Multi-application power unit for driving plural appliances
10494994 ยท 2019-12-03
Inventors
Cpc classification
F16H35/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H7/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C1/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B63/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H21/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C1/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D1/0847
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H21/44
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B63/044
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D1/101
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B63/047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H9/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H7/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2001/103
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C1/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D1/0876
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K7/14
ELECTRICITY
F16M3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02B63/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H21/44
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H9/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C1/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C1/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C1/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H21/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D1/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16M3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H7/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H7/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D1/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K7/14
ELECTRICITY
Abstract
A multi-appliance power unit (100) selectively driving one of a plurality of power driven appliances (114) from one relocatable power plant (102). The modular power plant (102) is entrapped on a platform (108) and is movable therealong to any one of the appliances (114) fastened to the platform (108), which appliance (114) can then be driven by the power plant (102). A modular power plant and power driven appliance kit (200) includes a wheeled chassis (204) having a handle (220), a removable modular power plant (202 or 212), and a removable modular power driven appliance (212 or 202). A flexible drive shaft (300), is optionally integrated with a power plant or a powered appliance. The flexible drive shaft (300) includes an outer flexible sheath (310), roller type bearings (308), and a multifilament torque conducting flexible core (306) held spaced apart from the outer flexible sheath (310) by the bearings (308).
Claims
1. A multi-application power unit for selectively driving a plurality of power driven appliances, the multi-application power unit comprising: at least one power plant including an output shaft bearing a power connection element; a plurality of power driven appliances; and a platform including a variable position power plant engagement securing the power plant to the platform and enabling the power plant to be moved among a plurality of selectable power plant positions each enabling coupling of the power connection element of the power plant to at least one of the plurality of power driven appliances when the at least one power driven appliance is coupled to the platform proximate a selectable power plant position, wherein each power plant position includes a coupling retaining a power driven appliance to the platform.
2. The multi-application power unit of claim 1, wherein the variable position power plant engagement comprises a track system entrapping the at least one power plant by interference fit.
3. The multi-application power unit of claim 1, wherein the variable position power plant engagement comprises a rail fixed to the platform, and the power plant comprises rollers dimensioned and configured to roll along the rail.
4. The multi-application power unit of claim 1, further comprising a plurality of power driven appliances removably attachable to and coupled to the platform, wherein each one of the plurality of power driven appliances is located proximate one of the plurality of selectable power plant positions such that the power plant can be moved into drivable engagement with any one of the power driven appliances when the one power driven appliance is coupled to the platform at one of the selectable power plant positions.
5. The multi-application power unit of claim 1, wherein the track system comprises channels recessed into the platform, and each of the channels constrains the power plant to move among the selectable power plant positions.
6. The multi-application power unit of claim 5, wherein the channels are arrayed orthogonally.
7. The multi-application power unit of claim 6, wherein the channels include at least two parallel paths in a first direction and at least one path spanning the at least two parallel paths.
8. The multi-application power unit of claim 7, wherein the at least two parallel paths comprise three parallel paths.
9. The multi-application power unit of claim 1, further comprising a manual mover capable of moving the power plant to one of the plurality of selectable power plant positions.
10. The multi-application power unit of claim 9, wherein the manual mover comprises a lever movable to at least two active positions, wherein in each of the at least two active positions, the lever has moved the power plant to coupling proximity to one power driven appliance when the power driven appliance has been fastened to the platform at a selectable power plant position.
11. The multi-application power unit of claim 10, wherein the manual mover may comprise a gate assembly having at least two end slots dimensioned and configured to receive the lever and to constrain the lever to move along a travel path wherein the lever can move the power plant selectively to one of the active positions at one end slot, and to a second one of the active positions at the other end slot.
12. The multi-application power unit of claim 11, further comprising a power plant controller operably mounted to the gate assembly and connected to the power plant.
13. The multi-application power unit of claim 10, wherein each of the at least two active positions is linearly opposed to another of the at least two positions, whereby the power plant can be connected selectively to two power driven appliances by linear motion.
14. The multi-application power unit of claim 11, wherein the gate assembly includes an intermediate slot between the two end slots, wherein moving the lever to occupy the intermediate slot moves the power plant to a neutral position wherein no power driven appliances will be engaged.
15. The multi-application power unit of claim 1, wherein the track system comprises grooves and the power plant has feet slidable along the grooves.
