Container inner surface coating method

The method of using a long nozzle and rotating the container ensures a uniform and thin liquid repellent layer on plastic containers, addressing the challenge of uniform application and preventing dripping.

JP7679588B2Active Publication Date: 2025-05-20KYORAKU CO LTD
View PDF 6 Cites 0 Cited by

Patent Information

Application Number
JP2021057317
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-03-30
Publication Date
2025-05-20
Estimated Expiration
2041-03-30

AI Technical Summary

Technical Problem

Existing methods face challenges in applying a liquid repellent agent uniformly and thinly on the inner surface of plastic containers without causing thick coating or dripping, especially in narrow spaces like plastic bottles.

Method used

A method involving a long, thin shaft-shaped nozzle inserted into the container, combined with rotating the container, to apply the liquid repellent agent while adjusting the nozzle's angle and movement, ensuring uniform coverage.

Benefits of technology

Achieves a thin, uniform liquid repellent layer on the inner surface of plastic containers, preventing thick coating and dripping, thereby enhancing sliding properties.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007679588000002
    Figure 0007679588000002
  • Figure 0007679588000003
    Figure 0007679588000003
  • Figure 0007679588000004
    Figure 0007679588000004
Patent Text Reader

Abstract

To provide a method of coating an inner surface of a container that can coat an inner surface of a plastic container with a repellent thinly and evenly, so that thick coating and dripping or the like never occur.SOLUTION: In coating an inner wall surface of a plastic container with a repellent to form a repellent layer having irregularities on a surface thereof, a nozzle in a slender shaft-shape is inserted into the container, a tip of the nozzle is made to jet the repellent and the plastic container is made to rotate. Preferably, a rotation speed of the plastic container is set to be 400 rpm-1000 rpm, and more preferably the rotation speed is set to be 600 rpm-800 rpm. In coating, the nozzle is moved in an axial direction. After being coated with the repellent, the plastic container is rotated again when being dried.SELECTED DRAWING: Figure 3
Need to check novelty before this filing date? Find Prior Art

Description

[Technical field]

[0001] The present invention relates to a method for coating the inner surface of a container with a liquid repellent agent. [Background technology]

[0002] In plastic containers that contain viscous contents such as mayonnaise or ketchup, in order to ensure smooth discharge of the contents, it is necessary to improve the sliding properties of the inner surface of the container. For example, a lubricant is added to the base resin that comes into contact with the contents (see Patent Document 1, etc.).

[0003] In the invention described in Patent Document 1, a lubricant made by mixing a surfactant with an HLB value of less than 1 and an unsaturated fatty acid amide is added to the base resin that comes into contact with the contents of a plastic bottle, resulting in a plastic bottle with excellent sliding properties for the contents. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] JP 2013-10541 A Summary of the Invention [Problem to be solved by the invention]

[0005] However, when adding a lubricant to the base resin of a plastic container, it may be necessary to review the molding conditions, and as a simpler method, coating (applying) a liquid repellent to the inner surface of the plastic container is also being considered.

[0006] However, when coating a liquid repellent agent, the formation of a thin and uniform liquid repellent layer is a challenge. Since the inside of a plastic container is a narrow space, it is known that it is difficult to apply the agent by spray coating, for example. When applying the agent by spraying from the mouth of a plastic container inward, it is difficult to apply a thin and uniform coating over the entire surface of the container, and there are cases where the agent is applied too thickly in some places or drips occur due to excessive application.

[0007] The present invention has been made in consideration of the above-mentioned conventional circumstances, and aims to provide a method for coating the inner surface of a container, which can apply a liquid repellent agent thinly and uniformly to the inner surface of a plastic container without causing thick coating or dripping. [Means for solving the problem]

[0008] In order to achieve the above object, the container inner surface coating method of the present invention comprises the steps of: applying a liquid repellent agent to the inner wall surface of a plastic container to form a liquid repellent layer having an uneven surface; Place the plastic container horizontally, A long, thin shaft-shaped nozzle is inserted into the container, and the liquid repellent is sprayed from the tip of the nozzle while the plastic container is being The plastic container is rotated and the inclination angle of the plastic container is changed when applying the liquid to the bottom or shoulder of the plastic container.

