Sliding window mechanism II
10871022 ยท 2020-12-22
Inventors
Cpc classification
E05F11/42
FIXED CONSTRUCTIONS
E05F15/67
FIXED CONSTRUCTIONS
E05F15/41
FIXED CONSTRUCTIONS
International classification
Abstract
A mechanism for vertically sliding a windowed frame in one track alongside a static frame installed in a second track. The mechanism consists of two vertical racks installed on the sliding frame, which engage with two pinions coupled with a joint axle which are installed within the lower horizontal plank of the static frame. Turning the joint axle turns also the pinions which move the frame vertically. There are two options for turning the joint axle. The manual option involves turning a crank, the electrical option involves an electric motor coupled with a gearbox. The electrical option also includes a control unit for controlling the direction and speed of the sliding, two limit switches for stopping the frame at highest and lowest positions, an electrical overload sensor which detects sudden sliding obstructions and a burglar alarm. The sliding frame also includes four rollers which reduce the sliding friction.
Claims
1. A window mechanism configured for opening and closing a sliding window comprising: an outer frame, a static window, a joint axle, a bended axle; a left pinion and a right pinion; the sliding window comprising: a sliding frame, a sliding pane, a left rack, a right rack; wherein the sliding pane is made of transparent material and is configured to be framed within the sliding frame; the sliding frame is constructed from a left vertical sliding plank, a right vertical sliding plank, a lower horizontal sliding plank and an upper horizontal sliding plank; wherein the left rack is installed on an inner side of the left vertical sliding plank; wherein the right rack is installed on an inner side of the right vertical sliding plank; the static window comprising: a static frame, a static pane; wherein said static pane is made of transparent material and configured to be framed within said static frame; wherein the static frame is constructed from a left vertical static plank, a right vertical static plank, a lower horizontal static plank and an upper horizontal static plank; wherein the lower horizontal static plank has a recess which is configured to house the left pinion, the joint axle and the right pinion; the outer frame comprises: a left vertical guide, a right vertical guide, a lower horizontal outer bar and an upper horizontal outer bar; wherein said left vertical guide is parallel to the right vertical guide; wherein said left vertical guide is facing the right vertical guide; wherein the left vertical guide and the right vertical guide both include a first track and a second track; wherein the first track is parallel to the second track; wherein the first track is configured to guide the sliding frame in sliding up and down within the outer frame; wherein the static frame is installed in the second track; wherein a top side of the upper horizontal static plank is attached to a bottom side of the upper outer horizontal bar; wherein the joint axle is coupled with the left pinion at a joint axle left end; wherein the joint axle is coupled with the right pinion at a joint axle right end; wherein, turning the joint axle also turns the left pinion and the right pinion; wherein the left pinion is engaged with the left rack and the right pinion is engaged the right rack; wherein the right rack and the sliding frame are configured to being vertically moved by turning the right pinion; wherein the left rack and the sliding frame are configured to being vertically moved by turning the left pinion; wherein, a single turn of the left pinion is configured to displace the left rack by a unit left displacement; wherein, a single turn of the right pinion is configured to displace the right rack by a unit right displacement; wherein the unit right displacement is configured to be equal to the unit left displacement; wherein moving the sliding window up and down is facilitated by turning the joint axle; wherein the joint axle right end is coupled with a bended axle left end; wherein turning the bended axle is configured to turn the right pinion, the joint axle and the left pinion.
2. The window mechanism of claim 1, wherein the sliding frame further comprising: a lower left roller, an upper left roller, a lower right roller and an upper right roller; wherein the upper left roller is installed at an upper left side of the left vertical sliding plank; wherein the lower left roller is installed at a lower left side of the left vertical sliding plank; wherein the upper right roller is installed at an upper right side of the right vertical sliding plank; wherein the lower right roller is installed at a lower right side of the right vertical sliding plank; wherein, the upper left roller, the lower left roller, the upper right roller and the lower right roller facilitate sliding of the sliding frame within said outer frame.
3. The window mechanism of claim 2, wherein the lower left roller, the upper left roller, the lower right roller and the upper right roller are installed in recesses.
4. The window mechanism of claim 1, wherein said window mechanism further comprising: a guiding tube, a motor gearbox and an electrical motor mechanically coupled with the motor gearbox; wherein the bended axle is elastic and bendable; wherein the bended axle is guided by the guiding tube; wherein the guiding tube is bendable; wherein the joint axle right end is coupled with the bended axle left end; wherein the motor gearbox includes a motor gearbox output axle which is coupled with a bended axle right end; wherein, activating the electrical motor is configured to turn the motor gearbox output axle and to turn the bended axle; wherein turning the bended axle is configured to turn the right pinion, the joint axle and the left pinion; wherein, activating the electrical motor facilitates moving vertically the sliding window.
