WO1992010703A1 - Self-contained solar powered lamp - Google Patents
Self-contained solar powered lamp Download PDFInfo
- Publication number
- WO1992010703A1 WO1992010703A1 PCT/EP1991/002315 EP9102315W WO9210703A1 WO 1992010703 A1 WO1992010703 A1 WO 1992010703A1 EP 9102315 W EP9102315 W EP 9102315W WO 9210703 A1 WO9210703 A1 WO 9210703A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- cell array
- solar cell
- storage device
- powered lamp
- electrical storage
- Prior art date
Links
Classifications
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F21—LIGHTING
- F21V—FUNCTIONAL FEATURES OR DETAILS OF LIGHTING DEVICES OR SYSTEMS THEREOF; STRUCTURAL COMBINATIONS OF LIGHTING DEVICES WITH OTHER ARTICLES, NOT OTHERWISE PROVIDED FOR
- F21V21/00—Supporting, suspending, or attaching arrangements for lighting devices; Hand grips
- F21V21/08—Devices for easy attachment to any desired place, e.g. clip, clamp, magnet
- F21V21/0824—Ground spikes
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F21—LIGHTING
- F21S—NON-PORTABLE LIGHTING DEVICES; SYSTEMS THEREOF; VEHICLE LIGHTING DEVICES SPECIALLY ADAPTED FOR VEHICLE EXTERIORS
- F21S9/00—Lighting devices with a built-in power supply; Systems employing lighting devices with a built-in power supply
- F21S9/02—Lighting devices with a built-in power supply; Systems employing lighting devices with a built-in power supply the power supply being a battery or accumulator
- F21S9/03—Lighting devices with a built-in power supply; Systems employing lighting devices with a built-in power supply the power supply being a battery or accumulator rechargeable by exposure to light
- F21S9/037—Lighting devices with a built-in power supply; Systems employing lighting devices with a built-in power supply the power supply being a battery or accumulator rechargeable by exposure to light the solar unit and the lighting unit being located within or on the same housing
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F21—LIGHTING
- F21W—INDEXING SCHEME ASSOCIATED WITH SUBCLASSES F21K, F21L, F21S and F21V, RELATING TO USES OR APPLICATIONS OF LIGHTING DEVICES OR SYSTEMS
- F21W2131/00—Use or application of lighting devices or systems not provided for in codes F21W2102/00-F21W2121/00
- F21W2131/10—Outdoor lighting
- F21W2131/109—Outdoor lighting of gardens
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02B—CLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
- Y02B20/00—Energy efficient lighting technologies, e.g. halogen lamps or gas discharge lamps
- Y02B20/72—Energy efficient lighting technologies, e.g. halogen lamps or gas discharge lamps in street lighting
Definitions
- This invention relates generally to lighting devices and more particularly to a solar powered lamp. More specifically, the invention relates to a solar powered lamp which is configured to function efficiently at elevated temperatures, by providing an increase in the acceptance of charge at elevated temperatures and flow of air through the lamp in order to control the temperature. The invention also relates to a solar powered lamp which is configured to assemble and disassemble with ease.
- Electrically powered outdoor lighting systems are used to illuminate pathways, yards, parks and other li p areas. Commonly, such lights are connected to public utility systems, or similar sources of electrical power and are controlled by preset timing devices, to illuminate desired areas at nightfall and automatically turn off at a predetermined time, for example, prior to daybreak.
- Lighting devices which utilize solar energy and do not operate off a public utility source of power or the like, have proved to be a viable and desirable alternative. Solar lighting devices are desirable because they are relatively inexpensive and require hardly any maintenance.
- Existing solar lighting devices have a self- contained electrical storage device which is maintained in a charged condition by a solar cell array.
- the solar cell array provides current at a required voltage to charge an electrical storage device-during the day. Illumination is provided by supplying charge from an electrical storage device to an electrical light source such as a light bulb at night when the solar cell array is not producing electricity.
- the charging current supplied to the electrical storage device is controlled by the sunlight intensity and the size and efficiency of the solar cell array.
- Such solar lighting devices although known to perform satisfactorily at normal temperatures, deteriorate in performance at elevated temperatures.