16. The multi-application power unit of claim 1, further comprising a slidable engagement coupling the power connection element of the power plant to one power driven appliance, the slidable engagement coupling including a splined shaft on one of the power plant and the power driven appliance and a splined socket on the other one of the power plant and the power driven appliance.
17. The multi-application power unit of claim 16, wherein the splined socket comprises a beveled portion configured to guide the splined shaft into concentric driving engagement therewith.
18. The multi-application power unit of claim 1, further comprising a slidable engagement coupling the power connection element of the power plant to at least one of a plurality of power driven appliances, wherein one of the power plant and the power driven appliances comprises a splined socket and the other one of the power plant and the power driven appliances comprises an unsplined shaft having a first keyway, and a splined head removably attachable to the unsplined shaft; and the splined head comprises a collar fixed thereto, the collar comprising a second keyway, a key matingly compatible with the first keyway and the second keyway, and a setscrew for engaging the unsplined shaft.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1) Various objects, features, and attendant advantages of the present disclosure will become more fully appreciated as the same becomes better understood when considered in conjunction with the accompanying drawings, in which like reference characters designate the same or similar parts throughout the several views, and wherein:
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DETAILED DESCRIPTION
(25) Referring first to
(26) In summary, a plurality of power driven appliances 114 may be mounted to platform 108, while power plant 102 is movable from one power driven appliance 114 to another. Moving power plant 102 into a selectable power plant position causes torque transfer to an engaged power driven appliance 114, as will be described hereinafter.
(27) The variable position power plant engagement may comprise a track system 110 entrapping the at least one power plant 102 by interference fit. Track system 110 may comprise a plurality of channels 115 along which power plant 102 may slide as it is moved from one selectable power plant position 112 to another.
(28) Continuing to refer to
(29) Referring specifically to
(30) The variable position power plant engagement may comprise a turntable (not shown), to which power plant 102 is rotatably fixed. Rotation causes power plant 102 to present its associated power connection element 106 to be accessible at a new or different selectable power plant position 112, for connection to a different power driven appliance 114. This situation would apply where platform 108 is relatively small compared to e.g.
(31) Each selectable power plant position 112 (called out in
(32) Power connection element 106 is an element non-circular in cross section through a rotational axis of output shaft 104, which can engage and drive a corresponding non-circular power connection element. In the example of
(33) Platform 108 is a structural member for supporting power plant 102, power driven appliances 114, and other apparatus for operating multi-application unit 100. Platform 108 may or may not have a flat upper surface, for example, comprising an open frame (not shown).
(34) Power driven appliances 114 may include any tool or other device for performing useful work, which requires movement under power to function. Examples include AC and DC generators, high volume, low pressure pumps such as irrigation pumps, low volume, high pressure pumps such as pressure washer pumps, hydraulic pumps, other pumps, vacuum pumps, air compressors, cutting appliances such as table or bench saws, grinders, and illumination units including both generator and also lighting elements, among others.
(35) Multi-application power unit 100 may further comprise a plurality of power driven appliances 114 removably attachable to and coupled to platform 108. Each one of the plurality of power driven appliances 114 is located proximate one of the plurality of selectable power plant positions 112 such that power plant 102 can be moved into drivable engagement with any one of power driven appliances 114 when the one power driven appliance 114 is coupled to platform 108 at one of selectable power plant positions 112.
(36) In track system 110, channels 115 may be arrayed orthogonally. This results in a compact array of selectable power plant positions 112 for a platform 108 of any given size.
(37) As depicted in
(38) The at least two parallel paths may comprise three parallel paths. As shown in
(39) Referring particularly to
(40) Manual mover 122 may comprises a lever 124 movable to at least two active positions, wherein in each of the at least two active positions, lever 124 has moved power plant 102 to coupling proximity to one power driven appliance 114 when power driven appliance 114 has been fastened to platform 108 at a selectable power plant position 112. Lever 124 facilitates one handed movement of power plant 102 from one location to another. Lever 124 may terminate in a yoke (not shown) which engages a pin (e.g., corresponding to pin 146 in
(41) Manual mover 122 may comprise a gate assembly 128 having at least two end slots 130, 134 dimensioned and configured to receive lever 124 and to constrain lever 124 to move along a travel path wherein lever 124 can move power plant 102 selectively to one of the active positions at one end slot 130 or 134 and to a second one of the active positions at the other end slot 134 or 130. Constraining the travel path of the lever allows a user to move power plant 102 with less concentration, and assures that power plant 102 will be moved where intended.
