Pursuant to 35 U.S.C. § 119 and the Paris Convention Treaty, this application claims foreign priority to Chinese Patent Application No. 202111383600.7 filed Nov. 22, 2021, the contents of which, including any intervening amendments thereto, are incorporated herein by reference. Inquiries from the public to applicants or assignees concerning this document or the related applications should be directed to: Matthias Scholl P.C., Attn.: Dr. Matthias Scholl Esq., 245 First Street, 18th Floor, Cambridge, Mass. 02142.
The disclosure relates to a road paver.
Conventional concrete mixer trucks stir and mix water and cement. In a road pavement process, a concrete mixer truck moves synchronously with concrete paving equipment to provide mixed concrete and complete the road pavement work. The synchronous movement of the concrete mixer truck and the concrete paving equipment occupies much road space, and the separate production, transportation, and pavement of concrete is inefficient and time-consuming, leading to high construction costs.
The disclosure provides a road paver, comprising:
The road paver is used to spread the polyurethane concrete across the road and spread the crushed stone over the polyurethane concrete, thereby improving pavement performance. The feeding device is used to transport the polyurethane concrete to the stirring device. The stirring device is used to homogeneously mix the polyurethane concrete and transports it to the concrete paving device. The concrete paving device is used to spread the polyurethane concrete cross a road. The stone paving device is connected to the concrete paving device and used to spread the crushed stone over the polyurethane concrete road, thereby improving the pavement performance.
In a class of this embodiment, the stirring device comprises:
a housing, connected to the feeding device and used to receive the polyurethane concrete from the feeding device;
a rotating member, disposed in the housing;
at least two helical blades, used to stir and transport the polyurethane concrete;
a stirring member, disposed between the at least two helical blades to stir the polyurethane concrete;
the at least two helical blades and the stirring member are connected to the rotating member.
The stirring device is used to stir and transport the polyurethane concrete while preventing the polyurethane concrete from setting. The feeding device transports the polyurethane concrete to the stirring device; specifically, the polyurethane concrete is poured into the housing and homogeneously mixed. The rotating member is rotatable in the housing; the at least two helical blades are spaced apart on the rotating member; and the stirring member is disposed between the at least two helical blades. As the rotating member rotates, the at least two helical blades and the stirring member rotate as well and thoroughly mix the polyurethane concrete in the housing, thus preventing the polyurethane concrete from setting. The at least two helical blades comprises a helical structure used to direct the polyurethane concrete toward the concrete paving device, thus increasing the performance of the road paver.
In a class of this embodiment, the feeding device further comprises:
a power system on one side of the head of the road paver to power the feeding device;
a transmission system disposed on one side of the stirring device, and being driven by the power system to convey aggregates of the polyurethane concrete;
a collecting system, being connected to the stirring device and the transmission system and guiding the aggregates from the transmission system to the stirring device.
The feeding device is used to control the amount of the aggregate transported to the stirring device, thereby maintaining a certain polyurethane-to-aggregate ratio. The transmission device comprises a conveyor belt. When the power system is energized, the conveyor belt carries the aggregate to the stirring device. The “aggregate” as used herein refers to an irregular shaped material that is used with a polyurethane material to form the polyurethane concrete. The collecting system is used to transport a certain amount of the aggregate to the stirring device at a specific speed. The collecting system comprises two pipes through which a certain amount of polyurethane is added to the stirring device, so that the aggregate and polyurethane are mixed in a proper ratio.
In a class of this embodiment, the concrete paving device comprises:
a feed hopper, disposed below the stirring device to receive the polyurethane concrete from the stirring device;
a concrete feed bin connected to the feed hopper to hold the polyurethane concrete; and
an unloading hopper, disposed below the concrete feed bin; the polyurethane concrete is laid down on the road via the unloading hopper.
The concrete paving device is used to spread the polyurethane concrete evenly across the road. Specifically, the polyurethane concrete is homogeneously mixed in the stirring device and poured into the concrete feed bin via the feed hopper. The polyurethane concrete is spread to fill width of the road and laid down on the road through the unloading hopper. The unloading hopper has a uniform cross section, so that a thickness of the polyurethane concrete is uniform.
In a class of this embodiment, the concrete paving device further comprises:
a screed, disposed on a rear end of the concrete paving device to flatten the polyurethane concrete; and
a vibrator, disposed in front of the screed to compact the polyurethane concrete.
The concrete paving device is further used to flatten and compact the polyurethane concrete, which decreases air voids in the polyurethane concrete, thereby forming a stable subsurface.
In a class of this embodiment, the concrete paving device further comprises a screw conveyor disposed in the concrete feed bin to spread the polyurethane concrete across the road.