5. The window mechanism of claim 4, wherein said window mechanism further comprising: a control unit; wherein the electrical motor is electrically connected to the control unit; wherein the control unit controls a direction of the electrical motor and a speed of the electrical motor; wherein the control unit is electrically connected to a control box by which a user can manually control the direction of the electrical motor and the speed of the electrical motor; wherein the electrical motor is configured to move the sliding window up or down by turning the motor gearbox output axle.
6. The window mechanism of claim 4, comprising: a lower limit switch and an upper limit switch; wherein said lower limit switch is configured to be activated when said sliding frame reaches a lowest position within said outer frame; wherein said upper limit switch is configured to be activated when said sliding frame reaches a highest position within said outer frame; wherein said lower limit switch and said upper limit switch are electrically connected to a control unit; wherein said control unit is configured to stop said electrical motor when said lower limit switch or said upper limit switch is activated.
7. The window mechanism of claim 6, further comprising: a burglar alarm electrically connected to said control unit; wherein said lower limit switch is configured to activate said burglar alarm when said lower limit switch is deactivated and said burglar alarm is armed.
8. The window mechanism of claim 6, further comprising: an overload sensor electrically connected to said control unit; wherein said control unit is configured to reverse the direction of said electrical motor when said overload sensor senses a sudden overload of said electrical motor due to a blocking of said sliding window.
9. The window mechanism of claim 1, wherein said window mechanism further comprising: a guiding tube, a crank, a crank axle, a crank gearbox and a crank gearbox axle; wherein the bended axle is elastic and bendable; wherein the bended axle is guided by the guiding tube; wherein the guiding tube is bendable; wherein the joint axle right end is coupled with the bended axle left end; wherein the crank is mechanically coupled with the crank axle; wherein the crank axle is mechanically coupled with a crank gearbox input; wherein the crank gearbox axle is mechanically coupled with a crank gearbox output; wherein the crank gearbox axle is coupled with a bended axle right end; wherein, turning the crank is configured to turn the crank axle, to turn the crank gearbox axle and to turn the bended axle; wherein turning the bended axle is configured to turn the right pinion, the joint axle and the left pinion; wherein, turning the crank facilitates turning of the left pinion and the right pinion; wherein, turning the crank facilitates moving vertically the sliding window.
10. The window mechanism of claim 1, wherein said window mechanism further comprising: a crank and a crank axle; wherein the bended axle is elastic and bendable; wherein the bended axle is guided by a guiding tube; wherein the guiding tube is bendable; wherein the joint axle right end is coupled with the bended axle left end; wherein the crank is coupled with a crank axle right end; wherein a crank axle left end is coupled with a bended axle right end; wherein, turning the crank is configured to turn the crank axle and to turn the bended axle; wherein turning of the bended axle is configured to turn the right pinion, to turn the joint axle and to turn the left pinion; wherein, turning the crank facilitates turning of the left pinion and the right pinion; wherein, turning the crank facilitates moving vertically the sliding window.
11. The window mechanism of claim 1, wherein said window mechanism further comprising: a pair of bearings attached to the static frame and supporting the joint axle.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
DETAILED DESCRIPTION OF THE DRAWINGS
(4)
(5) The sliding frame 1 is depicted separately from the static frame 2. The static frame 2 is installed between the outer frame right vertical guide 9B and the left outer frame vertical guide 9A which is connected to the lower outer horizontal bar 3A and to the upper outer horizontal bar 3B. To allow better viewing, the rest of the outer frame is depicted in pieces. The opposite outer frame's right vertical guide 9B is shown in two pieces where one piece is connected to the outer frame upper horizontal bar 3B and the second piece of outer frame's right vertical guide 9B is connected to the outer frame lower horizontal bar 3A. The static frame 2 also has also has at its lower static horizontal plank 2D a recess 8 which is used to house the joint axle 6A which is fused to the left pinion 4A at its left end and to the right pinion 4B at its right end. The joint axle 6A is also coupled at its right end with the left end of the first axle 6B. The right end of the first axle 6B is coupled with the first bevel gearwheel 5A. The first bevel gearwheel 5A can be engaged with the second bevel gearwheel 5B or with the third bevel gearwheel 5C. The second bevel gearwheel 5B is connected with the crank axle 5G which is attached to the crank 5C. The third bevel gearwheel 5D is connected to the motor gearbox output axle 5E at it lower end where at its upper end it is connected with the motor gearbox 5F. The motor gearbox 5F is mechanically coupled with the electric motor 10A.
(6) The left pinion 4A is engaged with the left rack 7 which is installed on the inner side of the vertical left sliding plank of the sliding frame 1. The right pinion 4B is engaged with the right rack 7 which is installed on the inner side of the vertical right sliding plank of the sliding frame 1. Two out of four rollers 13 (only one roller is shown in
(7) Thus, turning the crank 5C turns the crank axle 5G and the second bevel gearwheel 5B. Turning the second bevel gearwheel 5B which engages with the first bevel gearwheel 5A turns it and also turns the first axle 6B, the right pinion 4B, the joint axle 6A and the left pinion 4A. The left and right turning pinions move vertically the racks 7 and the attached sliding frame 1.
