HYDRAULICALLY SYNCHRONIZED PUMPS WHERE THE HYDRAULIC MOTOR OF THE MASTER PUMP HYDRAULICALLY DRIVES THE HYDRAULIC MOTOR OF THE SLAVE PUMP
20190226465 ยท 2019-07-25
Inventors
Cpc classification
F04B13/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B9/109
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B49/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B1/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B9/105
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04B9/109
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B23/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B1/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B13/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present invention relates generally to pumps, and more particularly to a system of pumps wherein a first hydraulic motor operatively connected to a first master pump can hydraulically drive a second hydraulic motor operatively connected to a second slave pump. More particularly, a hydraulic fluid outlet of the first hydraulic motor is fluidically connected to a hydraulic fluid inlet of the second hydraulic motor whereby the first hydraulic motor, operatively connected to the first pump, drives the second hydraulic motor, operatively connected to the second pump, in a hydraulically synchronized manner.
Claims
1. A pump system, comprising: a first pump for pumping a first component of a mixture to be dispensed; a second pump for pumping a second component of the mixture to be dispensed; a first hydraulic motor operatively connected to said first pump; a second hydraulic motor operatively connected to said second pump; and a closed circuit hydraulic fluid flow path fluidically connected to said first and second hydraulic motors wherein said first hydraulic motor operatively connected to said first pump drives said second hydraulic motor operatively connected to said second pump.
2. The pump system as set forth in claim 1, further comprising: a hydraulic fluid reservoir tank; and an auxiliary pump for with drawing hydraulic fluid from said hydraulic fluid reservoir tank and supplying the hydraulic fluid to said first hydraulic motor operatively connected to said first pump.
3. The pump system as set forth in claim 1, wherein: a hydraulic fluid outlet of said first hydraulic motor is fluidically connected to a hydraulic fluid inlet of said second hydraulic motor whereby said first hydraulic motor, operatively connected to said first pump. drives said second hydraulic motor operatively connected to said second pump.
4. The pump system as set forth in claim 1, further comprising: a two-position, four-way valve fluidically connected to said closed-circuit hydraulic fluid flow path such that during a first operative cycle of said first hydraulic motor, the hydraulic fluid passes through said two-position, four-way valve and enters a hydraulic fluid inlet of said first hydraulic motor while hydraulic fluid is exhausted from a hydraulic fluid outlet of said first hydraulic motor, whereas during a second operative cycle of said first hydraulic motor, the hydraulic fluid passes through said two-position, four-way valve and enters said hydraulic fluid outlet of said first hydraulic motor while hydraulic fluid is exhausted from said hydraulic fluid inlet of said first hydraulic motor.
5. The pump system as set forth in claim 1, wherein: said first pump comprises a master pump; and said second pump comprises a slave pump.
6. The pump system as set forth in claim 1, wherein: said first pump comprises a catalyst pump for pumping a catalyst component of the mixture; and said second pump comprises a resin pump for pumping a resin component of the mixture.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0007] Various other features and attendant advantages of the present invention will be more fully appreciated from the following detailed description when considered in connection with the accompanying drawings in which like reference characters designate like or corresponding parts throughout the several views, and wherein:
[0008]
[0009]
[0010]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0011] Referring now to the drawings, and more particularly to
[0012] For the purposes of this disclosure, the first double-acting two-valve pump 102 will be considered to be the master pump, while the second double-acting two-valve pump 104 will be considered to be the slave pump. The first double-acting two-valve pump 102 is seen to comprise a fluid inlet 106 and a fluid outlet 108, by means of which its fluid, for example, the catalyst, may be pumped out from the first double-acting two-valve pump 102 and toward a mixer 110. In a similar manner, the second double-acting two-valve pump 104 is seen to comprise a fluid inlet 112 and a fluid outlet 114, by means of which its fluid, for example, the resin, may be pumped out from the second double-acting two-valve pump 104 and toward the mixer 110 within which the two components, the catalyst and the resin, will be mixed in accordance with predeterminedly desired proportions such that the end product can then be transmitted to a dispenser 116 which may be any one of a variety of dispensing devices such as a dispensing gun, a spray gun, and the like.
[0013] Continuing further, and in accordance with the principles and teachings of the present invention, the first double-acting two-valve pump 102 is provided with a first hydraulic motor 118 which comprises a first lower hydraulic motor inlet port 120 and a first upper hydraulic motor outlet port 122. In a similar manner, the second double-acting two-valve pump 104 is provided with a second hydraulic motor 124 which comprises a second hydraulic motor inlet conduit 126 and a second hydraulic motor outlet port 128. As will become more fully understood in connection with the detailed description of
[0014] It is lastly noted that in conjunction with the first and second hydraulic motors 118, 124 and the closed-circuit or recirculation hydraulic fluid flow path 134, there is also provided a two-position, four-way valve 140. While the two-position, four-way valve 140 is illustrated as being located or disposed externally of the first hydraulic motor 118, the two-position, four-way valve 140 can be located or disposed internally of the first hydraulic motor 118, or alternatively still further, the first hydraulic motor 118 may be provided with a different type of two-position valve which will effectively operate in a manner similar to that of the two-position, four-way valve 140. Still yet further, a suitable three-position four-way valve can be utilized.