[0009] By inserting a long, thin shaft-shaped nozzle into the container and applying the liquid-repellent agent, the liquid-repellent agent reaches every corner of the plastic container, and the entire surface of the container is coated. In addition, by rotating the plastic container while applying the liquid, a thin, uniform coating is achieved, and thick coating and dripping are eliminated. Effect of the Invention

[0010] According to the present invention, it is possible to provide a method for coating the inner surface of a container, which can apply a liquid repellent agent thinly and uniformly to the inner surface of a plastic container, without causing thick coating or dripping. [Brief description of the drawings]

[0011] [Figure 1] FIG. 1 is a schematic front view showing an example of a plastic container. [Diagram 2] FIG. 2 is a schematic cross-sectional view of a main part showing the layer structure of a plastic container. [Diagram 3] FIG. 1 is a diagram showing a state in which a shaft-shaped nozzle is inserted into a plastic container to perform application. [Figure 4] FIG. 13 is a diagram showing the ejection direction of the liquid repellent agent. [Diagram 5] FIG. 2 is a schematic side view showing the configuration of a coating device. [Figure 6] 1 is a photograph showing the surface state of a liquid-repellent layer when the rotation speed of a plastic container is set to 600 rpm. [Figure 7] 1 is a photograph showing the surface state of a liquid-repellent layer when the rotation speed of a plastic container is set to 800 rpm. [Figure 8] 1 is a photograph showing the surface state of a liquid-repellent layer when the rotation speed of a plastic container is set to 1000 rpm. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0012] Hereinafter, an embodiment of a container inner surface coating method according to the present invention will be described with reference to the drawings.

[0013] FIG. 1 is a diagram showing an example of a plastic container 1 to which the application method of the present invention is applied. As shown in FIG. 1, the plastic container 1 is a container for storing contents. Examples of the contents include viscous substances such as mayonnaise and ketchup. The plastic container 1 is configured to squeeze a body 14 or the like to dispense the contents from a spout 12 having a screw thread 11 formed thereon, and the spout 12 is usually sealed with a cap 13 attached thereto. The plastic container 1 is a blow-molded body formed by, for example, blow molding.

[0014] The plastic container 1 may have a single layer structure or a multi-layer structure, but a multi-layer structure is preferable. Fig. 2 shows an example of the layer structure of the plastic container 1, which includes, in order from the inner surface side of the container 1, an innermost layer 2, an intermediate layer 3, an adhesive resin layer 4, a barrier layer 5, an adhesive resin layer 6, and an outermost layer 7. The layer structure of the plastic container 1 is not limited to this, and may, for example, omit at least one of these layers, or may further include another layer.

[0015] The outermost layer 7 is made of a resin composition containing a thermoplastic resin such as polyolefin, and this resin composition preferably contains a lubricant, which can prevent problems caused by poor sliding of the surface of the plastic container 1.

[0016] The barrier layer 5 is made of a resin with high gas barrier properties. Examples of such resins include ethylene vinyl alcohol copolymer (EVOH: saponified ethylene vinyl acetate copolymer, etc.) and aromatic polyamide. By providing the barrier layer 5, it is possible to effectively suppress oxidative deterioration of the contents due to oxygen permeation.

[0017] The intermediate layer 3 is composed of a resin composition containing a thermoplastic resin such as polyolefin. The intermediate layer 3 can be omitted. The intermediate layer 3 may be a repro layer made by recycling flash generated during blow molding of the container 1.

[0018] The adhesive resin layers 4 and 6 are composed of an adhesive resin. Examples of the adhesive resin include acid-modified polyolefin resins (e.g., maleic anhydride-modified polyethylene and maleic anhydride-modified polypropylene). By providing the adhesive resin layers 4 and 6, the adhesion between the barrier layer 5 and the outermost layer 7 or the intermediate layer 3 is improved. Instead of providing the adhesive resin layers 4 and 6, an adhesive resin may be blended into the barrier layer 5.

[0019] The innermost layer 2 is a layer that comes into contact with the contents and is composed of a resin composition containing a base resin. The base resin is preferably a thermoplastic resin such as polyolefin. Examples of polyolefin include polyethylene and polypropylene. In addition, filling particles may be added to the base resin, and an uneven shape due to the presence of the filling particles may be provided on the inner surface of the innermost layer 2 (i.e., the inner surface of the plastic container 1).