(42) As an alternative to manual mover 122, for example for use in environments wherein power plant 102 is not readily accessible, position of power plant 102 relative to power driven appliance 114 may be managed remotely, such as by a hydraulic actuator (not shown).
(43) In track system 110, each of the at least two active positions may be linearly opposed to another of the at least two positions, whereby power plant 102 can be connected selectively to two power driven appliances 114 by linear motion. This is both easier for a user, and also reduces likelihood of lever related components from wearing and becoming susceptible to misalignments over time.
(44) Referring specifically to
(45) Gate assembly 128 may include an intermediate slot 132 between two end slots 130, 134, wherein moving lever 124 to occupy intermediate slot 132 moves power plant 102 to a neutral position wherein no power driven appliances 114 will be engaged. This permits power plant 102 to remain running even when operation of a power driven appliance is not desired.
(46) Turning now to
(47) As shown in
(48) Also referring to
(49) Referring also to
(50) Where used with boats, multi-application unit 100 may be used to selectively drive for example a generator or a limited duty motor, such as a trolling motor or standby or spare motor.
(51) Multi-application power unit 100 may be utilized as a stationary device, such as a free standing work station, with or without legs, which is used in one location, or which may be integrated into a building or other premise. Alternatively, multi-application power unit 100 may be mobile, for example having wheels, such as being a wheeled trailer with a hitch (not shown). Multi-application power unit 100 may be integrated into an aircraft or a water craft, either permanently fixed, or alternatively, removably installed.
(52) In production models of multi-application power unit 100, power connection element 106 and splined socket 116 would be covered by guards (not shown).
(53) As shown in
(54) Both the power plant and also the power driven appliance may be modular, and may be freely exchanged for other power plants and power driven appliances.
(55) Referring to
(56) A first power associated module 212 is manually securable to and releasable from a first torque transfer connector (e.g., socket 208) of first torque transfer element 238, wherein first power associated module 212 comprises one of a power plant and a power driven appliance. A second power associated module 202 is manually securable to a torque transfer connector (e.g., socket 208) of second torque transfer element 230. Second power associated module 202 comprises another one of a power plant and a power driven appliance. That is, for modular power plant and power driven appliance kit 200 to be useful, it must have one power plant and one power driven appliance.
(57) It will be appreciated that the first and second connectors align the power associated module relative to chassis 204, and also support the weight thereof, even under dynamic conditions of use. Alignment is important because of the necessity of aligning rotating torque transmission components.
(58) First support 210 and second support 218 have been illustrated as rectangular. However, in some embodiments, first support and second support 218 may have other configurations, such as octagonal, circular, and others. Support wall 210 and corresponding support wall 218 of first power associated module 212 are configured to enable first power associated module 212 to be indexably coupled to chassis 204. This feature enables a great many indexable positions of a power driven appliance (shown as modular unit 212 in
(59) Unless otherwise indicated, the terms first, second, etc., are used herein merely as labels, and are not intended to impose ordinal, positional, or hierarchical requirements on the times to which these terms refer. Moreover, reference to, e.g., a second item does not either require or preclude the existence of, e.g., a first or lower-numbered item, and/or, e.g., a third or higher-numbered item.
(60) Modular power plant and power driven appliance kit 200 may further comprise at least two wheels 224 rotatably coupled to chassis 204, to enable chassis 204 to be rolled along a ground surface (not shown), and a handle 220 coupled to chassis 204. Handle 220 is configured to enable maneuvering chassis 204 along the ground by hand. In the example of
(61) The first connector (e.g., wall 210) is dimensioned and configured to hold first power associated module 212 in torque transfer relation to first torque transfer element 238, and to enable sliding engagement of first power associated module 212 with first torque transfer element 238. In the example of
(62) It should be noted at this point that orientational terms such as above, over, and below, etc., refer to the subject drawing as viewed by an observer. The drawing figures depict their subject matter in orientations of normal use, which could obviously change with changes in body posture of the user and position of depicted apparatus. Therefore, orientational terms must be understood to provide semantic basis for purposes of description only, and do not imply that their subject matter can be used only in one position.
