Bottle outlet air conveying device with optimized air duct
By optimizing the duct design and simplifying the structure of the bottle delivery device, the problems of uneven airflow and equipment complexity were solved, achieving uniform and stable airflow delivery, improving the operating efficiency and reliability of the equipment, and reducing maintenance costs and energy consumption.
Patent Information
- Application Number
- CN202520026203.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-06
- Publication Date
- 2026-02-06
- Estimated Expiration
- 2035-01-06
AI Technical Summary
Traditional bottle-dispensing pneumatic conveying devices suffer from problems such as uneven airflow distribution, complex structure, large space occupation, difficult installation and disassembly, poor stability, and high maintenance costs.
An optimized air duct design is adopted, with air inlets set on both sides of the blow molding air duct and airflow guided by independent first and second air inlet pipes. Combined with a high-pressure blower and a simplified blower connector and support structure, the equipment structure is simplified, ensuring uniform airflow distribution and stable delivery.
It achieves uniform airflow distribution, improves the stability of bottle conveying and equipment operating efficiency, reduces maintenance costs and energy consumption, simplifies equipment installation and maintenance, and enhances equipment stability and reliability.
Smart Images

Figure CN223878931U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to a kind of bottle-out air supply devices of optimizing air duct. BACKGROUND
[0002] In modern bottle production line, bottle-out air supply device is the important equipment to ensure the smooth delivery and cooling of bottle. The traditional bottle-out air supply device is generally composed of multiple air blowers, complex bottle blowing air duct and aluminum square assembled frame. Although these devices can complete the basic bottle delivery and cooling task, due to the complex structure, there are a series of technical defects, which affect its performance and application effect.
[0003] Firstly, the existing bottle-out air supply device often has the problem of uneven airflow distribution. Since the traditional design of bottle blowing air duct is usually connected by multiple air blowers and air ducts, airflow often appears uneven and unstable when passing through multiple branch pipes and air ducts. This not only reduces the bottle delivery and cooling effect, but also may cause inaccurate bottle blowing, even causing bottle collision or falling during production, affecting the efficiency of production line and bottle quality.
[0004] Secondly, the traditional bottle-out air supply device has a complex structure. Due to the need for multiple air blowers and complex air duct connection, the overall device has a large volume, often occupying a lot of space. In addition, the installation and disassembly of air duct are troublesome, which requires a long time and high labor cost, making it more difficult to maintain and replace the equipment. The complexity of the equipment also leads to frequent failures, especially during long-term use, problems such as loosening, clogging and unstable airflow will affect the normal operation of the equipment, increasing the downtime and maintenance cost of the production line.
[0005] Furthermore, due to the unreasonable design and structure, the existing bottle-out air supply device may have poor equipment stability. The connection between multiple air blowers and air duct systems is prone to loosening or leakage, resulting in unstable airflow and affecting the overall performance of the equipment. In addition, the complex structure also makes the equipment prone to failure after long-term operation, reducing the operational reliability of the production line. INVENTION CONTENTS
[0006] The utility model aims to provide a kind of bottle-out air supply devices of optimizing air duct, by optimizing air duct structure, simplifying device design and improving airflow uniformity, solve the problem of traditional bottle-out air supply device in airflow stability, structural complexity, space occupation, installation and disassembly efficiency, etc., to improve the operational efficiency, stability of the equipment, and reduce maintenance cost and energy consumption.
[0007] The technical solution adopted by the utility model to solve its technical problems is:
[0008] An optimized bottle-out air feeding device of a wind channel comprises:
[0009] A bottle-out support;
[0010] A bottle blowing wind channel for clamping a bottle body arranged on the bottle-out support;
[0011] Air inlets for guiding air flow to the bottle body arranged on both sides of the bottle blowing wind channel;
[0012] First and second air inlet pipes connected to both sides of the air inlets;
[0013] Fan connectors connected to the air inlets of the first and second air inlet pipes respectively;
[0014] A high-pressure air blower connected to the fan connectors;
[0015] The fan connectors are provided with air outlets;
[0016] The high-pressure air blower is provided with an air inlet.
[0017] Preferably, the first and second air inlet pipes are independent pipes arranged on both sides of the bottle-out support respectively.
[0018] Preferably, the bottle blowing wind channel is composed of two plate bodies clamping the bottle mouth of the bottle body, and two rod bodies clamping the bottle body are arranged below the bottle blowing wind channel.
[0019] Preferably, the air inlets are arranged at the inlet position of the bottle-out support.
[0020] Preferably, the high-pressure air blower is provided with a mounting seat below, and the bottom of the mounting seat is provided with a moving wheel.
[0021] The beneficial effects of the present application are as follows:
[0022] By arranging the air inlets on both sides of the bottle blowing wind channel and guiding the air flow through the first and second air inlet pipes, the present application can realize more uniform air flow distribution, thereby ensuring more stable and uniform bottle blowing; by adopting a single fan, a simple support and a wind channel design, the device structure is simplified, and the complexity of the device is significantly reduced. This not only reduces the occupied space, facilitates installation and disassembly, but also helps to reduce maintenance costs and improve the stability of the device.