[0020] When the innermost layer 2 is provided with an uneven shape, the ten-point average roughness Rz is preferably about 7 to 500 μm, more preferably 10 to 300 μm, and most preferably 10 to 100 μm. By setting it within this range, the sliding properties can be particularly improved.

[0021] The filler particles used to provide the innermost layer 2 with an uneven shape are particles capable of imparting an uneven shape, and filler particles containing at least one of an organic component and an inorganic component can be used.

[0022] Suitable examples of inorganic components that can be used include: 1) metals such as aluminum, copper, iron, titanium, silver, and calcium, or alloys or intermetallic compounds containing these; 2) oxides such as silicon oxide, aluminum oxide, zirconium oxide, titanium oxide, and iron oxide; 3) inorganic acid salts or organic acid salts such as calcium phosphate and calcium stearate; 4) glass; and 5) ceramics such as aluminum nitride, boron nitride, silicon carbide, and silicon nitride.

[0023] As the organic component, for example, organic polymer components (or resin components) such as acrylic resins, urethane resins, melamine resins, amino resins, epoxy resins, polyethylene resins, polystyrene resins, polypropylene resins, polyester resins, cellulose resins, vinyl chloride resins, polyvinyl alcohol, ethylene-vinyl acetate copolymers, ethylene-vinyl alcohol copolymers, ethylene-ethyl acrylate copolymers, polyacrylonitrile, polyamide, etc. can be suitably used.

[0024] In the plastic container 1 having the above configuration, the sliding properties are improved by applying a liquid repellent agent to the inner surface and forming a liquid repellent layer 20 on the surface of the innermost layer 2. A method for applying the liquid repellent agent to the inner surface of the plastic container 1 will be described below.

[0025] In this embodiment, the liquid repellent agent is applied to the inner surface of the plastic container 1 by inserting a long, thin, shaft-like nozzle 30 into the plastic container 1, as shown in Fig. 3. The size of the plastic container 1 is arbitrary, but is, for example, about 100 mL to 300 mL in volume and 10 mm to 50 mm in diameter.

[0026] The nozzle 30 is composed of a shaft portion 31, which is a long and thin tubular member, and a nozzle head 32 provided at the tip of the shaft portion 31. The shaft portion 31 is a hollow tubular member, and the liquid repellent agent is supplied to the nozzle head 32 at the tip through the hollow portion. The liquid repellent agent supplied to the nozzle head 32 is sprayed in a predetermined direction from a spray hole provided in the nozzle head 32.

[0027] Any agent having oil- and water-repellent properties can be used as the liquid-repellent agent to be applied to the inner surface of the plastic container 1, but it is preferable to use a liquid-repellent agent that has an uneven surface and is capable of forming a liquid-repellent layer that exerts a lotus effect. For example, a dispersion liquid in which a fluorine-based compound is dispersed in a solvent such as ethanol can be used.

[0028] The liquid repellent used will be described in detail below. The liquid repellent used in this embodiment contains at least one kind of hydrophobic particles and hydrophobic / oleophobic particles.

[0029] The hydrophobic particles usually have a primary particle average diameter of 3 to 100 nm, preferably 5 to 50 nm, and more preferably 7 to 30 nm. By setting the primary particle average diameter within the above range, the hydrophobic particles are in a moderately aggregated state, and gas such as air can be held in the voids in the aggregate, resulting in excellent sliding properties. In other words, this aggregated state is maintained even after attachment to the surface of the uneven shape, so that excellent sliding properties can be exhibited.

[0030] The hydrophobic particles are not particularly limited as long as they have hydrophobicity, and may be those that have been made hydrophobic by surface treatment. For example, hydrophilic oxide fine particles may be surface-treated with a silane coupling agent or the like to make the surface state hydrophobic. The type of oxide is also not limited as long as it has hydrophobicity. For example, at least one of silica (silicon dioxide), alumina, titania, etc. may be used. Among these, hydrophobic silica fine particles are preferably used as the hydrophobic oxide particles. In particular, hydrophobic silica fine particles having trimethylsilyl groups on the surface are preferred in terms of obtaining better non-adhesiveness.

