The present invention relates to a connector element for a releasably connecting a first type construction elements to a second type of construction elements. The invention also relates to a construction system comprising construction elements of a first type, construction elements of a second type and a connector for releasably connecting of the first type construction elements to the second type construction elements.
Learning systems, robotics construction sets, and so-called maker kits are known, which can provide a user with a variety of functionalities, which, however, represent limited construction sets for a limited number of given projects, or which are very complicated and therefore only accessible to advanced users, and in the long run interesting as well as insightful.
These issues are partially solved by modular construction systems with enhanced functionality, namely by a combination of simple modular construction elements as they are known from traditional modular construction systems, such as beams, plates, bricks, pegs, connectors, cog-wheels, etc., with functional modular construction elements, such as lighting elements, motors/actuators, sensors, but also programmable processor units, which may also be digitally connectable with external devices, e.g. for programming or remote control. Such modular construction systems with enhanced functionality have proven their value in a play context, as well as in learning environments, not the least because they facilitate reliable, yet easily detachable mechanical connections between simple and functional modular construction elements, and because the functional modular construction elements are adapted to each other to provide a positive and stimulating user experience.
However, in some cases it may also be desirable in a play or educational context to use the functionality of external components, such as from a maker-kit, in combination with modular construction elements. Therefore, there is a need for combining components of different types of modular construction elements in a simple manner.
More particularly it is an object of the invention to allow for a close, space reducing connection between a first type construction element of a type comprising construction elements having connector knobs formed on a surface thereof, the connector knobs being arranged in a regular two-dimensional lattice with a second type of construction element, comprising a connector opening configured for cooperating with a connector peg to form a snap connection.
These and other objects are—in a first aspect of the invention achieved by a connector element for a construction system, the construction system comprising
5
A friction fit may also be called an interference fit or press fit. A friction fit, in general, is a form of fastening between two tight fitting mating parts that produces a joint which is held together by friction after the parts are pushed together. Sometimes such a connection is also referred to as a clutch. Clutch refers to a static hold. Although “friction” indicates a movement, which is correct as you mount the element but when mounted you would not then have friction, until the element is attempted moved again.
The snap connection may be provided by providing the second cylindrical connector portion with a circumferential bead formed at the extreme of the second end of the second cylindrical connector portion.
In an embodiment, the second cylindrical connector portion of the connector element comprises a slit arranged in the longitudinal direction of the connector element. Thereby the second cylindrical connector portion may in an uncomplicated manner be provided with a resilience allowing the second cylindrical connector portion to snap into connection with the cylindrical connector opening of the second type of construction elements.
In one embodiment, the outer surface of the first cylindrical connector portion of the connector element comprises four indentations, equidistantly spaced along a perimeter of the outer surface, each of the four indentations being configured to receive a portion of four neighbouring connector knobs formed on a first type construction element.
However, in an alternative, preferred embodiment, a diameter of the outer surface of the first cylindrical connector portion of the connector element is equal to a smallest diagonal distance between the outer surfaces of two neighbouring connector knobs in the regular n×m, n≥2, m≥2, lattice of a first type construction element.
In a further embodiment of any of the previously mentioned embodiments of the connector element a length of the inner surface of the first cylindrical connector portion of the connector element is equal to a height of the connector knobs formed on a first type construction element. Thereby, detachment of a connector element connected over a knob is made easier, while aiding the stability of the connection during the connection.
In a further embodiment of any of the previously mentioned embodiments, the connector element comprises an intermediary portion formed between the first cylindrical connector portion and the second cylindrical connector portion. In a preferred embodiment hereof, the intermediary portion comprises elongate second indentations formed in an outer surface of the intermediary portion and perpendicularly to the longitudinal axis of the connector element. The elongate second indentations allows removal of the connector element from its connection over a connector knob or between four neighbouring connector knobs in an easy manner, and the elongate second indentations being formed in the intermediary portion allows the arrangement of the elongate second indentations without loss of structural strength of the connector element. In another embodiment thereof, a length the outer surface of the first cylindrical portion is smaller than a height of a connector knob formed on a first type construction element. This allows a very compact connection of a first type construction element and a second type construction element.