[0023] Through optimized design, the required space is reduced, and the reasonable configuration of the high-pressure air blower and the fan connector is adopted, which effectively improves the stability of the device, reduces the maintenance frequency and failure rate; stable and sufficient air flow can be provided to ensure the efficiency of the bottle-out operation, thereby improving the overall efficiency of the production line. At the same time, through the simplified design, the energy efficiency of the device is improved, and the energy consumption is reduced. BRIEF DESCRIPTION OF DRAWINGS
[0024] Fig. 1 It is a perspective view of the bottle-out air feeding device with optimized air duct of the utility model;
[0025] Fig. 2 It is a front view of the bottle-out air feeding device with optimized air duct of the utility model. DETAILED DESCRIPTION
[0026] The principles and features of the utility model are described below in combination with the drawings, and the examples are only used to explain the utility model and are not used to limit the scope of the utility model. The utility model is described in more detail in the following paragraphs with reference to the drawings. The advantages and features of the utility model will be clearer according to the following description and claims. It should be noted that the drawings are all very simplified and use non-precise proportions, only to facilitate, clearly assist in the purpose of describing the embodiments of the utility model.
[0027] In the description of the utility model, it should be understood that the terms "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal" and the like indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the utility model and simplifying the description, and do not indicate or imply that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the utility model. In addition, the terms "first", "second" and the like are only for the purpose of description, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the technical features indicated. Therefore, the features limited by "first", "second" and the like can be explicitly or implicitly included one or more of the features. In the description of the utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "mounting", "connection", "connection" should be understood broadly, for example, it can be fixedly connected, or it can be detachably connected, or integrally connected; it can be directly connected, or indirectly connected through an intermediate medium, or it can be connected inside two elements.
[0028] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which the utility model belongs. The terms used in the specification of the utility model herein are only for the purpose of describing specific embodiments and are not intended to limit the utility model. The term "and / or" used herein includes any and all combinations of one or more related listed items. EMBODIMENTS
[0029] Referring to Figs. 1-2 As shown in the drawings, a bottle-out air feeding device with optimized air duct comprises:
[0030] The bottle support 1;
[0031] The bottle blowing air duct 2 provided on the bottle support 1 for clamping the bottle body;
[0032] The air inlet 3 provided on both sides of the bottle blowing air duct 2 for guiding the airflow to blow to the bottle body;
[0033] The first and second air inlet pipes 4 and 5 connected to both sides of the air inlet 3;
[0034] The fan connector 6 connected to the inlet of the first and second air inlet pipes 4 and 5 respectively;
[0035] The high-pressure air blower 7 connected to the fan connector 6;
[0036] The air outlet 8 provided on the fan connector 6;
[0037] The air inlet 9 provided on the high-pressure air blower 7.
[0038] The scheme sets the air inlet 3 on both sides of the bottle blowing air duct 2, and guides the airflow through the first and second air inlet pipes 5. This design allows the airflow to be evenly distributed to both sides of the bottle body, avoiding the uneven airflow that may occur in traditional designs, thereby ensuring the stable transportation and effective cooling of the bottle body; the design of guiding the airflow to blow to the bottle body allows the airflow to act precisely on the bottle body, enhancing the stability of the bottle body transportation and reducing the risk of bottle body collision and falling.
[0039] The structural design of the fan connector 6 and the high-pressure air blower 7 simplifies the airflow transportation path, reducing the resistance and energy loss of the airflow during transmission in the air duct. This helps to improve the operation stability of the equipment and reduce the failure rate of the equipment; the independent configuration of the fan and the air inlet 9 ensures the stability of the air intake of the fan, and the airflow supply will not be affected by external pressure or resistance changes, ensuring the continuous and stable operation of the fan.
[0040] Using the high-pressure air blower 7 can provide strong airflow power to ensure that the airflow blows to the bottle body at an appropriate speed and pressure. This design can reduce energy loss during airflow transmission and improve the overall energy efficiency of the system; through the reasonable arrangement and optimization of the first and second air inlet pipes 5, the airflow transportation is more efficient, reducing the energy loss caused by long or complex air ducts, thereby reducing the energy consumption of the entire device.
[0041] The traditional bottle-out air blowing device often needs multiple air ducts and complex connecting components, and this scheme reduces unnecessary air ducts and pipelines by optimizing the air duct layout, making the structure of the entire device more simple, facilitating installation, maintenance and replacement; by optimizing the integration of the fan connecting head 6 and the structure of the air blower, the connection between the components is more compact, reducing the volume and space occupied by the equipment, while improving the overall reliability and convenience of the equipment.
[0042] This scheme simplifies the air duct system and fan configuration, reducing the complexity of the equipment, making it easier to maintain and clean the device. Troubleshooting of the air duct and fan becomes more efficient, and the downtime and maintenance cost of the equipment can be greatly reduced; the fan connecting head 6 design makes the connection part of the fan and the air inlet pipeline more convenient to disassemble and replace, avoiding the maintenance difficulties caused by the difficulty of separating the air duct and the fan in traditional equipment.
