Tabletop engine-driven generator
The tabletop engine-driven power generator addresses the challenge of charging batteries in power-outage scenarios by using a flameless catalytic combustion Stirling engine, offering a portable, safe, and efficient power generation solution for small electronic devices.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2025-11-07
- Publication Date
- 2026-03-11
AI Technical Summary
Existing rechargeable batteries for small electronic devices cannot be effectively charged in situations without access to commercial power outlets, such as during disasters or outdoor activities, and existing power generation solutions like solar panels or gasoline-fueled generators are either inefficient, bulky, noisy, or unsafe for indoor use.
A tabletop engine-driven power generator equipped with a maintenance-free external combustion engine using flameless catalytic combustion to charge rechargeable batteries, featuring a Stirling engine, fuel cartridge, and a power supply circuit to convert generated power for safe and portable use.
Provides a portable, safe, and maintenance-free power generation solution that can charge batteries for small electronic devices, overcoming the limitations of existing technologies by being compact, quiet, and environmentally friendly.
Smart Images

Figure 0007828126000001_ABST
Abstract
Description
[Technical Field]
[0001] An embodiment of the present invention relates to a tabletop engine-driven power generating device that generates power by being driven by an engine and charges a rechargeable battery or a rechargeable battery mounted on a small electronic device. [Background technology]
[0002] Conventionally, various rechargeable batteries, such as lithium-ion batteries, which can be recharged and reused, have been used as power sources for small electronic devices such as smartphones and portable personal computers. These rechargeable batteries are charged by plugging the device itself or a dedicated charger into a commercial power outlet (plug-in connector). Portable rechargeable batteries, such as rechargeable lithium-ion batteries, are also used outdoors where there are no power outlets. In the following description, a battery installed in a small electronic device and used to power it is referred to as a "rechargeable battery," and a battery used to charge such a rechargeable battery is referred to as a "rechargeable battery." When such a rechargeable battery is used to charge a rechargeable battery installed in an electronic device, its battery capacity decreases, and it must be plugged into a power outlet and charged before it can be used again. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2012-125765 Summary of the Invention [Problem to be solved by the invention]
[0004] As mentioned above, when the remaining battery capacity of a rechargeable battery used to charge a rechargeable battery installed in an electronic device drops below a specified level, it must be plugged in and recharged before it can be used to charge other devices again. In other words, when people are away from home or outdoors and there is no outlet, or when commercial power is not available due to a power outage or other reason, it is impossible to charge a drained rechargeable battery or rechargeable battery. In evacuation shelters and evacuation centers where people have evacuated following a disaster such as an earthquake or fire, electronic devices equipped with communication functions, particularly smartphones, are useful for understanding the current situation. However, in situations where a charging environment is not available due to a disaster or power outage, the use of electronic devices is limited for long periods of time.
[0005] Commonly used solar power generation devices such as solar panels require light (sunlight, etc.) to generate electricity, and external factors, such as the location without lighting or outside light (for example, a basement or a room without windows), the time of day (for example, nighttime), and weather (for example, heavy rain or snowfall), can greatly affect whether power can be generated and how long it takes to charge. In addition, the amount of power generated by a solar panel depends on the area of the light-receiving surface, so in order to obtain a reasonable amount of power, the device must be relatively large and heavy.
[0006] There are also generators equipped with gasoline-fueled internal combustion engines, but because they generate a lot of noise and emit a lot of harmful exhaust gases that can cause poisoning, they are generally intended for outdoor use. Therefore, they cannot be easily used indoors. Furthermore, because the main purpose of these generators is to supply power to tools and home appliances, the engines are large and heavy, making them inconvenient to carry and limiting storage space. In particular, internal combustion engines require regular maintenance because the condition of the lubricating oil also affects their operation.
[0007] Furthermore, Patent Document 1 proposes a device equipped with a heat generating means in the exhaust system of a diesel engine, which is an internal combustion engine. The heat generating means injects hydrocarbons into exhaust gas and burns them on a catalyst to generate heat for heating exhaust system components. Patent Document 1 describes, as a technical feature, the use of a catalyst that combines palladium and platinum, which are used as automobile exhaust gas purification catalysts, in a specific arrangement and ratio to create a synergistic effect. Specifically, it describes that using a combination of platinum and palladium can increase the temperature of equipment involved in exhaust gas treatment compared to using either metal alone, raising the catalyst outlet temperature to approximately 600°C and improving activity.
[0008] Therefore, the object of the present invention is to provide a tabletop engine-driven power generator that is portable enough to be used on a table, is equipped with an external combustion engine that is highly safe and maintenance-free due to flameless catalytic combustion, and generates electricity to charge portable rechargeable batteries and rechargeable batteries for small electronic devices. [Means for solving the problem]
[0009] a power supply circuit that converts the power generated by the power generation unit into a predetermined output value; and an output terminal that outputs power of the output value from the power supply circuit. [Effects of the Invention]
[0010] According to an embodiment of the present invention, it is possible to provide a tabletop engine-driven power generator that is portable enough to be used on a table, is equipped with a maintenance-free external combustion engine that is highly safe due to flameless catalytic combustion, and generates electricity to charge rechargeable batteries and rechargeable batteries for small electronic devices. [Brief explanation of the drawings]
[0011] [Figure 1] FIG. 1 is a block diagram conceptually showing a first configuration example of a power generating device according to a first embodiment. [Figure 2] Fig. 2(a) is a front view showing an example of the structure of the power generating device according to the first embodiment, Fig. 2(b) is a rear view showing the example of the structure of the power generating device, and Fig. 2(c) is a side view showing the example of the structure of the power generating device. [Figure 3] FIG. 3 is a diagram showing an example of a housing that houses the power generating device according to the first embodiment. [Figure 4] Fig. 4(a) is a diagram showing the external configuration of the fuel cartridge and cap according to the first embodiment, Fig. 4(b) is a diagram showing an example of the configuration of the rear face of the fuel cartridge, and Fig. 4(c) is a diagram showing the cross-sectional configuration of the fuel cartridge. [Figure 5] Fig. 5(a) is a diagram showing a conceptual configuration example of a supply unit attached to a fuel vaporization unit and a hood unit of a power generation device according to the first embodiment, Fig. 5(b) is a side view of the supply unit, and Fig. 5(c) is a diagram showing a cross-sectional configuration of the supply unit. [Figure 6] FIG. 6 is a diagram showing an example of the configuration of the catalyst unit according to the first embodiment. [Figure 7] FIG. 7(a) is a diagram showing a cross section of a first configuration example of an engine according to a first embodiment, FIG. 7(b) is a diagram showing the appearance of the first configuration example of the engine, and FIG. 7(c) is a diagram showing the appearance of the first configuration example of the engine as seen from the side. [Figure 8]Fig. 8(a) is a diagram showing an example of the configuration of the power generation unit of the power generation device according to the first embodiment, Fig. 8(b) is a side view of the power generation unit, and Fig. 8(c) is a diagram showing a cross-sectional configuration of the power generation unit. [Figure 9] FIG. 9(a) is a diagram showing the external configuration of the manual starter according to the first embodiment, FIG. 9(b) is a diagram showing the external configuration of the manual starter as seen from the side, and FIG. 9(c) is a cross-sectional view of the manual starter. [Figure 10] Figure 10(a) is an external view of the engine seen from diagonally above, Figure 10(b) is an external view of the engine seen from the side, Figure 10(c) is an external view of the engine seen from the front, and Figure 10(d) is a cross-sectional view of the engine. [Figure 11] FIG. 11 is a diagram conceptually showing an example of the configuration of a tabletop engine-driven power generating apparatus according to the second embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0012] The present invention relates to a small power generating device that is placed on a table or the like and generates electricity by engine drive, and is called a tabletop engine-driven power generating device to distinguish it from a solar power generator. A first embodiment of the present invention will be described in detail below with reference to the drawings. 1 and 2 are diagrams conceptually showing a first configuration example of a tabletop engine-driven power generating apparatus according to a first embodiment. Fig. 1 is a block diagram showing the configuration of the power generation device 1. Fig. 2(a) is a front view showing a specific structural example of the power generation device 1, Fig. 2(b) is a rear view showing a specific structural example of the power generation device 1, and Fig. 2(c) is a side view showing a specific structural example of the power generation device 1. Fig. 3 is a diagram showing an example of a housing that houses the power generation device 1. Of course, the present invention is not limited to this structural example. The power generation device 1 of this embodiment is composed of a fuel cartridge 2, a supply unit 3, a fuel vaporization unit 4, a heating element 5, an engine 6, a start heater 7, a power generation unit 8, a power supply circuit 9, a control unit 10, a display unit 11, an inertia unit 12, a start switch 13, a manual starter (manual generator) 14, and an output terminal 15.