In a further embodiment of any of the previously mentioned embodiments, the length of the second cylindrical connector portion of the connector element is equal to the length of the cylindrical connector opening of the second type of construction elements.
The object are—in a second aspect of the invention—obtained by a construction system comprising
In an embodiment of the first aspect of the invention the construction system comprises an electrical motor having a box shaped housing and a power outtake part formed in one surface of the box shaped housing, and three or more connector holes provided on a second surface, which surface is different from the surface comprising the power outtake part of the electrical motor, and where each of the three or more connector holes are provided in positons on the second surface at distances from each other corresponding to positions of lattice positions of the regular two-dimensional lattice of a first type of construction elements.
In a further embodiment, the electrical motor comprises four connector holes provided on the second surface, the four connector holes being arranged in a rectangular pattern of the second surface.
It should be emphasized that the term “comprises/comprising/comprised of” when used in this specification is taken to specify the presence of stated features, integers, steps or components but does not preclude the presence or addition of one or more other features, integers, steps, components or groups thereof.
In the following, the invention will be described in greater detail with reference to embodiments shown by the enclosed figures. It should be emphasized that the embodiments shown are used for example purposes only and should not be used to limit the scope of the invention.
The construction element 102 shown in
Other types of first type construction elements 100 are shown in
Construction elements of the first type construction elements 100 are herein defined as having either connector knobs or knob receiving openings 160 or both. A first type construction system 1000 is herein defined as a system of construction elements comprising two or more first type construction elements 100, where at least one construction element has connector knobs 150 arranged in a regular two-dimensional n×m lattice, where n≥1; m≥1. An example of a first type construction system 1000 is known in the art, e.g. under the trade name LEGO SYSTEM©, marketed by LEGO A/S.
The illustrated prior art construction element 101 of
At the first end 111 of the cylindrical body 110, the prior art construction element 101 comprises a single connector knob 150. The single connector knob 150 is generally cylindrical, with a smaller diameter than the cylindrical body 110 of the construction element 101. The single connector knob 150 has a first end 151, a second end 152 and a longitudinal axis. The longitudinal axis of the single connector knob coincides with the longitudinal axis of the cylindrical body 110 of the prior art construction element 101. The second end 152 of the single connector knob 150 is connected to the first end 111 of the cylindrical body 110 of the prior art construction element 101. The single connector knob 150 extends from the first end 111 of the cylindrical body 110 of the prior art construction element 101.
The single connector knob 150 is dimensioned such that it may fit into a knob-receiving opening 160 formed in another construction element 101, 102, 103 of the first type construction system 1000.
At the second end 112 of the cylindrical body portion 110, the prior art construction element 101 shown in
The cylindrical connector portion 130 comprises a cylindrical wall 130′ having a first end 131, a second end 132 and a longitudinal axis. The longitudinal axis of the cylindrical wall 130′ of the cylindrical connector portion 130 coincides with the longitudinal axis of the cylindrical body 110 of the prior art construction element 101.
The first end 131 of the cylindrical wall 130′ of the cylindrical connector portion 130 is connected to the second end 112 of the cylindrical body 110 of the prior art construction element 101. The cylindrical wall 130′ of the cylindrical connector portion 130 extends from the second end 112 of the cylindrical body 110 of the prior art construction element 101.
The cylindrical wall 130′ of the cylindrical connector portion 130 comprises an inner surface 133 and an outer surface 134.
The inner surface 133 is dimensioned such that it may form a friction fit, when pressed over a connector knob 150 formed on a first type construction element 100. Thus, the inner surface 133 provides an example of the above mentioned knob-receiving openings.
