The present invention relates to a ladder, particularly to a telescoping ladder.
Ladders are a tool frequently used for climbing operations in our life, such as the replacement of light bulbs, roof maintenance, interior decoration and so on. According to the function, ladd1ers can be divided into telescoping ladders and non-telescoping ladders. The telescoping ladder has adjustable height making it very convenient to use, and it is now the first choice for consumers. The existing telescoping ladder comprises inner legs and outer legs as two parts; the outer leg has a non-closed groove structure and half wraps the inner leg to achieve the ladder telescoping. In actual use, when the ladder telescopes, the inner legs and the outer legs separate apart so the strength of the outer leg is very weak. What is more, the bottom of the ladder is not strong enough and that is a big security risk when used.
The present invention provides a telescoping ladder with improved strength, which overcomes the disadvantages of the existing known technology. The technical proposal of the present invention is as follows.
A telescoping ladder, comprises two telescoping ladder racks, the top of the two telescoping ladder racks are pivoted together in a scissor structure that can be opened and closed. The telescoping ladder rack comprises an inner ladder rack and an outer ladder rack connected together in stretching way. The inner ladder rack comprises two inner legs and an inner cross beam connecting the two inner legs. The outer ladder rack comprises two outer legs and an outer cross beam connecting the two outer legs. The inner leg is slidably connected to the outer leg, wherein the cross section of the inner leg and the outer leg has a closed hollow tube shape. Two outer legs are respectively disposed at the outer side of the two inner legs and the inner cross beam of the inner ladder rack is disposed between the two outer legs of the outer ladder rack.
In another preferred embodiment, the inner cross beam is connected to the inner side surface of the inner leg and the outer cross beam is connected to a front end face of the outer leg faced to the user. The inner ladder rack is embedded within the outer ladder rack. The inner leg is a straight long tube and the outer leg is a straight long tube.
In another preferred embodiment, the outer side surface of the inner leg and the inner side surface of the outer leg form sliding surfaces faced to each other. The sliding surface of the inner leg is disposed with a hook lug and the sliding surface of the outer leg is disposed with a hook lug. The hook lug of the sliding surface of the inner leg is locked to the hook lug of the sliding surface of the outer leg.
In another preferred embodiment, the outer side surface of the inner leg and the inner side surface of the outer leg form sliding surfaces faced to each other. The sliding surface of the inner leg is disposed with a sliding groove and the sliding surface of the outer leg is disposed with a sliding rail. The sliding rail is slidably inserted within the sliding groove.
In another preferred embodiment, the outer side surface of the inner leg and the inner side surface of the outer leg form sliding surfaces faced to each other. The sliding surface of the outer leg is disposed with a sliding groove and the sliding surface of the inner leg is disposed with a sliding rail. The sliding rail is slidably inserted to the sliding groove.
In another preferred embodiment, the sliding groove is a dovetail groove.
In another preferred embodiment, the front end face of the inner leg is aligned with the front end face of the outer leg and the rear end face of the inner leg is aligned with the rear end face of the outer leg.
In another preferred embodiment, the outer side surface of the outer leg is curved and protrudes outwardly.
In another preferred embodiment, the cross section of the inner leg is a right trapezoid or square and the cross section of the outer leg is a right trapezoid or square.
In another preferred embodiment, the outer ladder rack further comprises two support elements respectively connected to the bottom portion of the two outer legs and forming a support structure.
Compared to the existing known technology, the technical solution of the present invention has the following advantages:
1. The cross sections of both the inner leg and the outer leg are a closed hollow tube structures so the strength of the legs is good. They are not easily deformed so they can bear more. Based on the strength requirement, the ladder can use less material. The outer legs are disposed at the outer side of the inner legs, the inner cross beam of the inner ladder rack is disposed between the two outer legs of the outer ladder rack, the inner cross beam is aligned with the outer leg, the inner ladder rack is embedded within the outer ladder rack, the telescoping ladder rack is thin, the ladder has a thin profile when it is folded.
2. The inner legs and the outer legs are straight long tubes achieving a long and stable structure.
3. Two support elements are respectively connected to the bottom portion of the two outer legs and form a support structure. They have a large span and stand stably on the ground so that the stability of the ladder is improved.
The present invention will be further described with the drawings and embodiments.
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The two outer legs 22 comprise a first outer leg 22 (e.g., right instance of element 22 in
The inner cross beams 14 are positioned to connect a first surface 121 of the closed hollow tube structure 120 of the first inner leg 12 and a first surface 121 of the closed hollow tube structure 120 of the second inner leg 12 along inner sides thereof that face one another.
A first sliding assembly 100 is disposed between a first sliding surface 222 of the closed hollow tube structure 220 of the first outer leg 22 and a second sliding surface 122 of the closed hollow tube structure 120 of the first inner leg 12.
The first surface 121 of the closed hollow tube structure 120 of the first inner leg 12 is opposite to the second sliding surface 122.
A second sliding assembly 200 is disposed between a third sliding surface 222 of the closed hollow tube structure 220 of the second outer leg 22 and a fourth sliding surface 122 of the closed hollow tube structure 120 of the second inner leg 12.
The first surface 121 of the closed hollow tube structure 120 of the second inner leg 12 is opposite to the fourth sliding surface 122.
A center line of first outer leg 22 and the second outer leg 22 is on the inner cross beams 14.
The closed hollow tube structure 220 of the first outer leg 22 is defined in part by an inner side of the first outer leg 22 that faces the first inner leg 12, the first exterior surface of the first outer leg 22, and a second exterior surface of the first outer leg 22 diametrically opposite the inner side of the first outer leg 22.
The closed hollow tube structure 220 of the second outer leg 22 is defined in part by an inner side of the second outer leg 22 that faces the second inner leg 12, the first exterior surface of the second outer leg 22, and a second exterior surface of the second outer leg 22 diametrically opposite the inner side of the second outer leg 22.
Although the present invention has been described with reference to the preferred embodiments thereof for carrying out the invention, it will be apparent to those skilled in the art that a variety of modifications and changes may be made without departing from the scope of the invention which is intended to be defined by the appended claims.
Number | Date | Country | Kind |
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201620193825.4 | Mar 2016 | CN | national |
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