[0031] As the lipophobic particles, for example, composite particles in which the surface of oxide fine particles is coated with a fluorine-based resin or the like can be used. As the oxide fine particles, for example, at least one type of oxide fine particles such as silicon oxide, titanium oxide, aluminum oxide, zinc oxide, etc. particles (powder) can be used. In particular, silicon oxide particles are preferable. These oxide fine particles can also be commercially available products.

[0032] The liquid repellent is generally used in the form of a dispersion in which at least one of the hydrophobic particles and the lipophobic particles is dispersed in a solvent.

[0033] Examples of the solvent to be used include organic solvents such as aromatic hydrocarbons such as toluene and xylene, alicyclic hydrocarbon solvents such as methylcyclohexane and cyclohexane, ester solvents such as ethyl acetate and butyl acetate, ketone solvents such as methyl ethyl ketone and acetone, and alcohol solvents such as isopropyl alcohol and denatured ethanol. These can be used alone or in combination of two or more.

[0034] The plastic container 1 may be heated before applying the liquid repellent agent. For example, the container may be placed in a thermostatic chamber at 120° C. for about 1 minute, removed, and immediately applied. Alternatively, the inside may be heated with a heat gun for about 10 seconds, and then immediately applied. By heating the plastic container 1 beforehand, the solvent is more easily evaporated during application, and the drying time is shortened, resulting in the formation of a liquid repellent layer with excellent surface irregularities.

[0035] In applying the liquid repellent agent using the nozzle 30, first, the nozzle 30 is inserted into the plastic container 1 from its opening. At this time, the nozzle 30 is inserted into the plastic container 1 so that the central axis of the nozzle 30 and the central axis of the plastic container 1 are roughly aligned. In this example, the plastic container 1 is laid horizontally, but this is not limited thereto, and the plastic container 1 may be inclined at any angle.

[0036] Next, while rotating the plastic container 1, the liquid repellent agent is sprayed from the nozzle head 32 of the nozzle 30 to apply the liquid repellent agent to the inner surface of the plastic container 1. When applying the liquid repellent agent, it is possible to rotate either the plastic container 1 or the nozzle 30, but by rotating the plastic container 1, centrifugal force is applied to the liquid repellent agent adhering to the inner surface, which is advantageous in applying the liquid repellent agent thinly and uniformly.

[0037] During application, application is performed while moving the nozzle 30 in the axial direction (the direction of the central axis of the shaft portion 31). For example, after inserting the nozzle 30 so that the tip of the nozzle 30 is positioned near the bottom of the plastic container 1, the application is performed while moving the nozzle 30 in the direction of pulling it out. The nozzle 30 may move in the direction only once, or may be moved back and forth within the plastic container 1. The movement speed of the nozzle 30 is basically constant, but it can also be changed according to the shape of the plastic container 1, for example by slowing down the movement speed of the nozzle 30 in a portion where the shape of the plastic container 1 is large to increase the amount of liquid repellent applied.

[0038] In addition, the direction in which the liquid repellent agent is sprayed from the nozzle head 32 is arbitrary, but if the spray direction is, for example, axial, there is a possibility that a sufficient coating film cannot be formed on the corners near the bottom of the plastic container 1 or the shoulders near the mouth. In order to avoid such inconvenience, it is preferable to set the spray direction θ of the liquid repellent agent from the nozzle head 32 to an oblique direction as shown in Fig. 4. By setting the spray direction θ of the liquid repellent agent from the nozzle head 32 to 20° to 60°, for example 30° or 45°, it is possible to uniformly apply the liquid repellent agent to the entire inner surface of the plastic container 1.

[0039] An example of an apparatus for carrying out the above-mentioned coating method is shown in Fig. 5. The coating apparatus shown in Fig. 5 is composed of a container holding mechanism 41 for holding and rotating the plastic container 1, and a nozzle driving mechanism 51 for inserting and moving the nozzle 30 into the plastic container 1.

[0040] The container holding mechanism 41 has holder parts 42, 43 that grip the plastic container 1, and these holder parts 42, 43 sandwich and hold the plastic container 1. The holder parts 42, 43 can be rotated by a rotation mechanism, and the held plastic container 1 is rotated by rotating these. The rotation speed can be adjusted as appropriate. Furthermore, the container holding mechanism 41 has a tilting mechanism that can change the tilt angle of the plastic container 1 held by the holder parts 42, 43, and by changing the tilt angle of the held plastic container 1, it is possible to apply the agent to the bottom surface, shoulder part, etc. of the plastic container 1 with pinpoint accuracy.