- such solar lighcing devices include electrical storage devices which function at their optimum at a specified operating temperature. At this temperature, the electrical storage device accepts all of the charge produced by the solar cell array.
- the electrical storage device is disposed in close proximity to the solar cell array to allow charge to be easily and efficiently transferred from the solar cell array to the electrical storage device. In such an arrangement, since the electrical storage device is in heat transfer proximity to the solar cell array, heat generated by the solar cell array causes the electrical storage device to become undesirably hot, thus, elevating its temperature beyond the operating temperature specified by the manufacturer. At temperatures higher than the operating temperature, the charge acceptance capabilities of the electrical storage device decrease substantially.
- the electrical storage device may be arranged remote from the solar cell array. Although this prevents the electrical storage device from absorbing heat generated by the solar cell array, thus, maintaining the operating temperature at a normal level in hot weather, it is not satisfactory during cold weather because the electrical storage device is unable to provide current sufficient to illuminate the bulb at temperatures below its operating temperature.
- the electrical storage device is thererore typically placed in heat transfer proximity to the solar cell array so that heat absorbed by the solar cell array on a sunny day helps elevate the temperature of the power source to its normal operating temperature even if the ambient temperature is low.
- existing solar lighting devices are configured in a manner which does not provide for the flow of air through the lamp. This further contributes to higher temperatures and inefficient performance at such temperatures.
- Prior configurations of solar lighting devices comprise a plurality of parts which are held together in an arrangement such that they are easily dislodged during use and are difficult and time-consuming to reassemble or repair.
- the present invention provides a solar powered lamp configured to function more efficiently at elevated temperatures.
- the solar-powered lamp comprises a solar cell array disposed within an upper portion for producing electricity and an electrical storage device disposed within a component tray for accepting charge from the solar cell array.
- the component tray is arranged in heat transfer proximity to the solar cell array.
- the electrical storage device generates electricity which is supplied to an electrical light source for providing iliumincfcio ⁇ .
- the elect.ri a.1 storage device features an increased acceptance of charge produced by the solar cell array, at elevated temperatures.
- the electrical storage device is spaced from the solar cell array by an amount sufficient to provide a flow of air between the solar cell array and the electrical storage device in order to prevent convective heating of the air surrounding the electrical storage device and to keep it from overheating. At the same time this configuration maintains an efficient transfer of charge from the solar cell array to the electrical storage device. Openings are provided in the component tray and upper portion to produce the flow of air through the solar powered lamp.
- a lens structure disposed about the light source also has openings which allow air to enter the lamp and move in an upward direction.
- the upper portion has inwardly and upwardly directed louver- type members extending from its inner surface, adjacent the openings provided in the upper portion to prevent moisture from entering the component tray.
- the solar powered lamp is configured such that, a top lens is securely but easily retained within the upper portion to provide easy access to the electrical storage device for ease of assembly and service.
- the lens structure is formed as an integral unit and configured to securely retain the component tray at its upper end. The lens structure has latching members securely retained within recesses formed in the upper portion to provide an assembly which is a stable assembly but is easily disassembled when necessary tc provide access to the component tray and light source.
- the lens structure also has a protrusion at its lower end which is threaded about its exterior periphery for attachment of a mounting stake to the lens structure during assembly.
- Figure 1 is a perspective view showing one embodiment of a solar powered lamp constructed in accordance with the principles of the present invention
- Figure 2 is an exploded view showing the various component parts of the structure as illustrated in Figure 1;
- Figure 3 is a cross-sectional view of the bezel taken along line 3-3 of Figure 2;
- Figure 4 is a cross-sectional view of the cover taken along line 4-4 of Figure 2;
- Figure 5 is a plan view of the lens for the lamp
- Figure 6 is a top plan view of a decorative disk
- Figure 7 is a cross-sectional view of the disk illustrated in Figure 6 taken along line 7-7 thereof;
- Figure 8 is a top plan view of the component assembly tray with the component's position therein;
- Figure 9 is a bottom plan view of the component tray of Figure 8;
- Figure 10 is a cross-sectional " view " of the component tray shown in Figure 9 taken along line 10-10 thereof;
- Figure 11 is a perspective view of an alternative embodiment of the solar powered lamp of the present invention.
- Figure 12 is a cross sectional view taken along line 12-12 of Figure 11, showing a projecting portion of the component tray which contains an electrical storage device.