(8) In addition, turning the electric motor 10A turns the motor gearbox 5F, turns the motor gearbox output axle 5E and the third bevel gearwheel 5D. Turning the third bevel gearwheel 5D which engages with the first bevel gearwheel 5A turns it and also turns the first axle 6B, the right pinion 4B, the joint axle 6A and the left pinion 4A. The left and right turning pinions move vertically the racks 7 and the attached sliding frame 1.
(9) A lower limit switch 11 and an upper limit switch 12 are electrically connected to the control unit and facilitate stopping the sliding frame at its lowest and highest positions respectively.
(10)
(11) The sliding frame 1 is depicted separately from the static pane 2F which is framed by the static frame 2. The static window 2 i.e. the static frame 2, includes the left vertical static plank 2E, the right vertical static plank 2C, lower horizontal static plank 2D and the upper horizontal static plank 2B. The sliding frame 1 which holds the sliding pane 1F is composed of the left vertical sliding plank 1E, the right vertical sliding plank 1C, upper horizontal sliding plank 1B and the lower horizontal sliding plank 1D. The static frame 2 is installed between the outer frame right vertical guide 9B and the left outer frame vertical guide 9A which is connected to the lower outer horizontal bar 3A and to the upper outer horizontal bar 3B. To allow better viewing, the rest of the outer frame is depicted in pieces. The opposite outer frame's right vertical guide 9B is shown in two pieces where one piece is connected to the outer frame upper horizontal bar 3B and the second piece of outer frame's right vertical guide 9B is connected to the outer frame lower horizontal bar 3A. The outer frame right vertical guide 9B and the left outer frame vertical guide 9A are divided into the first and second tracks 9C and 9D respectively. The static frame 2 also has at its lower static horizontal plank, a recess 8 which is used to house the joint axle 6A which is fused to the left pinion 4A at its left end and to the right pinion 4B at its right end. If necessary, one could hold the joint axle 6A also with a pair of bearings 6J attached to the static frame 2. The joint axle 6A is also coupled at its right end with the left end of the bended axle 6G. The right end of the bended axle 6G can be coupled with the crank gearbox axle 5J or with the motor gearbox output axle 5E. The crank gearbox 5H is connected with the crank axle 5G which is attached to the crank 5C. The motor gearbox output axle 5E is connected to the motor gearbox 5F. The motor gearbox 5F is mechanically coupled with the electric motor 10A. The bended axle 6G is guided by a guiding tube 6H which is bendable. The guiding tube 6H can be bended in a range of arcs and can guide the bended axle 6G to operate i.e. turn in a range of bended arcs. This option enables one to place the crank gearbox axle 5J or the motor gearbox output axle 5E which are coupled with the bended axle 6G, at different locations.
(12) The left pinion 4A is engaged with the left rack 7 which is installed on the inner side of the left vertical sliding plank of the sliding frame 1. The right pinion 4B is engaged with the right rack 7 which is installed on the inner side of the right vertical sliding plank of the sliding frame 1. Two out of four rollers 13 (only two rollers are shown in
(13) Thus, turning the crank 5C turns the crank axle 5G the crank gearbox 5H and the crank gearbox axle 5J. Turning the crank gearbox axle 5J which is coupled with the right end of the bended axle 6G turns it and also turns the joint axle 6A which is fused at its left end to the right end of the bended axle 6G. Turning the joint axle 6A also turns the right pinion 4B and the left pinion 4A. The left and right turning pinions move vertically the racks 7 and the sliding frame 1 which is attached to the racks.
(14) In addition, turning the electric motor 10A turns the motor gearbox 5F and turns the motor gearbox output axle 5E along with the bended axle 6G which is attached at its right end to the motor gearbox output axle 5E. Turning the bended axle 6G which is attached at its left end to the right end of the joint axle 6A, turns also the right pinion 4B, the joint axle 6A and the left pinion 4A. The left and right turning pinions move vertically the racks 7 and the attached sliding frame 1.
(15) A lower limit switch 11 and an upper limit switch 12 are electrically connected to the control unit and facilitate stopping the sliding frame at its lowest and highest positions respectively.
(16)
(17) The control unit which controls the motor is equipped a safety circuit which includes an electrical overload sensor 10E which can detect a sudden overload of the motor's 10A current. Such an overload happens when the sliding window is in the process of closing and it hits an obstruction of a person or an object. Thus, when the load circuit 10E detects an obstruction it instructs the control unit to reverse the motor 10A which then opens the window.
(18) The electrical system also provides a burglar alarm circuit, which sounds the alarm 10D when the sliding frame 1 is forced open while the alarm system is armed.