(a) Field
The subject matter disclosed generally relates to blinds. More specifically, it relates to blinds which selectively reflect sunlight.
(b) Related Prior Art
Heating and air conditioning of buildings are a major issue in energetic resource management. Together, they amount to a significant fraction of the maintenance cost of building. When buildings are large, the cost of maintaining a comfortable temperature is important, and the impact on environmental resource consumption can be significant. Insulation is of course a primary factor, but the configuration of windows plays a role in the thermal energy balance of the building, since this is where the sunlight penetrates into the building to heat it from inside.
Many technologies were developed to address this issue, with mixed results. Some technologies involve placing a reflector either inside or outside the window. It has the disadvantage of blocking sunlight even during winter times, when sunlight is desired inside the building. Placing a blocking structure (blinds, panels) close to the window inside the building has the disadvantage of absorbing sunlight during summer times, producing heat within the building. If blinds are installed outside, they are vulnerable to weather events.
More recent technologies involving architectural solutions, such as horizontal structures above windows to hide sunlight when the sun has a high inclination, provide a suitable solution for new buildings. However, this solution is more costly and is better suited for new buildings.
Some technologies which address this issue have been developed. For example, document JP2005240469A illustrates a window with a glass shaped as to reflect sunlight if the incoming sunlight has a high inclination, and to let the sunlight pass through the window if the inclination is low. This technology is however costly, sophisticated and fragile, since it involves shaping glass. Furthermore, it cannot be removed by a user.
Document DE19823758A1 shows a blind comprising reflectors with multiple surfaces with incremental inclination thereon to provide the same effect. However, the shape is complicated to manufacture and therefore expensive. Furthermore, the user can modify the general inclination of the blinds to have them more or less effective, which can lead to sub-optimal configurations for long periods of time.
There is therefore a need for a structure, such as a blind, that would reflect sunlight away when its inclination is high (summer) and let the sunlight pass through when its inclination is low (winter), the blind having a simple shape which is easy and inexpensive to produce, that can replace standard blinds in houses, offices and other buildings.
According to an embodiment, there is provided a blind for installation between an inner environment and an outer environment where light originates, the blind comprising:
slats substantially forming a vertically periodic arrangement, each one of the slats extending in a substantially horizontal axis and comprising:
an upper surface having a normal oriented both upwardly and toward the outer environment, the upper surface having a coating that provides specular reflection, and
a lower surface having a normal oriented both downwardly and toward any one of the outer environment and the inner environment, the lower surface having a coating that provides specular reflection,
the upper surface having a lower edge, wherein the upper surface and the lower surface of a given slat are joined at an apex near the lower edge of the upper surface.
According to an aspect, the blind further comprises strings to hold the slats in the vertically periodic arrangement.
According to an aspect, the blind further comprises a lifting mechanism for pulling the strings and thereby lifting at least some of the slats.
According to an aspect, the blind further comprises an angle holding cradle for maintaining an offset between different ones of the strings and thereby maintaining a constant angle of the upper surface even though at least some of the slats are lifted.
According to an aspect, the lower surface has a normal oriented both downwardly and toward the outer environment.
According to an aspect, the light has an inclination with respect to the horizontal, further wherein:
when inclination of the light is above a high inclination threshold, the light is substantially totally outwardly reflected by the upper surface of the slats;
when inclination of the light is below a low inclination threshold, the light partially penetrates directly in the inner environment and the remaining portion of the light is reflected outwardly by both the upper and lower surfaces; and
when inclination of the light is between the high inclination threshold and the low inclination threshold, the light partially penetrates directly into the inner environment, and is partially outwardly reflected by a double reflection on both the upper surface and the inner surface.
According to an aspect, the lower surface has a normal oriented both downwardly and toward the inner environment.
According to an aspect, the lower surface and the upper surface have normals oriented in substantially opposite directions.
According to an aspect, the upper surface and the lower surface are integrally connected along their whole surface.
According to an aspect, the blind further comprises an angle holding cradle for maintaining a constant angle of the upper surface, wherein the constant angle, together with a period of the periodic arrangement, defines high and low inclination thresholds, wherein the light has an inclination with respect to the horizontal and, further wherein the constant angle is set such that:
when inclination of the light is above the high inclination threshold, the light is substantially totally outwardly reflected by the upper surface of the slats;
when inclination of the light is below the low inclination threshold, the light partially penetrates directly in the inner environment and the remaining portion of the light is reflected outwardly by the upper surface; and
when inclination of the light is between the high inclination threshold and the low inclination threshold, the light partially penetrates directly into the inner environment, and is partially inwardly reflected by a double reflection on both the upper surface and the inner surface.