- Figure 12 shows openings formed in a lower surface of the component tray to provide a flow of air about the electrical storage device;
- Figure 13 is a front elevational view of the solar powered lamp of the present invention shown in Figure 11, showing in phantom the projecting portion of the component tray;
- Figure 14 is a top plan view of the solar powered lamp of the present invention shown in Figure 11 showing an upper portion of the solar powered lamp within which a solar cell array is encapsulated;
- Figure 15 is a cross sectional view taken along line 15-15 of Figure 14, showing in phantom elongated slots formed in vertical walls of the upper portion and corresponding inwardly and upwardly directed louver-type members extending from an inner surface of the vertical walls;
- Figure 16 is a bottom plan view of the upper portion shown in Figure 14;
- Figure 17 is a cross sectional view taken along line 17-17 of Figure 13, showing the electrical storage device centrally disposed within the component tray;
- figure 18 is -' a cross sectional view taker. a ⁇ oi-7 lir.? 18-18 of Figure 11, showing a top lens with downwardly extending locking fingers terminating in a lip portion;
- Figure 19 is a cross sectional view taken along line 19-19 of Figure 16, showing the louver-type members;
- Figure 20 is a side elevational view of a lens of the solar powered lamp shown in Figure 11, showing a portion thereof cut away at an upper extremity of the lens and an externally threaded protrusion for securing a mounting stake;
- Figure 21 is a top plan view of the lens structure shown in Figure 20.
- FIG 1 illustrates generally a solar powered lamp 10 which is a stand alone lamp which includes a self-contained electrical power source or electrical storage device 11 (shown in Figures 8 and 17) , such as a high temperature battery, which is maintained in a charged condition by a solar cell array 13 and includes an electrical circuit 15 (shown in Figures 8 and 17) which controls application of electrical power to an electric light source 17 (shown in Figures 10 and 13) , such as a light bulb, contained therein.
- the electrical power from the electrical storage device 11 is supplied to the light source 17 when the solar cell array 13 is not producing electricity, that is, when the ambient light falls below a predetermined level.
- the solar powered lamp 10 of the present invention is configured to provide a high acceptance of charge at elevated temperatures and flow of air.
- the solar powered lamp 10 is configured to be assembled and disassembled with ease.
- the lamp 10 includes a top or upper for ic 12 having a lens 14 affixed thereto.
- a stake 16 is, in turn, attached to the lens 14 and is used to position the lamp 10 in the desired area such, for example, as by inserting the stake 16 into the earth.
- a solar cell assembly 18 is retained within the top portion 12.
- decorative disks 20 are retained upon the lens 14.
- the entire lamp assembly 10, as illustrated in Figures 1 and 11, may be moved from place to place and positioned at any particular point which may be desired for any particular application.
- a plurality of the lamps 10 may be positioned to illuminate a pathway as well as to delineate the same.
- such a plurality of lamps 10 may be placed to illuminate a given area during nighttime hours.
- the upper portion 12 of the lamp includes a bezel 22 which is preferably constructed of a molded plastic, such as ASA (acrylic styrene acrylonitrile) or the like, which is sturdy yet somewhat flexible for the purposes to be described below.
- ASA acrylic styrene acrylonitrile
- the bezel 22 having an upper part 48 and a lower part 88 defines an inner surface 24 from which there inwardly extends a plurality of spaced apart latching ribs shown at 26 and 28. Similar ribs, such as those illustrated at 26 and 28, are angularly disposed about the inner surface 24 of the bezel 22. Preferably, the latching ribs are disposed at 90* intervals about the surface 24, however, they may be disposed at different angular positions such as 120* or 60* depending upon the number desired. Also inwardly directed from the surface 24 are plurality et snap lock retainers as shown at 30. Again, such snap lock retainers are angularly disposed about the surface 24 and preferably at 90 * intervals although other intervals may be utilized as desired.
- the bezel 22 also defines an upper opening 32 within which the solar cell array 13 is disposed to receive the sunlight during daylight hours to charge the electrical storage device 11 contained within the light.