The outer surface 134 is dimensioned such that it may form a friction fit between four neighbouring connector knobs 150 formed on another first type construction element 100 for example on a brick shaped construction element 101, shown in
The second type construction element 200, 201 shown in
The second type construction element 202, shown to the right in the figure, is shaped as a beam having three cylindrical connector openings 250 formed there through. In two of these cylindrical connector openings 250 one end of a second type construction element 201 as shown in
Two of these beams have three connector openings 250 formed with longitudinal axes parallel to the plane of the frame. It will be appreciated that each of these connector openings 250 may receive a cylindrical connector portion 240 of a second type construction element 201 as shown in
The two beams of the frame-shaped second type construction element 203 in
The second type construction element 200, 201 shown in
The snap connection between a cylindrical connector portion 240 and a cylindrical connector opening 250 is provided by the cylindrical connector portion 240 being provided with a circumferentially arranged bead 244 arranged at the free end of the cylindrical connector portion 240, and by a resilience of the cylindrical connector portion 240. This resilience may be provided by one or more slits 245 formed in the longitudinal direction of the cylindrical connector portion 240. In the
A length of the cylindrical connector portion 240 corresponds to a length of the cylindrical connector openings 250. A diameter of the cylindrical connector portion 240 corresponds to a dimeter of the cylindrical connector openings 250.
Each end of the cylindrical connector openings 250 is provided with an enlarged diameter ring-shaped opening (not shown) configured to cooperate with the bead 244 formed on the cylindrical connector portion 240.
When a cylindrical connector portion 240 is pressed through a cylindrical connector openings 250 by a user, the resilience of the cylindrical connector portion 240 allows the bead 244 to be pressed through the main portion of the cylindrical connector opening 250, and when the bead reaches the enlarged diameter ring-shaped opening at the opposite end of the cylindrical connector opening 250, the resilience of the main body of the cylindrical connector portion 240 allows the bead 244 to engage with the enlarged diameter ring-shaped opening, thereby forming a snap connection between the cylindrical connector portion 240 and the cylindrical connector opening 250.
Such snap connections are known in the art.
Construction elements of the second type construction elements 200 are herein defined as having at least cylindrical connector opening 250 configured for making snap connections with cylindrical connecter portions 240 (resilient connector pegs 270) as explained above. Second type construction elements 200, may also comprise construction elements having one or more cylindrical connecter portions 240. Second type construction elements 200, may also comprise construction elements having one or more cylindrical connecter portions 240 and one or more cylindrical connector opening 250.
A second type construction system 2000 is herein defined as a system of construction elements comprising two or more second type construction elements 200, where at least one construction element at least one connector opening 250. An example of a second type construction system 2000 is known in the art, e.g. under the trade name LEGO TECHNIC©, marketed by LEGO A/S.
It will be appreciated that some second type construction elements 200 and some construction elements of a second type construction system 2000 may additionally have connector knobs 150 or knob receiving openings 160 or both.
The connector element 10 comprises an elongate body 20 having a first end 21 and an opposite, second end 22 and a longitudinal axis A1 (see also
As shown, in some embodiments, the connector element 10 may further comprise an intermediary portion 50, formed between the first cylindrical connector portion 30 and the second cylindrical connector portion 40. The first cylindrical connector portion 30, the second cylindrical connector portion 40, and the intermediary portion 50 are formed coaxially in extension of each other along the longitudinal axis A1.
The first cylindrical connector portion 30 is shaped as a cylindrical tubular member comprising an inner surface 33 (or “inwardly facing surface”, or “internal surface”) and an outer surface 34 (or “outwardly facing surface”, or “external surface”). The inner surface 33 and the outer surface may be seen in the sectional view in the rightmost depiction of
The inner surface 33 is dimensioned such that it may form a friction fit, when pressed over a connector knob 150 formed on a first type construction element 100.