[0013] The power generator 1 is housed in a housing 200 shown in FIG. 3. The housing 200 is composed of a frame 201, a main body cover 202 that covers the frame 201, and a handle 207. Note that the handle 207 is used when carrying the power generator 1, but is not an essential component and is shown here to indicate the size of the power generator 1. The frame 201 is a stand on which the power generator 1 is mounted. The main body cover 202 is provided with a manual starter 14 and a display unit 11 (display screen). Furthermore, the main body cover 202 may be provided with multiple holes or heat dissipation fins for heat dissipation, as necessary. Furthermore, within the housing 200, the fuel vaporization unit 4 (hood unit 31), the heating element 5, and the engine 6 (described later and shown in FIG. 2(a)) are separated from other components (such as the power generator 8, power supply circuit 9, control unit 10, and display unit 11) by a heat insulating section 16 formed on the frame 201, preventing the heat generated by the heating element 5 from affecting these other components. A cartridge mounting hole 203 is formed on the side of the main body cover 202, and an insertion opening 25 for the supply unit 3, which will be described later, is exposed.
[0014] Furthermore, cartridge attachment hole 203 may be provided with a removable cover (not shown) to prevent foreign matter from entering when not in use. Furthermore, vibration isolating member 205 made of an elastic member is provided on the edge surrounding cartridge attachment hole 203. Vibration isolating member 205 cancels out vibrations applied to fuel cartridge 2 so as to reduce the effects (contact noise, etc.) of vibrations from main body cover 202 on fuel cartridge 2 during power generation. Vibration isolating member 205 also contributes to preventing loosening of the screwed state between fuel cartridge 2 and insertion port 25 of supply unit 3.
[0015] Since the power generation device 1 generates vibrations when the engine 6 is driven, a vibration-isolating frame (frame body) 204, which has elastic members 206 such as vibration-isolating rubber or springs sandwiched between the top and bottom, is attached to the underside of the housing 200 to absorb and dampen the vibrations and prevent movement (bouncing movement) of the power generation device 1 due to the vibrations. Furthermore, along with this movement, noise caused by the vibrations is reduced. In addition to preventing vibrations, attaching the vibration-isolating frame 204 to the underside of the housing 200 also causes the housing 200 to float above the mounting surface, creating an airflow between the housing 200 and the mounting surface, which contributes to heat dissipation from the housing 200.
[0016] The components of the power generation device 1 will be described in detail below. The control unit 10 is equipped with a central processing circuit (CPU) and is an arithmetic processing unit that performs arithmetic processing according to a program, similar to a computer. The control unit 10 generates and outputs control signals (for error detection and output value management) and display signals related to at least the power supply circuit 9 and the display unit 11. Power for driving the control unit 10 is supplied from the manual starter 14 or the power supply circuit 9. A temperature signal measuring the temperature inside the hood unit 31 is input to the control unit 10 from a temperature sensor 28. Although not described in this embodiment, a temperature sensor that detects the temperature of the start heater 7 may be disposed on the start heater 7.
[0017] [Fuel cartridge] FIG. 4 is a diagram showing a conceptual configuration example of the fuel cartridge 2. As shown in FIG. Figure 4(a) is a diagram showing the external configuration of the fuel cartridge 2 and cap 23, Figure 4(b) is a diagram showing an example of the configuration of the rear surface of the fuel cartridge 2, and Figure 4(c) is a diagram showing the cross-sectional configuration of the fuel cartridge 2 (line AA shown in Figure 4(b)). The fuel cartridge 2 is an airtight and watertight bottle made of, for example, a metal such as steel or a resin, and serves as a container 21 for storing fuel containing hydrocarbons for generating heat through a chemical reaction (catalytic combustion) in the power generator 5 (described later). If the container 21 is made of steel, it is desirable to apply an anti-rust treatment to the outer surface. The container 21 has a protruding stopper 21a at the tip for supplying fuel. The stopper 21a has a flat edge at the top of the opening, and its outer surface is formed as a screw stopper with a male thread 21b for fixing it to the housing 200.
[0018] Male thread 21b is threadedly engaged with female thread 25a (see FIG. 5(c)) formed on the inner surface of insertion port 25 of supply unit 3. By threading male thread 21b and female thread 25a together, container 21 is fixed to supply unit 3 in an airtight and watertight manner. In other words, fuel cartridge 2 is attached to power generator 1. A knob 21e is provided on the rear end side of fuel cartridge 2 for threading female thread 25a.
[0019] Additionally, a small-diameter air hole (screw hole) 21c is formed adjacent to the knob 21e. When the container 21 is not in use, an air adjusting screw 21d is screwed in to close the air hole 21c to prevent fuel evaporation and leakage. A vertical groove (not shown) that serves as an air passage is formed in the thread of the air adjusting screw 21d, running vertically from the tip of the screw to just before the screw head. After the fuel cartridge 2 is fixed to the housing 200, by loosening the air adjusting screw 21d, air is introduced into the container 21 through the air hole 21c via the vertical groove, thereby maintaining atmospheric pressure within the container 21. By constantly maintaining atmospheric pressure within the container 21, fuel can be smoothly discharged and an increase in pressure within the container 21 due to an increase in room temperature can be prevented. Furthermore, when removing the fuel cartridge 2 with remaining fuel during use, the air adjusting screw 21d can be tightened to close the air hole 21c and prevent fuel from leaking from the container 21.
[0020] Fuel supply cock 22, which has a small diameter hole or slit formed in the center and is made of an elastic material such as rubber or a soft resin material, is attached to the top of the opening of plug portion 21a. The diameter of the hole and the opening area of the slit of fuel supply cock 22 are set so that the outflow rate is sufficient to allow fuel to seep into filter 25b in insertion port 25, which will be described later. As another example, fuel supply cock 22 may be made by shaping a filter material such as glass fiber or nonwoven fabric into a shape that fits into the opening of plug portion 21a. Furthermore, cap 23, which houses fuel supply cock 22 and is removable and can provide a watertight and airtight seal when not in use, is attached to the screw plug.
[0021] The fuel contained in the container 21 is a fuel containing hydrocarbon, and if the power generating body 5 is, for example, platinum, the fuel may be benzene, white gasoline, alcohol, or the like. In this embodiment, the engine 6 described below is an example of a Stirling engine, which is an external combustion engine. Because Stirling engines have high fuel efficiency, the fuel capacity of the fuel cartridge 2 may be small. The amount of fuel contained in the fuel cartridge 2 may be changed depending on the power generation time. Furthermore, multiple types of fuel cartridges 2 containing amounts of fuel corresponding to various power generation times (usage times) may be prepared in advance.
[0022] [Supply Department] The supply unit will be described in detail with reference to Figures 5(a) to 5(c). Figure 5(a) is a diagram showing a conceptual configuration example of the supply unit attached to the fuel vaporization unit and hood unit of the power generation device according to the first embodiment. Figure 5(b) is a side view of the supply unit. Figure 5(c) is a diagram showing a cross-sectional configuration of the supply unit taken along line AA shown in Figure 5(b). The supply unit 3 is composed of an insertion port 25, a shutter 26, a shutter driver 27, and a temperature sensor .
[0023] Insertion port 25 is positioned to coincide with cartridge mounting hole 203 of housing 200 described above. Insertion port 25 has a female thread 25a formed on its inner surface, and a filter 25b made of a mesh or glass fiber or nonwoven fabric, which prevents foreign matter from entering, is provided at a depth where the tip of attached fuel supply plug 22 is slightly pressed against it. When fuel cartridge 2 is inserted through cartridge mounting hole 203 and screwed into insertion port 25 to be fixed, the tip of fuel supply plug 22 abuts or is close to filter 25b of insertion port 25. At this time, fuel flows into filter 25b from a hole or notch provided at the tip of fuel supply plug 22, causing fuel to seep out of filter 25b, and the fuel is supplied to fuel vaporization unit 4.
[0024] Shutter 26 is provided between filter 25b of insertion port 25 and fuel vaporizer 4. Shutter driver 27 is a drive mechanism that opens and closes shutter 26, and is composed of a lever 27a and a pivot 27b for manual opening and closing. Lever 27a is provided so that its tip is exposed from a slit formed in main body cover 202, as shown in FIG. 3, for operation. Pivot 27b is provided rotatably on hood 31. By moving lever 27a, shutter 26 rotates around pivot 27b, opening and closing with respect to the surface (permeation surface) of permeation section 32 of fuel vaporizer 4.
[0025] Depending on the degree to which the shutter 26 is opened or closed, the amount of fuel supplied to the permeation section 32 can be adjusted or the supply can be stopped. By stopping the fuel supply with the shutter 26, the fuel vaporized from the permeation section 32 decreases, a sufficient fuel gas atmosphere is not generated, the heat generation temperature generated by catalytic combustion stops, and the engine 6, which will be described later, stops. The shutter 26 is fully opened by the shutter drive section 27 at least when the power generation device 1 starts operating. Furthermore, when the power generation device 1 is stopped, the shutter 26 is manually fully closed. The shutter 26 is assumed to be a sliding shutter, but shutters of other structures may also be used.
[0026] The temperature sensor 28 is disposed in the hood portion 31 or near the start heater 7 on the heating element 5, and indirectly detects the temperature of the heating element 5. In this embodiment, an example is shown in which the temperature sensor 28 is disposed on the hood portion 31 side. The temperature sensor 28 is, for example, a thermocouple temperature sensor. A detection signal from the temperature sensor 28 is output to the control unit 10. The control unit 10 performs arithmetic processing based on the input detection signal and generates a display signal. Furthermore, if the shutter drive unit 27 is configured as an electrically driven part, the control unit 10 generates a control signal (drive signal) or the like based on the detection signal from the temperature sensor 28, and controls the opening and closing operation of the shutter 26.