- the details of construction of the bezel 22 may be better understood by reference to Figure 3 which more clearly shows the position and relationships of the latching ribs and the snap lock retainer. As is therein shown, additional latching ribs 34, 36, 38 and 40 are shown extending inwardly from the inner surface 24 of the bezel 22. Additional snap lock retainers 42 and 44 are also illustrated. As is more clearly shown in Figure 3, the snap lock retainer 30 is displaced downwardly from the edge 46 of the bezel which defines the opening 32. As will be described more fully hereinafter, such spacing permits the solar cell assembly 18 to be snapped into place within the bezel 22 and securely held there.
- cover or top lens 50 which fits over the solar cell array 13 and which forms a part of the solar cell assembly 18.
- the cover 50 is optically clear and is preferably constructed of a polycarbonate plastic material which is impact resistant. The polycarbonate material thus protects the solar cell array 13 from incidental contact and also from dust.
- the cover 50 at its outer rim 52, includes a plurality of lugs as shown at 54, 56 and 58. Each of the lugs includes spaced apart protrusions as shown at 60 and 62 with respect to the lug 56.
- the lugs are angularly disposed about the cover 50 and preferably at 90' spacing to match the spacing of the snap lock retainers 30 formed on the bezel 22.
- the protrusions 60 and 62 when the cover 50 is positioned in place within the bezel 22, are spaced one on each side of a snap lock tongue formed on the solar cell assembly 18 such, for example, as shown at 68 and to be described more fully below.
- the protrusions 64 and 66 extend below the lower rim 70 of the cover 50. Further protrusions are shown at 72 and 74 and are those associated with the lugs 54 and 58 respectively.
- the general curvature of the cover 50 is also further and better illustrated in Figure 4.
- the cover 50 includes a step 76 in the periphery thereof.
- the step 76 fits within the opening 32 and conforms to the upper edge 46 of the bezel 22.
- the step 76 terminates in a ledge 78 which snugly mates against the upper portion 80 of the inner surface 24 of the bezel 22.
- the solar cell assembly 18, along with the cover 50, are assembled together and snapped into the bezel 22.
- Additional locking tongues 84 and 86 displaced 90 * from the tongue 68 are illustrated and an additional locking tongue, not shown, is disposed 180* from the tongue 68.
- the angular displacement of the locking tongues may be any desired.
- the displacement is such that the locking tongues on the solar cell assembly 18 mate with the snap lock retainers 30, 42 and 44 on the inner surface 24 of the bezel 22.
- the cover 50 is placed so that the protrusions 60 and 62 fall outside the tongue 68, thus securely and snugly fitting the cover over the solar cell assembly 18.
- the combination is then inserted into the bezel 22 and the locking tongues 68, 84 and 86 are ⁇ _ ⁇ app ⁇ d into place in the space provided oetween the upper edge 46 and the snap lock retainers 30.. 42 and 44 at the upper part 48 of the bezel 22.
- the ability to snap the combination of the cover 50 and the solar cell assembly 18 into place is provided by the flexibility of the molded plastic forming the bezel 22.
- a component tray assembly 90 is provided to receive a high temperature battery 92, which functions more efficiently at elevated temperatures in a manner described in greater detail below and electrical circuit assembly 94 and light source 17 in a central aperture 96.
- the tray 90 is interconnected by electrical wires 98 and 100 to the solar cell assembly 18 so that electrical power may be provided from the solar cell array 13 to the battery 92 to maintain the same in a charged condition.
- the battery also, through the provision of the circuit assembly 94 provides electrical power to the light source 17 when the solar cell array 13 is not generating electrical energy.
- the component tray assembly 90 includes notches 102, 104, 106 and 108 which are used to locate the component tray assembly 90 within the space between the spaced apart latching ribs 26, 28, 34, 36, 38 and 40.
- the tray 90 may then be rotated and secured in position at the bottom part 88 of the bezel 22.
- the lower surface of the component tray assembly 90 then closes the bottom of the bezel 22 to provide a completed assembly.
- the lens 14 includes outwardly extending latching fingers 110, 112, 114 and 116. Such fingers are inserted within openings as shown at 118 and 120 and the lens 14 is rotated appropriately to latch the same in place so as to extend downwardly from the component tray assembly 90.