(63) The first connector further comprises a first support wall 210 capable of supporting the first power associated module 212 on the chassis 204 in an operable position under operating conditions. An operating position is a position in which torque is operably connected between the power associated modules actually installed on and used with modular power plant and power driven appliance kit 200. Under operating conditions, the powered appliance is driven by torque from the power plant.
(64) The modular power plant and power driven appliance kit 200 may further comprise a second support wall (not shown, but similar to first support wall 210) capable of supporting the second power associated module 202 on the chassis 204 in the operable position under operating conditions, and a transmission (232, 234, 236, seen in
(65) Referring particularly to
(66) To accommodate more power, the arrangement using drive belt 236 may be replaced by a system employing intermeshing gears (not shown).
(67) In the modular power plant and power driven appliance kit 200, the first connector (e.g., support wall 210) and the second connector (e.g., another wall 210) are configured to engage respectively first power associated module 212 directly above the first torque transfer element (e.g., socket 208) and second power associated module 202 directly above the second torque transfer element (e.g., the other socket 208) when the modular power plant and power driven appliance kit 200 is in an operable position. Also, first torque transfer element 238 has a vertical rotational axis 205 and the second torque transfer element 230 has a vertical rotational axis 207 when modular power plant and power driven appliance kit 200 is in the operable position. This relationship enables both the power plant and also the power driven appliance to be lowered onto chassis 204 and immediately become both stably supported and also suitably connected to torque transferring components.
(68) Modular power plant and power driven appliance kit 200 is in the operable position when wheels 224 of chassis 204 contact the ground from thereabove. First power associated module 212 has a vertical rotational axis 205 and second power associated module 202 has a vertical rotational axis 207 when engaging the respective first torque transfer element and the second torque transfer element (e.g., sockets 208). Vertical rotational axes 205, 207 enable both the power plant and also the power driven appliance to be lowered onto chassis 204, when chassis 204 is in a position to be wheeled along the ground.
(69) Referring also to
(70) When lowering a power associated module 202 or 212 into engagement with socket 208, power associated module 202 or 212 is held in appropriate alignment by telescoping fit of complementing support components. To this end, modular power plant and power driven appliance kit 200 further comprises a second support (e.g., wall 218,
(71) Stability of a power associated module 202 or 212 may rely on gravity if walls 201, 218 overlap one another sufficiently. Alternatively, and referring now to
(72) To this end, handle 244 incorporates a pivotally mounted control lever 254. No conscious effort is required of the user to operate control lever 254, as the latter is located at the bottom of that portion of handle 244 which is ordinary grasped by the user when lifting first or second power associated module 212 or 202. Grasping handle 244 pivots control lever 254, which pulls on a cable 256. In turn, pulling on cable in the direction indicated as direction B turns a wheel 258. A connecting rod 260 responsively pulls on a latch pin 262 in a direction C, withdrawing latch pin 262 from a hole (not shown) in wall 210. First or second power associated modular unit 212 or 202 may then be pulled free from wall 210. Two cables 256 and associated components are depicted in
(73) In the above latching arrangement, at least one of first power associated module 212 and second power associated module 202 comprises handle 244 for lifting. The latch is mostly contained within handle 244. That is, only control lever 254 and latch pins 262 protrude from handle 244, with the remaining linkage components being contained within handle 244.
(74) Referring particularly to
(75) Referring now initially to
(76) Elongated flexible core 306 may comprise stranded metallic filaments.
(77) Bearings 308 refer to a bearing assembly including ball or rollers, hereinafter referred to as rolling bearing elements, either balls or rollers, and associated races (e.g., races 330, 332 in
(78) Referring to
(79) Referring particularly to
(80) The utilitarian power device is only part of a complete, self-contained appliance capable of performing a task; alternatively stated, the utilitarian device may be an incomplete appliance. It is utilitarian in that it provides at least one necessary function required to make the appliance operable. Illustratively, the utilitarian device may comprise power plant 302 or a portion thereof, or alternatively, may comprise power driven appliance 304 or a portion thereof, or in a still further alternative, any combination of these.