[0027] The display unit 11 of this embodiment is disposed on the main body cover 202. The display unit 11 is configured, for example, with a liquid crystal display, and displays various information necessary for driving the power generation device 1, such as the heat generation temperature of the heating element 5, using letters and numbers based on a display signal from the control unit 10. Alternatively, as a simple display method, an indicator display using multiple light-emitting diodes may be used. In the case of this indicator display, the heat generation temperature may be displayed by the number of lights emitted, or a simple color-coded display may be used, in which the appropriate temperature range for catalysis is displayed in "green" and temperatures outside the appropriate range are displayed in "red."
[0028] [Fuel vaporizer] The fuel vaporization section 4 will be described with reference to Figure 1 and Figures 5(a) to 5(c). The fuel vaporization section 4 is composed of a hood section 31 and a permeation section 32. The fuel vaporization section 4 vaporizes the supplied fuel and forms a fuel gas atmosphere. In the following description, the vaporized fuel is referred to as fuel gas, and the atmosphere filled with fuel gas inside the hood section 31 is referred to as the fuel gas atmosphere. The hood portion 31 is formed in a cylindrical shape (cap shape) with a bottom that can cover, with any gap, the outer surface side of the high-temperature cylinder 41 of the engine 6, which will be described later. This hood portion 31 is preferably made of a material with high heat insulation properties, and for example, ceramics, heat-resistant glass, etc. can be used.
[0029] The hood portion 31 is made of a heat-resistant, non-flammable material and is formed to have thermal insulation properties so that heat generated around the hood portion 31 does not affect other components. The hood portion 31 is designed to be airtight and to block the release of heat conduction. It can be formed into any shape using materials such as ceramics or solidified cellulose fiber and glass wool. Depending on the heat generation temperature, titanium, titanium alloys, and austenitic stainless steel may also be used. Of course, the hood portion 31 may also be formed into a multilayer structure by combining heat-resistant materials (ceramic fibers) and non-flammable materials (porous materials, laminates, etc.). Alternatively, a separate insulating portion may be provided to cover the hood portion 31.
[0030] The inner diameter and depth of the hood section 31 are set so as to create a predetermined gap between the hood section 31 and the outer surface of the high-temperature cylinder 41. That is, this gap creates a cylindrical space between the inner surface of the hood section 31 and the outer surface of the high-temperature cylinder 41. This space serves as a catalytic combustion area (any area) where a fuel gas atmosphere is generated and catalytic combustion (or catalytic action) occurs. This catalytic combustion area is assumed to have a gap between the inner surface of the hood section 31 and the outer surface of the high-temperature cylinder 41 of, for example, a few millimeters, less than 1 cm. Of course, the gap distance is not limited and is appropriately set to an appropriate value according to design values such as the concentration of the fuel gas atmosphere. Furthermore, the gap distance between the inner surface of the hood section 31 and the outer surface of the high-temperature cylinder 41 does not need to be uniform; the inner cross-sectional shape of the hood section 31 and the outer cross-sectional shape of the high-temperature cylinder 41 may be different.
[0031] Furthermore, the hood portion 31 does not necessarily need to cover the entire outer surface of the high-temperature cylinder 41, and may be formed to partially cover the high-temperature cylinder 41 depending on the desired heat generation temperature and the shape of the heating element 5. Furthermore, the inner surface of the hood portion 31 may be mirror-finished to reflect the generated radiant heat back to the high-temperature cylinder 41.
[0032] In this configuration, the permeation surface of the permeation section 32 is exposed on the inner surface of the hood section 31, and vaporized fuel gas is supplied into the catalytic combustion area from this permeation surface. Furthermore, the hood section 31 is provided with multiple slits (or holes) 29 connected to the outside, which take in air (oxygen) and discharge post-reaction exhaust gas from within the hood, allowing catalytic combustion within the hood. As an example of these slits 29, an air intake 29a may be provided near the permeation surface, and an exhaust port 29b may be provided at a position farthest from the permeation surface.
[0033] Furthermore, a window (opening) may be provided on the bottom or side of the housing 200, and connected to the air intake and exhaust ports of the hood section 31 by piping. By forming the piping from the air intake and exhaust port to the window of the housing 200 using a heat insulating material in this way, even if an unexpected flame occurs during the heat generation of catalytic combustion, the flame can be contained within the piping and prevented from leaking into the housing 200. Also, a cover made of a heat insulating material may be attached to the window of the housing 200 to prevent direct contact with hands.
[0034] The permeation section 32 allows the fuel supplied from the fuel cartridge 2 to permeate and retain it, and then releases fuel gas, which is vaporized liquid fuel, from the surface (release surface) exposed to the inner surface of the hood section 31. The fuel gas is mixed with air in the catalytic combustion area of the hood section 31 to generate a fuel gas atmosphere. The permeation section 32 is preferably made of a porous material with high heat resistance, such as water-absorbing stone, Maifan stone (heat-resistant processed product), or zeolite (heat-resistant treated product), and is preferably made of a material that can permeate and retain liquid. Of course, the material is not limited to the above materials as long as it is heat-resistant and can permeate and retain liquid. For example, compressed mineral fibers such as rock wool or slag wool can also be used.
[0035] [Heater, start heater] FIG. 6 is a diagram showing an example of the configuration of a catalyst section 110 formed on the outer surface side of the high-temperature cylinder 41. The catalyst section 110 is composed of a heating element 5 and a start heater 7. In this embodiment, the heating element 5 shown in FIG. 6 is located within the hood section 31, as shown in FIG. 1, and is formed on the outer surface side of the high-temperature cylinder 41 of the engine 6 described below, so that the expanding gas covers the high-temperature piston 46 from the position of the cylinder tip to the lowest position (bottom dead center) of the high-temperature piston 46. Note that in this example, the heating element 5 is formed as a thin film on the outer surface (including the tip surface) of the high-temperature cylinder 41, but this is not limited thereto, and it is also possible to form the heating element 5 as a thin film on the inner surface of the hood section 31 (fuel vaporization section). Alternatively, the heating element 5 may be formed on both the outer surface of the high-temperature cylinder 41 and the inner surface of the hood section 31.
[0036] In this embodiment, the start heater 7 is formed in a ring shape on the heating element 5 on the tip surface of the high-temperature cylinder 41. Of course, the ring shape of the start heater 7 is just one example and is not limiting, and other shapes may be used. The start heater 7 is connected to the manual starter 14 by wiring (not shown), and is supplied with power generated by the manual starter to generate heat, which starts catalytic combustion by the heating element 5, which will be described later. The heating element 5 uses, for example, platinum (Pt) or an alloy containing platinum (platinum alloy). Heat is generated by oxidatively decomposing hydrocarbons contained in fuel using catalytic combustion of platinum. The chemical reaction in which platinum generates heat as a catalyst is well known, and platinum is used, for example, in platinum catalytic hand warmers, and has excellent catalytic activity and high durability. The platinum alloy in this embodiment can be a platinum group metal (PGM), such as an alloy of platinum, rhodium, and palladium. The film thickness of the heating element 5 is not particularly limited, as long as it can obtain a desired heating temperature and is free from damage due to thermal stress, such as deterioration of mechanical properties such as cracking and peeling, a decrease in thermal conductivity, and deterioration due to catalytic combustion.
[0037] A carrier material can be used to fix the platinum that forms the heating element 5 at a desired position on the high-temperature cylinder 41. For example, the high-temperature cylinder 41 is made of aluminum, and its surface is oxidized to form aluminum oxide (Al2O3). Aluminum oxide (or alumina) is used as a catalyst carrier to fix the platinum. In addition to aluminum oxide, known catalyst carriers such as silicon oxide (SiO2) and ceramics may also be used. Here, the catalyst carrier is considered to be a base material for attaching the heating element 5, which serves as a catalyst.
[0038] Techniques that can be used to form the heating element 5 as a thin film on the outer surface of the high-temperature cylinder 41 include plating, vacuum deposition, and sputtering. For example, the high-temperature cylinder 41 may be formed from copper (Cu), and a thin film of aluminum oxide or silicon oxide may be formed on its surface using vacuum deposition. This may then be used as a catalyst carrier, with a platinum film laminated on top of it. Alternatively, a thin film of aluminum or silicon may be formed and then oxidized by anodizing or thermal oxidation. Using sputtering or the like, it is also possible to form a platinum film on the top layer of the catalyst carrier on the high-temperature cylinder 41. Alternatively, the catalyst carrier may be formed into a cylindrical shape, and after a platinum film is laminated on its surface, it may be fitted into the outer surface of the high-temperature cylinder 41.
[0039] Furthermore, to increase the area where catalytic combustion of the heating element 5 occurs, the outer surface of the high-temperature cylinder 41 and the inner surface of the hood portion 31 may be uneven rather than flat, thereby increasing their surface area. That is, uneven patterns can be formed on the outer surface of the high-temperature cylinder 41, the inner surface of the hood portion 31, and the surface of the catalyst carrier, thereby increasing the surface area of the platinum film. The uneven patterns formed are stepped patterns, such as mesh patterns, stripe patterns, spiral patterns, and dot-like uneven patterns. One method for achieving these patterns is to draw them with an electron beam and then etch them. Of course, as long as a sufficient heat generation temperature can be obtained by catalytic combustion of the heating element 5, it is not necessary to form the various uneven patterns described above.