- the disks 20 are assembled upon the outer surface c- ⁇ the i « ⁇ » ⁇ 1 oy slipping rue openings as illustrated at 152 and 154 over outwardly extending sectors 122 and 124 and then rotating the disks so that they occupy the space between the sectors 122 and 124 and the stops 126 and 128 associated with the sector 122 and the stops 130 and 132 associated with the sector 124.
- the stake 16 is assembled by inserting the body portions 134 and 136 over the central coupling 138 and securing the same by the use of screws inserted into the openings as illustrated at 140 and 142.
- the tip 144 may be inserted into the bottom of the body portion 136 and secured in place by a screw positioned within the opening 146.
- the entire assembly is then inserted over a protrusion 143 provided at the bottom of the lens 14 and held in place by a screw inserted through the opening 150 in the body portion 134 of the stake 16.
- the coupling 138 and the body portion 136 may be discarded.
- the lens 14 and the disks 20 contain protrusions 200 and 202 extending upwardly therefrom.
- the disk 20 includes a recess or detent 204 formed in the lower surface 206 thereof.
- the disks are oriented so that the openings 152 and 154 are aligned with a sector 122.
- the openings 152 and 120 are sufficiently large enough so that the disk will easily pass not only the sector 122 but also the stops 126 and 128.
- the disk is then positioned such that it is disposed in he space provided between the sector 124 and stops 130-332.
- the component tray assembly 90 As is therein shown, the battery 92 is supported within a battery container compartment 220.
- circuit board 94 which contains the appropriate electrical circuit to control the application of power to the battery for charging, or from the battery to the light source 217 to illuminate the same.
- the circuit board 94 is retained upon the component tray 90 by clips 230, 232, 234 and 236 which are molded as part of the tray 90.
- the circuit board 92 may simply be pressed into place and Iifcl y he clips 230 through 236.
- Appropriate electrical leads 238 and 240 extend from circuir board 94 to the electric lamp bulb 17 which is appropriately supported within the opening 96. Also extending from the upper surface of the component tray assembly 90 are spare bulb holders 242 and 244.
- openings 118 and 120 there are also provided similar openings 246 and 248.
- the openings 118, 120, 246 and 248 are designed to receive the latching fingers 110 through 116 formed on the upper edge of the lens 14. To assemble the lens 14 into the component tray 90, the fingers 110 through 116 are inserted into the large portion of the openings 118,
- the central portion 250 is positioned more toward the right than is the outer section 252 of the tray 90. There is thus a spacing within the openings to permit the fingers to be received through the openings and, after rotation, to be held in place on the component tray 90.
- an outer periphery 254 of the outer portion 252 of the tray has the notches 102 through 108 defined therein. Extending from the notches in a counter-clockwise direction, as viewed in Figure 9, are reduced thickness areas 256, 258, 260 and 262. The reduced thickness areas 256 through 262 may be viewed as blades defined by the outer periphery 254 which are utilized to secure the component tray 90 to the bezel 22. To accomplish such securement, the notches 102 through 108 are aligned in such a way that the component tray 90 slips past the latching ribs 28, 36 and 40 and the tray rests against the latching ribs 26, 38 and 3*.
- Tne component tray 90 is then rotated in a clockwise direction to cause the blades 256 through 262 to be secured in the space between the latching ribs 26, 28, 34 and 36, and 38 and 40, as well as the additional pair of latching ribs disposed 180' from the latching ribs 26 and 28. In this manner, the component tray 90 is securely held in place at the bottom of the bezel 22 and, as above indicated, closes the bottom surface of the bezel.
- the self-contained solar powered lamp 10 of the present invention may be readily and easily assembled by merely placing the various components in their respective positions, snapping the solar cell assembly 18 and the cover 50 in place, rotating the component tray assembly into a locking position, placing the disks 20 upon the lens and then securing the lens 14 by placing the latching fingers within the required openings and rotating the same in a clockwise direction.
- clockwise rotation of each of the components will lock the various components in position, thus completing the assembly of the solar powered lamp 10, after which the stake 16 may be attached and the lamp disposed in the desired position.
- Figures 11 through 21 illustrate an alternative embodiment of the present invention. Referring to Figures 11, 13, 14, 15, 16, 18 and 19, the lamp 10 comprises an upper portion 275 having a lens 277 affixed thereto.