[0041] The nozzle drive mechanism 51 includes a support stand 52, a linear motion mechanism 53, and a nozzle support block 54, and the nozzle support block 54 to which the nozzle 30 is attached is moved in the direction of the arrow by the linear motion mechanism 53. In addition, a liquid repellent agent is supplied to the nozzle 30 via the nozzle support block 54.

[0042] When applying the liquid repellent agent, the plastic container 1 is attached to the holder parts 42, 43 of the container holding mechanism 41, and the nozzle drive mechanism 51 is operated to move the nozzle support block 54 toward the container holding mechanism 41 and cause the nozzle 30 to enter the plastic container 1. Next, the holder parts 42, 43 (plastic container 1) of the container holding mechanism 41 are rotated and the nozzle 30 is moved, causing the liquid repellent agent to be sprayed from the nozzle 30, thereby applying the liquid repellent agent to the inner surface of the plastic container 1.

[0043] After the coating is completed, the liquid-repellent layer formed on the inner surface of the plastic container 1 must be dried, but it is preferable to continue rotating the plastic container 1 even during drying. If the rotation of the plastic container 1 is stopped while the liquid-repellent layer is still wet, the liquid may drip and cause unevenness.

[0044] In applying the liquid repellent agent, it is important to adjust the rotation speed of the plastic container 1 appropriately. Specifically, the rotation speed of the plastic container 1 is preferably set to 400 rpm to 1000 rpm. If the rotation speed of the plastic container 1 is less than 400 rpm, dripping may occur. If dripping occurs in applying the liquid repellent agent, the liquid repellent layer in that portion may be peeled off from the inner surface of the plastic container 1, and sufficient sliding performance may not be obtained. Conversely, if the rotation speed of the plastic container 1 exceeds 1000 rpm, the surface of the liquid repellent layer formed may become too flat, and sufficient sliding performance may not be obtained.

[0045] Furthermore, in the coating of the above-mentioned liquid repellent agent, it has been found that the surface state of the coating film (liquid repellent agent layer) formed can be controlled by the coating conditions, such as the rotation speed of the plastic container 1 during coating. For example, by changing the coating conditions, the surface of the liquid repellent layer 20 formed changes, such as the surface state of the liquid repellent layer 20 being flat or having fine irregularities. Furthermore, the longer the drying and solvent evaporation process is taken, the flatter the surface of the liquid repellent layer 20 formed becomes, and shortening the time causes irregularities to form.

[0046] When fine irregularities are formed on the surface of the liquid-repellent layer 20, the physical effect of the lotus effect is added to the chemical effect of the liquid-repellent agent, improving the sliding properties. In other words, high sliding properties can be achieved even if the inner surface of the plastic container 1 is not provided with irregularities in advance. On the other hand, when irregularities are formed on the surface of the liquid-repellent layer 20, the liquid-repellent layer 20 tends to peel off easily.

[0047] In view of these circumstances, it is preferable that the surface of the liquid-repellent layer 20 has appropriate irregularities, and in order to achieve this, it is preferable to set the rotation speed of the plastic container 1 during application to 600 rpm to 800 rpm. By setting the rotation speed within this range, the surface condition of the liquid-repellent layer 20 formed can be made appropriate, and a liquid-repellent layer 20 that has excellent sliding properties and is difficult to peel off can be formed.

[0048] As described above, according to the container inner surface coating method of this embodiment, it is possible to apply a liquid repellent agent thinly and uniformly to the inner surface of a plastic container 1, thereby realizing a container inner surface coating method that does not result in thick coating or dripping.

[0049] Although an embodiment of the present invention has been described above, it goes without saying that the present invention is not limited to this embodiment, and various modifications are possible without departing from the spirit of the present invention. EXAMPLES

[0050] 1. Preparation of plastic container A plastic container with the shape shown in Figure 1 was produced by direct blow molding of the parison. The volume of the produced container was 150 mL and the diameter was 40 mm. Polyethylene (melting point 112°C) was used as the base resin for the innermost layer of the parison.

