Background of the Invention
Face type rotary mechanical seals are used extensively for high pressure dynamic shaft seals. Materials used for face seals include graphite or carbon. The sealing efficiency of these seals increases as the pressure differential across the seal increases; the greater the pressure, the better the seal. However, carbon face seals begin to fail at low pressures. They need a guaranteed minimum pressure to maintain a positive seal at a given shaft speed.
Other shaft sealing techniques include use of O-ring seals. O-ring seals are generally limited by excessive pressures and shaft speeds. They have a tendency to fail at high pressures and high shaft speeds. However, they are very reliable at low pressures and low shaft speeds.
Summary of the Invention
The invention presented herein comprises a combination of a face-type rotary mechanical seal with an O-ring seal to create a shaft seal which resists leakage at both high and low pressure differentials. This invention is referred to as an "Integral Elastomeric/Graphite Face Seal."
Basically, a shaft penetrating through an aperture in a pressure housing wall is sealed by the combination of the face-type rotary seal and an O-ring seal. The face-type seal consists of a carbon face seal keyed to a sleeve mounted on the shaft. The sleeve is keyed to rotate with the shaft, but in a manner that the sleeve may slide back and forth along the shaft.
Another sleeve keyed to the aperture in the pressure housing wall contains the elastomeric/graphite-interface seal for the matching surface of the face seal. This other sleeve also has the capability to be slid back and forth along the axis of the shaft and the aperture. Both sleeves are loaded by springs. The springs are selected or preset to allow the face-type rotary sealing surfaces to come in contact at high pressure differentials across the sealing area. During high pressure differentials between the two sides of the pressure housing wall, the face seal on the sleeve keyed to the aperture, i.e., the nonrotating sleeve, is forced against the carbon face seal by the pressure to form a positive seal against leakage of any fluids along the shaft.
At low pressure differentials, the compression springs acting upon the pair of face seal sleeves creates an axial force which causes an O-ring housed in the sleeve keyed to the aperture to make contact with the surface of the rotating shaft. The contact of this O-ring with the rotating shaft creates a positive seal against leakage which is effective at the low pressure differentials or low shaft speeds.
Static O-ring seals are placed between the shaft the shaft and the carbon face seal sleeve and between the aperture wall and the elastomeric/graphite-interface seal sleeve to complete sealing against any fluid leakages.
Objects of the Invention
An object of this invention is to provide a positive, dynamic low pressure O-ring seal in combination with a high pressure carbon face seal for a rotating shaft.
Another objective is to provide an integral sealing configuration which allows a smooth transition between a low pressure O-ring seal and a high pressure carbon face seal without leakage.
A further object of the invention is to present an elastomeric/graphite-interface seal that can be applied whenever a positive dynamic shaft seal is required for extreme pressure variations and extreme rotational speeds.
Other objects and many of the attendant advantages of this invention will be readily appreciated as the same becomes better understood by reference to the following detailed description when considered in connection with the accompanying drawings.
Description of the Drawings
FIG. 1 is a cutaway section showing the shaft in the aperture with the face seal and O-ring seal combination in the position for sealing at a low pressure differential.
FIG. 2 is a cutaway section showing the shaft in the aperture with the face seal and O-ring seal combination in the position for sealing at a high pressure differential.
FIG. 3 shows a cross-sectional view illustrating a manner of manufacturing the holder of the O-ring for the dynamic low pressure differential seal.
FIG. 4 depicts an alternative method for constructing the low pressure O-ring seal method.
FIG. 5 is a second alternative depiction of a method of making the low pressure seal.
FIG. 6 presents a third alternative method for accomplishing the low pressure O-ring seal.
FIG. 7 shows a cutaway section showing the shaft in the aperture with the face seal and O-ring seal combination reversed wherein the dynamic O-ring seals against a surface on the aperture.
FIG. 8 shows a sectional view depicting an alternative where a sleeve separate from the face seal combination sleeves holds the dynamic O-ring seal.
Description of the Preferred Embodiment
FIGS. 1 and 2 present the preferred embodiment in the two principal modes of operation. A rotating shaft 10 is shown supported within an aperture 14 in a pressure housing 12. Support of shaft 10 is by a bearing 52 which is fixed in placed by retaining rings 54. A carbon insert 18, retained by a sleeve 20 and loaded by a spring 24 rotates with shaft 10. The carbon insert 18 is keyed to sleeve 20 by pins 42 while sleeve 20 is keyed to shaft 10 by a key 40 in a key slot 38. A collar 48 is keyed to shaft 10 by several set screws 50 and acts as a support for spring 24 and stop for sleeve 20. An O-ring 44 provides a static positive seal between the carbon insert 18 and shaft 10.
An elastomeric/graphite-interface seal 16, hereafter referred to as the EGI seal, is keyed to housing 12 using several pins 36 and is spring loaded by a spring 22. An O-ring 46 provides a static positive seal between the EGI seal 16 and housing 12.
An O-ring 30 provides the dynamic seal to shaft 10 for low pressure differentials. This O-ring seal is shown in its sealing position in FIG. 1. A groove 32 into which O-ring 30 sits is dovetailed in shape to prevent the O-ring from unseating when EGI seal 16 moves forward along the axis of the shaft under the influence of a high pressure differential. A surface 26 of EGI 16 provides a highly polished face seal to mate with carbon insert 18. A retaining ring 56 can be provided to aid in the assembly procedure until shaft retaining rings 54 are installed. Once retaining rings 54 are installed, retaining ring 56 is not required and may be removed.