- the stake 16 used to suitably position the lamp 10 in a desired location is suitably attached to the lens 277.
- the upper portion 275 in an exemplary embodiment is preferably rectangular, comprising four vertical intersecting walls, front and rear walls 279 and 280, respectively, and opposing side walls 282 and 3CC.
- hfc upper p _rticii A ⁇ I$ in the illustrated embodiment is preferably constructed from a suitable material such as ABS, high temperature Mitsubishi TS- 30.
- the front wall 279 has an opening 310 surrounding a switch 330, of conventional design.
- the opposing side walls 282 and 300 have two elongated slots 350 and 370 (shown in phantom in Figure 15) centrally disposed in parallel alignment.
- the elongated slots 350 and 370 are provided to allow air from within the upper portion 275 to exit into the atmosphere.
- louver-type members 400 and 420 are provided inwardly and upwardly directed from the inner surface of each of the opposing side walls 282 and 300, at the same location where the slots 350 and 370 are provided.
- the louver-type members 400 and 420 advantageously prevent moisture from entering into the upper portion 275.
- the upper portion 275 further comprises a roof
- the roof 320 which at its outer extremity terminates in an inclined overhanging portion 340 extending beyond the vertical walls 279, 280, 282 and 300.
- the roof 320 defines an upper opening 360, within which the solar cell array 13 is disposed to receive the sunlight during daylight hours to charge the electrical storage device 11 contained within the lamp 10.
- a top lens 380 fits over the solar cell array 13.
- the top lens 380 is preferably optically clear and is constructed of a polycarbonate plastic material which is suitably impact resistant. As mentioned before, by using a polycarbonate material, the solar cell array 13 are advantageously protected from accidental contact, dust and the like.
- the top lens 380 is configured to securely
- the top lens 380 is al o easily removable providing convenient access tc the solar cell array 13 and is easily assembled.
- downwardly extending locking fingers 480 and 500 are disposed preferably at remote ends of each of sides 440 and 460 of the top lens 380.
- Each of the locjcing fingers 480 and 500 terminates in a protruding lip portion 510.
- the locking fingers 480 and 500 are inserted through openings 530 and 540 (shown in Figures 14 and 16) provided at corresponding locations in the portion of the roof 320 extending beyond the front and rear walls 279 and 280.
- the protruding lip portion 510 once snapped through the openings 530 and 540 securely and snugly retains the top lens 380 in position over the solar cell array 13.
- the ability to snap the top lens 380 in place is provided by the flexibility of the material.
- the lip portion 510 abuts against the lower periphery of the roof 320. Once snapped into place, the top lens 380 is securely retained in position, but can be easily removed when necessary, to gain access to the solar cell array 13 or to be replaced.
- the upper portion 275 further comprises a component tray 540.
- the component tray 540 is provided to house the electrical storage device 11, the electrical circuit 15 and the light source 17.
- the component tray 540 is preferably constructed from a suitable material such as ABS.
- the component tray 540 is connected by electrical wires (not shown) to the solar cell array 13 so that electrical power is provided from the solar cell array 13 to the electrical storage device 11 to maintain the same in a charged condition.
- the electrical storage device 11 provides electrical power to the light source 17 when the solar cell array 13 is nor generating electrical energy.
- the component tray 540 comprises a projecting portion 560 which gradually tapers to a base extremity 580.
- the projecting portion 560 projects away from the solar cell array 13.
- the projecting portion 560 has inclined front and rear walls 600 and 620, respectively, and inclined opposing side walls 640 and 660, respectively.
- the electrical storage device 11 is supported within a container compartment 680, which is suitably constructed to securely retain the electrical storage device 11.
- the electrical storage device 11 is spaced from the solar cell array 13 by an amount, indicated at 681, which provides an adequate air gap and is sufficient to provide flow of air between the two. Flow of air between the solar cell array 13 and the electrical storage device 11 helps disperse the heat discharged by the solar cell array 13. The air gap allows the heated air to rise and cooler air to flow through. Thus, placing the electrical storage device 11 within the projecting portion 560 helps to alleviate the problem whereby the electrical storage device 11 absorbed heat discharged by the solar cell array 13.
- Cooling is further provided by adequate ventilation in the lamp 10.