[0043] The first air inlet pipeline 4 and the second air inlet pipeline 5 are independent pipelines and are arranged on both sides of the bottle-out support 1; the bottle blowing air duct 2 is composed of two plate bodies that clamp the bottle mouth, and two rod bodies 10 are arranged below the bottle blowing air duct 2 to clamp the bottle body.
[0044] By arranging the first air inlet pipeline 4 and the second air inlet pipeline 5 as independent pipelines and arranging them on both sides of the bottle-out support 1, it can ensure that the airflow blows uniformly to the bottle from both sides. This design reduces the airflow unevenness in traditional air ducts and can more effectively guide the airflow to the bottle mouth and both sides of the bottle body, helping to stabilize the position of the bottle; the bottle blowing air duct 2 clamps the bottle mouth by two plate bodies and clamps the bottle body by two rod bodies 10 arranged below, which effectively fixes the up-down position of the bottle. The bottle can remain stable under the action of the airflow and is not prone to swinging or displacement, ensuring that the bottle does not collide or fall during transportation and processing, improving the stability and safety of the production line.
[0045] By arranging the first and second air inlet pipelines 5 on both sides of the bottle-out support 1 and designing the bottle blowing air duct 2 closely with the support, the space occupied by the equipment can be effectively reduced. This makes the entire device more compact when designed, suitable for production lines with limited space, and also facilitates installation and integration; this structural design reduces complex pipeline connections, making the equipment more simple, reducing unnecessary components and pipelines, and improving the maintainability and reliability of the equipment. Due to the simplified structure, the manufacturing and maintenance costs of the equipment can also be reduced.
[0046] The air inlet 3 is arranged at the inlet position of the bottle-out support 1; the high-pressure air blower 7 is provided with a mounting seat, and the bottom of the mounting seat is provided with a movable wheel.
[0047] The mobile wheels installed at the bottom of the mounting seat of the high-pressure air blower 7 enable the entire high-pressure air blower 7 device to be conveniently moved and adjusted in position. This is very useful for equipment maintenance and layout optimization on the production line. The operator can easily adjust the position of the air blower according to production needs and space limitations, thereby improving work efficiency and saving space; when it is necessary to move or replace the high-pressure air blower 7, the mobile wheels provide great convenience, reducing the complexity and risk of manual handling.
[0048] The mobile wheel design of the high-pressure air blower 7 not only makes the device more easily relocated, but also allows the air blower to be easily pushed to the desired position when the device needs to be cleaned, inspected, or repaired, avoiding the hassle of disassembling or moving other equipment to a large extent. The presence of the mobile wheels improves the accessibility and operational convenience of the device; when the air blower is easily moved by the mobile wheels, it can avoid local wear or pressure concentration caused by fixed positions, extending the service life of the device.
[0049] The air inlet 3 arranged at the inlet position of the bottle discharge support 1 and the mobile wheels installed at the bottom of the mounting seat can reasonably optimize the device layout. This design not only saves space, but also facilitates adjustment of the distance between the high-pressure air blower 7 and the bottle discharge support 1, improving the overall flow of the production line; the mobile wheels make relocation and reconfiguration of the device much simpler, without the need for additional manpower and costs, which is very important for the expansion or adjustment of the production line, especially in high-flow or rapidly changing production environments.
[0050] The above embodiments of the present application are not a limitation on the scope of protection of the present application, and the implementation of the present application is not limited to this. According to the above content of the present application, according to the ordinary technical knowledge and common means in the art, other forms of modification, replacement, or change of the above structure of the present application can be made without departing from the above basic technical idea of the present application, and all should fall within the scope of protection of the present application.
Claims
1. A bottle-discharging pneumatic conveying device with optimized air duct, characterized in that, include: Bottle ejector; The blow-blowing air duct is installed on the bottle outlet support to hold the bottle in place; Air inlets located on both sides of the blow molding duct are used to guide airflow toward the bottle. The first air inlet pipe and the second air inlet pipe are connected to both sides of the air inlet; Fan connectors that connect to the inlets of the first and second air inlets respectively; A high-pressure blower connected to a blower connector; The fan connector is equipped with an air outlet. The high-pressure blower is equipped with an air inlet.
2. The bottle-discharging pneumatic conveying device with optimized air duct according to claim 1, characterized in that: The first and second air inlet pipes are independent pipes, respectively located on both sides of the bottle outlet bracket.
3. The bottle-discharging pneumatic conveying device with optimized air duct according to claim 2, characterized in that: The blow molding duct consists of two plates that hold the bottle opening in place, and two rods are provided below the blow molding duct to hold the bottle body in place.
4. The bottle-discharging pneumatic conveying device with optimized air duct according to claim 3, characterized in that: The air inlet is located at the inlet position of the bottle outlet bracket.
5. The bottle-discharging pneumatic conveying device with optimized air duct according to claim 1, characterized in that: The high-pressure blower is equipped with a mounting base at the bottom, and the base has casters at the bottom.