PNEUMATIC MAILING TUBE WITH INSERT
20190276248 ยท 2019-09-12
Inventors
Cpc classification
B65G51/06
PERFORMING OPERATIONS; TRANSPORTING
B65G51/36
PERFORMING OPERATIONS; TRANSPORTING
International classification
B65G51/36
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A pneumatic post sleeve (10) has an insert (21) for receiving a test rod (20). In order that the test rod (20) always arrives in the same orientation and positionregardless of any rotation of the pneumatic post sleeve (10)the insert (21) is rotatable in the pneumatic post sleeve (10) about the longitudinal axis (17) of the sleeve tube (11), wherein the centre of gravity of the insert (21) together with the test rod (20) is located outside the longitudinal axis (17). As a result of its weight, the test rod (20) always takes up the lowest position. In order to improve precision, it is expedient for the insert (21) to be provided with a magnet (30) or with a magnetizable material close to the sleeve tube (11). The pneumatic post station (41) then has a horizontal reception tube (42), on the outside of which a permanent magnet or electromagnet (31) is provided, which is located opposite the magnet (30) in the case of a received pneumatic post sleeve (10). The two magnets try to get as close together as possible and as a result position the insert (21) even more precisely than would be possible by gravity alone. It is also possible for a plurality of magnet/magnetizable material and permanent magnet/electromagnet pairs to be provided.
Claims
1. A pneumatic delivery capsule comprising: a tubular side wall; respective capsule heads fixed to ends of the tubular side wall; and an insert for receiving an object to be transported, the insert being rotatable in the pneumatic delivery tube about a longitudinal axis of the tubular side wall and a center of gravity of the insert together with the at least one object to be transported being radially outward of the longitudinal axis.
2. The pneumatic delivery capsule according to claim 1, wherein the insert is provided with at least one magnet or with at least one magnetizable mass near the tubular side wall.
3. The pneumatic delivery capsule according to claim 1, wherein the insert forms a channel for receiving the object to be transported, the capsule further comprising: a spring-loaded pressing member projecting into the channel and positioned to press the object radially outward.
4. The pneumatic delivery capsule according to claim 1, further comprising: a permanent magnet on the insert near the object to be transported.
5. A pneumatic delivery station with a pneumatic tube for receiving a pneumatic delivery capsule according to claim 2, wherein the pneumatic tube is horizontal and a permanent magnet or electromagnet is provided externally of the pneumatic tube opposite the magnet or the magnetizable material when the pneumatic delivery capsule is received, or, if a plurality of magnets or a plurality of magnetizable materials are provided, a permanent magnet or electromagnet is then provided on the outside of the pneumatic tube opposite each one.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] The present invention will be explained in further detail on the basis of the enclosed drawings, in which:
[0017]
[0018]
[0019]
[0020]
[0021]
MANNER(S) OF CARRYING OUT THE INVENTION
[0022] During the production of steel pipes for the oil industry, the quality must be constantly monitored. For this purpose, standard (cuboid) test rods for testing tensile strength and the like are cut out of the steel tubes during production and provided with a barcode label for identification.
[0023] These test rods, with a tare weight of up to 6 kg, are then manually loaded into a pneumatic delivery capsule and sent by pneumatic tube to the analysis laboratory. Pneumatic delivery capsules according to the invention are employed to ensure that the material samples can be removed from the pneumatic delivery capsule in an automated process in the analysis laboratory and stored in a storage system for test rods.
[0024] In order to enable removal by a robotic gripping arm, high demands are placed on the positioning, orientation, and location of the test rods: The test rods must always have the same alignment (for example be horizontally aligned), with a maximum angle error of 5, upon arrival at the station.
[0025] In this embodiment, the pneumatic delivery capsule 10 (see
[0026] It is important that an insert 21 be inserted in the pneumatic delivery capsule 10. This insert 21 has two ball bearings 22 and 23. The outer races of the ball bearings 22 and 23 are anchored to the tubular side wall 11. The insert 21 can thus rotate freely relative to the tubular side wall 11.
[0027] The insert 21 has a lower support 24 (see
[0028] A support 27 is fixed in the insert 21 opposite the lower support 24. A pressing member 29 is attached to this support 27 by a leaf spring 28 (see
[0029] Furthermore, a permanent magnet 32 is provided on the support 24 that also holds down the test rod 20. As a result, the test rod 20 is held stably and securely in the pneumatic delivery capsule during transport in the pipeline, and the force that the robotic gripper arm must exert for removal does not exceed 70 N.
[0030] Finally, a magnet 30 is attached to the support 27 that is located near the tubular side wall 11. This magnet 30 cooperates with a permanent magnet 31 (see