[0040] Heat generating element 5 slowly oxidizes and decomposes fuel containing hydrocarbons such as gasoline vaporized by catalytic combustion into carbon dioxide and water, generating heat of up to about 400°C as the heat of reaction. This temperature can be adjusted by adjusting the amount of fuel gas generated and the gas concentration in the area where catalytic combustion occurs. That is, the temperature can be adjusted to a lower temperature by adjusting the amount of fuel supplied by adjusting the size of the opening of shutter 26 and plug portion 21a of fuel cartridge 2, and by adjusting the amount of air taken in from the air intake.
[0041] When the engine is started, the start heater 7 heats the heating element 5 to initiate catalytic combustion and promote the vaporization of fuel seeping out from the infiltration portion 32. The start heater 7 may be formed within the catalytic combustion area of the hood portion 31. When the heating element 5 is made of platinum (Pt) or an alloy containing platinum (platinum alloy), the heating temperature that initiates catalytic combustion is approximately 130°C to 300°C.
[0042] The start heater 7 is, for example, an electric wire heater such as a nichrome wire, a carbon heater, or a graphite heater, and generates heat when a low-power current is passed through it. The start heater 7 may be coated to protect it from chemical influences such as deterioration and corrosion caused by vaporized fuel, or may be made of a material that is not susceptible to chemical influences. This embodiment is equipped with a coil-type manual starter 14 that generates electricity when turned by hand, as described below. The start heater 7 generates heat using power supplied from the manual starter 14. If a battery 17, as described below, is installed and the battery 17 is charged, the start heater 7 may be heated using the battery output.
[0043] In the present embodiment, the heat generation temperature is a temperature below the melting point of the material of the high-temperature cylinder 41, and is a temperature that allows catalytic combustion without burning the fuel with flames. In the case of gasoline, the temperature is preferably below the spontaneous ignition temperature (280°C: Workplace Safety Site, Petroleum Gasoline [Ministry of Health, Labor and Welfare]). Therefore, the heat generation temperature of the heating element 5 is assumed to be 280°C or below, taking into consideration the high temperature of the entire power generating device. However, the temperature may be 280°C or above if a cover or the like is added to the slit 29 to prevent the flame generated in the catalytic combustion area from leaking, the flame is prevented from leaking to the outside of the housing 200, and the heat insulation is further enhanced, so that the surface temperature of the housing 200 is below a temperature that the operator does not feel is hot, and the surface temperature can be cooled by cooling the components installed in the housing.
[0044] The heating means made of platinum and palladium in the aforementioned Patent Document 1 raises the temperature to approximately 600°C. In the configuration of this embodiment, a heating temperature of approximately 600°C is not desirable because, even with insulation, cooling is difficult in the small housing 200, and the housing temperature may become too high. Furthermore, the heating means described in Patent Document 1 has a catalytic member made of platinum and palladium arranged upstream of the exhaust gas flow, and catalytic combustion is initiated by the exhaust gas temperature. This heating means is characterized by a specific weight ratio of platinum (Pt) containing no palladium (Pd) arranged upstream of a substrate monolith and palladium arranged downstream of the substrate monolith in the flow of high-temperature exhaust gas emitted from an internal combustion engine, and the platinum and palladium are combined in a specific weight ratio with a specific carrier material, resulting in a catalyst with a synergistic effect between palladium and platinum.
[0045] In contrast to Patent Document 1, the heating element 5 of this embodiment is configured regardless of the arrangement and weight ratio of platinum (or platinum alloy). Because the heating element 5 is at room temperature when catalytic combustion starts, it is heated using start heater 14 to start catalytic combustion. Furthermore, the heating means described in Patent Document 1 is provided with a mechanism for adjusting the amount of fuel supplied by shutter 26, as in the present invention, and does not have the functions of starting and stopping heat generation and adjusting the heat generation temperature.
[0046] Furthermore, the catalytic combustion of platinum in the platinum catalytic hand warmer described above is achieved by attaching platinum particles to a mat of glass fiber, and is a specialized structure that generates heat at a low temperature (around 60°C) that does not affect the human body, and its purpose and structure are different from those of the present invention. Furthermore, catalytic combustion of the heating element 5 is a reaction that generates heat at a relatively low temperature compared to general flame combustion, and is therefore characterized by producing only a small amount of nitrogen oxides. Note that, although platinum or a platinum alloy has been described as an example of the heating element in this embodiment, the heating element is not limited to these metals. In other words, any metal that generates heat at a temperature sufficient to drive an engine in a chemical reaction caused by catalytic combustion of any fuel can easily be used as the heating element in this embodiment.
[0047] [engine] Figure 7 is a diagram conceptually showing a first configuration example of the engine 6 according to this embodiment. Figure 7(a) is a cross-sectional view of the engine taken along line AA shown in Figure 7(c), Figure 7(b) is an external view of the engine 6, and Figure 7(c) is an external view of the engine 6 as seen from the side. This engine 6 is an example of a Stirling engine, which is an external combustion engine equipped with a pair of cylinders. This Stirling engine has two paired cylinders arranged side by side. A cylinder here is a cylindrical part into which a piston is fitted with a clearance, and through which the piston reciprocates. Note that in this embodiment, two paired cylinders (high-temperature cylinder 41, low-temperature cylinder 42) are described as an example, but they do not have to be a one-to-one pair. The high-temperature cylinder 41 and the low-temperature cylinder 42 are connected by a communication passage that connects the space between the cylinders.
[0048] In the first configuration example, a pair of two cylinders (a high-temperature cylinder 41 and a low-temperature cylinder 42) are arranged in series along the longitudinal direction of the cylinders (the central axis direction of the cylinders) with a base portion 43 interposed in the center. One of these, the high-temperature cylinder 41, is heated from the outside. The gas expands in volume within the high-temperature cylinder 41, moving a high-temperature piston 46, and the gas within the high-temperature cylinder 41 flows into the other low-temperature cylinder 42. The low-temperature cylinder 42 cools the gas that has flowed in with a cooling member or outside air, contracting the volume of the gas. The gas is then returned to the high-temperature cylinder 41 by a low-temperature piston 48 acting under the action of an inertial force (elastic force) described below, thereby driving the pistons in each cylinder by reciprocating. That is, the engine 6 of this embodiment drives the pistons by reciprocating movement due to the expansion and contraction of the gas within the cylinders caused by the temperature difference between the heat temperature (first temperature) generated by the heating element 5 and the second temperature to which the first temperature is cooled. The second temperature is the temperature of the gas in the low-temperature cylinder 42 cooled by a member (radiation fin) whose temperature is lower than the heat generation temperature or by gas (air) at the ambient temperature.
[0049] The engine 6 will be described in detail below. As shown in FIG. 7(b), the engine 6 includes, as its main components, a high-temperature cylinder 41, a base portion 43, a low-temperature cylinder 42, an inertia portion 12, and a start switch 13, which are arranged linearly. As described above, the base portion 43 is disposed between the high-temperature cylinder 41 and the low-temperature cylinder 42, and these are arranged so as to be linearly connected. The high-temperature cylinder 41 and the low-temperature cylinder 42 constituting the Stirling engine have been described as being paired one-to-one, but this is not limiting. For example, the high-temperature cylinder 41 and the low-temperature cylinder 42 may be paired by two cylinders, or one high-temperature cylinder 41 and two low-temperature cylinders 42 may be paired. However, the high-temperature cylinder 41 and the low-temperature cylinder 42 are connected by a communication passage that connects the space between the cylinders, as described below.
[0050] {Base} The base portion 43 has a cylindrical or prismatic shape, has two opposing bottom surfaces (a first bottom surface 43a and a second bottom surface 43b), and is made of a metal with high thermal conductivity such as aluminum or copper. In the following description, the bottom surface of the base portion 43 that connects to the high-temperature cylinder 41 will be referred to as the first bottom surface 43a, and the bottom surface that connects to the low-temperature cylinder 42 will be referred to as the second bottom surface 43b. Additionally, the outer surfaces that connect the first bottom surface 43a and the second bottom surface 43b will be referred to as the side surfaces.
[0051] The base unit 43 is fixed to a base unit stand 50 that stands up from the bottom surface of the frame 201. Although not shown, when the base unit stand 50 is fixed to the frame 201, a vibration-proof member (elastic member) is sandwiched between the base unit stand 50 and the frame 201, thereby absorbing and attenuating vibrations propagating from the engine 6 to the housing 200 and further reducing noise caused by the vibrations.
[0052] A guide shaft 47 extends linearly from the center of the first bottom surface 43a of the base portion 43, with its tip reaching approximately the middle of the high-temperature cylinder 41. The cross-sectional shape of this guide shaft 47 is either circular, elliptical, or rectangular, with the side that contacts the base portion 43 referred to as the base and the opposite side referred to as the tip. A stopper portion 47a that is thickened to create a step in the shaft diameter is integrally formed on the tip side of the guide shaft 47. The guide shaft 47 is attached and integrated with the high-temperature piston 46 so as to be inserted into the interior of the high-temperature piston 46. The stroke range of the high-temperature piston 46 is between the stopper portion 47a of the guide shaft 47 and the first bottom surface 43a of the base portion 43.