FIG. 1 shows the operation of the elastomeric O-ring seal 30 providing a dynamic seal against a sloped surface 28 on rotating shaft 10 at low pressures. The O-ring seal will maintain a positive seal under the preload provided by springs 24 and 22. Several pins 36 around the periphery of EGI seal 16 prevent its rotation. The springs 22 and 24 are chosen such that the preload on O-ring seal 30 is maintained until the differential pressure across the seal would otherwise result in failure.
Before failure of the O-ring seal occurs, the differential pressure acting on EGI seal 16 forces the assembly forward compressing springs 22 and 24 until sleeve 20 encounters collar 48. This condition is shown in FIG. 2. At high pressure differentials, the dynamic seal function is now maintained by carbon insert 18 rotating against polished surface 26 of EGI seal 16. The pressure can now increase beyond all elastomeric seal limitations of O-ring seal 30 because the carbon face seal can maintain a seal under extreme load conditions.
The axial thrust load created by the differential pressure acting on EGI seal 16 and through sleeve 20, collar 48, and bearing 52 is taken up by housing 12. When, and if, the pressure differential across carbon insert 18 reduces to the point that springs 20 and 22 push EGI seal 16 away from collar 48 to encounter shaft 10, then O-ring seal 30 will again provide a low pressure seal against shaft surface 28.
FIG. 3 shows a method wherein EGI seal 16 can be configured in two parts to ease in the manufacturing of a dovetail groove 64 for O-ring seal 30 shown in FIG. 1. The EGI seal is shown configured in two components, the first being a main body 60 of an EGI seal and a second screw-in ring 62 which is designed to complete dovetail groove 64 for the O-ring seal. By this method, manufacture of the EGI seal is made simplier and faster without requiring the use of difficult machining techniques for producing the dovetail groove.
Other alternatives for the dynamic O-ring seal to shaft 10 are presented in FIGS. 4, 5, and 6. FIG. 4 shows EGI seal 78 configured so that the dynamic O-ring seal 74 occurs against a surface of shaft 10 which is parallel to the shaft's axis. In this configuration, dovetail groove 76 is machined into the EGI seal parallel with the axis of rotation. Also shown is spring 22 and carbon insert 18.
A principal feature of the operation of the dynamic O-ring seal is the ability to reduce wear by disengaging the O-ring seal from contact with shaft 10 during periods when high pressure differentials are being sealed against by the face type seal of the carbon insert 18 and EGI seal 78 (EGI seal in FIGS. 1 and 2 are noted as item 16). Shaft 10, in this configuration, is constructed with two surfaces 70 and 72. When the dynamic O-ring seal is aligned with surface 72, sealing contact is made to avert low pressure leakage. However, when a high pressure differential causes EGI seal 78 to shift to the left in the drawing, the dynamic O-ring seal 74 will shift left into alignment with shaft surface 70 which has a smaller diameter than surface 72. The smaller diameter of surface 70 is such as to allow O-ring 74 to float without coming in contact or wearing during high pressure periods of sealing.
In FIG. 5, the dynamic O-ring seal is placed in a groove machined in shaft 10. During low pressure sealing periods O-ring seal 82 is aligned with a surface 84 on EGI seal 80. When high pressure differentials force EGI seal 80 to move to the left, O-ring seal 82 becomes aligned with a surface 86. Surface 86 is constructed with a larger diameter to allow dynamic O-ring 82 to float out of contact with EGI seal 80 thereby relieving any wear.
In FIG. 6 shaft 10 has been machined to contain a shoulder 92 with a face 96 perpendicular to its axis. The dynamic O-ring is contained in a groove machined in EGI seal 90 in a manner that the O-ring seal 94 will occur against face 96 on shaft 10. When higher pressure differentials cause compression of springs 22 and 24, and the movement of EGI seal 90 to the left, O-ring seal 94 moves away from shaft surface 96 thereby relieving wear on the O-ring.
Other embodiments and geometries for placing the dynamic O-ring seal are obvious. In particular, the dynamic O-ring seal may be constructed to occur between a rotating sleeve keyed to the rotating shaft and the surface of the aperture. In this type embodiment the dynamic O-ring could be held in a dovetail groove constructed either in the surface of the aperture or in the sleeve. FIG. 7 shows a form of this embodiment with a dynamic O-ring seal 102 acting against a surface 106 of aperture 14, and where the O-ring is seated in an EGI seal 104. It is to be noted that FIG. 7 represents the same functions shown in FIGS. 1 and 2 but with the roles of each sleeve and seal components reversed in regards to relationships between the shaft and the aperture. Consequently, and considering the same role reversal requirements, the alternatives shown in FIGS. 3 through 6 also apply to the embodiment shown in FIG. 7.
FIG. 8 shows an alternative embodiment wherein a dynamic O-ring seal 122 is housed in a sleeve 124 that is separate from a sleeve 126. Sleeve 126 contains a mating polished surface 132 for making the high pressure face seal with a carbon insert 128. Springs 134 and 136 provide the force necessary to engage the dynamic O-ring seal during periods of low pressure differential. Similarly as shown in FIGS. 1 and 2, the carbon insert and its holding sleeve rotate with shaft 10 while sleeves 124 and 126 are keyed to aperture 14.
A further interchange which is equivantly obvious is the interchange in any of these embodiments of the role and location of the carbon insert with its mating polished sealing surface on the EGI seal sleeves. For example, in FIGS. 1 and 2 it is equivalent to locate carbon insert 18 in EGI seal 16 while concurrently locating a polished surface for making a mating seal with insert 18 on sleeve 20.
Obviously, many other modifications and variations of the present invention are possible in the light of the above teachings. It is therefore to be understood that within the scope of the appended claims the invention may be practiced otherwise than as specifically described.