This may be obtained by the inner surface 33 of the first cylindrical connector portion 30 being shaped and dimensioned to cooperate exactly with the shape and dimensions of a knob 150.
Preferably, the inner surface 33 of the first cylindrical connector portion 30 is cylindrical having a diameter D1, see the upper left hand depiction in
Preferably, the diameter D1 of the inner surface 33 is identical to the outer diameter of cylindrical outer surface of a connector knob 150.
The outer surface 34 is dimensioned such that it may form a friction fit between four neighbouring connector knobs 150 formed on a first type construction element 100.
This may be obtained by the outer surface 34 of the first cylindrical connector portion 30 being shaped and dimensioned to cooperate exactly with the shape and dimensions of the space between four neighbouring knobs 150 in the regular n×m, n≥2, m≥2 lattice of a first type construction element 100.
In one embodiment, and as shown in
As mentioned above,
In
In either of the previously described embodiments, the second cylindrical connector portion 40, formed at the second end 22 of the connector element (10) is configured to form a snap connection with a cylindrical connector opening 250 of the second type of construction elements 200.
For this purpose, the second cylindrical connector portion 40 is preferably shaped as cylindrical connecter portion 240 (resilient connector peg 270) as described above. The second cylindrical connector portion 40 is configured to be connected to construction elements 202, 203, 204 of a second type construction system 200, where connection of variously shaped construction elements 201, 202, 203, 204 are based on the construction elements 201, 202, 203, 204 having cooperating connection means configured for making snap-connections, and where the connection means comprises cylindrical connector openings 250 and cooperating resilient connector pegs 270 in the form of cylindrical connector portions 240.
The second cylindrical connector portion 40 as shown in e.g.
The first end 41 of the elongate body 40′ of the second cylindrical connector portion 40 is connected to the first cylindrical connector portion 30, in some embodiments via an intermediary portion 50, as mentioned above.
The intermediary portion 50 comprises a first end 51 and a second end 52 and an elongate body 50′ extending there between. The intermediary portion 50 has a length L5. The first end 51 of the intermediary portion 50 connects to the first cylindrical connector portion 30. The second end 52 of the intermediary portion 50 connects to the first end 41 of the second cylindrical connector portion 40. The intermediary portion 50 is preferably cylindrical in shape, having an outer diameter D5. The intermediary portion 50 has an outer surface 54.
The elongate body 40′ is cylindrical having an elongate axis identical to the elongate of the longitudinal axis A1 of the connector element 10 (see
The snap connection between a second cylindrical connector portion 40 and a cylindrical connector opening 250 is provided by the second cylindrical connector portion 40 being provided with a circumferentially arranged bead 44 arranged at the free end, second end 42 of the second cylindrical connector portion 40, and by a resilience of the second cylindrical connector portion 40. The second end 42 of the second cylindrical connector portion 40 coincides with the second end 22 of the connector element 10 or at the extreme of the second end 22.
The resilience of the second cylindrical connector portion 40 may be provided by one or more slits 45 formed in the longitudinal direction of the second cylindrical connector portion 40. In all of the shown embodiments there are two such slits 45. It will however be appreciated that in other—not shown embodiments—there may be only one slit or there may be three or four slits. Further, it will be appreciated that resilience may alternatively or additionally be provided by a suitable choice of materials. The diameter of the bead 44 is slightly larger than the diameter of the main body of the cylindrical connector portion 240.
A length L3 of the second cylindrical connector portion 40 of the connector element 10 corresponds to a length of the cylindrical connector openings 250. The diameter D3 of the second cylindrical connector portion 40 corresponds to a dimeter of the cylindrical connector openings 250.
Like explained above, each end of the cylindrical connector openings 250 is provided with an enlarged diameter ring-shaped opening (not shown) configured to cooperate with the bead 44 formed on the second cylindrical connector portion 240.