[0053] In one configuration example, the guide shaft 47 is formed as a separate body from the base portion 43. When assembling the high-temperature piston 46, the guide shaft 47 is fitted and fixed to the base portion 43. As a fixing method, for example, a female threaded hole is formed through the center of the bottom surface of the base portion 43. A male screw of a predetermined length is formed on the connection side (base) of the guide shaft 47, and a recess (drive portion) is formed on the tip surface of the screw. The male screw of the guide shaft 47 fitted to the high-temperature piston 46 is inserted into the female threaded hole from the first bottom surface 43a, and the tip of a screwdriver is inserted from the second bottom surface 43b side and aligned with the recess, and the screw is fastened by turning the screwdriver.
[0054] Furthermore, a plurality of arc-shaped holes 43c are formed in the base portion 43 around the base of the guide shaft 47, penetrating from the first bottom surface 43a to the second bottom surface 43b. These holes 43c are communication passages connecting the spaces between the high-temperature cylinder 41 and the low-temperature cylinder 42, and allow gas that expands when heated and is pushed out by the high-temperature piston 46 and gas that contracts when cooled and is pushed out by the low-temperature piston 48 to pass through (hereinafter referred to as "circulation") alternately. Furthermore, these holes 43c are formed around the guide shaft 47 at positions inside (closer to the central axis) the outer diameter of the high-temperature piston 46. It is preferable that the opening area of these holes 43c has a higher opening ratio relative to the circular area of the piston heads of the high-temperature piston 46 and the low-temperature piston 48.
[0055] Furthermore, a heat sink consisting of a plurality of heat dissipation fins 44 is provided on the side surface of the base portion 43. The heat sink is configured such that the heat dissipation fins 44 are provided upright directly on the side surface of the base portion 43. Alternatively, a heat dissipation ring separate from the base portion 43 may be used, in which an annular ring base that can be fitted onto the outer circumferential surface of the base portion 43 is formed, and the heat dissipation fins 44 are provided upright around the periphery of the ring base.
[0056] [High temperature cylinder] The high-temperature cylinder 41 is formed in the shape of a hollow cap with a bottom surface on one side (the tip or head side) of the cylinder. The other open end (the opening side or rear end side) of the high-temperature cylinder 41 is tightly and airtightly fixed to the first bottom surface 43a of the base part 43 using a sealing member (gasket member) that can withstand high temperatures. In the following description, the top dead center side of the inserted piston will be referred to as the tip side or head side of the cylinder, and the bottom dead center side will be referred to as the rear side or opening side of the cylinder. As mentioned above, a heating element 5 is formed on the outer surface of the high-temperature cylinder 41, which heats the gas inside the cylinder.
[0057] The high-temperature cylinder 41 is made of a metal with high thermal conductivity, such as aluminum or copper. There are no particular limitations on the material of the high-temperature cylinder 41, as long as it is a metal with high thermal conductivity and a high melting point due to the heat generation temperature of the heating element 5 formed on the outer surface. The high-temperature cylinder 41 can also be made of heat-resistant glass or the like, which has low thermal conductivity.
[0058] A high-temperature piston 46 is fitted into the high-temperature cylinder 41 with a clearance (gap) so as to be able to reciprocate. This gap is also used as a gas flow path for ventilating the gas inside the high-temperature cylinder 41 that expands when the high-temperature piston 46 moves inside the high-temperature cylinder 41. In the high-temperature piston 46 of this embodiment, a piston ring does not necessarily have to be attached, but may be attached as necessary. The piston ring is made of a resin (PBI, PEEK, PI, PAI, PTFE, etc.) or a metal, and is selected based on the temperature of the high-temperature cylinder 41 at high temperature.
[0059] The high-temperature piston 46 is not provided with a shaft equivalent to a connecting rod, and is composed of a cap portion 46a and a bottom portion 46b. The high-temperature piston 46 is made of a material that does not undergo thermal expansion or that undergoes little thermal expansion. A hole 46c through which the guide shaft 47 passes is formed in the bottom portion 46b, and the bottom portion 46b has a thickness that allows for sliding movement, as described below. The high-temperature piston 46 slides along the guide shaft 47. The distance of sliding movement defines the stroke length of the high-temperature piston 46.
[0060] Furthermore, the high-temperature piston 46 is stopped by a stopper 47a to prevent it from slipping out of the tip of the guide shaft 47, and the stroke length (movement range) is determined by the depth of the cap portion 46a. The hole 46c may also be a through-hole that passes through the cap portion 46a and the bottom portion 46b in the sliding direction of the high-temperature piston 46. When the gas in this high-temperature cylinder 41 expands due to heating, the high-temperature piston 46 slides backward (expands), and the pushed gas flows into the low-temperature cylinder 42 through the hole 43c (communicating passage). The inflow of gas pushes the low-temperature piston 48 backward.
[0061] [Low temperature cylinder] The low-temperature cylinder 42 has a volume large enough to accommodate at least the gas flowing in from the high-temperature cylinder 41 when the low-temperature piston 48 reaches its lowest position (bottom dead center). The low-temperature cylinder 42 has a hollow cylindrical shape, and one opening 42a (tip side) is tightly and airtightly fixed to the second bottom surface 43b of the base part 43 using a sealing member. The other opening 42b (opening side) of the low-temperature cylinder 42 is open to the atmosphere. The low-temperature cylinder 42 is made of a material such as a metal with high thermal conductivity, such as aluminum or copper. The material of the low-temperature cylinder 42 is not particularly limited as long as it can efficiently dissipate heat. The low-temperature cylinder 42 can also be made of heat-resistant glass or the like, which has low thermal conductivity.
[0062] The low-temperature piston 48 is fitted into the low-temperature cylinder 42 with a clearance (gap) allowing reciprocating movement. This clearance is also used as a gas flow path for discharging overexpanded gas from the high-temperature cylinder 41 to the outside when the gas flows into the low-temperature cylinder 42 after exceeding the bottom dead center. In this embodiment, piston rings are not necessarily attached, but may be attached as needed. The piston rings used for the low-temperature piston 48 are made of resin (PEEK, PI, PAI, PTFE, etc.) or metal, depending on the temperature of the low-temperature cylinder 42 at high temperatures. The tip of a connecting rod 48a of the low-temperature piston 48 is connected to the opening 42b side of the low-temperature cylinder 42. The rear end of the connecting rod 48a is connected to one end of a linear slide shaft 51 of the power generation unit 8, which will be described later.
[0063] [Inertial part] The inertia portion 12 and the start switch 13 will be described with reference to FIGS. 7(a) and 7(b). The inertia part 12 is connected to the connecting rod 48a (piston shaft) of the low-temperature piston 48 via a slide shaft 51. In general, in a Stirling engine, a flywheel is connected to the connecting rod (piston shaft), but in the first configuration example, an elastic member such as a coil spring is used to apply an inertial force equivalent to that of the flywheel through compression and tension. That is, when the flywheel is viewed from a direction perpendicular to the wheel surface, the end of the connecting rod is rotating, but when the flywheel is viewed from the side (in a direction parallel to the wheel surface), the connecting rod is moving linearly back and forth. Here, this linear movement is replaced by the expansion and contraction of a coil spring, and the force generated during expansion and contraction is considered to be an inertial force.
[0064] In this configuration example, the inertia part 12 is composed of an elastic member 12a and a support pipe 12b. The elastic member 12a can be made of an elastic member such as rubber or a coil spring. In this embodiment, a coil spring is used as an example of the elastic member 12a. The other end of the slide shaft 51 is connected to one end of the coil spring 12a. The coil spring 12a expands and contracts from its natural length as if vibrating in both tension and compression. The support pipe 12b is fixed by a support part 49 erected on the frame 201. The coil spring 12a is arranged horizontally and is therefore fitted into and guided by the support pipe 12b. Furthermore, the other end of the coil spring 12a is connected to one end of a connecting part 13a of the start switch 13.
[0065] [Start switch] The start switch 13 shown in Figures 7(a) and 7(b) is composed of a connecting portion 13a, a knob 13b, and a stopper 13c. The connecting portion 13a is bar-shaped, with one end connected to the coil spring 12a, which is the inertia portion 12, and the other end connected to the knob 13b. The knob 13b is positioned so that it is exposed through a window provided in the housing 200. The stopper 13c is provided on one end side of the connecting portion 13a and acts to prevent the vibration caused by the expansion and contraction of the coil spring 12a from being transmitted to the knob 13b.
