Road Barrier And A Method For Manufacturing Thereof
A road barrier comprising a support (101) to which a transverse beam (102) is connected via a spacer (110) such that upon impact the transverse beam (102) moves towards the support (101). The spacer (110) is movable upon impact and coupled, via coupling means (130, 150, 160, 170), with a rotatable energy absorber (140) mounted below the transverse beam (102) and comprising at least one rotor (142, 143) for absorbing in rotational movement at least part of the kinetic energy imparted to the transverse beam (102).
The present invention relates to road barriers and methods for manufacturing thereof.
BACKGROUND ARTRoad barriers installed along the edges of roads protect vehicles from accidentally exiting the road. The barriers are usually made of transverse beams installed on posts.
There are known road barriers in which the beam is distanced from the post and mounted to the post via an energy absorbing spacer. A barrier of this type is known from a PCT application WOO51 18958A1, which discloses a road safety barrier wherein the beam is mounted to the post via a spring. Upon impact, the beam moves towards the post and the energy of impact is at least partially absorbed by the spring. The amount of absorbed energy is therefore dependent on the parameters of the spring.
A US patent application US20070007780 describes a kinetic energy absorber for connecting to a bumper of a car and comprising a rotor connected with the bumper via a toothed bar and a multiplying gear. Upon impact directed to the bumper, the translational motion of the bumper induces translational motion of the toothed bar, which induces rotation of the rotor. The displacement vector of the bumper is parallel to the displacement vector of the toothed bar driving the rotor.
DISCLOSURE OF THE INVENTIONThe aim of the invention is to provide a road barrier with alternative energy absorbing means.
The object of the invention is a road barrier comprising a support to which a transverse beam is connected via a spacer such that upon impact the transverse beam moves towards the support. The spacer is movable upon impact and coupled, via coupling means, with a rotatable energy absorber mounted below the transverse beam and comprising at least one rotor for absorbing in rotational movement at least part of the kinetic energy imparted to the transverse beam.
The rotatable energy absorber can be fixed to the support.
The coupling means may comprise a rack having a first toothed bar coupled via a toothed wheel with a toothed bar of the spacer and a second toothed bar coupled via a toothed wheel transmission with the at least one rotor.
The spacer can be configured to move in a substantially horizontal direction and the rack is configured to move in a substantially vertical direction.
The rack may comprise a compressible element.
The coupling means may comprise a strand connected at a first end to the spacer and at a second end to the rotatable energy absorber.
The strand can be wound at the second end around a driving shaft of the rotatable energy absorber.
The strand can be connected at the second end to a toothed bar coupled with a toothed wheel transmission of the rotatable energy absorber.
The coupling means and the rotatable energy absorber can be housed within the support.
The rotatable energy absorber can be fixed to a structure offset horizontally from the support.
The coupling means may comprise vertical coupling means in a form of a rotatable shaft having a first end coupled with the spacer and configured to be induced into rotation upon movement of the spacer, and a second end located below the first end and coupled with a first end of horizontal coupling means having its second end coupled with the at least one rotor.
The spacer may comprise a compressible element.
The object of the invention is also a method for manufacturing of a road barrier comprising a support to which a transverse beam is connected via a spacer such that upon impact the transverse beam moves towards the support, wherein the spacer is movable upon impact and coupled, via coupling means, with a rotatable energy absorber fixed to the support below the transverse beam and comprising a toothed wheel transmission driving at least one rotor for absorbing in rotational movement at least part of the kinetic energy imparted to the transverse beam. The method comprises the steps of forming and balancing of the at least one rotor, forming and hardening of the toothed wheel transmission of the rotatable energy absorber and forming of the support, the coupling means and the transverse beam and assembling the elements to make the road barrier.
The invention is shown by means of an exemplary embodiments on a drawing, in which:
The transmission 120 can be a toothed wheel mounted on a shaft attached to the housing of the support 101. The spacer 110 and the rack 130 can be coupled with the transmission 120 via toothed bars 111, 131. The rack 130 can have a toothed bar 132 coupled with a toothed wheel 141 of the rotatable energy absorber 140. However, other types of transmission can be used, such as pneumatic, hydraulic, magnetic, etc.