- Air is admitted within the component tray 540 through elongated openings 730 and 750 formed in the base extremity 580, adjacent side walls 640 and 660.
- the base extremity 580 also has openings 770 and 790, centrally disposed on either side of the light source 17.
- the side walls 640 and 660 have openings 810 and 830, respectively, in parallel alignment with the openings 730 and 750.
- Attached to the container compartment 680 are appropriate contacts c_.G and /GO co secure electrical wires 740 and /£0.. respectively, wnich are connected to a circuit board 820.
- the circuit board 820 contains the appropriate electrical circuit 15 to control the application of power to the electrical storage device 11 for charging, or from the electrical storage device 11 to tne light source 17 for illuminating the same.
- the circuit board 820 is retained upon the component tray 540 by clips 860 and 880 which are preferably formed as part of the component tray 540.
- the circuit board 820 is easily secured into place and retained by the clips 860 and 880.
- Appropriate electrical leads 900 and 920 extend from the circuit board 820 to the light source 17 which is suitably supported within a central aperture 950. Suitable electrical leads 940 and 960 connect the circuit board 820 to the switch 330.
- the electrical storage device 11 is a high temperature battery which has a preferred charge acceptance temperature of 35* C.
- the high temperature battery preferably has an adequate cycle life and is a high temperature nickel-cadmium battery.
- Such batteries use a high temperature plastic separator and a special electrolyte that provides excellent high temperature charge acceptance.
- the high temperature accepts 100% of the charge produced by the solar cell array 13.
- the high temperature battery accepts between 75% to 80% of the charge produced by the solar cell array 13.
- the lens 277 is integrally molded from a suitable material such as plastic.
- the lens 277 is formed from a clear polycarbonate.
- the lens 277 includes a lip 1000, formed along its inner periphery and spaced from its upper extremity, so that the ⁇ _. ⁇ -__ --c_r.' eij 540 firmly sits against the lip luQ ⁇ .
- the j.t.'-.s 27"- comprises side walls 1020 and 1040, each of which has a portion 1060 thereof, cut away to correspond to a portion 1080 of the side walls 640 and 660 of the component tray 540.
- the portions 1060 and 1080 are removed to facilitate flow of air within the component tray 540 and about the electrical storage device 11 in order to control the temperature.
- latching members 1140 which are received and securely retained within corresponding recesses 1160 (best shown in Figure 15) formed along the front and rear walls 279 and 280 of the upper portion 275.
- the lens 277 at its base 1165 comprises four apertures 1168 to allow air to enter and move in an upward direction toward the component tray 540.
- the lens 277 at its base 1165 includes a protrusion 1170 which is threaded about its exterior periphery 1172.
- the stake 16 is preferably threaded about its interior (not shown) so that the stake 16 is easily and securely threaded and attached to the lens 277.
- the stake 16 includes an externally threaded tip 1175 such that it is easily coupled to a second stake.
- the externally threaded tip 1175 is inserted into the internally threaded periphery of the second stake. In this manner the solar powered lamp 10 is easily extended by a greater distance from the surface.