[0066] When the start switch 13 is slid by pressing the knob 13b, the coil spring 12a contracts, and then the coil spring 12a expands and pushes the connecting rod 48a of the low-temperature cylinder 42 via the slide shaft 51. That is, the expansion and contraction of the coil spring 12a at this time is transmitted to the connecting rod 48a of the low-temperature cylinder 42 via the slide shaft 51. This propagation of expansion and contraction pushes and pulls the low-temperature piston 48 connected to the connecting rod 48a within the low-temperature cylinder 42. That is, when the low-temperature piston 48 is pushed, gas within the low-temperature cylinder 42 flows into the high-temperature cylinder 41 through the hole 43c in the base portion 43, and the high-temperature piston 46 is pushed toward the cylinder tip. Conversely, when the low-temperature piston 48 is pulled, gas within the high-temperature cylinder 41 flows into the low-temperature cylinder 42 through the hole 43c in the base portion 43, and the high-temperature piston 46 is pulled toward the base portion 43. At this time, catalytic combustion of the heat generating element 5 has already started in the engine 6, and this heat is expanding the gas in the high-temperature cylinder 41. This pushing and pulling of the high-temperature piston 46 serves as momentum to start the engine running.
[0067] [Power Generation Unit] Fig. 8(a) is a diagram showing an example of the configuration of the power generation unit of the power generation device according to the first embodiment, Fig. 8(b) is a side view of the power generation unit, and Fig. 8(c) is a diagram showing a cross-sectional configuration of the power generation unit taken along line AA shown in Fig. 8(b). The power generating unit 8 is composed of a slide shaft 51, a coil 52, and a magnet 53, and generates power using electromagnetic induction.
[0068] The coil 52 is composed of a plurality of small coils 52a each formed by winding a conducting wire in a ring shape. The magnets 53 are ring-shaped permanent magnets 53a each having the same thickness as the small coils 52a. The magnets 53 are formed integrally by fitting a plurality of permanent magnets 53a onto the slide shaft 51. The coils 52 are formed in a hollow cylindrical shape that electrically insulates the plurality of small coils 52a and is linearly arranged in the axial direction of the slide shaft 51 to match the positions (ranges) of the reciprocating movement of the poles (north pole, south pole) of the permanent magnets 53a. The poles of these permanent magnets 53b and the thickness of the small coils 52a are set appropriately depending on the stroke length (distance of the forward or backward movement) of the low-temperature piston 48 described above.
[0069] Assuming that the volumes of gases flowing between the cylinders are the same, if the inner diameter of the low-temperature cylinder 42 is smaller than the inner diameter of the high-temperature cylinder 41, the stroke length of the low-temperature piston 48 will be longer. Therefore, it is possible to appropriately set the ratio between the inner diameters of the high-temperature cylinder 41 and the low-temperature cylinder 42 depending on the number of coils 52 and magnets 53 arranged and their respective widths. The windings of each coil 52 are connected to power generation output terminals (not shown). In the power generation unit 8, a slide shaft 51 moves back and forth due to the stroke of the low-temperature piston 48. The back and forth movement of the slide shaft 51 causes a magnet 53 to move back and forth within a ring-shaped coil 52, generating an induced electromotive force, which is output from the power generation output terminal to a power supply circuit 9.
[0070] [Power circuit] 1 and 2(b) rectifies input power, converts it to a predetermined DC voltage, and outputs it as generated power. The power supply circuit 9 is a so-called converter, and is configured, for example, using semiconductor circuits, including a rectifier circuit, an LC filter, and a current-voltage conversion circuit. The current-voltage conversion circuit may also be configured to output multiple voltage values.
[0071] [Control Unit] The control unit 10 shown in Figures 1 and 2(b) includes a central processing unit (CPU) and controls each component in accordance with preset programs and application software. The control unit 10 is driven by power supplied from the power supply circuit 9 or the manual starter 14. When starting operation, part of the power supplied from the manual starter 14 is supplied to the control unit 10, and after the device starts up, the power is switched to the power supply circuit 9, and the control unit 10 is driven using part of the power output from the power supply circuit 9. The control unit 10 performs processing related to at least the heat generation temperature, output ON / OFF, output voltage, time display (charging time [charging time (minutes) = battery capacity / charging current x 60, etc.]), operation procedures, error contents, etc.
[0072] [Manual Starter] The manual starter will be described with reference to Fig. 1 and Fig. 9(a) to Fig. 9(c). Fig. 9(a) is a diagram showing the external configuration of the manual starter according to the first embodiment, Fig. 9(b) is a diagram showing the external configuration of the manual starter as seen from the side, and Fig. 9(c) is a cross-sectional view of the manual starter taken along line AA in Fig. 9(b). The manual starter 14 of this embodiment is a so-called manual generator that generates electricity by hand-cranking. The manual starter 14 applies the generated output voltage to the start heater 7 of the heating element 5. The start heater 7 receives the output voltage and heats it up to about 130°C to 300°C at which catalytic combustion starts. In this embodiment, as shown in FIG. 3, an example is shown in which the manual starter 14 is installed on the manual starter 14. Of course, the position at which the manual starter 14 is installed is not limited and can be changed as appropriate depending on the shape of the manual starter 14.
[0073] The manual starter 14 is composed of a generator 61 having a structure equivalent to that of a motor, and a handle 62. The generator 61 includes a power generation unit 63, a connecting mechanism (not shown) that has a gear ratio set for the handle 62, a power circuit 64a, a capacitor (or a small-capacity storage battery) 64b, and a display unit 65. The handle 62 is preferably foldable when not in use. The connecting mechanism includes multiple gears and is set to a gear ratio that increases the number of rotations transmitted to the shaft of the power generation unit 63 relative to the number of rotations of the handle 62.
[0074] The power supply circuit 64a rectifies the power output from the power generator 63 and converts it to a desired DC voltage. The display unit 65 is a light-emitting component, such as a light-emitting diode, connected to the output side of the power supply circuit 64a to indicate whether the output is equal to or greater than the set output voltage. The light-emitting diode preferably emits two colors of light. When the output is equal to the set output voltage, it emits, for example, green light. When the output is less than the set output voltage, it emits, for example, red light. When the red light is emitted, the handle 62 is turned faster to increase the number of rotations per hour. If a portion of the power output from the generator 61 can be branched off and input to the display unit 11 to display the contents of the display unit 65, the installation of the display unit 65 can be omitted.
[0075] [Display] The display unit 11 shown in Fig. 1 is disposed on the upper surface of the aforementioned main body cover 202 (see Fig. 3). This display unit 11 is composed of a liquid crystal panel or the like, and displays information instructed by the control unit 10, such as heat generation temperature, output ON / OFF, output voltage, time display (charging time [charging time (minutes) = battery capacity / charging current x 60, etc.]), operation procedures, error contents, etc. Furthermore, a touch panel may be added to the display unit 11 to display operation icons.
[0076] [Output terminal] 1 and 2(b), a connector corresponding to the terminal of the power cable to be connected is installed on the frame 201, and a window is opened on the side of the housing 200. In this embodiment, a plurality of USB connectors are provided. As the connector to be connected, for example, connector cables such as USB Type-B, USB Type-C, Lightning, micro USB, etc. can be connected. Of course, this will vary depending on the terminal of the power cable of the connected object to which power is supplied, and the USB connector described above is just one example and is not particularly limited.
[0077] [Operation procedure and operation] Next, the operating procedure and operation of the tabletop engine-driven power generating system 1 according to the first embodiment will be described. 1. Check the position of the lever 27a to see if the shutter 26 is closed, and if necessary, operate the lever 27a to close the shutter 26. 2. The fuel cartridge 2 is inserted into the housing 200 and screwed to fix it to the housing 200. 3. Operate lever 27a to open shutter 26 to the desired open position, and wait for a predetermined time (the waiting time until the fuel permeates into permeation section 32 and a fuel gas atmosphere is generated). When the shutter is opened, the fuel that permeates into permeation section 32 vaporizes and mixes with air to become fuel gas, generating a fuel gas atmosphere in the catalytic combustion area. At this time, manual starter 14 may be manually turned to heat start heater 7, thereby promoting fuel vaporization.
[0078] 4. After waiting, the manual starter 14 is manually turned to generate electricity and supply power to the start heater 7 (control unit 10 and display unit 11). The start heater 7 heats the heating element 5 to a temperature at which catalytic combustion starts. Here, the temperature at which catalytic combustion starts is set to approximately 130°C to 300°C. This heating starts catalytic combustion in the heating element 5, generating heat and raising the temperature in the catalytic combustion area between the hood portion 31 and the high-temperature cylinder 41. 5. The heat generated by catalytic combustion of the heating element 5 raises the temperature of the catalytic combustion area, and when the high-temperature cylinder 41 of the engine 6 (Stirling engine) reaches the drive start temperature, the display area 65 or the display unit 11 indicates that drive can be started, for example, [START] is displayed.
[0079] 6. When the knob 13b of the start switch 13 is pressed, the low-temperature piston 48 and the high-temperature cylinder 41 are pushed and pulled through the coil spring 12a. The pushing and pulling of the high-temperature piston 46 causes the engine to start operating. 7. When the engine 6 is driven, the low-temperature piston 48 causes the slide shaft 51 of the power generation unit 8 to move back and forth in the axial direction (a direction perpendicular to the winding direction of the coil 52). The slide shaft 51 is equipped with a magnet 53, and moves back and forth in the axial direction within the coil 52 of the power generation unit 8. This movement causes electromagnetic induction between the magnet 53 and the coil 52, generating electricity. 8. The power supply circuit 9 rectifies the generated power and converts it into a predetermined DC voltage, and outputs it to the output terminal 15 as generated power. 9. To stop the engine 6, the shutter 26 is closed to stop the fuel supply, thereby reducing the amount of fuel vaporized from the permeation section 32. This prevents a sufficient fuel gas atmosphere from being generated, causing the heat generated by catalytic combustion to drop and the engine to naturally stop. It is also possible to forcibly stop the engine 6 by continuing to press the knob of the start switch after a predetermined time has passed since the shutter 26 was closed, thereby preventing the low-temperature piston 48 from moving. Furthermore, any fuel remaining in the hood section 31 (fuel that has permeated the permeation section 32 and fuel gas) is evaporated (exhausted) and eliminated through the slits 29 in the hood section 31. Although the amount of fuel gas exhausted is small, open flames are strictly prohibited after the engine 6 has stopped.
