Specifically be calculated as follows:
According to the generating principle of Pascal curve, the pitch curve representation of the first Bath main officer of Tibet noncircular gear is:
Wherein, b is the generation circular diameter of Pascal curve, and l is length, n 1be the exponent number of the first Bath main officer of Tibet noncircular gear, value is 2; be the corner of the first Bath main officer of Tibet noncircular gear, it is the corresponding corner of the first Bath main officer of Tibet noncircular gear radius vector;
According to the noncircular gear theory of engagement, during the first Bath main officer of Tibet noncircular gear rotating 360 degrees, the angular displacement of the first conjugation Bath main officer of Tibet noncircular gear:
First Bath main officer of Tibet noncircular gear and the first conjugation Bath main officer of Tibet noncircular gear are second order noncircular gear, and therefore, during the first Bath main officer of Tibet noncircular gear rotating 360 degrees, the first conjugation Bath main officer of Tibet noncircular gear also rotating 360 degrees, can calculate the iterative of centre distance a:
Get centre distance initial value a 0the search of advance and retreat method is adopted to calculate the exact value of centre distance a.
2. the quaterfoil differential pump of a kind of Bath main officer of Tibet noncircular gear driving according to claim 1, it is characterized in that: the first described liquid port and the second liquid port are symmetrical arranged, the first liquid sucting port and the second liquid sucting port are symmetrical arranged.
3. the quaterfoil differential pump of a kind of Bath main officer of Tibet noncircular gear driving according to claim 1, it is characterized in that: parameter and the structure of the first described Bath main officer of Tibet noncircular gear and the second Bath main officer of Tibet noncircular gear are completely the same, parameter and the structure of the first conjugation Bath main officer of Tibet noncircular gear and the second conjugation Bath main officer of Tibet noncircular gear are completely the same, and the first Bath main officer of Tibet noncircular gear, the second Bath main officer of Tibet noncircular gear, the first conjugation Bath main officer of Tibet noncircular gear and the second conjugation Bath main officer of Tibet noncircular gear are second order noncircular gear; The initial installation phase difference of the initial installation phase difference of the first Bath main officer of Tibet noncircular gear and the second Bath main officer of Tibet noncircular gear, the first conjugation Bath main officer of Tibet noncircular gear and the second conjugation Bath main officer of Tibet noncircular gear is 90 °.
4. the quaterfoil differential pump of a kind of Bath main officer of Tibet noncircular gear driving according to claim 1, is characterized in that: the velocity ratio of the first Bath main officer of Tibet noncircular gear and the first conjugation Bath main officer of Tibet noncircular gear is:
The velocity ratio of the second Bath main officer of Tibet noncircular gear and the second conjugation Bath main officer of Tibet noncircular gear is:
Wherein, θ is the initial installation phase difference of the first Bath main officer of Tibet noncircular gear and the second Bath main officer of Tibet noncircular gear, and value is 90 °;
Make the velocity ratio i of the first Bath main officer of Tibet noncircular gear and the first conjugation Bath main officer of Tibet noncircular gear 21equal the velocity ratio i of the second Bath main officer of Tibet noncircular gear and the second conjugation Bath main officer of Tibet noncircular gear 43, four different corners can be tried to achieve corner get minimum value time, the angular displacement of the first Bath main officer of Tibet noncircular gear is the angular displacement of the second Bath main officer of Tibet noncircular gear is the corner of the first impeller and the second impeller is respectively:
The blade angle θ of the first impeller and the second impeller leafvalue be 40 ° ~ 45 °; The central angle equal and opposite in direction of the first liquid port, the first liquid sucting port, the second liquid port and the second liquid sucting port, and the blade angle θ of ratio the first impeller and the second impeller leaflittle 2 ~ 5 °; First liquid port centre bit angle setting of pump case first liquid sucting port centre bit angle setting second liquid port centre bit angle setting ψ row 2row 1+ π, the second liquid sucting port centre bit angle setting ψ inhale 2inhale 1+ π;
The minimum subtended angle of adjacent two blade now this enclosed cavity is minimum volume:
V min = Δψ min 2 ( R 2 - r 2 ) × h × 10 - 6
Wherein, R is blade radius, and r is impeller shaft radius, and h is vane thickness;
The maximum subtended angle of adjacent two blade now this enclosed cavity is maximum volume:
V m a x = Δψ m a x 2 ( R 2 - r 2 ) × h × 10 - 6
The discharge capacity account representation of quaterfoil differential pump:
Q=4×(V max-V min)=2(Δψ max-Δψ min)(R 2-r 2)×h×10 -6
The instantaneous flow calculation expression formula of quaterfoil differential pump:
q = d V d t = 2 h ( R 2 - r 2 ) | dψ 1 d t - dψ 2 d t | = 2 h ω ( R 2 - r 2 ) | i 21 - i 43 |
Wherein, V is exhaust chamber volume; ω is the angular velocity of the first Bath main officer of Tibet noncircular gear and the second Bath main officer of Tibet noncircular gear, and its calculating formula is
The minimum volume of quaterfoil differential pump, maximum volume are stranded hydraulic coupling change calculations representation:
dp 1 d t = K V min × q = K Δψ min ( R 2 - r 2 ) × 2 h ω ( R 2 - r 2 ) | i 21 - i 43 |
dp 2 d t = K V m a x × q = K Δψ m a x ( R 2 - r 2 ) × 2 h ω ( R 2 - r 2 ) | i 21 - i 43 |
Wherein K is the Young's modulus of liquid.
CN201410039965.1A 2014-01-27 2014-01-27 The quaterfoil differential pump that a kind of Bath main officer of Tibet noncircular gear drives Expired - Fee Related CN103758754B (en)

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US1921747A (en) * 1929-02-19 1933-08-08 Oil Well Supply Co Rotary pump or the like
US4133617A (en) * 1976-01-27 1979-01-09 Thomas Roach Vane type pump with optional high rate of flow or high pressure characteristics
US5800138A (en) * 1996-07-30 1998-09-01 Merce Vives; Salvador Extracorporeal blood pump for cardiac surgery
CA2324674A1 (en) * 2000-10-31 2002-04-30 Sorin-Vasile Cora Scissors pump
JP3827655B2 (en) * 2003-06-24 2006-09-27 株式会社オーバル Volumetric flow meter using non-circular gear and non-circular gear
CN203730298U (en) * 2014-01-27 2014-07-23 浙江水利水电学院 Pascal non-circular gear-driven four-blade differential pump

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