[0051] 2. Applying liquid repellent Using the device shown in Fig. 5, a liquid repellent agent was applied to the inner surface of a plastic container. The liquid repellent agent was a dispersion liquid in which a fluorine-based compound was dispersed in ethanol. The liquid repellent agent was ejected from the nozzle at an angle of 45°. Under these conditions, the rotation speed of the plastic container was changed in the range of 300 rpm to 1100 rpm to form a liquid repellent layer, and samples 1 to 6 were produced.

[0052] 3. Evaluation The slip-down performance was evaluated for the prepared samples 1 to 6. The evaluation method was as follows. Contents: Olive oil extra virgin Test method: Using a syringe, olive oil was dripped little by little onto a small sample piece (a small piece cut from a plastic container) placed on a slope (incline angle 3°), and the amount of liquid at which it began to slide down was measured from the difference in the weight of the syringe. Three measurements were taken per sample, and the average value was calculated. The higher the sliding performance, the smaller the amount of liquid needed (lower load) to slide down, so the sliding performance was evaluated in three stages based on the measured amount of liquid. The results are shown in Table 1.

[0053] [Table 1]

[0054] From Table 1, it can be seen that good sliding performance can be obtained by optimizing the rotation speed of the plastic container.

[0055] The surface state of the liquid-repellent layer formed is shown in Figures 6 and 7. Figure 6 is a photograph showing the surface state of the liquid-repellent layer when the rotation speed of the plastic container is 600 rpm, Figure 7 is a photograph showing the surface state of the liquid-repellent layer when the rotation speed of the plastic container is 800 rpm, and Figure 8 is a photograph showing the surface state of the liquid-repellent layer when the rotation speed of the plastic container is 1000 rpm. There is a tendency for the surface to become flatter as the rotation speed of the plastic container is faster.

[0056] In sample 1, considerable peeling was observed in the liquid-repellent layer, and the performance was insufficient. In sample 2, some peeling was observed in the liquid-repellent layer, and the performance was not sufficient. When the rotation speed of the plastic container during application was set to 600 to 800 rpm, the liquid-repellent layer had a good surface condition and exhibited good sliding performance. When the rotation speed exceeded 800 rpm, the surface of the liquid-repellent layer became too flat, and a decrease in sliding performance was observed. [Explanation of symbols]

[0057] 1. Plastic container 20 Liquid repellent layer 30 Nozzles 31 Shaft section 32 Nozzle head

Claims

1. When applying a liquid repellent agent to the inner wall surface of a plastic container to form a liquid repellent layer having an uneven surface, Place the plastic container horizontally, A long, thin shaft-shaped nozzle is inserted into the container, and the liquid repellent agent is sprayed from the tip of the nozzle while the plastic container is rotated. A method for coating the inside surface of a container, characterized in that the inclination angle of the plastic container is changed when coating the bottom surface or shoulder portion of the plastic container.

2. 2. The method for coating an inner surface of a container according to claim 1, wherein the liquid repellent agent contains at least one kind selected from the group consisting of hydrophobic particles and hydrophobic / oleophobic particles.

3. 3. The method for coating the inner surface of a container according to claim 1, wherein the rotation speed of the plastic container is set to 400 rpm to 1000 rpm.

4. 3. The method for coating the inner surface of a container according to claim 1, wherein the rotation speed of the plastic container is 600 rpm to 800 rpm.

5. 5. The method for coating an inner surface of a container according to claim 1, wherein the nozzle is moved in an axial direction.

6. 6. The method for coating the inner surface of a container according to claim 1, wherein the direction in which the liquid repellent agent is ejected is set to 30° to 45° with respect to the axial direction of the nozzle.

7. 7. The method for coating the inner surface of a container according to claim 1, wherein the plastic container is preheated.

8. 8. The method for coating the inner surface of a container according to claim 1, wherein the plastic container is rotated even when drying after the application of the liquid repellent agent.

Citation Information

Patent Citations

  • Method and device for painting inside surface of vessel

    JP1982167762A

  • Method for coating film on pulp molding

    JP2002038399A

  • A method of applying a polymer coating to the inner surface of a container

    JP2003519570A

  • Plastic bottle

    JP2013010541A

  • Packaging container excellent in slipping property for content

    JP2016222348A