The rotatable energy absorber 140 comprises at least one rotor 142, 143, preferably in form of one or more flywheels, mounted on shafts fixed to the support 101. The rotor is coupled with the rack 130 via a transmission which may comprise one or more toothed wheels 144, 145, 146. The movement of the rack 130 induces rotation of the toothed wheels 141, 144, 145, 146 and therefore the rotation of the rotor 142, 143.
The elements are preferably arranged on two main vertical planes, for example elements 110, 111, 20, 144, 145, 146 are arranged on one main plane and elements 130, 131, 132, 141, 142, 143 are arranged on another main plane. This provides compact size of the energy absorbing mechanism according to the invention and allows to house it within the support 101.
As shown in
The road barrier may comprise supports of the first and/or second embodiment, and in addition it may be also supported by other, typical supports. The supports of the first or second embodiment may be installed at places with high impact risk, such as sharp turns, while typical supports may be installed at straight segments of the road.
Claims
1. A road barrier comprising a support (101) to which a transverse beam (102) is connected via a spacer (110) such that upon impact the transverse beam (102) moves towards the support (101), characterized in that the spacer (110) is movable upon impact and coupled, via a coupling (130, 150, 160, 170), with a rotatable energy absorber (140) mounted below the transverse beam (102) and comprising at least one rotor (142, 143) for absorbing in rotational movement at least part of the kinetic energy imparted to the transverse beam (102).
2. The road barrier according to claim 1, wherein the rotatable energy absorber (140) is fixed to the support (101).
3. The road barrier according to claim 1, wherein the coupling comprises a rack (130) having a first toothed bar (131) coupled via a toothed wheel (120) with a toothed bar (111) of the spacer (110) and a second toothed bar (132) coupled via a toothed wheel transmission (141, 144, 145, 146) with the at least one rotor (142, 143).
4. The road barrier according to claim 3, wherein the spacer (110) is configured to move in a substantially horizontal direction and the rack (130) is configured to move in a substantially vertical direction.
5. The road barrier according to claim 3, wherein the rack (130) comprises a compressible element (133).
6. The road barrier according to claim 1, wherein the coupling comprises a strand (150) connected at a first end (151) to the spacer (110) and at a second end (152) to the rotatable energy absorber (140).
7. The road barrier according to claim 6, wherein the strand (150) is wound at the second end (152) around a driving shaft (147) of the rotatable energy absorber (140).
8. The road barrier according to claim 6, wherein the strand (150) is connected at the second end (152) to a toothed bar (154) coupled with a toothed wheel transmission (141) of the rotatable energy absorber (140).
9. The road barrier according to claim 1, wherein the coupling (130, 150) and the rotatable energy absorber (140) are housed within the support (101).
10. The road barrier according to claim 1, wherein the rotatable energy absorber (140) is fixed to a structure (103) offset horizontally from the support (101).
11. The road barrier according to claim 10, wherein the coupling comprises a vertical coupling (160) in a form of a rotatable shaft (160) having a first end (161) coupled with the spacer (110) and configured to be induced into rotation upon movement of the spacer (110), and a second end (162) located below the first end (161) and coupled with a first end (171) of a horizontal coupling (170) having its second end (172) coupled with the at least one rotor (142).
12. The road barrier according to claim 1, wherein the spacer (110) comprises a compressible element (112).
13. A method for manufacturing of a road barrier comprising a support (101) to which a transverse beam (102) is connected via a spacer (110) such that upon impact the transverse beam (102) moves towards the support (101), wherein the spacer (110) is movable upon impact and coupled, via a coupling (130, 150, 160, 170), with a rotatable energy absorber (140) fixed to the support (101) below the transverse beam (102) and comprising a toothed wheel transmission (141, 144, 145, 146) driving at least one rotor (142, 143) for absorbing in rotational 30 movement at least part of the kinetic energy imparted to the transverse beam (102), the method comprising:
- forming and balancing of the at least one rotor (142, 143),
- forming and hardening of the toothed wheel transmission (141, 144, 145, 146) of the rotatable energy absorber (140) and
- forming of the support (101), the coupling (130, 150, 160, 170) and the transverse beam (102) and
- assembling the elements to make the road barrier.
Type: Application
Filed: Mar 6, 2011
Publication Date: Oct 31, 2013
Applicant: EPAR SP. Z O.O. (Karpacz)
Inventors: Przemyslaw Lagiewka (Lodz), Jaroslaw Roszyk (Lodz)
Application Number: 13/978,515
International Classification: E01F 15/04 (20060101);