Externally Coated Woven Fabric With PE Inner Liner
Lifting Loop Design:
4 Cross-Bottom Lifting Loops, 7 Cm Wide, Approx. 45 Cm Loop Height
Filling & Discharge:
Ø45 × 60 Cm Filling Spout / Ø45 × 45 Cm Discharge Spout
Inner Liner:
200 × 340 Cm PE Liner, Approx. 90 μm
Additives:
1% UV Additive / 2% Anti-Static Additive
Sewing Density:
9–12 Stitches Per 10 Cm
Custom Service:
Custom Size, Spout, Liner And Printing Available
Application:
Nickel Salt Bulk Packaging
Highlight:
Nickel Sulfate pp woven fibc bags
,
1 Ton pp woven fibc bags
,
1000kg fibc totes
Product Description
190 g/m² Panel Nickel Sulfate FIBC Bag with Coated Top and Bottom
Two Critical Areas in Powder Packaging
During nickel sulfate filling, the material first passes through the top filling spout. During unloading, it is concentrated through the bottom discharge spout. These top and bottom areas connect multiple fabric sections and are directly exposed to material flow, dust movement, and localized deformation.
The top and bottom panels of this FIBC use 190 g/m² externally coated material. The bag has a Ø45 × 60 cm filling spout and a Ø45 × 45 cm discharge spout. Its circular body uses 180 g/m² externally coated woven fabric, while an approximately 90 μm PE liner provides an additional material-isolation layer.
Why Coat the Top and Bottom?
Coated Top for Filling-Dust Control
When powder enters the bag, continuous material flow and displaced air affect the area around the filling spout. Fine dust may escape through woven openings or connection areas if the top fabric has an open woven surface.
The 190 g/m² coated top panel is intended to:
Cover openings in the PP woven surface;
Reduce dust escape directly through the top fabric;
Help keep the filling area cleaner;
Reduce entry of fine material into the woven layer;
Provide a coated surface around the filling-spout connection.
Actual dust control also depends on equipment connection, spout fastening, liner installation, and seam condition. The coated panel does not replace enclosed filling or dust-collection equipment.
Coated Bottom for Discharge-Area Control
During discharge, the material moves toward the bag bottom and exits through the discharge spout. This area also connects the body, outlet structure, and cross-bottom lifting belts.
The 190 g/m² coated bottom panel helps:
Reduce fine-powder escape through the woven bottom surface;
Limit entry of material into the bottom woven layer;
Keep the discharge area relatively clean;
Work with the PE liner and closure structure during unloading;
Reduce material loss through woven openings under normal handling conditions.
A coated bottom should not be described as completely leakproof. Spout closure, liner connection, seam construction, and particle size still affect containment performance.
Panel Body and Structural Stability
The 190 g/m² value applies to the top and bottom panels, not to the entire bag body. The circular body uses 180 g/m² externally coated woven material with specified warp and weft fabric strengths of at least 1760 N.
Within the filled-bag structure:
The top panel connects the filling spout to the upper body;
The 180 g/m² circular body forms the main material-containing section;
The bottom panel connects the discharge spout to the body;
Four 7 cm wide lifting belts extend along the corners and beneath the bag;
The PE liner separates the nickel sulfate from the woven outer bag.
The purpose of the 190 g/m² panels is not limited to higher local fabric weight. They also provide transition sections around the filling spout, discharge spout, and woven body. Filled-bag shape still depends on bulk density, flowability, filling distribution, actual filling weight, and pallet support.
Bag Area | Main Risk | Structural Response
Bag Area
Main Risk
Structural Response
Top
Filling dust escaping through woven openings or around the inlet
190 g/m² externally coated top with Ø45 × 60 cm filling spout
Body
Main load and lateral pressure after filling
180 g/m² coated circular body with warp and weft strength ≥1760 N
Bottom
Powder escape or material entry into the woven surface during discharge
190 g/m² externally coated bottom with Ø45 × 45 cm discharge spout
Interior
Direct contact between nickel sulfate and the woven outer bag
200 × 340 cm PE liner, approximately 90 μm
Corners and bottom
Load transfer between different bag sections during handling
Four 7 cm wide cross-bottom lifting belts
Seams
Dust paths or localized loosening at panel connections
Double-fold seams with 9–12 stitches per 10 cm
Main Specifications
Parameter
Specification
Product
Nickel Sulfate FIBC Bag
Specified load
1000 kg
Finished dimensions
93 × 93 × 105 cm
Body construction
Circular woven PP body
Body fabric
180 g/m² white externally coated woven material
Top panel
190 g/m² white externally coated material
Bottom panel
190 g/m² white externally coated material
Fabric strength
Warp ≥1760 N; weft ≥1760 N
Filling spout
Ø45 × 60 cm
Discharge spout
Ø45 × 45 cm
Inner liner
200 × 340 cm PE liner, approximately 90 μm
Lifting structure
Four cross-bottom lifting belts positioned along the corners
Lifting-belt width
7 cm
Loop height
Approximately 45 cm
UV additive
1%
Anti-static additive
2%
Sewing density
9–12 stitches per 10 cm
Where This Configuration Is More Useful
Filling
When nickel sulfate enters through a pipeline, screw conveyor, or gravity filling system, the 190 g/m² coated top covers the woven surface around the inlet. The filling spout must match the equipment connection, and the PE liner must be correctly extended and secured.
Short-Term Storage
After filling, the coated top and bottom panels work with the PE liner to limit direct exposure of the material to the woven layer and storage environment. The filling spout and liner still need to be properly closed, and the bag should not be placed directly on a damp floor.
A defined moisture-barrier requirement or extended storage period requires confirmation of the liner closure and barrier performance.
Internal Transfer
During internal movement, the bag bottom remains in contact with the pallet or supporting surface. The 190 g/m² coated bottom works with the cross-bottom lifting structure, but the pallet must provide complete support and remain free from burrs that could damage the coating or liner.
Discharge
During unloading, material is concentrated through the Ø45 × 45 cm discharge spout. The coated bottom reduces powder escape through the bottom woven surface, while actual discharge control depends on the spout closure, liner connection, and material flowability.
For material that tends to bridge or agglomerate, confirm whether the outlet diameter and downstream equipment can support the required discharge process.
What to Confirm for Top and Bottom Coating
1. Filling-Spout Structure
Confirm the filling-equipment outlet diameter, connection method, filling speed, and whether enclosed filling is used. The Ø45 × 60 cm spout should be checked against the equipment interface.
2. Discharge-Spout Structure
Confirm whether the material will be discharged by gravity, vacuum transfer, or manual assistance. Verify that the Ø45 × 45 cm outlet matches the required flow rate and downstream equipment.
3. Powder Particle Size and Flowability
Fine powder places greater demands on woven openings, seams, and spout closure. Poorly flowing material may accumulate around the bag bottom. Particle-size range, bulk density, and flow behaviour should be provided before production.
4. Higher Moisture-Barrier Requirements
External coating covers the woven surface but does not prove a specified moisture-barrier level. Extended storage, sea freight, or high-humidity conditions may require a different liner thickness, closure method, or barrier specification.
5. Inner-Liner Requirement
The current configuration includes a 200 × 340 cm PE liner with an approximate thickness of 90 μm. If the liner is removed, the dust-containment and environmental-isolation conditions change, requiring the coating, seams, and spout closures to be reassessed.