OA17262A - Automated structure for hosting modular buildings, respective automation system and operating method. - Google Patents

Automated structure for hosting modular buildings, respective automation system and operating method. Download PDF

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Publication number
OA17262A
OA17262A OA1201500066 OA17262A OA 17262 A OA17262 A OA 17262A OA 1201500066 OA1201500066 OA 1201500066 OA 17262 A OA17262 A OA 17262A
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OA
OAPI
Prior art keywords
automation system
automated
exterior
shaft
latch
Prior art date
Application number
OA1201500066
Inventor
Lopes Vieira
Original Assignee
Lopes Vieira
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
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Publication of OA17262A publication Critical patent/OA17262A/en

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Abstract

The present application describes an automated structure for reception of modular constructions and respective automation system comprised by a lower structure (1), which contains an opening (4) for accommodation of a fixed shaft, comprised by the element of attachment of the shaft with the exterior, where, preferably, the structure and the fixed shaft of fixation to the exterior (5) can be coupled, a lifting mechanism (2) preferably located in the side sections of said lower structure (1) which is coupled to an upper structure (3) allowing its movement through the joint and support (6). The axial movement and the upper structure (3) are managed through an automated system based on a programmable automaton and a set of sensors and actuators, namely anemometers and frequency inverters that control these movements. This way, the present invention makes it possible to receive modular constructions, for example houses, making them move, for example, according to the solar orientation, in order to make them energy efficient.