According to an embodiment, there is provided a blind for installation close to an interface between an inner environment and an outer environment where light originates, the light having an inclination with respect to the horizontal, the blind comprising:
slats forming a vertically periodic arrangement, each one of the slats extending in a substantially horizontal axis and comprising an upper surface and a lower surface,
an angle holding cradle for maintaining a constant angle of the upper surface, wherein the constant angle, together with a period of the periodic arrangement, defines high and low inclination thresholds,
wherein the constant angle is set such that:
when inclination of the light is above the high inclination threshold, the light is substantially totally outwardly reflected by the upper surface of the slats;
when inclination of the light is below the low inclination threshold, the light partially penetrates directly in the inner environment and the remaining portion of the light is inwardly reflected by at least the first one of: the upper surface and the lower surface; and
when inclination of the light is between the high inclination threshold and the low inclination threshold, the light partially penetrates directly into the inner environment, and is partially reflected by a double reflection on both the upper surface and the inner surface.
According to an aspect, the upper surface has a coating providing specular reflection.
According to an aspect, the lower surface has a coating providing specular reflection.
According to an aspect, the coating of the upper surface is oriented both upwardly and toward the outer environment.
According to an aspect, the lower surface has a normal oriented both downwardly and toward the outer environment.
According to an aspect, when inclination of the light is below a low inclination threshold, the light is reflected outwardly by both the upper and lower surfaces; and when inclination of the light is between the high inclination threshold and the low inclination threshold, the light is partially outwardly reflected by a double reflection on both the upper surface and the inner surface.
According to an aspect, the coating of the lower surface is oriented both downwardly and toward the inner environment.
According to an aspect, the lower surface and the upper surface have normals oriented in substantially opposite directions.
According to an aspect, the upper surface and the lower surface are integrally connected along their whole surface.
According to an aspect, when inclination of the light is below a low inclination threshold, the light is reflected outwardly by the upper surface only; and when inclination of the light is between the high inclination threshold and the low inclination threshold, the light is partially inwardly reflected by a double reflection on both the upper surface and the inner surface.
Further features and advantages of the present disclosure will become apparent from the following detailed description, taken in combination with the appended drawings, in which:
It will be noted that throughout the appended drawings, like features are identified by like reference numerals.
There are disclosed embodiments of a window blind for reflecting sunlight outwardly when the sunlight inclination is high and for letting a greater fraction of the sunlight in, either by direct penetration or by inward reflection on the blind, when the sunlight inclination is low.
Referring now to the drawings, and more particularly to
The first (or lower) slat 110 comprises a lower surface 10 and an upper surface 20. The second (or upper) slat 120 comprises a lower surface 30 and an upper surface 40.
A complete blind 50 usually comprises a greater number of slats 100, as shown in
The slats 100 are installed on strings 150, or any other attachment means between slats 100 as known in the art of window blinds. Small holes can be pierced in specific parts of the slats 100 to have the strings 150 pass therethrough. A connector, or any other way to attach the string 150 to the slat 100, needs to be provided to hang the slats 100 at specific locations on the strings 150 so that they do not all fall downwardly. A system for lifting the slats 100 up and letting them go down can be provided. Such lifting systems do not need to be described herein as they are already known in the art of window blinds.
Now referring back to the slats 110 and 120 shown in
As shown in
There is further provided some holding means 200 for holding the upper surfaces (20, 40) and lower surfaces (10, 30) in the angle at which they are supposed to be. Example of holding means are: a connector (small physical piece) linking the bottom of the upper surface 20 and the top of the lower surface 10, a configuration of the strings 150 which keep the surfaces in the right inclination, a back wall extending from the lower surface (10, 30) to the upper surface (20, 40) which gives a triangular cross-section to the slat (110, 120), etc. According to another embodiment, the slat is a single piece of solid material that is manufactured with a bend, thereby forming the upper and the lower surfaces. In this case, there is no need for holding means 200, since the natural joint between the upper and lower surfaces is solid enough to maintain the shape and integrity of the slat 100. This joint forms an apex that points toward the outside environment.
As shown in
Still referring to
The vertical axis 80 is shown as extending vertically at the extremal ends of the surfaces of the slats 100. The surfaces extend away from this vertical axis 80 to a distance defined as H=S·cos(θB). One can also deduce other relations, such as θB=arctan(p/H) and S2=p2+H2.
For the purpose of geometrical modeling, one can see that a mathematically ideal blind (which has a regular period, and identical and symmetrical slats) is totally defined with only three variables: D, d, and θB. All other values can be computed therefrom.
As a reminder, the purpose of the blind 50 is to have an improved management of the sunlight that comes in a building, room, etc., which can be defined as an inner environment. The sunlight, or any other significantly powerful light, originates from an outer environment. The blind 50 is preferably located at an interface between the inner and outer environments to selectively reflect incoming light and prevent it to be transmitted and absorbed in the inner environment where the temperature would undesirably increase.