When a second cylindrical connector portion 40 is pressed through a cylindrical connector openings 250 by a user, the resilience of the second cylindrical connector portion 40 allows the bead 244 to be pressed through the main portion of the cylindrical connector opening 250, and when the bead 44 reaches the enlarged diameter ring-shaped opening at the opposite end of the cylindrical connector opening 250, the resilience of the elongate body 40′ of the second cylindrical connector portion 40 allows the bead 44 to engage with the enlarged diameter ring-shaped opening, thereby forming a snap connection between the second cylindrical connector portion 40 and the cylindrical connector opening 250.
In the left hand side of
In
From
In
The electrical motor 204 shown in
The power outtake part 290 of the electrical motor 204 is formed in one surface of the electrical motor 204, here a top surface. From the left hand side of
It will be appreciated that the four connector openings 250 arranged in the rectangular array in the bottom surface are further spaced apart by distances complying with the nxm array of the first type construction elements 100.
As shown in
As further shown in
However, it will be appreciated that a second type construction element 200, such as the electrical motor 204, as shown in
Further, it will be appreciated that the end surfaces of the electrical motor 204 may also comprise connector openings 250.
It will be appreciated that the connector openings 250 in other surfaces will allow mounting of the motor to a plate shaped first type construction element 100, 104 or to other first type construction element 100, via connector elements 10, or to second type construction elements 200, for example using a construction element 201 as shown in
The inner surface 33 of the first cylindrical connector portion 30 of the connector element 10 has a length L1, see the sectional view at the right side of
To allow the connector element 10 to engage in the infringement fit with a connector knob 150 as described above, the length L1 of the inner wall must be larger than a height of a connector knob 150, such that the entire knob may be received within the cavity 30′ defined by the inner surface 33.
However, in one embodiment, the length L1 of the inner surface 33 is exactly the same as (equal to) the height of the connector knobs 150 formed on a first type construction element 100. The length L1 of the inner surface 33 may be confined by an internal structure. Such an internal structure may be a ledge (not shown) between the first cylindrical connector portion 30 and the second cylindrical section 40 of the connector element 10 (in embodiments where the two are directly connected to each other) or a ledge (not shown) between the first cylindrical connector portion 30 and the intermediary portion 50 (in embodiments where the connector element 10 also comprises an intermediary portion 50). In yet other embodiments, and as shown in
The length of the inner surface 33 of the first cylindrical portion 30 being confined to the height of a connector knob 150, allows for easier detachment of a connector element 10 from a first type construction element 100 in situations, where the connector element has been connected over a connector knob as shown in the right side of
In not shown embodiments—where the connector element 10 does not comprise an intermediary portion 50—the length L2 of the outer surface 34 of the first cylindrical portion 30 may exceed the height of a connector knob 150. In such embodiments the length L2 of the outer surface 34 of the first cylindrical portion 30 may be 1.5-3×the height of a connector knob. In this case elongate indentations (also not shown) may be provided in the outer surface 34 of the first cylindrical portion 30, the elongate indentations extending perpendicular to the elongate axis A1 of the connector element 10. This would allow a user to grab the connector element 10 by inserting her/his nails in the elongate indentations and pulling the connector element 10, when a connector element 10 is to be detached from a construction elements of the first type 100, especially in situations, where the connector element has been attached between four connector knobs 150 as illustrated in the left side of
In other, not shown, embodiments—where the connector element 10 also does not comprise an intermediary portion 50—a length L2 of the outer surface 34 of the first cylindrical portion 30 may be equal to height of a connector knob 150. In such cases elongate indentations as described immediately above may be provided (not shown, either) in the second cylindrical connector element 40 for example adjacent to the first end 41 of the body 40′ thereof. One, two, three or four such elongate indentations may be provided along the circumference of the outer surface of the second cylindrical connector element 40. A disadvantage of this embodiment is that a thickness body 40′ of second cylindrical connector element 40 must be kept low in order to provided the above described resilience, and providing the indentions would risk providing weakening zones in the second cylindrical connector element 40.