Description

DESCRIPTION
Automated Structure for Hosting Modular Buildings, Respective Automation System and Operating Method
Technical Field
The présent application describes an automated structure for réception of modular constructions, automation system and method of operation thereof.
Background
It is known from the state of the art the existence of parts of the structure of buildings that are mobile, such as the case of the document CN201202178Y that discloses an automated buildingdeposit of automobiles, comprising a main body structure, a ceiling, a side wall with doors and an automatic control mechanism for narrowing/widening, wherein the side wall includes a movable side wall, the mechanism of which allows the extension of the roof and movable side wall.
Thus, this document discloses the structure of a building that performs the narrowing/widening of a side wall in a horizontal direction, and the lowering of the ceiling to configure a folding structure in order to reduce the space when said structure is not used. However, this document does not présent or disclose dues about the solution presented in this application, where the structure allows the movement of the entire modular construction in order to maximize or reduce exposure to the sun.
Summary
It is an object of the présent application to describe an
automated structure for réception of modular constructions
comprising:
- a lower structure (D, which contains an opening (4) for
accommodation of a fixed shaft, comprised by the element of
attachment of the shaft with the exterior (11);
- a lifting mechanism (2) located in the side sections of said
lower structure (1) or on the cover of the modular
constructions, which is coupled to an upper structure (3)
through the joint and support (6).
Preferably, the structure (45) and the fixed shaft for attachment to the exterior (5) may be coupled to the element of attachment of the shaft with the exterior (11).
Said coupling can be carried out by means of the lifting mechanism (2), the lower bearing (7) the upper bearing (8), lower latch (9) upper latch (10), support bars of the lifting mechanism (35) and support piece (36).
In a preferred embodiment, the automated structure for réception of modular constructions is connected to a set of sensors and actuators.
In yet another preferred embodiment, the automated structure for réception of modular constructions comprises a rotation motor (28) and a drive motor of the upper structure (14) as well as the motors (32 and 33) placed on the lower (9) and upper (10) latches and a set of limit switches of protection in particular the upper (8) and lower (7) bearings.
In a preferred embodiment, the automated structure for réception of modular constructions has an upper structure (3) made in lattice format.
It is still an object of the présent invention to describe an automation System connected to the automated structure comprising a programmable automaton and a set of sensors and actuators that control the movements of the structure.
In a preferred embodiment, the automation system présents a set of sensors and actuators comprising anemometers and frequency inverters.
In yet another preferred embodiment, the automation system présents three modes of operation: automatic, manual and maintenance.
In a preferred embodiment, the automation system carries out the collection of the upper structure (3) and closing of ail latches (8 and 9) through action on the motors (14, 32 and 33) when the anemometer measures the wind speed above a predetermined value.
It is still an object of the présent invention to describe a method of operation of the automated structure in conjunction with the automation system wherein the Iower structure (1) contains an opening (4) for accommodation of a fixed shaft, comprised by the element of attachment of the shaft with the exterior (11), where the structure (45) and the fixed shaft for attachment to the exterior (5) can be coupled, whereto in turn is coupled preferably the rotating mechanism (27) or other similar, and that, by action of the motor of the rotation mechanism (28) on the drive sprocket (29) and the pinions (30), by means of a chain leading to the axial movement of the whole structure up to at least a radius of 180°.
In a preferred embodiment, the method of operation présents a
Iower structure (1) in its axial movement aided by the guiding wheels of the shaft (12) and by the set of supporting wheels of the Iower structure (13).
In yet another preferred embodiment, the method of operation présents a set of supporting wheels of the lower structure (13) arranged in a circle around the entire fixed shaft (5) that moves in a trough placed on the ground.
In a preferred embodiment, the method of operation présents an upper structure (3) in its summer movement from the opening position and, making use of the automation system, contrôle the electric motor that opérâtes the upper structure (14) which drives the spindle (16) and, by means of the nut (15) and connecting rods (19), raises the structure (3) as they are attached thereto and, at the same time, activâtes the electric motor that opérâtes the lower latch (32) which, in turn, will activate the latching pin of the lower latch (31) keeping the upper latch (10) locked.
In still another preferred embodiment, the method of operation présents an upper structure (3) wherein in its winter movement differs from the summer movement in that the automation system unlocks the upper latch (10) by activating the electric motor
that opérâtes the upper latch (33) which activâtes the latching
pin of the upper latch (34) keeping the lower latch (9) locked.
Description of the Drawings
For an easier understanding of the invention there are attached
figures which represent the preferred embodiments of the
invention that, however, are not intended to limit the scope of the présent invention.
Figure 1: Schematic représentation of the structure with opening of the upper structure in the winter movement, wherein the following reference numbers represent:
- lower structure;
- lifting mechanism;
- upper structure;
- joint and support;
- side sections of the upper structure.
Figure 2: Schematic représentation of the structure with opening of the upper structure in the summer movement, wherein the following reference numbers represent:
- lower structure;
- lifting mechanism;
- upper structure;
- opening for accommodation of the shaft;
- joint and support.
Figure 3: Schematic représentation of the structure with the upper structure in the closed position, wherein the following reference numbers represent:
- lower structure;
- lifting mechanism;
3 - upper structure
7 - lower bearing;
8 - upper bearing;
9 - lower latch;
- upper latch;
- support bars of the lifting mechanism;
- support piece.
Figure 4: Schematic représentation of the lower and upper view of the lower structure, wherein the following reference numbers represent:
- lower structure;
- fixed shaft for attachment to the exterior;
- element of attachment of the shaft with the exterior;
- guiding wheels of the shaft;
- set of supporting wheels of the lower structure.
Figure 5: Schematic représentation of the lifting mechanism, wherein the following reference numbers represent:
- lower latch;
- electric motor to drive the upper structure;
- driving nut;
- driving spindle;
- supporting sleeve of the driving spindle;
- connecting rods of actuation of the upper structure.
Figure 6: Schematic représentation of the lower bearing, wherein the following reference numbers represent:
- lower bearing;
- mobile element of the lower bearing;
- fixed element of the lower bearing.
Figure 7: Schematic représentation of the upper bearing, wherein the following reference numbers represent:
- upper bearing;
- mobile element of the upper bearing;
- fixed element of the upper bearing.
Figure 8: Schematic représentation of the rotating mechanism in the lower and upper views, wherein the following reference numbers represent:
- rotating mechanism;
- motor of the rotation mechanism;
- drive sprocket;
- pinions.
Figure 9: Schematic représentation of the latches, wherein the following reference numbers represent:
- lower latch;
- upper latch;
- latching pin of the lower latch;
- electric motor that opérâtes the lower latch;
- motor that opérâtes the upper latch;
- latching pin of the upper latch.
Figure 10: Schematic représentation of part of the operation of the automation system in automatic mode.
Figure 11: Detail of the schematic représentation of the operation of the automation system in maintenance mode.
Figure 12: Detail of the schematic représentation of the operation of the automation system in manual mode.
Figure 13: Detail of the schematic représentation of the operation of the automation system of a detail of the movement function to position X.
Figure 14: Schematic représentation of the structure, wherein the following reference numbers represent:
- lower structure;
- lifting mechanism;
- upper structure without side sections;;
- pillar;
- upper beams.
Figure 15: Schematic représentation of the automated structure in a perspective view having the upper structure in a closed position, wherein the following reference numbers represent: 1 - lower structure;
- cross member;
- counter weights;
- supporting pillars;
- upper beams;
- supporting pillars of cross member.
Figure 16: Schematic représentation of the structures wherein the following reference numbers represent:
- lower structure;
- fixed structure.
Figure 17: Schematic représentation of the automated structure having the upper structure in a closed position, wherein the following reference numbers represent:
- lower structure;
- lifting mechanism;
- upper structure;
- fixed shaft for attachment to the exterior;
- upper bearing;
- element of attachment of the shaft with the exterior;
- supporting pillars;
- upper beams;
- fixed structure.
Detailed Description
The présent invention describes an automated structure for réception of modular constructions, automation System and method of operation thereof and operating method, wherein the structure comprises a lower structure (1) which contains an opening (4) for accommodation of a fixed shaft, comprised by the element of attachment of the shaft with the exterior (11), where, preferably, a lifting mechanism may be coupled to the structure (45) and the fixed shaft for attachment to the exterior (5) located, preferably, on the side sections of said lower structure (1) and may also be located on the cover of the modular constructions, which is coupled to an upper structure (3) with joint and support (6), by means of the lifting mechanism (2) of the lower bearing (7), of the upper bearing (8), of the lower latch (9), of the upper latch (10), of the support bars of the lifting mechanism (35) and of the support piece ¢36) and which allows the movement of said upper structure (3) . The axial movement and the upper structure (3) are managed through an automated system based on a programmable automaton and a set of sensors and actuators, namely anemometers and frequency inverters that control these movements. Thus, the présent invention allows to receive on said lower structure (1) through the element of attachment of the shaft with the exterior (11) where it can be coupled to the structure (45) being accomplished the fixation to the exterior, modular constructions, for example houses, making them to move, for example, according to the solar orientation, in order to make them energy efficient.
Addîtionally, a structure (45) can be coupled to said element of attachment of the shaft with the exterior (11), which remains fixed regardless of whether or not there is a rotation movement, fixation to the exterior being achieved through the fixed shaft (5) in that the structure will remain likewise fixed and will be introduced into the modular construction where it will be placed. In this way, it is possible to create different spaces in the interior of the aforementioned modular construction, also of different dimensions, as the rotation movement takes place.
The automation system is based on a programmable automaton and a set of sensors and actuators, in particular an anemometer and frequency inverters that control the rotation motor (28) and the motor that opérâtes the upper structure (14) as well as the motors (32 and 33) placed, respectively, in the lower (9) and upper (10) locks and that détermine the a rotation axis of the upper structure (14) which may, for example, correspond to the summer or winter movements and by means of said lower (9) and upper (10) latches a set of limit switches of protection in particular the upper (8) and lower (7) bearings. The automation system illustrated by the flowchart in figure 10 uses a software developed in Ladder logic and designed so that each of the
ΙΟ features that implements can be invoked by higher level Systems such as computers, tablets or smartphones and has 3 modes of operation, which are now explained:
Mode 1: Automatic
In this mode, that will the usual mode of operation, the lower structure (1) and the upper structure (3) will move in such way as to obtain the maximum use of the solar energy. Depending on the intended configuration, the system allows lifting of only the upper structure (3), only rotate the entire structure or both movements combined. Similarly, in the context of this automatic mode, it is possible to configure whether the upper structure (3) executes a summer movement, in which the aim is to create shadow on the main façade, or a winter movement, in which the purpose is not to create shadow on the façade, while the upper structure (3) remains perpendicuiar to the sun's position; these movements are illustrated in figures 1, 2, 14 and 16, respectively. These configurations can also be carried out in the manual mode through interaction with a programming graphical console. The motor movements are monitored by the variators and automaton so that any anomaly is immediately detected and leads to a stop of the system that will require human intervention.
By way of example, the two motors (14) that ensure the lifting of the upper structure (3) must move synchronously and any discrepancy, even if minimum will be detected and the system stops until the cause of the discrepancy is resolved. Altematively, we can opt for just one motor (14) applied to a lifting mechanism (2) for lifting the upper structure (3), placed in the centre of the larger section. When the anemometer measures the wind speed above a predetermined value the automation system will collect the upper structure (3) and will close ail the latches (8 and 9) through action on the motors (14, 32 and 33) in order to ensure the structural safety of the upper structure (3) . Accordingly, the system enters the maintenance mode from which it will emerge if the condition that led to switch to this mode is no longer présent. If an authorised user acts on the monitoring and programming graphical console and requests a change in configuration or a predetermlned positioning for the house or façade, when in automatic mode, the system will change into manual mode.
The automatic movement is therefore done through the management by said automation system that takes into considération variables such as the sunlight and the time of the day.
Mode 2: Manual