(81) As illustrated in the examples of
(82) Where the utilitarian power device (either a power producing power plant 302 or a power consuming power driven appliance 304) is an incomplete appliance including flexible drive shaft 300, the latter may be provided with a suitable terminal or interface apparatus (e.g., power connection head 320,
(83) An example of the element assuring that the internal cable of driveshaft 300 can engage and rotate or be rotated by the added element is a solid, monolithic, rigid square drive crimped over or otherwise suitably coupled to elongated flexible core 306 of drive shaft 300. As an alternative, the element assuring that the internal cable of driveshaft 300 can engage and rotate or be rotated by the added element may be a female member, such as a square hole socket, star hole socket (e.g., Torx), and the like.
(84) Regardless of its specific form, the terminal or interface device will be selected to be readily installed by hand and/or by use of hand tools to a corresponding portion of the added element rendering the appliance complete.
(85) In another implementation of the disclosure the power associated apparatus comprises a power driven appliance 304, or a power transmission device such as power connection head 320 for transmitting torque to power driven appliance 304 (
(86) In an implementation of the disclosure shown in
(87) As seen in
(88) Flexible drive shaft 300 has a power connection head 320 from which projects a power transmitting element such as gear 322. Power driven appliance 304 connects to power from power connection head 320, and latches thereto. Power connection head 320 may also carry power plant controls, such as a lever 324 for controlling power plant 302. Lever 324 may for example draw a cable 382 coupled to flexible drive shaft 300, for controlling the throttle of an internal combustion engine (not shown). Therefore, as illustrated in the example of
(89) Still referring to the example of
(90) Turning to an example shown in
(91) Rolling bearing elements (as opposed for example to shell type bearings, not shown) of flexible drive shaft 300 may take a number of forms. Illustratively, and as shown in
(92) Referring to
(93) A method of transferring torque from a power plant outputting torque to a power driven appliance comprises inputting the torque output by power plant 302 to elongated flexible core 306 of flexible drive shaft 300, encasing elongated flexible core 306 within flexible tubular sheath 310, reinforcing flexible tubular sheath 310 against collapse with internal stiffener 314 embedded within flexible annular wall 312 of flexible tubular sheath 310, and supporting elongated flexible core 306 on a plurality of bearings 308 including complementary bearing races and rolling bearing elements within the complementary bearing races such that elongated flexible core 306 is spaced apart from flexible tubular sheath 310, and each bearing 308 is spaced apart from every adjacent bearing 308. The method also comprises transferring torque from power plant 302 to power driven appliance 304 via flexible drive shaft 300. The advantage of using drive shaft 300 is that the construction recited herein allows for greater bending than is generally feasible with known flexible drive shafts, while still preventing collapse, kinking, and localized flattening of flexible drive shaft 300.
(94) It will be appreciated that many features presented herein may be utilized with any of the implementations of the subject matter of this disclosure, even though this may not be explicitly described. For example, flexible drive shaft 300 may be incorporated into multi-application unit 100 and modular power plant and power driven application system 200.
(95) While the present disclosure has been described in connection with what is considered the most practical and preferred embodiment, it is to be understood that the present disclosure is not to be limited to the disclosed arrangements, but is intended to cover various arrangements which are included within the spirit and scope of the broadest possible interpretation of the appended claims so as to encompass all modifications and equivalent arrangements which are possible.
(96) It should be understood that the various examples of the apparatus(es) disclosed herein may include any of the components, features, and functionalities of any of the other examples of the apparatus(es) disclosed herein in any feasible combination, and all of such possibilities are intended to be within the spirit and scope of the present disclosure. Many modifications of examples set forth herein will come to mind to one skilled in the art to which the present disclosure pertains having the benefit of the teachings presented in the foregoing descriptions and the associated drawings.
(97) No element, act, or instruction used in the description of the present application should be construed as critical or essential to the embodiments unless explicitly described as such. Also, as used herein, the article a is intended to include one or more items.
(98) Therefore, it is to be understood that the present disclosure is not to be limited to the specific examples presented and that modifications and other examples are intended to be included within the scope of the appended claims. Moreover, although the foregoing description and the associated drawings describe examples of the present disclosure in the context of certain illustrative combinations of elements and/or functions, it should be appreciated that different combinations of elements and/or functions may be provided by alternative implementations without departing from the scope of the appended claims.
(99) All United States patents and applications, foreign patents, and publications discussed above are incorporated herein by reference in their entireties.