[0080] The power generating device 1 of the first embodiment configured as above has the following advantages. The generator is small, lightweight, and easy to carry, emits little harmful exhaust gas, and can be used on a dining table or other table in a living room to charge rechargeable batteries or batteries built into portable electronic devices. -Because it uses a Stirling engine, it is small, lightweight and generates little noise. - Power generation is achieved by catalytic combustion of a heating element, so it is not affected by external factors (such as places without lighting, time of day, and weather). Since the power generation device can generate power for a long period of time, the number of electronic devices that can be charged is not limited by the battery capacity, as is the case with rechargeable batteries. · Because the engine is driven by an external combustion engine, it does not require engine oil like an internal combustion engine, and does not require regular maintenance, making it maintenance-free. The heat used to power the engine comes from catalytic combustion of a heating element, making it safe and allowing it to be run at a lower temperature than an internal combustion engine.
[0081] Compared to gasoline-fueled internal combustion engines, it emits less harmful exhaust gases and can even power generators indoors, allowing it to generate electricity and charge electronic devices indoors, such as in evacuation shelters. The fuel is supplied in a small, metal or plastic fuel cartridge with a cap that holds a small amount of fuel, making it easy to carry and safe against impacts. Even if fuel remains in the fuel cartridge after use, it can be removed and sealed with a cap, allowing it to be reused. - Fuel cartridges can be provided with the amount of fuel stored adjusted according to the usage time (power generation time).
[0082] When starting use, a manual starter is used to start catalytic combustion of the heating element, so no power source or battery is required to start operation. -An anti-vibration stand with elastic members sandwiched between it and the bottom is attached to the underside of the housing, absorbing and damping the vibrations that occur, reducing movement and noise caused by the vibrations. The inertia part is made up of a straight coil spring, and since the stroke direction of the engine piston and the expansion direction of the coil spring are the same, only one-way vibrations occur. By contrast, by using a flywheel as the inertia part, vibrations that cause the housing to bounce up and down and left and right are suppressed compared to vibrations caused by centrifugal force.
[0083] As described above, the power generation device of the first embodiment can generate electricity for a long period of time even in disaster situations where charging is not possible, in places where there is no power supply, or at night, etc., and therefore has no limit on the number of devices that can be charged, and can charge rechargeable batteries built into portable electronic devices such as smartphones. Compared to conventional internal combustion engine power generation devices, the power generation device of this embodiment is small and lightweight enough to be easily held in one hand, making it easy to carry and requiring little storage space when not in use. Furthermore, since the power generation device of this embodiment generates little noise and emits little harmful exhaust gas, it can generate electricity even on a table indoors. Note that the power generation device of the first configuration example of this embodiment can also be built into a charging device equipped with a large-capacity rechargeable battery and used as a hybrid configuration equipped with a rechargeable battery and a generator.
[0084] [Second configuration example of the first embodiment] Figure 10 is a diagram conceptually showing a second configuration example of an engine according to this embodiment. Figure 10(a) is an external view of engine 80 seen from diagonally above, Figure 10(b) is an external view of engine 80 seen from the side, Figure 10(c) is an external view of engine 80 seen from the front, and Figure 10(d) is a cross-sectional view of the engine taken along line AA shown in Figure 10(b). The second configuration example of this embodiment is an example in which the engine 6, power generation unit 8, inertia unit 12, and start switch 13 described in the first configuration example described above are modified. In the following description, components of the power generation device in the second configuration example that are equivalent to those in the first configuration example described above are given the same reference numerals, and detailed description thereof will be omitted. Furthermore, with respect to the position of the piston inserted in the cylinder, the top dead center side is referred to as the front end side or head side of the cylinder, and the bottom dead center side is referred to as the rear end side or opening side of the cylinder.
[0085] Engine 80 of the second configuration example is an external combustion Stirling engine similar to engine 6 described above. This engine 80 is equipped with a pair of two cylinders (high-temperature cylinder 81 and low-temperature cylinder 82) arranged one above the other, and each cylinder is connected by a connecting passage 86 made of a pipe, allowing gas to circulate between the cylinders. A high-temperature piston 87 is fitted into each high-temperature cylinder 81, and a low-temperature piston 88 is fitted into each low-temperature cylinder 82. Cooling fins 92 are provided on the outer circumferential surface of the low-temperature cylinder 82. Cooling fins 92 may also be provided around the periphery of the connecting passage 86.
[0086] The base 83 is fixed to a base mount 93 that stands up from the bottom surface of the frame 201. The piston shaft of the high-temperature piston 87 in the high-temperature cylinder 81 airtightly penetrates the bottom surface of the high-temperature cylinder base 83a, becoming exposed, and is connected to one end of a high-temperature connecting rod 89. Similarly, the piston shaft of the low-temperature piston 88 in the low-temperature cylinder 82 airtightly penetrates the bottom surface of the low-temperature cylinder base 83b, becoming exposed, and is connected to one end of a low-temperature connecting rod 90.
[0087] [Flywheel] In the second configuration example, two disk-shaped flywheels 91 and 94 connected vertically are used as the inertia unit 12. The centers of the flywheels 91 and 94 are connected to both ends of a rod 95. The rod 95 is rotatably supported by a support 85 provided on the side of the power generation unit 8, which will be described later.
[0088] The other ends of the high-temperature connecting rod 89 and the low-temperature connecting rod 90 are rotatably connected to the middle of the disk surfaces of the flywheels 91 and 94, respectively (positions closer to the center in terms of radius). These connection positions are set at appropriate positions on the disk surfaces according to the design. The flywheels 91 and 94 correspond to the inertia part 12, and when driven, they apply inertial force to the high-temperature piston 87 and the low-temperature piston 88 by rotating. The other ends of the high-temperature connecting rod 89 and the low-temperature connecting rod 90 are attached with an angular difference of 90° in the plane direction of each wheel. Normally, the low-temperature connecting rod 90 rotates 90° behind the high-temperature connecting rod 89.
[0089] A gear 91a is formed on the outer circumferential surface of the flywheel 91, and meshes with a gear 96 that fits onto the rotating shaft of the power generation unit 8. The rotation speed of the rotating shaft of the power generation unit 8 can be set by adjusting the gear ratio between the gear 91a and the gear 96. Alternatively, the rotating shaft of the power generation unit 8 may be directly connected to the central shaft of the flywheel 91, or a main gear may be fitted onto the central shaft of the flywheel 91, and a connecting mechanism configured to set an arbitrary gear ratio (rotation ratio) using multiple gears or the like may be engaged with and connected to this main gear. The gear ratio (rotation ratio) is set appropriately depending on the torque and rotation speed of the engine 80.
[0090] The connecting passage 86 is made up of a pipe and is configured to circulate gas within the high-temperature cylinder 81 and the low-temperature cylinder 82, connecting an area on the top dead center side of the high-temperature cylinder 81 with an area on the top dead center side of the low-temperature cylinder 82. In this configuration, the gas within the high-temperature cylinder 81, heated by heat from the heating element 5, expands and pushes the high-temperature piston 87 down toward the bottom dead center. The downward movement of the high-temperature piston 87 also moves the high-temperature connecting rod 89, causing the flywheel 91 to rotate.
[0091] At this time, the rotation of the flywheel 91 also rotates the flywheel 94, pushing the low-temperature piston 88 toward the top with a phase difference of 90 degrees. This pushing up of the low-temperature piston 88 causes cooled gas in the area on the top dead center side of the low-temperature cylinder 82 to flow into the area on the top dead center side of the high-temperature cylinder 81. Next, the high-temperature piston 87 is pushed down, causing the flywheels 91 and 94 to rotate, and the high-temperature piston 87 on the bottom side is pushed up by inertial force. This pushing up of the high-temperature piston 87 causes gas in the area on the top dead center side of the high-temperature cylinder 81 to flow through the connecting passage 86 and begin to flow into the area on the top dead center side of the low-temperature cylinder 82. This pushes down the low-temperature piston 88. Thereafter, the pistons are continuously pushed up and down by the inertial force caused by the rotation of the flywheels 91 and 94 and the temperature difference of the gas within the cylinders, thereby driving the engine 80.