In the manual mode, the monitoring of the operation of the system can be carried out and its behaviour can be configured. There are a number of configurable positions for the lifting of the upper structure (3) and rotation of the châssis to which the user can give an order of positioning; the system will carry out ail necessary checks and will position the lifting of the upper structure (3) or the rotation of the châssis, this at a speed faster than the one used in the automatic mode of solar tracking.
Mode 3: Maintenance
The system goes into maintenance mode whenever an error occurs or when the speed of the wind is above a predetermined value. If an error occurs the human intervention is mandatory and the resolving of the error will take the system into manual mode. In the case of the emergency procedure caused by high speed of the wind, the system will return to the automatic mode if after a period of time the situation is resolved.
Next, the axial movement and the movement of the upper structure (3) will be explained:
Axial movement
The lower structure (1) contains an opening (4) for accommodation of a fixed shaft,
attachment of the shaft with the
preferably, the structure (45) and
attachment to the exterior (5) can be
is coupled preferably the comprised by the element of the fixed shaft for coupled, whereto in turn rotating mechanism (27) or other similar, and that, by action of the motor of the rotation mechanism (28) on the drive sprocket (29) and the pinions (30), by means of a chain (not shown) allows the axial movement of the whole structure up to at least a radius of 180°. In a preferred embodiment, the method of operation présents a lower structure (1) in its axial movement aided by the guiding wheels of the shaft (12) and by the set of supporting wheels of the lower structure (13). This last set, also preferred, is arranged in a circle around the entire fixed shaft (5) that moves in a trough placed on the ground (not shown).
Upper structure (3)
In order that the upper structure (3), starting from the opening position, such as shown in figure 1 (winter) or 2 (summer) , can move in the closed position in figure 3 (up to approximately 14:00 hours) and return to the opened position (approximately 20:00 hours) in figures 1 and 2, in accordance with the height of the sun and direction of its light, the automation system controls the electric motor that drives the upper structure (14), which drives the spindle (16) and, through the nut (15) and the connecting rods (19), which will lift the upper structure (3) since they are coupled to it. This movement implies that the lower latch (9) is unlocked, something that the automation system will do simultaneously by activating the eiectric motor that opérâtes the lower latch (32) which, in turn, will activate the latching pin of the lower latch (31) keeping the upper latch (10) locked. In this movement, the lower bearing (7), through its fixed and mobile éléments (22 and 21) serves as a shaft and support to the upper structure (3) to which it is connected by means of the support piece (36) . This movement is specially useful in the summer, at sunrise and sunset, when the position of the sum is lower, therefore the
inclination of the upper structure (3 ) must be greater, as shown
in Figure 2, and it can go up to a maximum of 90 degrees,
creating private external spaces, however, in a preferred
application, it can go up to 60 degrees, creating covered
external spaces and shaded areas, measured from the lower
bearing (7).
In the case of the so called winter movement, wherein the degree of inclination of the upper to be so great in order to keep the inside température of the modular construction adéquate, the opening movement of the upper structure (3) only differs by the fact that the automation system commands the upper latch to be unlocked by activating the eiectric motor that opérâtes the upper latch (33) which activâtes the latching pin of the upper latch (34) keeping the lower latch (9) locked. In this case the upper bearing (8), by means of its fixed and mobile éléments (25 and 24), serves as a shaft and upper structure (3) support in conjunction with a support piece (36). This movement has maximum amplitude of 60 degrees measured from the upper bearing (3) and it is specially useful in the winter, that is, when the position of the sun is lower, therefore the inclination of the upper structure (3) must the modular construction.
be greater, as shown in figure 1, allowing the incidence of the sun on the façade which results in heating of the interior of
The movement of the upper structure (3) can also be carried out in the opposite direction to that presented in the figures, by modifying the direction of the connecting rods (19), displacing the lifting mechanism (2) to the centre of the side section and placing a duplication of the remaining éléments responsible for the movement of the upper structure on the opposite side of the same section, in response to the needs of countries near the equator.
It should be noted that the supporting bars of the lifting mechanism (35) allow assisting the lifting mechanism (2) to withstand the forces exerted during the movements of opening and closing of the upper structure (3). The entire upper structure (3) is preferably produced in lattice format, thus allowing réduction of weight and increase of robustness.
In a preferred embodiment, the automated structure for réception of modular constructions can execute a 360° rotation.
In another preferred embodiment, the automated structure for réception of modular constructions can be programmed so that this modular construction, for example a house, executes a 180° movement according to the movement of the sun in that location and return to the starting point, making its return during the night.
Additionally, the mode of operation described above could be applied, with the necessary alterations, to a simpler structure with the aim of reducing production costs and in order to provide a more accessible product.
This way, the automated structure can be sized to allow only opening and closing movements of the upper structure (3), without side sections (46) . In this case the lifting mechanism (2) will be positioned on one of the ends of the side sections of the lower structure (1), and a pillar (42) , which contains an upper bearing (9) on its upper end in such way as to enable the articulation of the upper structure (43) without side sections (46), as well as an upper beam (43) as a support. To controi the movements of opening and closing, the programmable automaton should act only on the electrical motor that drives the upper structure (14). The angle of inclination of the upper structure without side sections (3) remains the same as previously explained, however, the embodiment now described only allows the winter movement.
Furthermore, if necessary, for the purposes of project, to place the opening (4) for accommodation of a fixed shaft, comprised by the element of attachment of the shaft with the exterior (11) where preferably the structure (45) and the fixed shaft for attachment to the exterior (5) can be coupled at one of the ends
of the lower structure (D , the automated structure should be
rebalanced. To this end it is used the fixation of support
pillars (42) at the side ends of the lower structure (1), which
connect the upper beams (43) and cross members (40) coupled to
supporting pillars of cross members (44). Further, counter weights (41) are applied at each end of the shorter side of the lower structure (1) in order to ensure the balance of the entire automated structure, thus eliminating the supporting wheels of the structure (13), the guiding wheels of the shaft (12) being able to be replaced by a solution simiiar to the crâne system or other.
The following daims additionally emphasise particular embodiments of the invention.

