1. Technical Field
The present invention relates to a heat-preserving container and more particularly to a heat-preserving container configured for absorbing the radiant heat of light.
2. Description of Related Art
With the progress of society, more and more importance has been attached to energy saving and environmental protection, Solar energy advantageously features no impact on the environment, no cost required for generating the energy, and ease of use.
However, the conventional applications of solar energy typically require the use of solar heaters, solar cells, or other costly devices and lack effective solutions to preventing the thermal energy obtained from dissipation.
The creation of a useful container capable of absorbing the radiant heat of light and preserving the heat absorbed is, therefore, not only a goal of the energy-saving industry, but also highly desirable to the general public. Such a container preferably has an easy-to-implement design by which efficient use of energy, wide applicability, and a high degree of safety can be achieved at low cost.
According to the present invention, a radiant heat-absorbing heat-preserving container includes a heat-absorbing body having an outer surface, an opening, and a receiving space; and a light-permeable layer covering the outer surface of the heat-absorbing body. Another radiant heat-absorbing heat-preserving container includes a base, a heat-absorbing cover having an outer surface, and a light-permeable layer, wherein the heat-absorbing cover covers the base and is tightly connected with the periphery of the base to form a receiving space between the heat-absorbing cover and the base, wherein the light-permeable layer covers the outer surface of the heat-absorbing cover, and wherein a thermal insulation layer is formed between the light-permeable layer and the heat-absorbing cover. When the outer surface of the heat-absorbing body or cover is exposed to light passing through the light-permeable layer, the heat-absorbing body or cover absorbs the thermal energy of the light. The thermal insulation layer, on the other hand, prevents heat dissipation from the heat-absorbing body or cover. Thus, with the light passing through the light-permeable layer and striking the heat-absorbing body or cover, the heat-absorbing body or cover is heated without the use of electricity or fire. Meanwhile, the thermal insulation layer provides heat preservation by blocking convection and keeping heat from dissipating from the heat-absorbing body or cover.
The present invention provides a radiant heat-absorbing heat-preserving container which includes a heat-absorbing body and a light-permeable layer. The heat-absorbing body has an outer surface, an opening, and a receiving space. When the outer surface of the heat-absorbing body is exposed to light, the heat-absorbing body absorbs the thermal energy of the light. The light-permeable layer covers the outer periphery of the heat-absorbing body except at the opening and is permeable to the light. A thermal insulation layer is formed between the light-permeable layer and the heat-absorbing body.
The present invention also provides a radiant heat-absorbing heat-preserving container which includes a base, a heat-absorbing cover, and a light-permeable layer. The heat-absorbing cover covers the base and is tightly connected with the periphery of the base such that a receiving space is formed between the heat-absorbing cover and the base. The heat-absorbing cover has an outer surface. When the outer surface of the heat-absorbing cover is exposed to at least one ray of light, the heat-absorbing cover absorbs the thermal energy of the ray of light. The light-permeable layer covers the outer surface of the heat-absorbing cover and is permeable to light. A thermal insulation layer is formed between the light-permeable layer and the heat-absorbing cover.
Implementation of the present invention at least produces the following inventive steps:
1. Heating can be achieved with the energy of light, without having to use electricity or fire,
2. Green, or sustainable, energy is used to the advantage of environmental protection and energy saving.
3. Heat preservation can be attained.
The features and advantages of the present invention are detailed hereinafter with reference to the preferred embodiments. The detailed description is intended to enable a person skilled in the art to gain insight into the technical contents disclosed herein and implement the present invention accordingly. In particular, a person skilled in the art can easily understand the objects and advantages of the present invention by referring to the disclosure of the specification, the claims, and the accompanying drawings.
The invention as well as a preferred mode of use, further objectives and advantages thereof will be best understood by reference to the following detailed description of illustrative embodiments when read in conjunction with the accompanying drawings, wherein:
Referring to
As shown in
The ray of light 80 can be visible light, infrared light, far-infrared light, or simply sunlight. According to experiment data, the temperature of the heat-absorbing body 10 can rise above 100° C. due to exposure to sunlight.
Referring back to
The thermal insulation layer 30 is sandwiched between and sealed by the heat-absorbing body 10 and the light-permeable layer 20. The main function of the thermal insulation layer 30 is to block convection of thermal energy so that the thermal energy absorbed by the heat-absorbing body 10 from the ray of light 80 will not be transferred to the light-permeable layer 20 by convection and is therefore kept from dissipating into the surroundings.
With continued reference to
Alternatively, referring to
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The radiant heat-absorbing heat-preserving container 100 can be portable or otherwise. Moreover, the container is subject to no limitations in shape and can be formed as a bottle, can, cup, or box or as a plate tightly connectable with a cover.
The radiant heat-absorbing heat-preserving container 100 can heat the object or substance in the receiving space 13 of the heat-absorbing body 10 in an energy-saving and environmentally friendly manner while the thermal insulation layer 30 prevents heat dissipation and thereby achieves heat preservation.
Referring to
The base 70 shown in
As shown in
With continued reference to
Referring to
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The radiant heat-absorbing heat-preserving container 200 is so configured that, by placing an object or substance on the base 70, covering the base 70 tightly with the heat-absorbing cover 10′, and exposing the container to the ray of light 80 (e.g., visible light, infrared light, far-infrared light, or sunlight), the object or substance can be heated and kept warm in a very energy-saving and environmentally friendly manner, thanks to the heat-absorbing cover 10′, which absorbs thermal energy, and the thermal insulation layer 30, which prevents dissipation of the thermal energy absorbed,
Referring to
The embodiments described above are intended only to demonstrate the technical concept and features of the present invention so as to enable a person skilled in the art to understand and implement the contents disclosed herein. It is understood that the disclosed embodiments are not to limit the scope of the present invention. Therefore, all equivalent changes or modifications based on the concept of the present invention should be encompassed by the appended claims.
Number | Date | Country | Kind |
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104107457 | Mar 2015 | TW | national |