Locating the blind 50 by a window as for conventional blinds is usually expected, although a substantial distance with the window could exist for some reason. The blind 50 is usually installed inside for practical reasons; however installing it outside is also possible if weather conditions are not too harsh and if aesthetics is not an issue. However, keeping the surfaces clean (to maintain specular reflection) is much easier if the blind 50 is kept in a clean and controlled environment. The blind 50 may also be used for inner environments which are open (do not have windows but rather open spaces making the transition with inside, such as patios, open doors, open garage doors, open windows, halls, etc.). The blind 50 can be installed close to these transitional spaces.
The inclination of the sunlight, θ, is defined with respect to the horizon. The angle of incidence with any surface of the slat 100 (usually the lower surface 10 although the upper surface 20 may also be involved in specific cases as explained below) is defined as φ, as seen in
The sunlight can be modeled as a point source, but the fact that it is an extended source makes the real system actually slightly less optimal that in a mathematical formalization.
For the blind 50 to be efficient in performing its purpose, it should reflect sunlight outwardly (away from the inner environment, i.e., back to the outer environment) when the temperature is expected to be (too) high in the inner environment. Usually, it implies reflecting sunlight when the sunlight has a high inclination, such as in the middle of a summer day.
It should also let sunlight in the inner environment when the temperature is expected to be (too) low therein. It should let sunlight in when the sun inclination is low, for example in winter times, especially in the morning when the inner environment needs to be warmed after the night.
Therefore, the blind 50 needs to selectively reflect light based upon its inclination, preferably without any user assistance. For instance, the angles of the slats 100 should not be modifiable by the user so that they remain optimal for their task.
It will be apparent that the optimal angles (θB) and distances (D, d) of the slats 100 depend on latitude (which has a high impact on the sunlight inclination throughout the year and on its daily variations) and on climate (heating and air conditioning needs are not the same everywhere, even for a given latitude).
The blind 50 described above including slats (110, 120) having reflective surfaces allow this selective reflection of sunlight.
More precisely, seven situations can occur with varying degrees of importance, as shown in
The first situation is characterized by a simple outward reflection of the incoming sunlight on the upper surface 20 for the whole incoming sunlight. (The term “simple” is intended to mean that the light reflects only once on a surface before going back to the outside; it does not undergo double or multiple reflection.) This situation is desired when the inner environment is already warm and not more sunlight is wanted therein. This need usually arises when the sunlight has a high inclination. Fortunately, the first situation occurs under these circumstances, i.e., total reflection on the upper surface 20 occurs when the sunlight has a high inclination.
This is formalized as follows, with reference to
At θ=θmax, there is one light ray that can pass through the blind 50 directly into the inner environment, as shown in
Situation 1 also occurs for sunlight inclinations θ<θmax, although in a decreasing proportion. It can be shown that for 0°<θ<θmax, the proportion of sunlight that is reflected at least once on the upper surface (20, 40) is S·sin(θ+θB)/(D·cos(θ)). This proportion visibly decreases strongly as θ decreases. However, some of the sunlight among this proportion can undergo double (or multiple) reflection and/or be reflected inwardly (toward the inner environment, see situation 3 below). These situations only happen if θ<θB and are described further below.
Situation 2 is the situation under which a fraction of the incoming sunlight directly penetrates inside by passing through the blind 50 (the empty space of height d). As mentioned above, this situation cannot occur for θ>θmax. However, it takes place for angles 0°<θ<θmax, as illustrated in
A question may arise knowing that sunlight can pass through the blind 50 for angles slightly under θmax, knowing that θmax can be quite high (>70°): it should be determined if the blind 50 let too much light pass therethrough for high angles slightly under θmax. Advantageously, the blind 50 is designed in such a way that this is not an issue. More precisely, even though there is light passing through the blinds at such relatively high angles (slightly under θmax), the proportion of the incoming sunlight that is in this situation is a function of θ, and this proportion is low when θ is slightly under θmax. More precisely, this proportion is constant at low angles and has a value of d/D when θ<θB. For medium angles, i.e., when θB<θ<θmax, the proportion is what is not reflected (see situation 1 above), so it is worth 1−S·sin(θ+θB)/(D·cos(θ)). This proportion is very small for angles slightly under θmax, and becomes significant at lower sunlight inclinations. This is the desired behavior of the blind 50 for its purpose.
As mentioned above, sunlight can be reflected (once) inwardly on the upper surface 20, which is situation 3, exemplified in
Indeed, it can be shown that situation 3 can advantageously occur for medium angles (if it occurs). By trigonometrical considerations, one can find that this situation occurs if arctan((D−p)/H)−2θB<θ<90°−2θB. Numeric examples provided further below will show that this situation either does not occur, or occurs at low to medium angles. It never occurs at high angles.