The polyurethane concrete is pushed toward both side of the screw conveyor, passed through the unloading hopper, and spread across the road, so that the air voids in the polyurethane concrete is decreased. The unloading hopper has sides that slope at an angle. The unloading hopper comprises a first baffle and a second baffle; the first baffle is close to the head and has a greater length than the second baffle; the screw conveyor comprises a bottom end disposed on the same level as the second baffle. The polyurethane concrete is pushed toward the both sides of the screw conveyor, passed through the first baffle, and laid down on the road to form a base layer; the polyurethane concrete is then passed through the second baffle and spread over the base layer. The polyurethane concrete is laid in two layers, which makes the thickness of the polyurethane concrete uniform and decreases the air voids in the polyurethane concrete.
In a class of this embodiment, the concrete paving device further comprises a road grader used to maintain a stable forward movement of the stone paving device.
The concrete paving device is further used to balance the paving device and flatten a road surface.
In a class of this embodiment, the stone paving device further comprises:
a running gear, disposed at a bottom portion of the stone paving device to carry the stone paving device to move; and
a speed sensor, disposed on the running gear to measure and adjust the operating speed of the running gear.
The operating speed of the running gear is adjusted to control the amount of the crushed stone required per square foot. The concrete paving device is detachably connected to the stone paving device; and the intensity of the crushed stone pavement is determined by the requirements of the road surface.
In a class of this embodiment, the stone paving device further comprises:
a stone conveyor, disposed in the stone feed bin and used to drive the small rocks to move;
a paving roller, disposed below the stone conveyor to spread the crushed stone into the polyurethane concrete; and
a driving device, disposed on a frame of the stone paving device and connected to the paving roller to drive the rotation of the paving roller.
Both ends of the paving roller is connected to the concrete paving device to create an enclosed space; when the driving device is energized, the crushed stone is spread to fill width of the road by the stone conveyor, passed through the enclosed space, and laid down on the road through the paving roller, so that a thickness of the crushed stone is uniform.
In a class of this embodiment, the feeding device further comprises:
a first measuring member, disposed between the power system and the transmission system to hold the aggregates; and the aggregates are transported into the stirring device through the transmission system;
a second measuring member, disposed between the first measuring member and the power system and comprising at least two measuring boxes used to hold polyurethane; and a certain amount of polyurethane is poured into the stirring device under control of the at least two measuring boxes.
In a construction site, the first measuring member and the second measuring member are used to determine a ratio of components in the polyurethane concrete. The polyurethane concrete is sieved to a dense gradation level. A cement sand ratio of the polyurethane concrete is 15%-17%. The polyurethane concrete has a low porosity and an impermeability level of P12. The polyurethane concrete is suitable for use in the regions where road salt is used and coastal areas have a high content of chloride ions, because it has a chloride ion permeability rate of less than 100 coulombs (nearly 0) and is a waterproof and corrosion-resistant material. The polyurethane concrete has a maximum tensile strength of more than 5000 μc at −20° C., indicating high flexibility and low-temperature crack resistance. The polyurethane concrete is a thermosetting material that does not melt under heat. In a rutting resistance test, the polyurethane concrete exhibits a dynamic stability of 23000 times/mm at 80° C., indicating high rutting resistance at high temperatures. At 70° C., the mechanical properties of polyurethane concrete remain unchanged. The polyurethane concrete has a linear expansion coefficient that is 1.1 to 1.3 times that of steel, and the shear force caused by temperature is moderate.
In the drawings, the following reference numbers are used: 100. Feeding device; 110. Stirring device; 111. Housing; 112. Rotating member; 113. Helical blade; 114. Stirring member; 120. Power system; 13. Transmission system; 140. Collecting system; 150. First measuring member; 160. Second measuring member; 161. Measuring box; 170. Caterpillar-type traveling mechanism; 20. Concrete paving device; 210. Feed hopper; 220. Concrete feed bin; 230. Unloading hopper; 240. Screed; 250. Screw conveyor; 260—Road grader; 270. Vibrator; 300. Stone paving device; 310; Stone feed bin; 320; Running gear; 330. Speed sensor; 340. Stone paver; 350. Paving roller; 360. Driving device; 370. Frame; 400. Road paver; 410. Head of road paver; and 420. Body.
To further illustrate the disclosure, embodiments detailing a road paver are described below. It should be noted that the following embodiments are intended to describe and not to limit the disclosure.
As shown in
The road paver 400 comprises a body 420 comprising a frame 370; the feeding device 100 is disposed on the frame and moves at the same speed as the body 420.
As shown in
As shown in
Based on Example 1, the concrete paving device 200 comprises a feed hopper 210, a concrete feed bin 220, an unloading hopper 230. As shown in
Based on Example 4, as shown in
Based on example 4, as shown in
Based on Example 4, as shown in
Based on Example 1, as shown in
Based on Example 1, the stone paving device 300 further comprises a stone conveyor 340, a paving roller 350, and a driving device 360. As shown in
Based on Example 1, as shown in
It will be obvious to those skilled in the art that changes and modifications may be made, and therefore, the aim in the appended claims is to cover all such changes and modifications.
Number | Date | Country | Kind |
---|---|---|---|
202111383600.7 | Nov 2021 | CN | national |