In a preferred embodiment, and as shown in
In a preferred embodiment, and as shown in
In a particularly preferred embodiment, and as shown in
In preferred embodiments, the connector element 10 is formed in plastic. In further embodiments, the connector element 10 is formed in an injection moulding process.
It is to be noted that the figures and the above description have shown the example embodiments in a simple and schematic manner. Many of the specific mechanical details have not been shown since the person skilled in the art should be familiar with these details and they would just unnecessarily complicate this description. For example, the specific materials used and the specific injection moulding procedure have not been described in detail since it is maintained that the person skilled in the art would be able to find suitable materials and suitable processes to manufacture the connector element according to the current invention.
1 construction system
10 connector element
20 elongate body of connector element
21 first end of connector element/of elongate body of connector element
22 second end of connector element/of elongate body of connector element
30 first cylindrical connector portion of connector element
33 inner surface of first cylindrical connector portion of connector element
34 outer surface of first cylindrical connector portion of connector element
35 indentation formed in the outer surface of the first cylindrical connector portion of the connector element
40 second cylindrical connector portion of the connector element
40′ elongate body of the second cylindrical connector portion of the connector element
41 first end of the second cylindrical connector portion of the connector element
42 second end of the second cylindrical connector portion of the connector element
43 outer surface of the of the second cylindrical connector portion of the connector element
44 circumferential bead formed at the extreme of the second end of the connector element/of elongate body of connector element
45 slit arranged in the longitudinal direction of the connector element
50 intermediary portion of the connector element formed between the first cylindrical connector portion and the second cylindrical connector portion
50′ body of the intermediary portion
51 first end 51 of the intermediary portion
second end 52 of the intermediary portion and an elongate body 50′
54 outer surface of the intermediary portion of the connector element
55 second indentation formed in outer surface of the intermediary portion of the connector element
90 support arms
100 first type of construction elements
101 construction element of the first type of construction elements
102 construction element first type of construction elements (brick)
103 construction element first type of construction elements (plate)
110 cylindrical body (of construction element shown in
111 first end of cylindrical body of construction element
112 second end of cylindrical body of construction element
130 cylindrical connector portion (of construction element shown in
130′ cylindrical wall 130′ of cylindrical connector portion (of construction element shown in
131 first end of cylindrical connector portion/cylindrical wall
132 second end of cylindrical connector portion/cylindrical wall
133 inner surface of the cylindrical wall of the cylindrical connector portion
134 outer surface of the cylindrical wall of the cylindrical connector portion
150 connector knob
151 first end of a connector knob
152 second end of a connector knob
160 knob receiving opening
200 second type of construction element
201 (prior art) construction element of the second type of construction elements
202 (prior art) construction element of the second type of construction elements/beam
203 (prior art) construction element of the second type of construction elements/frame
204 construction element of the second type of construction elements/electrical motor
205 (prior art) construction element/axle
240 (prior art) cylindrical connector portion
250 connector openings
270 resilient connector pegs
290 power outtake part of construction element of the second type of construction elements/electrical motor
291 axle receiving opening of power outtake part
1000 first type construction system
2000 second type construction system
A1 longitudinal axis of connector element/of elongate body of connector element
D length of the connector opening of the second type of construction elements
D1 diameter of the inner surface of the first cylindrical connector portion
D2 diameter of the outer surface of the first cylindrical connector portion
D3 diameter of the elongate body 40 of the second cylindrical connector portion of the connector element
D4 diameter of the inner surface of the second cylindrical connector portion of the connector element
D5 diameter of the outer surface of the intermediary portion/outer diameter of the intermediary portion
L1 length of the inner surface of the first cylindrical connector portion
L2 length of the outer surface of the first cylindrical connector portion
L3 length of the second cylindrical connector portion of the connector element
L5 length of the intermediary portion
LT overall length/total length of the connector element