As mentioned above, sunlight can be reflected (twice) outwardly on the upper surface 20 of the lower slat 110 and then on the lower surface 30 of the upper slat 120, which is situation 4, shown in
By trigonometrical considerations, one can find that this situation occurs if 90°−2θB<θ<180°−θmax−2θB. Numeric examples provided further below will show that this situation either does not occur, or occurs at low angles, or occurs at medium angles. Therefore, the blind 50 needs to be designed with a particular attention to this range of values to make sure the situation occurs at medium angles at which outward reflection is wanted. By inspection, one can see that the value of θB is critical: if θB is too high (close to 45° or above), double reflection will occur at low sun inclinations and the inner environment will be deprived from desirable sunlight.
Next situations involve a first reflection on the lower surface 30. These situations have a minor importance, since they occur in a very narrow range of circumstances.
Situation 5, illustrated in
Situation 6, illustrated in
Situation 7, illustrated in
From situation 5 to 7, situation 7 is generally the dominant one. This is fortunate, since penetration of light inside the building at low inclinations is generally wanted. This situation is enabled by the existence of the lower surface 30 and its specular nature.
Multiple reflections have not been studied, but they occur as a subset of double-reflection situations.
The following table shows numeric examples of some threshold values depending on the design of the blind 50 and summarizes the effect to which the situation contributes. A negative value can be interpreted as zero. A value above 90° can be interpreted as 90°. Some situations may not occur because other situations take over, for example if a threshold is above θmax. Angles are in degrees and distances in meters.
Having a large value for H helps favoring heating situations at low inclinations and non-heating situations at high inclinations, while leaving a large value for d which lets the inhabitants have a view to the outside world.
It can thus be seen that situations which contribute to reflecting the sunlight outwardly at high sunlight inclinations and situations which contribute to reflecting inwardly or letting sunlight in the building at low sunlight inclinations are favored by the design of the blind 50 described above, thereby providing an inclination-dependent sunlight selection that naturally, and without any user assistance, contributes to the temperature control in a building (or any other inner environment).
Furthermore, the design is simple since it involves reflecting slats installed on commonly found lifting cords for conventional blinds. It can thus be produced at low cost and thus not involve adapting the windows to the blinds.
Advantageously, the system can be modeled to optimize light reflection for high inclinations and light passing-though for low inclinations, but as well, it can be optimized to have the blind 50 work with the largest value for distance d. By optimizing the system with the largest value for d, the people who live in the inner environment can enjoy a less encumbered and clearer view of the outside world, with a minimal impact of the blind 50 on the field of view. This can be performed by preferring a high value of H compared to p when designing the blind 50, which is advantageous on the blind overall performance, as seen in the table.
The embodiment illustrated in
According to an embodiment, the lower surface 10, 30, which would normally be expected to extend downwardly from the horizon (negative angle with respect to the horizon), can instead have a positive angle and therefore extend upwardly. The extreme case of this embodiment is the case where the lower surface 10, 30 is coincident with the upper surface 20, 40 of the slat 110, 120. In this specific case that is discussed in more detail below, the slats 110, 120 are considered as single slats (the upper surface 20, 40 does not form any angle with the lower surface 10, 30; both are extending with an angle +θB). Both surfaces (20, 40 and 10, 30) are thus integrally connected substantially along their whole surface. The single flat slats 110, 120 thus comprise a base that is easier to manufacture. A flat slat needs to be produced and coated on both upper and lower surfaces with a reflective material.
Now referring to
The additional cost of having a triangular slat instead of a flat slat should be compared with the additional energy savings attributed to the presence of a lower surface (10, 30).
Indeed, some reflective modes described above are useful in reducing the undesirable heating of the inside, but these reflective modes do not exist anymore in this embodiment. More specifically, the reflective modes of
According to an embodiment, the slats 100 are held by strings 150 that are located toward the left end and the right end of the slat, as shown in
In every case, care should be given to ensure that the slats 100 keep the same angle θB in all circumstances. In the embodiment with two pairs of strings 150a, 150b, this can be done by providing an offset at the upper portion of the strings 150b compared to the strings 150a, i.e., the string 150b is longer at the top before reaching (downwardly from the top) the uppermost slat 100.
A headrail 52 can be provided to hold the strings 150. An angle holding cradle 54, shown in
While preferred embodiments have been described above and illustrated in the accompanying drawings, it will be evident to those skilled in the art that modifications may be made without departing from this disclosure. Such modifications are considered as possible variants comprised in the scope of the disclosure.
This application claims priority from U.S. provisional patent application No. 62/157,912 filed on May 6, 2015.
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