Landscapes
- Engineering & Computer Science (AREA)
- General Engineering & Computer Science (AREA)
- Life Sciences & Earth Sciences (AREA)
- Sustainable Development (AREA)
- Arrangement Of Elements, Cooling, Sealing, Or The Like Of Lighting Devices (AREA)
- Photovoltaic Devices (AREA)
Abstract
Description
Claims
Priority Applications (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
BR919107148A BR9107148A (en) | 1990-12-05 | 1991-12-04 | SELF-CONTAINED LAMP POWERED FOR SOLAR ENERGY |
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US62245590A | 1990-12-05 | 1990-12-05 | |
US622,455 | 1990-12-05 |
Publications (1)
Publication Number | Publication Date |
---|---|
WO1992010703A1 true WO1992010703A1 (en) | 1992-06-25 |
Family
ID=24494228
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
PCT/EP1991/002315 WO1992010703A1 (en) | 1990-12-05 | 1991-12-04 | Self-contained solar powered lamp |
Country Status (4)
Country | Link |
---|---|
EP (1) | EP0560848A1 (en) |
JP (1) | JP3193046B2 (en) |
BR (1) | BR9107148A (en) |
WO (1) | WO1992010703A1 (en) |
Families Citing this family (1)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CN102032520B (en) * | 2009-09-24 | 2014-11-19 | 陈仕群 | LED (Light Emitting Diode) lighting street lamp and power generating system thereof |
Citations (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
WO1980001712A1 (en) * | 1979-02-15 | 1980-08-21 | T Fogelman | Portable self contained lighting device working on solar radiation |
US4441143A (en) * | 1980-08-11 | 1984-04-03 | Gladwin, Inc. | Photo voltaic lighting for outdoor telephone booth |
US4751622A (en) * | 1987-04-06 | 1988-06-14 | Power Plus, Inc. | Solar powered construction light |
-
1991
- 1991-12-04 JP JP50113492A patent/JP3193046B2/en not_active Expired - Fee Related
- 1991-12-04 BR BR919107148A patent/BR9107148A/en unknown
- 1991-12-04 WO PCT/EP1991/002315 patent/WO1992010703A1/en not_active Application Discontinuation
- 1991-12-04 EP EP92900354A patent/EP0560848A1/en not_active Ceased
Patent Citations (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
WO1980001712A1 (en) * | 1979-02-15 | 1980-08-21 | T Fogelman | Portable self contained lighting device working on solar radiation |
US4441143A (en) * | 1980-08-11 | 1984-04-03 | Gladwin, Inc. | Photo voltaic lighting for outdoor telephone booth |
US4751622A (en) * | 1987-04-06 | 1988-06-14 | Power Plus, Inc. | Solar powered construction light |
Also Published As
Publication number | Publication date |
---|---|
JPH06506558A (en) | 1994-07-21 |
JP3193046B2 (en) | 2001-07-30 |
EP0560848A1 (en) | 1993-09-22 |
BR9107148A (en) | 1993-11-23 |
Similar Documents
Publication | Publication Date | Title |
---|---|---|
US5367442A (en) | Self-contained solar powered lamp | |
US5062028A (en) | Self-contained solar powered lamp | |
US4999060A (en) | Solar cell packaging assembly for self-contained light | |
CA2591322C (en) | Solar rechargeable light emitting diode lights | |
KR200331757Y1 (en) | Light source for white color led lighting and white color led lighting device | |
JP7423638B2 (en) | Portable lighting with movable head and assembly method | |
US8083392B2 (en) | LED light has removable self-power LED unit(s) | |
US5217296A (en) | Solar powered light | |
US7347758B2 (en) | Illuminated flying disc | |
CA2241232C (en) | Emergency lighting device | |
WO2011093326A1 (en) | Solar cell power supply | |
US4772990A (en) | Solar powered warning flasher | |
US7830110B1 (en) | Solar-powered thermometer | |
US6812398B2 (en) | Separable solar energy storage device | |
US20060109647A1 (en) | Solar energy lamp | |
CN2842632Y (en) | Photoelectric luminous door-plate | |
KR101076618B1 (en) | Led lamp | |
KR200405396Y1 (en) | All-in-one designed solar light system with LED lamp | |
WO1992010703A1 (en) | Self-contained solar powered lamp | |
US8240872B1 (en) | Security safe interior lighting system | |
US20180128461A1 (en) | Multi-bodied flashlight | |
JPH06181003A (en) | Solar garden lamp | |
CN208967686U (en) | A kind of solar energy scenery lamp | |
US20010001259A1 (en) | Appliance lighting device | |
CN218379231U (en) | Anti-attenuation street lamp |
Legal Events
Date | Code | Title | Description |
---|---|---|---|
AK | Designated states |
Kind code of ref document: A1 Designated state(s): BR JP |
|
AL | Designated countries for regional patents |
Kind code of ref document: A1 Designated state(s): AT BE CH DE DK ES FR GB GR IT LU MC NL SE |
|
WWE | Wipo information: entry into national phase |
Ref document number: 1992900354 Country of ref document: EP |
|
WWP | Wipo information: published in national office |
Ref document number: 1992900354 Country of ref document: EP |
|
WWR | Wipo information: refused in national office |
Ref document number: 1992900354 Country of ref document: EP |
|
WWW | Wipo information: withdrawn in national office |
Ref document number: 1992900354 Country of ref document: EP |