[0015] Having described substantially all of the structural components comprising the new and improved pump system 100, an operational description of the same will now be provided. More particularly, as illustrated within
[0016] It is to be noted that when the first hydraulic motor piston, not illustrated, has reached its upper end-of-stroke position, a signal will be generated so as to cause the the two-position, four-way valve 140 to be switched whereby the two-position, four-way valve 140 will now be disposed at the position illustrated within
[0017] In order to provide a complete disclosure of the operation of the first and second hydraulic motors 118,124, a brief description of the second conventional hydraulic motor will now be described in connection with
[0018] Accordingly, in operation, and as an exemplary starting point, the spool valve 146 will be initially disposed at its elevated UP position, as maintained by means of the detent ball 154 effectively being latched or held within the lower one 152 of the two vertically spaced circumferentially grooved or notched portions 150,152 at which position the plurality of holes or apertures 148 defined therein will be disposed opposite to, or in alignment with, the first hydraulic motor inlet port 130 of the first hydraulic motor inlet conduit 126. It is also to be remembered, however, that hydraulic fluid will also flow downwardly through the first hydraulic inlet conduit 126 so as to likewise enter the internal portion of the second hydraulic motor 124 through means of the second lower hydraulic motor inlet port 132. Therefore, incoming hydraulic fluid is permitted to enter the spool valve 146 from the first upper hydraulic motor inlet port 130, flow downwardly through the spool valve 146, and act upon the upper surface portion 170 of the second hydraulic motor piston 162, while the incoming hydraulic fluid, entering the second lower hydraulic motor inlet port 132, likewise acts upon the undersurface portion 172 of the second hydraulic motor piston 162. In view of the fact, however, that the hydraulic fluid from the first upper hydraulic motor inlet port 130 acts upon a much larger surface area, comprising the upper surface portion 170 of the second hydraulic motor piston 162, as compared to the hydraulic fluid from the second lower hydraulic motor inlet port 132 acting upon a relatively much smaller undersurface portion 172 of the second hydraulic motor piston 162, the hydraulic fluid therefore causes the second hydraulic motor piston 162 to move downwardly within the external housing 160 of the second hydraulic motor 124 and relative to the spool valve connective rod member 156 until the second hydraulic motor piston 162 encounters the spring-biased stop member 158. Any hydraulic fluid disposed beneath the second hydraulic motor piston 162 will effectively be forced back outwardly through the second lower hydraulic motor inlet port 132 so as to effectively be entrained with the hydraulic fluid entering the second hydraulic motor 124 through means of the first upper hydraulic motor inlet port 130.
[0019] At this time, as a result of the engagement of the second hydraulic motor piston 162 with the spring-biased stop member 158, the second hydraulic motor piston 162 will cause the spring-biased stop member 158 to move downwardly within the annular connective wall member 166 of the piston assembly thereby, in turn, causing the spool valve connective rod member 156 to move downwardly which effectively pulls the spool valve 146 downwardly. As a result of these forces, the spring-biased detent ball 154 is momentarily forced out from the lower circumferentially grooved or notched portion 152 and is subsequently seated within the upper circumferentially grooved or notched portion 150 as illustrated in
[0020] Thus, it may be seen that in accordance with the principles and teachings of the present invention, there has been provided a pump system wherein a first hydraulic motor, operatively associated with a first fluid pump for pumping a first fluid component, drives a second hydraulic motor, operatively associated with a second fluid pump for pumping a second fluid component, in a hydraulically synchronized manner. Obviously, many variations and modifications of the present invention are possible in light of the above teachings. It is therefore to be understood that within the scope of the appended claims, the present invention may be practiced otherwise than as specifically described herein.
REFERENCE NUMBER KEY
[0021] 100Pump system [0022] 102First double-acting two-valve pump [0023] 104Second double-acting two-valve pump [0024] 106Fluid inlet of pump 102 for first material to be pumped [0025] 108Fluid outlet of pump 102 for first material to be pumped [0026] 110Mixer [0027] 112Fluid inlet of pump 104 for second material to be pumped [0028] 114Fluid outlet of pump 104 for second material to be pumped [0029] 116Dispenser for dispensing composite fluid supplied from mixer 110 [0030] 118First hydraulic motor operatively connected to first pump 102 [0031] 120Hydraulic fluid inlet of first hydraulic motor 118 [0032] 122Hydraulic fluid outlet of first hydraulic motor 118 [0033] 124Second hydraulic motor operatively connected to second pump 104 [0034] 126Hydraulic fluid inlet conduit for second hydraulic motor 124 [0035] 128Hydraulic fluid outlet port of second hydraulic motor 124 [0036] 130First upper hydraulic fluid inlet port for second hydraulic motor 124 [0037] 132Second lower hydraulic fluid inlet port for second hydraulic motor 124 [0038] 134Closed circuit hydraulic fluid flow path [0039] 136Hydraulic fluid reservoir tank [0040] 138Auxiliary pump [0041] 140Two-position four-way valve [0042] 142First hydraulic inlet conduit [0043] 144Second hydraulic outlet conduit [0044] 146Spool valve of second hydraulic motor 124 [0045] 148Apertures or holes within spool valve 146 [0046] 150First upper circumferentially grooved or notched portion of spool valve 146 [0047] 152Second lower circumferentially grooved or notched portion of spool valve 146 [0048] 154Spring-biased detent ball [0049] 156Vertically oriented connective rod operatively connected to spool valve 146 [0050] 158Spring-biased stop member operatively connected to rod 156 [0051] 160External housing of second hydraulic motor 124 [0052] 162Internal piston of second hydraulic motor 124 [0053] 164Lower end cap of piston assembly of second hydraulic motor 124 [0054] 166Connective tubular member of piston assembly [0055] 168Annular chamber defined between external housing 160 and member 166 [0056] 170Upper surface portion of piston 162 [0057] 172Undersurface portion of piston 162