Claims (14)

1. The automated structure for réception of modular constructions comprised by:
a lower structure, which contains an opening for accommodation of a fixed shaft, comprised by the element of attachment of the shaft with the exterior);
a lifting mechanism located in the side sections of said lower structure (1) or on the cover of the modular constructions, which is coupled to an upper structure through the joint and support.
2. The automated structure for réception of modular constructions according to the previous claim, wherein the structure and the fixed shaft for attachment to the exterior are coupled to the element of attachment of the shaft with the exterior.
3. The automated structure for réception of modular constructions according to any one of the previous claims, wherein said structure is connected to a set of sensors and actuators.
4. The automated structure for réception of modular constructions according to any one of the previous claims, comprised by a rotation motor and a drive motor of the upper structure as well as motors placed on the lower and upper latches and a set of limit switches of protection in particular the upper (8) and lower (7) bearings.
I7
5. The automated structure for réception of modular constructions according to any one of the previous claims, wherein the upper structure is made in lattice format.
5
6. The automation system attached to the automated structure described in any one of claims 1 to 5, comprised by a programmable automaton and a set of sensors that control the movements of the structure.
10
7. The automation system according to the previous claim, wherein the set of sensors and actuators comprises anemometers and frequency inverters.
8. The automation system according to claims 6 and 7, wherein
15 said system présents three modes of operation: automatic, manual and maintenance.
9. The automation System according to any one of claims 6 to 8, wherein said system caries out the collection of the upper
20 structure and the closure of ail latches by action on the motors when the anemometer measures the wind speed above a predetermined value.
10. The operating method of the automated structure described in
25 any one of claims 1 to 5 in conjunction with the automation system described in claims 6 to 9, wherein the lower structure contains an opening to which the fixed shaft comprised by the element of attachment of the shaft with the exterior is coupled, where the structure and the fixed shaft 30 for attachment to the exterior can be coupled, whereto in turn is coupled preferably the rotating mechanism, and that, by action of the motor of the rotation mechanism on the drive sprocket and the pinions by means of a chain.
11. The operating method according to the previous claim, wherein the lower structure in its axial movement is aided by the guiding wheels of the shaft and by the set of supporting wheels of the lower structure.
12. The operating method according to any one of the claims 10 and 11, wherein the set of supporting wheels of the lower structure is arranged in a circle around the entire fixed shaft moving in a trough placed on the ground.
13. The operating method according to any one of the claims 10 to
12, wherein the upper structure in its summer movement from the opening position and, making use of the automation system, controls the electric motor that opérâtes the upper structure which drives the spindle and, by means of the nut and connecting rods, raises the structure as they are attached thereto and, at the same time, activâtes the electric motor that opérâtes the lower latch which, in turn, will activate the latching pin of the lower latch keeping the upper latch locked.
14. The operating method according to any one of the claims 10 to
13, wherein the upper structure in its winter movement differs from the summer movement in that the automation system unlocks the upper latch by activating the electric motor that opérâtes the upper latch which activâtes the latching pin of the upper latch keeping the lower latch locked.
OA1201500066 2012-08-31 2013-09-02 Automated structure for hosting modular buildings, respective automation system and operating method. OA17262A (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
PT106514 2012-08-31

Publications (1)

Publication Number Publication Date
OA17262A true OA17262A (en) 2016-04-20

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