[0092] [Power Generation Unit] The power generating unit 8 has a configuration equivalent to that of a general brushed motor or brushless motor. For example, although not shown, the power generating unit 8 is composed of at least a rotor around which a coil is wound, a stator composed of a permanent magnet, a commutator, and brushes. The power generating unit 8 has an output terminal on the top surface of the main body. The power generating unit 8 is fixed to a support 210 which is fixed to the frame 201. In the power generation unit 8, a gear 96 is fitted onto the rotating shaft of the rotor, and is in mesh with a gear 91a on the outer circumferential surface of the flywheel 91. The rotating shaft of the power generation unit 8 rotates in response to the rotation of the flywheel 91, and the generated power is output to the power supply circuit 5.
[0093] [Start switch] The start switch 13 has a known recoil starter structure used to start a gasoline engine, which is an internal combustion engine. As shown in Figures 10(a) and 10(c), it is composed of a recoil starter body 101 connected to the rotating shaft of a flywheel 91, and a towing tool 102. By pulling the towing tool 102, the flywheels 91 and 94 rotate, and the high-temperature piston 87 and the low-temperature piston 88 move, starting the engine 80. As the engine 80 described above, Stirling engines that can be used in this embodiment include the commonly known α-type Stirling engine, β-type Stirling engine, and γ-type Stirling engine. The second configuration example described above provides the same effects as the first configuration example. Furthermore, the second configuration example is shorter in length than the frame of the first configuration example, making it even more compact.
[0094] [Second embodiment] 11 is a diagram conceptually illustrating an example of the configuration of a tabletop engine-driven power generator according to the second embodiment. In the following description, components of the power generator 71 of this embodiment that are equivalent to those of the power generator 1 described above are given the same reference numerals, and detailed description thereof will be omitted. The power generator 71 is composed of a fuel cartridge 2, a supply unit 3, a fuel vaporization unit 4, a heating element 5, an engine 6, a start heater 7, a power generator 8, a power supply circuit 9, a control unit 10, a display unit 11, an inertia unit 12, a start switch 13, a manual starter 14, an output terminal 15, a heat insulating member 16, an output switching circuit 17, a battery 18, a starter switching circuit 19, and a battery output terminal 20. This power generator 71 is configured such that the output switching circuit 17, the battery 18, the starter switching circuit 19, and the battery output terminal 20 are added to the components of the power generator 1 of the first embodiment described above.
[0095] [battery] The battery 18 is a rechargeable secondary battery, and a lithium-ion battery is suitable, for example. The power generation device 1 of the first configuration example described above does not include a battery for storing the power generated by the power generation unit 8, but instead uses the power directly as charging power. Therefore, depending on the capacity of the rechargeable battery to be charged relative to the amount of power generated, the charging time may be long, and it may not be possible to respond to short-term charging in an emergency. Therefore, this embodiment includes a battery 18 with a battery capacity sufficient to quickly charge one or two smartphones or a mobile personal computer to a charge rate of about 50%. Of course, the battery capacity is not limited, but in this example, portability is emphasized, so a large, high-capacity rechargeable battery is not included.
[0096] [Battery output terminal] The battery output terminal 20 is provided with a connector equivalent to the connector of the output terminal 15. In this embodiment, the battery output terminal 20 and the output terminal 15 are provided so that charging with the generated power and charging with the battery 18 can be performed in parallel, allowing electronic devices that need to be charged urgently and electronic devices that are being charged with the generated power to be charged simultaneously. The output end of the battery 18 is connected to the battery output terminal 20.
[0097] [Output switching circuit] The output switching circuit 17 shown in Fig. 11 is provided between the output end of the power supply circuit 9 and the output terminal 15. The output switching circuit 17 is a change-over switch with one terminal on the primary side (input end) and two switching terminals on the secondary side (output end). The input end of the output switching circuit 17 is connected to the output end of the power supply circuit 9, a first switching terminal is connected to the output terminal 15, and a second switching terminal is connected to the input terminal of the battery 18. This output switching circuit 17 switches the output power input from the power supply circuit 9 and outputs it to either the output terminal 15 or the battery 18.
[0098] Furthermore, depending on the power generation capacity of the power generation unit 10, the output switching circuit 17 can charge the battery 18 with a portion of the power output by the power supply circuit 9 while outputting the remaining power of the power supply circuit 9 to the output terminal 15. On the other hand, since using (discharging) the battery 18 while it is being charged shortens its lifespan, in this example, the power output by the power supply circuit 9 is used only to charge the battery 18. To achieve this, the output switching circuit 17 prevents electrical or mechanical switching of charging to the battery 18 when a power cable for an electronic device is connected to the battery output terminal 20. The output switching circuit 17 may be configured as a switching circuit using electrical components, or may be configured as a manual switch.
[0099] [Starter switching circuit] The starter switching circuit 19 is preferably configured as a manual switch. This starter switching circuit 19 is a change-over switch with two terminals on the primary side (input terminal) and one terminal on the secondary side (output terminal). Of the two input terminals, the starter switching circuit 19 has a first input terminal connected to the output terminal of the manual starter 14, a second input terminal connected to the output terminal of the battery 18, and an output terminal connected to the input terminal of the start heater 7. When the battery 18 is in a state where it can output power to the start heater 7 (when not charging or when the charging target is not connected), the starter switching circuit 19 selects one of the two input terminals when catalytic combustion of the heating element 5 starts. When the starter switching circuit 19 selects the battery 18, the battery output of the battery 18 is supplied to the start heater 7.
[0100] As described above, the power generation device 71 in the second embodiment, in addition to the first embodiment described above, is provided with a battery 18 that stores the electricity generated by the power generation unit 8, and can therefore respond to emergencies by using the battery output for rapid charging in cases where the amount of electricity generated would require a long charging time.
[0101] The power generation device 71 can output the power generated by the power generation unit 8 and the charging output from the battery 18 independently to the electronic device to be charged, so it is possible to charge two rechargeable batteries and a rechargeable battery simultaneously. In the second embodiment, the start heater 7 can be heated by the charging output of the battery 18 instead of the output of the manual starter 14.
[0102] The above-described embodiments and configuration examples of the present invention may be variously modified in the implementation stage without departing from the spirit of the invention, and are not limited thereto. Furthermore, the above-described embodiments and configuration examples include inventions at various stages, and various inventions can be extracted by appropriately combining the disclosed multiple constituent elements. Furthermore, even if some constituent elements are deleted from all the constituent elements shown in the embodiments and configuration examples, if the problem described in the "Problem to be Solved by the Invention" section can be solved and the effect described in the "Effect of the Invention" section can be obtained, the configuration from which these constituent elements are deleted can be extracted as an invention. [Explanation of symbols]
[0103] 1...generator, 2...fuel cartridge, 3...supply section, 4...fuel vaporization section, 5...heating element, 6...engine, 7...start heater, 8...generator section, 9...power supply circuit, 10...control section, 11...display section, 12...inertia section, 13...start switch, 14...manual starter, 15...output terminal, 16...insulation section, 17...output switching circuit, 18...battery, 19...starter switching circuit, 20...battery output terminal, 21...container, 21a...port section, 21b...male thread, 21c...air hole, 21d...air adjustment screw, 22 ...Fuel supply valve, 23...Cap, 25...Insertion port, 25a...Female thread, 25b...Filter, 26...Shutter, 27a...Lever, 27...Shutter drive unit, 28...Temperature sensor, 31...Hood portion, 32...Infiltration portion, 41...High temperature cylinder, 42...Low temperature cylinder, 43...Base portion, 46...High temperature piston, 48...Low temperature piston, 49...Support base, 200...Housing, 201...Frame, 202...Main body cover, 203...Cartridge mounting hole, 204...Vibration-proof stand, 205...Vibration-proof member.
Claims
1. a removable fuel cartridge containing a fuel including a hydrocarbon; a supply unit that adjusts the amount of fuel supplied from the fuel cartridge by opening and closing a shutter; a fuel vaporization unit that vaporizes the supplied amount of fuel and mixes it with air to generate a fuel gas atmosphere in a given area; a heating element that generates heat by catalytic combustion in contact with the fuel gas atmosphere; an external combustion engine comprising a pair of first and second cylinders, each having a piston inserted therein and communicating with each other, wherein the heat generated by the heating element is applied from outside the first cylinder, causing the gas in the first cylinder to expand, and the gas in the second cylinder to contract as a result of a temperature drop caused by heat dissipation to the outside, thereby driving the piston by the temperature difference between the cylinders; a power generation unit that generates electricity using the driving force output by the engine; a power supply circuit that converts the power generated by the power generation unit into a preset output value; an output terminal for outputting the power of the output value from the power supply circuit; A tabletop engine-driven power generating device equipped with the above.
2. In the tabletop engine-driven power generating apparatus, the heating element is formed on at least one of an outer surface of the first cylinder in contact with the area and a wall surface that defines the area, using a metal material of either platinum or a platinum alloy; moreover, a start heater that heats the heating element and starts the catalytic combustion; a manual generator that supplies power to the start heater to generate heat; 2. The tabletop engine-driven power generating apparatus according to claim 1, comprising:
3. a battery that is charged by the output of the power supply circuit; an output switching circuit that switches the output of the power supply circuit to either the input terminal of the battery or the output terminal; a battery output terminal for outputting the power charged in the battery; a starter switching circuit that applies either the power supplied from the battery or the power supplied from the manual generator to the start heater, causing the start heater to start generating heat; The tabletop engine-driven power generating apparatus according to claim 2, comprising:
Citation Information
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